A club head with balanced impact and swing performance
The golf club head design balances impact and swing performance by maximizing moment of inertia and minimizing drag through strategic weight placement and material optimization, improving spin, launch angle, ball speed, and forgiveness.
Patent Information
- Application Number
- JP2024111889
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-08-18
- Filing Date
- 2024-07-11
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2037-11-16
AI Technical Summary
Existing golf club head designs often compromise between impact performance characteristics (e.g., spin, launch angle, velocity, forgiveness) and swing performance characteristics (e.g., air resistance, ability to square the club head at impact), necessitating a need for a design that balances both.
The golf club head design maximizes moment of inertia at a low, rearward center of gravity location while minimizing aerodynamic drag by strategically positioning discretionary weights, using thinner materials, and incorporating features like turbulators and optimized hosel weights.
This design achieves improved impact and swing performance characteristics by enhancing spin, launch angle, ball speed, forgiveness, and reducing aerodynamic drag, resulting in balanced performance across various club types.
Smart Images

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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Patent Application No. 62 / 469,911, filed March 10, 2017, U.S. Provisional Patent Application No. 62 / 449,403, filed January 23, 2017, and U.S. Provisional Patent Application No. 62 / 423,878, filed November 18, 2016, and also claims priority to U.S. Patent Application No. 15 / 680,404, filed August 18, 2017, the contents of all of which are incorporated in their entirety.
[0002] The present disclosure relates to golf clubs, and more particularly to club heads with balanced impact and swing performance. [Background technology]
[0003] Various golf club head design parameters, such as volume, center of gravity location, and moment of inertia, affect impact performance characteristics (e.g., spin, launch angle, velocity, forgiveness) and swing performance characteristics (e.g., air resistance, ability to square the club head at impact). Often, a club head design that improves impact performance characteristics can adversely affect swing performance characteristics (e.g., air resistance), or alternatively, a club head design that improves swing performance characteristics can adversely affect impact performance characteristics. Therefore, there is a need in the art for a club head with improved impact performance characteristics balanced against improved swing characteristics. [Brief explanation of the drawings]
[0004] [Figure 1] FIG. 1 is a front view of a golf club head according to one embodiment.
[0005] [Figure 2] 2 is a side cross-sectional view of the golf club head of FIG. 1 taken along line II-II.
[0006] [Figure 3] FIG. 2 is a bottom view of the golf club head of FIG. 1.
[0007] [Figure 4] FIG. 2 is a side cross-sectional view of the golf club head of FIG. 1.
[0008] [Figure 5] FIG. 2 is an enlarged side cross-sectional view of the golf club head of FIG. 1.
[0009] [Figure 6] FIG. 2 is an enlarged side cross-sectional view of the golf club head of FIG. 1.
[0010] [Figure 7] FIG. 2 is a plan view of the golf club head of FIG. 1.
[0011] [Figure 8] FIG. 2 is a rear view of the golf club head of FIG. 1.
[0012] [Figure 9] FIG. 2 is a side cross-sectional view of the golf club head of FIG. 1.
[0013] [Figure 10A] 1 illustrates the relationship between drag and moment of inertia about the x-axis for various known golf club heads.
[0014] [Figure 10B] 1 illustrates the relationship between drag and moment of inertia about the y-axis for various known golf club heads.
[0015] [Figure 10C] 1 illustrates the relationship between drag and resultant moment of inertia for various known golf club heads.
[0016] [Figure 11A]1 illustrates the relationship between drag and resultant moment of inertia for golf club heads described herein compared to known golf club heads.
[0017] [Figure 11B] FIG. 10 illustrates the relationship between drag and resultant moment of inertia for golf club heads described herein compared to known golf club heads.
[0019] [Figure 12] 1 illustrates the relationship between drag and club head center of gravity depth for various known golf club heads.
[0020] [Figure 13A] 1 illustrates the relationship between drag and club head center of gravity depth for golf club heads described herein compared to known golf club heads.
[0021] [Figure 13B] 1 illustrates the relationship between drag and club head center of gravity depth for golf club heads described herein compared to known golf club heads.
[0023] [Figure 14] 1 illustrates the relationship between the resultant moment of inertia and club head center of gravity depth for golf club heads described herein compared to known golf club heads.
[0024] [Figure 15] FIG. 10 is a front view of a golf club head according to another embodiment.
[0025] [Figure 16] 16 is a side cross-sectional view of the golf club head of FIG. 15 taken along line II-II.
[0026] [Figure 17] FIG. 16 is a bottom view of the golf club head of FIG. 15.
[0027] [Figure 18] FIG. 16 is a side cross-sectional view of the golf club head of FIG. 15.
[0028] [Figure 19] FIG. 16 is an enlarged side cross-sectional view of the golf club head of FIG. 15.
[0029] [Figure 20] FIG. 16 is an enlarged side cross-sectional view of the golf club head of FIG. 15.
[0030] [Figure 21] FIG. 16 is a top view of the golf club head of FIG. 15.
[0031] [Figure 22] FIG. 16 is a rear view of the golf club head of FIG. 15.
[0032] [Figure 23A] 1 illustrates the relationship between drag and moment of inertia about the x-axis for various known golf club heads.
[0033] [Figure 23B] 1 illustrates the relationship between drag and moment of inertia about the y-axis for various known golf club heads.
[0034] [Figure 23C] 1 illustrates the relationship between drag and resultant moment of inertia for various known golf club heads.
[0035] [Figure 24A] 1 illustrates the relationship between drag and resultant moment of inertia for golf club heads described herein compared to known golf club heads.
[0036] [Figure 24B] 1 illustrates the relationship between drag and resultant moment of inertia for golf club heads described herein compared to known golf club heads.
[0037] [Figure 25] 1 illustrates the relationship between drag and club head center of gravity depth for various known golf club heads.
[0038] [Figure 26A] FIG. 10 illustrates the relationship between drag and club head center of gravity depth for golf club heads described herein compared to known golf club heads.
[0039] [Figure 26B] FIG. 10 illustrates the relationship between drag and club head center of gravity depth for golf club heads described herein compared to known golf club heads.
[0040] [Figure 27] FIG. 10 illustrates the relationship between the resultant moment of inertia and club head center of gravity depth for golf club heads described herein compared to known golf club heads.
[0041] Other aspects of the present disclosure will become apparent by consideration of the detailed description and accompanying drawings.
[0042] For simplicity and clarity of explanation, the drawings show general construction methods, and descriptions and details of well-known features and techniques may be omitted to avoid unnecessarily obscuring the present disclosure. Moreover, elements in the drawings are not necessarily drawn to scale. For example, the dimensions of some of the elements in the drawings may be exaggerated relative to other elements to help improve understanding of embodiments of the present disclosure. The same reference numbers in different drawings refer to the same elements. DETAILED DESCRIPTION OF THE INVENTION
[0043] The golf clubs described below utilize several relationships that increase or maximize the club head's moment of inertia at a low, rearward CG location while simultaneously maintaining or reducing air resistance. Specifically, the golf clubs described herein have a low, rearward CG as specified. The golf clubs also have a high crown-sole moment of inertia (Ixx) and heel-toe moment of inertia (Iyy). The low, rearward CG and increased moment of inertia are achieved by increasing discretionary weights or relocating discretionary weight areas in the golf club head that are the greatest distance from the head CG. Using a thinner crown or optimized materials increases discretionary weighting. The use of removable weights, steeper crown angles, or recessed weights allows discretionary weights to be removed and placed at the greatest distance from the CG.
[0044] The golf club heads described herein also have low aerodynamic drag relative to golf club heads with similar CG locations and moments of inertia. Maximizing crown height while maintaining a low, rearward CG location reduces aerodynamic drag. The transition profiles from striking face to crown, striking face to sole, and / or crown to sole along the back end of the golf club head provide a means to reduce aerodynamic drag. The use of turbulators and strategic placement of hosel weights further reduces aerodynamic drag.
[0045] The golf clubs described below utilize several relationships that increase or maximize the club head's moment of inertia at a low, rearward CG location while simultaneously maintaining or reducing air resistance. Balancing these relationships between CG, moment of inertia, and resistance improves impact performance characteristics (e.g., spin, launch angle, ball speed, and forgiveness) and swing performance characteristics (e.g., air resistance, ability to square the club head at impact, swing speed). This balance is applicable to driver-type club heads, fairway wood-type club heads, and hybrid-type club heads.
[0046] The terms "first," "second," "third," "fourth," etc., in the specification and claims, if any, are used to distinguish between similar elements and are not necessarily intended to describe a particular sequential or chronological order. Terms so used should be understood to be interchangeable in appropriate circumstances, such that the embodiments described herein are capable of operating in orders other than those illustrated or otherwise described herein. Furthermore, the terms "comprise" and "have," and any conjugations thereof, are intended to cover a non-exclusive inclusion, such that a process, method, system, article, device, or apparatus that includes a list of elements is not necessarily limited to those elements, but may include other elements not expressly listed or inherent to such process, method, system, article, device, or apparatus.
[0047] If any, the terms "left," "right," "front," "rear," "top," "bottom," "above," "below," etc. in this specification and claims are used for descriptive purposes and not necessarily to describe permanent relative positions. It should be understood that terms so used are interchangeable in appropriate circumstances such that embodiments of the apparatus, methods, and / or articles of manufacture described herein are operable, for example, in orientations other than those illustrated or otherwise described herein.
[0048] Before any embodiments of the present disclosure are described in detail, it is to be understood that the disclosure is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The disclosure is applicable to other embodiments and can be practiced or carried out in various ways.
[0049] 1-3 show a golf club head 100 having a body 102 and a ball striking face 104. The body 102 of the club head 100 includes a front end 108, a back end 110 opposite the front end 108, a crown 116, a sole 118 opposite the crown 116, a heel 120, and a toe 122 opposite the heel 120. The body 102 further includes a skirt or rear edge 128 adjacent to and between the crown 116 and the sole 118, the skirt extending from near the heel 120 to near the toe 122 of the club head 100.
[0050] In many embodiments, the club head 100 is a hollow-body club head. In these embodiments, the body and the striking face may define an interior cavity of the golf club head 100. In some embodiments, the body 102 may extend around the crown 116, sole 118, heel 120, toe 122, back end 110, and front end 108 of the club head 100. In these embodiments, the body 102 defines an opening in the front end 108 of the club head 100, and the striking face 104 is disposed within the opening to form the club head 100. In other embodiments, the striking face 104 may extend across the entire front end 108 of the club head and may include a return portion that extends across at least one of the crown 116, sole 118, heel 120, and toe 122. In these embodiments, the return portion of the striking face 104 is coupled to the body 102 to form the club head 100.
[0051] The striking face 104 of the club head 100 comprises a first material. In many embodiments, the first material is a metal alloy, such as a titanium alloy, a steel alloy, an aluminum alloy, or any other metal or metal alloy. In other embodiments, the first material may comprise any other material, such as a composite material, a plastic, or any other suitable material or combination of materials.
[0052] The body 102 of the club head 100 includes a second material. In many embodiments, the second material is a metal alloy, such as a titanium alloy, a steel alloy, an aluminum alloy, or any other metal or metal alloy. In other embodiments, the second material can include any other material, such as a composite material, a plastic, or any other suitable material or combination of materials.
[0053] The first and second materials comprise a strength-to-weight ratio or specific strength, measured as the ratio of the yield stress (σy) to the density (ρ) of the material (see Relationship 1 below), and a strength-to-modulus ratio or specific flexibility, measured as the ratio of the yield stress (σy) to the modulus of elasticity (E) of the material (see Relationship 2 below).
number
number
[0054] 1 , the club head 100 further includes a hosel structure 130 and a hosel axis 132 extending centrally through the bore of the hosel structure 130. In this example, the hosel coupling mechanism of the club head 100 includes the hosel structure 130 and a hosel sleeve 134, which can be coupled to the end of a golf shaft 136. The hosel sleeve 134 can be coupled to the hosel structure 130 in multiple configurations, thereby securing the golf shaft 136 to the hosel structure 130 at multiple angles relative to the hosel axis 132. However, there can be other instances in which the shaft 136 can be non-adjustably secured to the hosel structure 130.
[0055] The striking face 104 of the club head 100 defines a geometric center 140. In some embodiments, the geometric center 140 may be located at the geometric center point of the striking face perimeter 142 and the midpoint of the face height 144. In the same or other examples, the geometric center 140 may also be centered with respect to a designed impact zone 148, which may be defined by the area of grooves 150 on the striking face. As an alternative approach, the geometric center of the striking face may be located based on a definition by a golf governing body, such as the United States Golf Association (USGA). For example, the geometric center of the striking face may be determined in accordance with Section 6.1 of the USGA's Procedure for Measuring the Flexibility of a Golf Club Head (USGA-TPX3004, Rev. 1.0.0, May 1, 2008) (http: / / www.usga.org / equipment / testing / protocols / Procedure-For-Measuring-The-Flexibility-Of-A-Golf Club-Head / ) (“Flexibility Procedure”).
[0056] The club head 100 further defines a loft plane 1010 that is tangent to the geometric center 140 of the ball striking face 104. A face height 144 may be measured parallel to the loft plane 1010 between an upper end of the striking face perimeter 142 near the crown 116 and a lower end of the striking face perimeter 142 near the sole 118. In these embodiments, the striking face perimeter 142 may be located along the outer edge of the striking face 104 where the curvature deviates from the bulge and / or contours of the striking face 104.
[0057] The geometric center 140 of the striking face 104 further defines a coordinate system with its origin at the geometric center 140 of the striking face 104, the coordinate system having an X'-axis 1052, a Y'-axis 1062, and a Z'-axis 1072. The X'-axis 1052 extends through the geometric center 140 of the striking face 104 in a direction from the heel 120 to the toe 122 of the club head 100. The Y'-axis 1062 extends through the geometric center 140 of the striking face 104 in a direction from the crown 116 to the sole 118 of the club head 100 and is perpendicular to the X'-axis 1052. The Z'-axis 1072 extends through the geometric center 140 in a direction from the front end 108 toward the back end 110 of the club head 100 and is perpendicular to the X'-axis 1052 and the Y'-axis 1062.
[0058] The coordinate system defines an X'Y' plane extending through the X' axis 1052 and the Y' axis 1062, an X'Z' plane extending through the X' axis 1052 and the Z' axis 1072, and a Y'Z' plane extending through the Y' axis 1062 and the Z' axis 1072, where the X'Y', X'Z', and Y'Z' planes are all perpendicular to one another and intersect at the origin of the coordinate system, which is located at the geometric center 140 of the striking face 104. The X'Y' plane extends parallel to the hosel axis 132 and is disposed at an angle corresponding to the loft angle of the club head 100 from the loft plane 1010. Furthermore, the X' axis 1052 is disposed at a 60-degree angle relative to the hosel axis 132 when viewed perpendicular to the X'Y' plane.
[0059] In these or other embodiments, the club head 100 may be viewed from a front view (FIG. 1) with the striking face 104 viewed perpendicular to the X'Y' plane. Additionally, in these or other embodiments, the club head 100 may be viewed from a side or cross-sectional side view (FIG. 2) with the heel 120 viewed perpendicular to the Y'Z' plane.
[0060] The club head 100, 300 defines a depth 160, 360, a length 162, 362, and a height 164, 364. As shown in FIG. 3 , the club head depth 160, 360 can be measured as the farthest extent of the club head 100, 300 in a direction parallel to the Z′ axis 1072, from the front end 108, 308 to the back end 110, 310.
[0061] The length 162 of the club head 100 may be measured as the farthest extent of the club head 100 from the heel 120 to the toe 122 in a direction parallel to the X′ axis 1052 when viewed from the front view ( FIG. 1 ). In many embodiments, the length 162 of the club head 100 may be measured based on definitions from a golf governing body, such as the United States Golf Association (USGA). For example, the length 162 of the club head 100 may be determined in accordance with the USGA Procedure for Measuring the Club Head Size of Wood Clubs (USGA-TPX3003, Rev. 1.0.0, November 21, 2003) (https: / / www.usga.org / content / dam / usga / pdf / Equipment / TPX3003-procedure-for-measuring-the-club-head-size-of-wood-clubs.pdf) (“Procedure for Measuring the Club Head Size of Wood Clubs”).
[0062] The height 164 of the club head 100 may be measured as the farthest extent of the club head 100 from the crown 116 to the sole 118 in a direction parallel to the Y′ axis 1062 when viewed from the front view ( FIG. 1 ). In many embodiments, the height 164 of the club head 100 may be measured based on definitions from a golf governing body, such as the United States Golf Association (USGA). For example, the height 164 of the club head 100 may be determined in accordance with the USGA Procedure for Measuring the Club Head Size of Wood Clubs (USGA-TPX3003, Rev. 1.0.0, November 21, 2003) (https: / / www.usga.org / content / dam / usga / pdf / Equipment / TPX3003-procedure-for-measuring-the-club-head-size-of-wood-clubs.pdf) (“Procedure for Measuring the Club Head Size of Wood Clubs”).
[0063] As shown in FIGS. 1 and 2 , the club head 100 further includes a head center of gravity (CG) 170 and a head depth plane 1040, which extends through the geometric center 140 of the striking face 104 in a direction from the heel 120 to the toe 122 of the club head 100 and perpendicular to the loft plane 1010. In many embodiments, the head CG 170 is located at a head CG depth from the X'Y' plane, measured in a direction perpendicular to the X'Y' plane. In some embodiments, the head CG 170 may be located at a head CG depth 172 from the loft plane 1010, as measured in a direction perpendicular to the loft plane. The head CG 170 is further located at a head CG height 174 from the head depth plane 1040, measured in a direction perpendicular to the head depth plane 1040. Additionally, head CG height 174 is measured as an offset distance from head depth plane 1040 in a direction perpendicular to head depth plane 1040 toward crown 116 or sole 118. In many embodiments, when head CG is above head depth plane 1040 (i.e., between head depth plane 1040 and crown 116), head CG height 174 is positive, and when head CG is below head depth plane 1040 (i.e., between head depth plane 1040 and sole 118), head CG height 174 is negative. In some embodiments, the absolute value of head CG height 174 can represent a head CG located above or below head depth plane 1040 (i.e., between head depth plane 1040 and crown 116 or between head depth plane 1040 and sole 118). In many embodiments, head CG 170 is strategically positioned toward the sole 118 and back end 110 of club head 100 based on various club head parameters such as volume and loft angle, as described below. Additionally, in many embodiments, the head CG 170 is strategically positioned toward the sole 118 and back end 110 of the club head 100 in combination with reduced air resistance.
[0064] Head CG 170 defines the origin of a coordinate system having an x-axis 1050, a y-axis 1060, and a z-axis 1070. The y-axis 1060 extends through head CG 170 from crown 116 to sole 118 and is parallel to hosel axis 132 when viewed from the side and at a 30-degree angle from hosel axis 132 when viewed from the front. The x-axis 1050 extends through head CG 170 from heel 120 to toe 122 and is perpendicular to y-axis 1060 when viewed from the front and parallel to the X'Y' plane. The z-axis 1070 extends through head CG 170 from front end 108 to back end 110 and is perpendicular to x-axis 1050 and y-axis. In many embodiments, the x-axis 1050 extends through the head CG 170 from the heel 120 to the toe 122 and is parallel to the X'-axis 1052, the y-axis 1060 extends through the head CG 170 from the crown 116 to the sole 118 and is parallel to the Y'-axis 1062, and the z-axis 1070 extends through the head CG 170 from the front end 108 to the back end 110 and is parallel to the Z'-axis 1072.
[0065] The club head 100 further includes a moment of inertia Ixx about the x-axis (i.e., the crown-sole moment of inertia) and a moment of inertia Iyy about the y-axis (i.e., the heel-toe moment of inertia). In many embodiments, the crown-sole moment of inertia Ixx and the heel-toe moment of inertia Iyy are increased or maximized based on various club head parameters, such as volume and loft angle, as described in further detail below. Furthermore, in many embodiments, the crown-sole moment of inertia Ixx and the heel-toe moment of inertia Iyy are increased or maximized in combination with reduced air resistance.
[0066] Various embodiments of club heads having various loft angles and volumes are described below. Other embodiments may include club heads having loft angles or volumes that differ from those described herein. I. Large-capacity driver-type club head
[0067] According to one example, golf club head 300 includes a high volume and a low loft. In many embodiments, golf club head 300 includes a driver-type club head. In other embodiments, golf club head 300 can include any type of golf club head having a loft and volume as described herein. In many embodiments, club head 300 includes the same or similar parameters as club head 100, and the parameters are listed with the reference numbers of club head 100 plus 200.
[0068] In many embodiments, the loft angle of the club head 300 is less than about 16 degrees, less than about 15 degrees, less than about 14 degrees, less than about 13 degrees, less than about 12 degrees, less than about 11 degrees, or less than about 10 degrees. Additionally, in many embodiments, the volume of the club head 300 is greater than about 400 cc, greater than about 425 cc, greater than about 450 cc, greater than about 475 cc, greater than about 500 cc, greater than about 525 cc, greater than about 550 cc, greater than about 575 cc, greater than about 600 cc, greater than about 625 cc, greater than about 650 cc, greater than about 675 cc, or greater than about 700 cc. In some embodiments, the club head volume can be between about 400cc and 600cc, between 445cc and 485cc, between 425cc and 500cc, between about 500cc and 650cc, between about 550cc and 700cc, between about 600cc and 650cc, between about 600cc and 700cc, or between about 600cc and 800cc.
[0069] In many embodiments, the length 362 of the club head 300 is greater than 4.85 inches. In other embodiments, the length 362 of the club head 300 is greater than 4.5 inches, greater than 4.6 inches, greater than 4.7 inches, greater than 4.8 inches, greater than 4.9 inches, or greater than 5.0 inches. For example, in some embodiments, the length 362 of the club head 300 may be between 4.6 and 5.0 inches, 4.7 and 5.0 inches, 4.8 and 5.0 inches, 4.85 and 5.0 inches, or 4.9 and 5.0 inches.
[0070] In many embodiments, the depth 360 of the club head 300 is at least 0.70 inches less than the length 362 of the club head 300. In many embodiments, the depth 360 of the club head 300 is greater than 4.75 inches. In other embodiments, the depth 360 of the club head 300 is greater than 4.5 inches, greater than 4.6 inches, greater than 4.7 inches, greater than 4.8 inches, greater than 4.9 inches, or greater than 5.0 inches. For example, in some embodiments, the depth 360 of the club head 300 may be between 4.6 and 5.0 inches, 4.7 and 5.0 inches, 4.75 and 5.0 inches, 4.8 and 5.0 inches, or 4.9 and 5.0 inches.
[0071] In many embodiments, the height 364 of the club head 300 is less than approximately 2.8 inches. In other embodiments, the height 364 of the club head 300 is less than 3.0 inches, less than 2.9 inches, less than 2.8 inches, less than 2.7 inches, or less than 2.6 inches. For example, in some embodiments, the height 364 of the club head 300 may be between 2.0 and 2.8 inches, 2.2 and 2.8 inches, 2.5 and 2.8 inches, or 2.5 and 3.0 inches. Furthermore, in many embodiments, the face height 344 of the club head 300 may be between approximately 1.3 inches (33 mm) and approximately 2.8 inches (71 mm). Still further, in many embodiments, the club head 300 may include a mass between 185 grams and 225 grams.
[0072] Club head 300 further includes a balance of various additional parameters, such as head CG location, club head moment of inertia, and aerodynamic drag, resulting in both improved impact performance characteristics (e.g., spin, launch angle, velocity, forgiveness) and swing performance characteristics (e.g., aerodynamic drag, ability to square the club head at impact). In many embodiments, the balance of the parameters described below provides improved impact performance while maintaining or improving swing performance characteristics. Furthermore, in many embodiments, the balance of the parameters described below provides improved swing performance characteristics while maintaining or improving impact performance characteristics. A. Center of gravity and moment of inertia
[0073] In many embodiments, a low, rearward club head CG and a high moment of inertia can be achieved by increasing discretionary weight and relocating discretionary weight in areas of the club head where the distance from the head CG is greatest. Increasing discretionary weight can be achieved by thinning the crown and / or using optimized materials, as described above with respect to head CG location. Relocating discretionary weight to maximize the distance from the head CG can be achieved using removable weights, recessed weights, or a steep crown angle, as described above with respect to head CG location.
[0074] In many embodiments, the club head 300 has a compressive strength of approximately 3000 g·cm 2 Larger than approx. 3250g·cm 2 Larger than 3500g cm 2 Larger than approx. 3750g·cm 2 Larger than 4000g·cm 2 Larger than approx. 4250g·cm 2 Larger than 4500g·cm 2 Larger than approx. 4750g·cm 2 Larger than 5000g cm 2Larger than 5250g·cm 2 Larger than 5500g·cm 2 Larger than approx. 5750g·cm 2 Larger than approx. 6000g·cm 2 Larger than approx. 6250g·cm 2 Larger than approx. 6500g·cm 2 Larger than approx. 6750g·cm 2 greater than, or about 7000 g·cm 2 Including the crown-sole moment of inertia Ixx, which is greater than
[0075] In many embodiments, the club head 300 has a compressive strength of approximately 5000 g·cm 2 Larger than 5250g·cm 2 Larger than 5500g·cm 2 Larger than approx. 5750g·cm 2 Larger than approx. 6000g·cm 2 Larger than approx. 6250g·cm 2 Larger than approx. 6500g·cm 2 Larger than approx. 6750g·cm 2 greater than, or about 7000 g·cm 2 including a heel-toe moment of inertia Iyy, which is greater than
[0076] In many embodiments, the club head 300 has a flexural modulus of 8000 g·cm 2 Greater than 8500g·cm 2 Larger than 8750g·cm 2 Greater than 9000g·cm 2 Larger than 9250g·cm 2 Greater than 9500g·cm 2 Greater than 9750g·cm 2 Greater than 10,000 g·cm 2 Greater than 10250g·cm 2 Greater than 10500g·cm 2 Greater than 10750g·cm 2 Greater than 11000g·cm 2Greater than 11250g·cm 2 Greater than 11500g·cm 2 Larger than 11750g·cm 2 Greater than 12000g·cm 2 Greater than 12500g·cm 2 Greater than 13000g·cm 2 Greater than 13500g·cm 2 or greater than 14000 g·cm 2 The composite moment of inertia (i.e., the sum of the crown-sole moment of inertia Ixx and the heel-toe moment of inertia Iyy) is greater than
[0077] In many embodiments, the club head 300 has a head CG height 374 that is less than about 0.20 inches, less than about 0.15 inches, less than about 0.10 inches, less than about 0.09 inches, less than about 0.08 inches, less than about 0.07 inches, less than about 0.06 inches, or less than about 0.05 inches. Furthermore, in many embodiments, the club head 300 includes a head CG height 374 that has an absolute value of less than about 0.20 inches, less than about 0.15 inches, less than about 0.10 inches, less than about 0.09 inches, less than about 0.08 inches, less than about 0.07 inches, less than about 0.06 inches, or less than about 0.05 inches.
[0078] In many embodiments, the club head 300 includes a head CG depth 372 that is greater than about 1.2 inches, greater than about 1.3 inches, greater than about 1.4 inches, greater than about 1.5 inches, greater than about 1.6 inches, greater than about 1.7 inches, greater than about 1.8 inches, greater than about 1.9 inches, or greater than about 2.0 inches.
[0079] In some embodiments, the club head 300 can include a first performance characteristic of 0.56 or less, where the first performance characteristic is defined as the ratio between (a) the difference between 72 mm and the face height 344, and (b) the head CG depth 372. In these or other embodiments, the club head 300 can include a second performance characteristic of 425 cc or more, where the second performance characteristic is defined as the sum of (a) the volume of the club head 300 and (b) the ratio between the absolute value of the head CG depth 372 and the head CG height 374. In some embodiments, the second performance characteristic can be 450 cc or more, 475 cc or more, 490 cc or more, 495 cc or more, 500 cc or more, 505 cc or more, or 510 cc or more.
[0080] A club head 300 with a reduced head CG height 374 can reduce the backspin of a golf ball at impact compared to a similar club head with a higher head CG height. In many embodiments, reducing backspin can increase both ball speed and flight distance for improved club head performance. Additionally, a club head 300 with an increased head CG depth 372 can increase the heel-toe moment of inertia compared to a similar club head with a head CG depth closer to the ball striking surface. Increasing the heel-toe moment of inertia can increase the club head's forgiveness at impact for improved club head performance. Furthermore, a club head 300 with an increased head CG depth 172 can increase the club head's dynamic loft at impact compared to a similar club head with a head CG depth closer to the ball striking surface, thereby increasing the launch angle of the golf ball at impact.
[0081] Head CG height 374 and / or head CG depth 372 can be achieved by reducing the weight of the club head in various areas, thereby increasing discretionary weight, and altering the discretionary weight in strategic areas of the club head to shift the head CG lower and more rearward. Various means for reducing and relocating club head weight are described below. i. Thin areas
[0082] In some embodiments, head CG height 374 and / or head CG depth 372 can be achieved by thinning and removing excess weight in various areas of club head 300. Removing excess weight provides increased discretionary weight that can be strategically repositioned in areas of club head 300 to achieve a desired low and rearward club head CG position.
[0083] In many embodiments, the club head 300 can have one or more thin regions 376. The one or more thin regions 376 can be located on the striking face 304, the body 302, or a combination of the striking face 304 and the body 302 (see FIG. 7 ). Additionally, the one or more thin regions 376 can be located in any region of the body 302, including the crown 316, the sole 318, the heel 320, the toe 322, the front end 308, the back end 310, the skirt 328, or any combination of the described locations. For example, in some embodiments, the one or more thin regions 376 can be located on the crown 316. In a further example, the one or more thin regions 376 can be located on a combination of the striking face 304 and the crown 306. In a further example, the one or more thin regions 376 can be located on a combination of the striking face 304, the crown 316, and the sole 318. In a further example, the entire body 302 and / or the entire striking face 304 can include a thin region 376.
[0084] In embodiments in which one or more thinned regions 376 are disposed on the striking face 304, the thickness of the striking face 304 can vary between a maximum striking face thickness and a minimum striking face thickness. In these embodiments, the minimum striking face thickness can be less than 0.10 inches, less than 0.09 inches, less than 0.08 inches, less than 0.07 inches, less than 0.06 inches, less than 0.05 inches, less than 0.04 inches, or less than 0.03 inches. In these or other embodiments, the maximum striking face thickness can be less than 0.20 inches, less than 0.19 inches, less than 0.18 inches, less than 0.17 inches, less than 0.16 inches, less than 0.15 inches, less than 0.14 inches, less than 0.13 inches, less than 0.12 inches, less than 0.11 inches, or less than 0.10 inches.
[0085] In embodiments in which one or more thinned regions 376 are disposed on body 302, the thinned regions can include a thickness of less than about 0.020 inches. In other embodiments, the thinned regions can include a thickness of less than 0.025 inches, less than 0.020 inches, less than 0.019 inches, less than 0.018 inches, less than 0.017 inches, less than 0.016 inches, less than 0.015 inches, less than 0.014 inches, less than 0.013 inches, less than 0.012 inches, or less than 0.010 inches. For example, the thinned regions can include a thickness of about 0.010-0.025 inches, about 0.013-0.020 inches, about 0.014-0.020 inches, about 0.015-0.020 inches, about 0.016-0.020 inches, about 0.017-0.020 inches, or about 0.018-0.020 inches.
[0086] In the illustrated embodiment, the thinned regions 376 vary in shape and location and cover approximately 25% of the surface area of the club head 300. In other embodiments, the thinned regions may cover approximately 20-30%, approximately 15-35%, approximately 15-25%, approximately 10-25%, approximately 15-30%, or approximately 20-50% of the surface area of the club head 300. Additionally, in other embodiments, the thinned regions may cover up to 5%, up to 10%, up to 15%, up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, or up to 50% of the surface area of the club head 300.
[0087] In many embodiments, crown 316 can include one or more thin regions 376, such that about 51% of the surface area of crown 316 includes thin regions 376. In other embodiments, crown 316 can include one or more thin regions 376, such that up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, up to 45%, up to 50%, up to 55%, up to 60%, up to 65%, up to 70%, up to 75%, up to 80%, up to 85%, or up to 90% of crown 316 includes thin regions 376. For example, in some embodiments, about 40-60% of crown 316 can include thin regions 376. By way of further example, in other embodiments, about 50-100%, about 40-80%, about 35-65%, about 30-70%, or about 25-75% of crown 316 can include thin regions 376. In some embodiments, crown 316 can include one or more thin regions 376, each of which has a tapered thickness. In this exemplary embodiment, crown 316's one or more thin regions 376 extend in a heel-to-toe direction, and each of the one or more thin regions 376 decreases in thickness in a direction from striking face 304 toward back end 310.
[0088] In many embodiments, sole 318 can include one or more thin regions 376, such that approximately 64% of the surface area of sole 318 includes thin regions 376. In other embodiments, sole 318 can include one or more thin regions 376, such that up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, up to 45%, up to 50%, up to 55%, up to 60%, up to 65%, up to 70%, up to 75%, up to 80%, up to 85%, or up to 90% of sole 318 includes thin regions 376. For example, in some embodiments, approximately 40-60% of sole 318 can include thin regions 376. By way of further example, in other embodiments, approximately 50-100%, approximately 40-80%, approximately 35-65%, or approximately 30-70%, or approximately 25-75% of sole 318 can include thin regions 376.
[0089] The thinned regions 376 can include any shape, such as a circle, a triangle, a square, a rectangle, an oval, or any other polygon or shape having at least one curved side. Additionally, one or more thinned regions 376 can include the same shape as the remaining thinned regions or a different shape.
[0090] In many embodiments, the club head 100 having the thinned regions can be manufactured using centrifugal casting. In these embodiments, centrifugal casting allows the club head 300 to have thinner walls than club heads manufactured using traditional casting. In other embodiments, the portions of the club head 300 having the thinned regions can be manufactured using other suitable methods, such as stamping, forging, or machining. In embodiments in which the portions of the club head 300 having the thinned regions are manufactured using stamping, forging, or machining, the portions of the club head 300 can be joined using epoxy, tape, welding, mechanical fasteners, or other suitable methods. ii. Optimized materials
[0091] In some embodiments, the striking face 304 and / or body 302 may include an optimized material with increased specific strength and / or increased specific flexibility. Specific flexibility is measured as the ratio of the yield strength to the elastic modulus of the optimized material. Increasing specific strength and / or specific flexibility allows for thinner portions of the club head while maintaining durability.
[0092] In some embodiments, the first material of the striking face 304 can be an optimized material as described in U.S. Provisional Patent Application No. 62 / 399,929, entitled "Golf Club Head with Optimized Material Properties." In these or other embodiments, the first material, including an optimized titanium alloy, can provide a resistance of approximately 900,000 PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 910,000 PSI / lb / in 3 (227MPa / g / cm 3 ) or more, approximately 920,000PSI / lb / in 3 (229MPa / g / cm 3 ) or more, approximately 930,000PSI / lb / in 3 (232MPa / g / cm 3 ) or more, approximately 940,000PSI / lb / in 3 (234MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 960,000PSI / lb / in 3 (239MPa / g / cm 3 ) or more, approximately 970,000PSI / lb / in 3 (242MPa / g / cm 3 ) or more, approximately 980,000PSI / lb / in 3 (244MPa / g / cm 3 ) or more, approximately 990,000PSI / lb / in 3 (247MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm 3) or more, approximately 1,050,000PSI / lb / in 3 (262MPa / g / cm 3 ) or more, approximately 1,100,000PSI / lb / in 3 (274MPa / g / cm 3 ) or approximately 1,150,000 PSI / lb / in 3 (286MPa / g / cm 3 ) or more.
[0093] Additionally, in these or other embodiments, the first material comprising an optimized titanium alloy can have a relative flexibility of about 0.0075 or greater, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0091 or greater, about 0.0092 or greater, about 0.0093 or greater, about 0.0094 or greater, about 0.0095 or greater, about 0.0096 or greater, about 0.0097 or greater, about 0.0098 or greater, about 0.0099 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, or about 0.0120 or greater.
[0094] In these or other embodiments, the first material comprising an optimized steel alloy has a resistance of about 650,000 PSI / lb / in 3 (162MPa / g / cm 3 ) or more, approximately 700,000PSI / lb / in 3 (174MPa / g / cm 3 ) or more, approximately 750,000PSI / lb / in 3 (187MPa / g / cm 3 ) or more, approximately 800,000PSI / lb / in 3 (199MPa / g / cm 3 ) or more, approximately 810,000PSI / lb / in 3 (202MPa / g / cm 3 ) or more, approximately 820,000PSI / lb / in 3 (204MPa / g / cm 3 ) or more, approximately 830,000PSI / lb / in 3 (207MPa / g / cm 3 ) or more, approximately 840,000PSI / lb / in 3(209MPa / g / cm 3 ) or more, approximately 850,000PSI / lb / in 3 (212MPa / g / cm 3 ) or more, approximately 900,000PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm 3 ), approximately 1,050,000 PSI / lb / in 3 (262MPa / g / cm 3 ) or more, approximately 1,100,000PSI / lb / in 3 (274MPa / g / cm 3 ) or more, approximately 1,115,000PSI / lb / in 3 (278MPa / g / cm 3 ) or approximately 1,120,000 PSI / lb / in 3 (279MPa / g / cm 3 ) or more.
[0095] Additionally, in these or other embodiments, the first material comprising the optimized steel alloy can have a relative flexibility of about 0.0060 or greater, about 0.0065 or greater, about 0.0070 or greater, about 0.0075, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0095 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, about 0.0120 or greater, about 0.0125 or greater, about 0.0130 or greater, about 0.0135 or greater, about 0.0140 or greater, about 0.0145 or greater, or about 0.0150 or greater.
[0096] In these embodiments, the increased strength-to-weight ratio and / or increased flexibility-to-weight ratio of the optimized first material allows for the striking face 304, or portions thereof, to be thinned as described above while maintaining durability. By thinning the striking face 304, the weight of the striking face can be reduced, thereby increasing discretionary weight that can be strategically placed in other areas of the club head 300, thereby positioning the head CG lower and further back and / or increasing the club head's moment of inertia.
[0097] In some embodiments, the second material of the body 302 can be an optimized material as described in U.S. Provisional Patent Application No. 62 / 399,929, entitled "Golf Club Head with Optimized Material Properties." In these or other embodiments, the second material, which comprises an optimized titanium alloy, can provide a resistance of approximately 730,500 PSI / lb / in 3 (182MPa / g / cm 3 ) or greater. For example, the specific strength of an optimized titanium alloy is approximately 650,000 PSI / lb / in 3 (162MPa / g / cm 3 ) or more, approximately 700,000PSI / lb / in 3 (174MPa / g / cm 3 ), approximately 750,000 PSI / lb / in 3 (187MPa / g / cm 3 ) or more, approximately 800,000PSI / lb / in 3 (199MPa / g / cm 3 ), approximately 850,000 PSI / lb / in 3 (212MPa / g / cm 3 ) or more, approximately 900,000PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm 3 ) or more, approximately 1,050,000PSI / lb / in 3 (262MPa / g / cm3 ) or approximately 1,100,000 PSI / lb / in 3 (272MPa / g / cm 3 ) or more.
[0098] Additionally, in these or other embodiments, the second material comprising an optimized titanium alloy can have a relative flexibility of about 0.0060 or greater, about 0.0065 or greater, about 0.0070 or greater, about 0.0075, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0095 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, or about 0.0120 or greater.
[0099] In these or other embodiments, the second material comprising optimized steel has a resistance of about 500,000 PSI / lb / in 3 (125MPa / g / cm 3 ) or more, approximately 510,000PSI / lb / in 3 (127MPa / g / cm 3 ) or more, approximately 520,000PSI / lb / in 3 (130MPa / g / cm 3 ) or more, approximately 530,000PSI / lb / in 3 (132MPa / g / cm 3 ) or more, approximately 540,000PSI / lb / in 3 (135MPa / g / cm 3 ) or more, approximately 550,000PSI / lb / in 3 (137MPa / g / cm 3 ) or more, approximately 560,000PSI / lb / in 3 (139MPa / g / cm 3 ) or more, approximately 570,000PSI / lb / in 3 (142MPa / g / cm 3 ) or more, approximately 580,000PSI / lb / in 3 (144MPa / g / cm 3 ) or more, approximately 590,000PSI / lb / in 3 (147MPa / g / cm 3 ) or more, approximately 600,000PSI / lb / in 3(149MPa / g / cm 3 ) or more, approximately 625,000PSI / lb / in 3 (156MPa / g / cm 3 ) or more, approximately 675,000PSI / lb / in 3 (168MPa / g / cm 3 ) or more, approximately 725,000PSI / lb / in 3 (181MPa / g / cm 3 ) or more, approximately 775,000PSI / lb / in 3 (193MPa / g / cm 3 ) or more, approximately 825,000PSI / lb / in 3 (205MPa / g / cm 3 ) or more, approximately 875,000PSI / lb / in 3 (218MPa / g / cm 3 ) or more, approximately 925,000PSI / lb / in 3 (230MPa / g / cm 3 ) or more, approximately 975,000PSI / lb / in 3 (243MPa / g / cm 3 ) or more, approximately 1,025,000PSI / lb / in 3 (255MPa / g / cm 3 ) or more, approximately 1,075PSI / lb / in 3 (268MPa / g / cm 3 ), or approximately 1,125,000 PSI / lb / in 3 (280MPa / g / cm 3 ) or more.
[0100] Additionally, in these or other embodiments, the second material comprising optimized steel can have a specific flexibility of about 0.0060 or greater, about 0.0062 or greater, about 0.0064 or greater, about 0.0066 or greater, about 0.0068 or greater, about 0.0070 or greater, about 0.0072 or greater, about 0.0076 or greater, about 0.0080 or greater, about 0.0084 or greater, about 0.0088 or greater, about 0.0092 or greater, about 0.0096 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, about 0.0120 or greater, about 0.0125 or greater, about 0.0130 or greater, about 0.0135 or greater, about 0.0140 or greater, about 0.0145 or greater, or about 0.0150 or greater.
[0101] In these embodiments, the increased strength-to-weight ratio and / or increased flexibility-to-flex ratio of the optimized second material allows the body 302, or portions thereof, to be thinner while maintaining durability. A thinner body allows for less weight in the club head, thereby increasing discretionary weight to be strategically placed in other areas of the club head 300, thereby positioning the head CG lower and further back and / or increasing the club head's moment of inertia. iii. Removable weights
[0102] In some embodiments, the club head 300 can include one or more weight structures 380 that include one or more removable weights 382. The one or more weight structures 380 and / or the one or more removable weights 382 can be positioned toward the sole 318 and back end 310, thereby allowing discretionary weights to be positioned near the sole 318 and back end 310 of the club head to achieve a low, rearward head CG position. In many embodiments, the one or more weight structures 380 removably receive one or more removable weights 382. In these embodiments, the one or more removable weights 382 can be coupled to the one or more weight structures 380 using any suitable method, such as threaded fasteners, adhesives, magnets, snap fits, or any other mechanism capable of securing the one or more removable weights to the one or more weight structures.
[0103] The weight structures 380 and / or removable weights 382 can be positioned relative to a clock grid 2000 that can be aligned with the striking face 304 when viewed from a top or bottom view ( FIG. 3 ). The clock grid includes at least a 12 o'clock ray, a 3 o'clock ray, a 4 o'clock ray, a 5 o'clock ray, a 6 o'clock ray, a 7 o'clock ray, an 8 o'clock ray, and a 9 o'clock ray. For example, the clock grid 2000 includes a 12 o'clock ray 2012 aligned with the geometric center 340 of the striking face 304. The 12 o'clock ray 2012 is orthogonal to the X'Y' plane. The center of the clock grid 2000 can be located at the midpoint between the front end 308 and the back end 310 of the club head 300 along the 12 o'clock ray 2012. In the same or other examples, the clock grid midpoint 2010 can be centered adjacent to the geometric center point of the golf club head 300 when viewed from a bottom view ( FIG. 3 ). The clock grid 2000 also includes a 3 o'clock radial line 2003 extending toward the heel 320 and a 9 o'clock radial line 2009 extending toward the toe 322 of the club head 300 .
[0104] Weight perimeter 384 of weight structure 380, in this embodiment, is disposed toward back end 310 and is at least partially bounded between 4 o'clock radiation 2004 and 8 o'clock radiation 2008 of clock grid 2000, while removable weight 382 disposed within weight structure 380 is disposed between 5 o'clock radiation 2005 and 7 o'clock radiation 2007. In this example, weight perimeter 384 is completely enclosed between 4 o'clock radiation 2004 and 8 o'clock radiation 2008. In this example, weight perimeter 384 is defined external to club head 300, although there may be other instances in which weight perimeter 384 extends internal to or may be defined within club head 300. In some examples, the position of weight structure 380 may be established relative to a larger area. For example, in such an example, the weight perimeter 384 of the weight structure 380 can be positioned toward the back end 310 bounded at least in part between the 4 o'clock ray 2004 and the 9 o'clock ray 2009 of the clock grid 2000, while the weight center 386 can be located between the 5 o'clock ray 2005 and the 8 o'clock ray 2008.
[0105] In this example, weight structure 380 protrudes from the exterior contour of sole 318 and is therefore at least partially external to allow for greater adjustment of head CG 370. In some examples, weight structure 380 can include a mass between about 2 grams and about 50 grams and / or a volume between about 1 cc and about 30 cc. In other examples, weight structure 380 can remain flush with the exterior contour of body 302.
[0106] In many embodiments, the removable weight 382 can include a mass between about 0.5 grams and about 30 grams and can be replaced with one or more other similar removable weights to adjust the position of the head CG 370. In the same or other examples, the weight center 386 can include the center of gravity of the removable weight 382 and / or at least one of the geometric centers 382 of the removable weights. iv. Embedded weights
[0107] In some embodiments, the club head 300 may include one or more embedded weights 383 to place discretionary weighting on the sole 318, in the skirt 328, and / or near the back end 310 of the club head 300 to achieve a low, rearward head CG position. In many embodiments, the one or more embedded weights 383 are permanently fixed to or within the club head 300. In these embodiments, the embedded weights 383 may be similar to the high density metal pieces (HDMP) described in U.S. Provisional Patent Application No. 62 / 372,870, entitled "Embedded High Density Casting."
[0108] In many embodiments, one or more embedded weights 383 are positioned near the back end 310 of the club head 300. For example, the weight center 387 of the embedded weight 383 can be located between the 5 o'clock radiant 2005 and the 7 o'clock radiant 2007 of the clock grid 2000, or between the 5 o'clock radiant 2005 and the 8 o'clock radiant 2008 of the clock grid 2000. In many embodiments, the one or more embedded weights 383 can be positioned on the skirt 328 near the back end 310 of the club head 300, on the sole 318 near the back end 310 of the club head 300, or on the skirt 328 and the sole 318 near the back end 310 of the club head 300.
[0109] In many embodiments, the weight center 387 of one or more embedded weights 383 is located within 0.10 inches, 0.20 inches, 0.30 inches, 0.40 inches, 0.50 inches, 0.60 inches, 0.70 inches, 0.80 inches, 0.90 inches, 1.0 inches, 1.1 inches, 1.2 inches, 1.3 inches, 1.4 inches, or 1.5 inches of the perimeter of the club head 300 when viewed from a top or bottom view (FIG. 3). In these embodiments, the proximity of the embedded weights 383 to the perimeter of the club head 300 may maximize a low and rearward head CG position, crown-sole moment of inertia Ixx, and / or heel-toe moment of inertia Iyy.
[0110] In many embodiments, the weight center 387 of one or more embedded weights 383 is positioned at a distance from the head CG 370 that is greater than 1.6 inches, greater than 1.7 inches, greater than 1.8 inches, greater than 1.9 inches, greater than 2.0 inches, greater than 2.1 inches, greater than 2.2 inches, greater than 2.3 inches, greater than 2.4 inches, greater than 2.5 inches, greater than 2.6 inches, greater than 2.7 inches, greater than 2.8 inches, greater than 2.9 inches, or greater than 3.0 inches.
[0111] In many embodiments, the weight center 387 of one or more embedded weights 383 is positioned at a distance greater than 4.0 inches, greater than 4.1 inches, greater than 4.2 inches, greater than 4.3 inches, greater than 4.4 inches, greater than 4.5 inches, greater than 4.6 inches, greater than 4.7 inches, greater than 4.8 inches, greater than 4.9 inches, or greater than 5.0 inches from the geometric center 340 of the striking face 304.
[0112] In many embodiments, one or more embedded weights 383 can include a mass between 3.0 and 50 grams. For example, in some embodiments, one or more embedded weights 383 can include a mass between 3.0 and 25 grams, between 10 and 30 grams, between 20 and 40 grams, or between 30 and 50 grams. In embodiments in which one or more embedded weights 383 include two or more weights, each of the embedded weights can include the same or different masses.
[0113] In many embodiments, the one or more embedded weights 383 can comprise a material having a specific gravity between 10.0 and 22.0. For example, in many embodiments, the one or more embedded weights 383 can comprise a material having a specific gravity greater than 10.0, greater than 11.0, greater than 12.0, greater than 13.0, greater than 14.0, greater than 15.0, greater than 16.0, greater than 16.0, greater than 17.0, greater than 18.0, or greater than 19.0. In embodiments in which the one or more embedded weights 383 include two or more weights, each of the embedded weights can comprise the same or different materials. v. Steep crown angle
[0114] 4-6, in some embodiments, the golf club head 300 can further include a steep crown angle 388 to achieve a low, rearward position of the head CG. The steep crown angle 388 positions the back end of the crown 316 toward the sole 318 or ground, thereby lowering the club head CG position.
[0115] The crown angle 388 is measured as the acute angle between the crown axis 1090 and the front face 1020. In these embodiments, the crown axis 1090 lies within a cross-section of the club head taken along a plane disposed perpendicular to the ground plane 1030 and the front face 1020. The crown axis 1090 can be further described with reference to an upper transition boundary and a rear transition boundary.
[0116] Club head 300 includes an upper transition boundary between front end 308 and crown 316 that extends from near heel 320 to near toe 322. The upper transition boundary includes a crown transition profile 390 when viewed from a cross-sectional side view taken along a plane perpendicular to front surface 1020 and perpendicular to ground contact surface 1030 when club head 300 is in the address position. The cross-sectional side view can be taken at any point on club head 300 from near heel 320 to near toe 322. Crown transition profile 390 defines a front radius of curvature 392 that extends from front end 308 of club head 300 to crown transition point 394, where front end 308 of club head 300 is where the contour departs from the undulating and / or bulging range of striking face 304, and crown transition point 394 marks the change in curvature from front radius of curvature 392 to the curvature of crown 316. In some embodiments, the front radius of curvature 392 includes a single radius of curvature extending from an upper end 393 of the striking face perimeter 342 near the crown 316 to a crown transition point 394, where the upper end 393 of the striking face perimeter 342 near the crown 316 is where the contour deviates from the undulating and / or bulging range of the striking face 304, and the crown transition point 394 marks a change in curvature from the front radius of curvature 392 to one or more different curvatures of the crown 316.
[0117] Club head 300 further includes a rear transition boundary between crown 316 and skirt 328, extending from near heel 320 to near toe 322. The rear transition boundary includes a rear transition profile 396 when viewed from a cross-sectional side view taken along a plane perpendicular to front surface 1020 and perpendicular to ground contact surface 1030 when club head 300 is in the address position. The cross-sectional view can be taken at any point on club head 300 from near heel 320 to near toe 322. Rear transition profile 396 defines a back radius of curvature 398 that extends from crown 316 to skirt 328 of club head 300. In many embodiments, back radius of curvature 398 includes a single radius of curvature that transitions crown 316 to skirt 328 of club head 300 along the rear transition boundary. A first rear transition point 402 is located at the junction between crown 316 and rear transition boundary. The second rear transition point 403 is located at the junction between the rear transition boundary of the club head 300 and the skirt 328 .
[0118] The front radius of curvature 392 of the upper transition boundary may remain constant or may vary from near the heel 320 to near the toe 322 of the club head 300. Similarly, the back radius of curvature 398 of the rear transition boundary may remain constant or may vary from near the heel 320 to near the toe 322 of the club head 300.
[0119] A crown axis 1090 extends between a crown transition point 394 near the front end 308 of the club head 300 and a rear transition point 402 near the back end 310 of the club head 300. The crown angle 388 may remain constant or may vary from near the heel 320 to near the toe 322 of the club head 300. For example, the crown angle 388 may change when a cross-sectional side view is taken at different positions relative to the heel 320 and toe 322.
[0120] In the illustrated embodiment, the crown angle 388 near the toe 322 is approximately 72.25 degrees, the crown angle 388 near the heel 320 is approximately 64.5 degrees, and the crown angle 388 near the center of the golf club head is approximately 64.2 degrees. In many embodiments, the maximum crown angle 388 taken anywhere from near the toe 322 to near the heel 320 is less than 79 degrees, less than about 78 degrees, less than about 77 degrees, less than about 76 degrees, less than about 75 degrees, less than about 74 degrees, less than about 73 degrees, less than about 72 degrees, less than about 71 degrees, less than about 70 degrees, less than about 69 degrees, or less than about 68 degrees. For example, in some embodiments, the maximum crown angle is between 50 and 79 degrees, between 60 and 79 degrees, or between 70 and 79 degrees.
[0121] In other embodiments, the crown angle 388 near the toe 322 of the club head 300 can be less than about 79 degrees, less than about 78 degrees, less than about 77 degrees, less than about 76 degrees, less than about 75 degrees, less than about 74 degrees, less than about 73 degrees, less than about 72 degrees, less than about 71 degrees, less than about 70 degrees, less than about 69 degrees, or less than about 68 degrees. For example, the crown angle 388 taken along a side cross-sectional view positioned approximately 1.0 inch from the geometric center 340 of the striking face 304 toward the toe 322 can be less than 79 degrees, less than 78 degrees, less than 77 degrees, less than 76 degrees, less than 75 degrees, less than 74 degrees, less than 73 degrees, less than 72 degrees, less than 71 degrees, less than 70 degrees, less than 69 degrees, or less than 68 degrees.
[0122] Additionally, in other embodiments, the crown angle 388 near the heel 320 can be less than about 70 degrees, less than about 69 degrees, less than about 68 degrees, less than about 67 degrees, less than about 66 degrees, less than about 65 degrees, less than about 64 degrees, less than about 63 degrees, less than about 62 degrees, less than about 61 degrees, less than about 60 degrees, or less than about 59 degrees. For example, the crown angle 388 taken along a cross-sectional side view disposed approximately 1.0 inch from the geometric center 340 of the striking face 304 toward the heel 320 can be less than about 70 degrees, less than about 69 degrees, less than about 68 degrees, less than about 67 degrees, less than about 66 degrees, less than about 65 degrees, less than about 64 degrees, less than about 63 degrees, less than about 62 degrees, less than about 61 degrees, less than about 60 degrees, or less than about 59 degrees.
[0123] Additionally, in other embodiments, the crown angle 388 near the center of the club head 300 can be less than 75 degrees, less than 74 degrees, less than 73 degrees, less than 72 degrees, less than 71 degrees, less than about 70 degrees, less than about 69 degrees, less than about 68 degrees, less than about 67 degrees, less than about 66 degrees, less than about 65 degrees, less than about 64 degrees, less than about 63 degrees, less than about 62 degrees, less than about 61 degrees, less than about 60 degrees, or less than about 59 degrees. For example, the crown angle 388 taken along a side cross-sectional view located approximately at the geometric center 340 of the striking face 304 can be less than about 70 degrees, less than about 69 degrees, less than about 68 degrees, less than about 67 degrees, less than about 66 degrees, less than about 65 degrees, less than about 64 degrees, less than about 63 degrees, less than about 62 degrees, less than about 61 degrees, less than about 60 degrees, or less than about 59 degrees.
[0124] In many embodiments, decreasing the crown angle 388 compared to current club heads creates a steeper crown or a crown that is positioned closer to the ground plane 1030 when the club head 300 is in the address position. Thus, decreasing the crown angle 388 may result in a lower head CG position compared to club heads with higher crown angles. vi.Hosel sleeve weight
[0125] In some embodiments, head CG height 174 and / or head CG depth 172 can be achieved by reducing the mass of hosel sleeve 334. Removing excess weight from hosel sleeve 334 allows increased discretionary weight to be repositioned strategically in areas of club head 300 to achieve a desired low and rearward club head CG position.
[0126] Reducing the mass of the hosel sleeve 334 can be achieved by thinning the sleeve wall, reducing the height of the hosel sleeve 334, reducing the diameter of the hosel sleeve 334, and / or introducing voids into the wall of the hosel sleeve 334. In many embodiments, the mass of the hosel sleeve 334 can be less than 6 grams, less than 5.5 grams, less than 5.0 grams, less than 4.5 grams, or less than 4.0 grams. In many embodiments, a club head 300 with a hosel sleeve having a reduced mass results in a club head CG position that is lower (closer to the sole) and more rearward (closer to the back end) than a similar club head with a heavier hosel sleeve. B. Air resistance
[0127] In many embodiments, the club head 300 includes a combination of a low and rearward CG position of the club head and an increased moment of inertia of the club head, along with reduced aerodynamic drag.
[0128] In many embodiments, the club head 300 experiences an air resistance force of less than about 1.5 lbf, less than 1.4 lbf, less than 1.3 lbf, or less than 1.2 lbf when tested in a wind tunnel with a square face and a wind speed of 102 miles per hour (mph). In these or other embodiments, the club head 300 experiences an air resistance force of less than about 1.5 lbf, less than 1.4 lbf, less than 1.3 lbf, or less than 1.2 lbf when calculated using computational fluid dynamics with a square face and a wind speed of 102 miles per hour (mph). In these embodiments, the airflow experienced by the square-faced club head 300 is directed toward the striking face 304 in a direction perpendicular to the X'Y' plane. As described below, a club head 300 with reduced air resistance can be achieved using various means. i. Crown angle height
[0129] In some embodiments, decreasing the crown angle 388 to create a steeper crown and a lower head CG position can result in an undesirable increase in aerodynamic drag due to increased airflow separation over the crown during swing. To prevent the increased drag associated with decreasing the crown angle 388, the maximum crown height 404 can be increased. As shown in FIG. 4 , the maximum crown height 404 is the maximum distance between the surface of the crown 316 and the crown axis 1090 in any cross-sectional side view of the club head 300 along a plane parallel to the Y'Z' plane. In many embodiments, a larger maximum crown height 404 results in a crown 316 with a greater curvature. The greater the curvature of the crown 316, the further rearward the location of airflow separation during swing. In other words, a greater curvature allows the airflow to remain in contact with the club head 300 over a longer distance along the crown 316 during swing. Moving the airflow separation point rearward on crown 316 may reduce aerodynamic drag and increase club head swing speed, thereby increasing ball speed and distance.
[0130] In many embodiments, the maximum crown height 404 can be greater than about 0.20 inches (5 mm), greater than about 0.30 inches (7.5 mm), greater than about 0.40 inches (10 mm), greater than about 0.50 inches (12.5 mm), greater than about 0.60 inches (15 mm), greater than about 0.70 inches (17.5 mm), greater than about 0.80 inches (20 mm), greater than about 0.90 inches (22.5 mm), or greater than about 1.0 inches (25 mm). Additionally, in other embodiments, the maximum crown height can be within the range of 0.20 inches (5 mm) to 0.60 inches (15 mm), 0.40 inches (10 mm) to 0.80 inches (20 mm), or 0.60 inches (15 mm) to 1.0 inches (25 mm). For example, in some embodiments, the maximum crown height 404 can be about 0.52 inches (13.3 mm), about 0.54 inches (13.8 mm), about 0.59 inches (15 mm), about 0.65 inches (16.5 mm), or about 0.79 inches (20 mm). ii. Transition Profile
[0131] In many embodiments, the transition profile from the striking face 304 to the crown 316, the striking face 304 to the sole 318, and / or the crown 316 to the sole 318 along the back end 310 of the club head 300 affects the aerodynamic drag on the club head 300 during a swing.
[0132] In some embodiments, the club head 300 having an upper transition boundary defining a crown transition profile 390 and a rear transition boundary defining a rear transition profile 396 further includes a sole transition boundary defining a sole transition profile 410. The sole transition boundary extends between the front end 308 and the sole 318 from near the heel 320 to near the toe 322. The sole transition boundary includes the sole transition profile 410 when viewed from a cross-sectional side view taken along a plane parallel to the Y'Z' plane. The cross-sectional side view can be taken at any point on the club head 300 from near the heel 320 to near the toe 322. The sole transition profile 410 defines a sole radius of curvature 412 extending from the front end 308 of the club head 300 to a sole transition point 414, where the front end 308 of the club head 300 is where the contour deviates from the undulating and / or bulging range of the striking face 304, and the sole transition point 414 marks a change in curvature from the sole radius of curvature 412 to the curvature of the sole 318. In some embodiments, the sole radius of curvature 412 includes a single radius of curvature extending from a bottom end 413 of the striking face perimeter 342 near the sole 318 to the sole transition point 414, where the bottom end 413 of the striking face perimeter 342 near the sole 318 is where the contour deviates from the undulating and / or bulging range, and the sole transition point 414 marks a change in curvature from the sole radius of curvature 412 to the curvature of the sole 318.
[0133] In many embodiments, the crown transition profile 390, the sole transition profile 410, and the rear transition profile 396 can be similar to the crown transition profile, the sole transition profile, and the rear transition profile described in U.S. Patent Application No. 15 / 233,486, entitled "Golf Club Head Having a Transition Profile for Reducing Aerodynamic Drag." Additionally, the front radius of curvature 392, the sole radius of curvature 412, and the back radius of curvature 398 can be similar to the first crown radius of curvature, the first sole radius of curvature, and the back radius of curvature described in U.S. Patent Application No. 15 / 233,486, entitled "Golf Club Head Having a Transition Profile for Reducing Aerodynamic Drag."
[0134] In some embodiments, the front radius of curvature 392 can be in the range of approximately 0.18 to 0.30 inches (0.46 to 0.76 cm). Additionally, in other embodiments, the front radius of curvature 392 can be less than 0.40 inches (1.02 cm), less than 0.375 inches (0.95 cm), less than 0.35 inches (0.89 cm), less than 0.325 inches (0.83 cm), or less than 0.30 inches (0.76 cm). For example, the front radius of curvature 392 can be approximately 0.18 inches (0.46 cm), 0.20 inches (0.51 cm), 0.22 inches (0.66 cm), 0.24 inches (0.61 cm), 0.26 inches (0.66 cm), 0.28 inches (0.71 cm), or 0.30 inches (0.76 cm).
[0135] In some embodiments, sole radius of curvature 412 can be in the range of approximately 0.25 to 0.50 inches (0.76 to 1.27 cm). For example, sole radius of curvature 412 can be less than approximately 0.5 inches (1.27 cm), less than approximately 0.475 inches (1.21 cm), less than approximately 0.45 inches (1.14 cm), less than approximately 0.425 inches (1.08 cm), or less than approximately 0.40 inches (1.02 cm). In further examples, sole radius of curvature 412 can be approximately 0.30 inches (0.76 cm), 0.35 inches (0.89 cm), 0.40 inches (1.02 cm), 0.45 inches (1.14 cm), or 0.50 inches (1.27 cm).
[0136] In some embodiments, the back radius of curvature 398 can be in the range of about 0.10 to 0.25 inches (0.25 to 0.64 cm). For example, the back radius of curvature 398 can be less than about 0.3 inches (0.76 cm), less than about 0.275 inches (0.70 cm), less than about 0.25 inches (0.64 cm), less than about 0.225 inches (0.57 cm), or less than about 0.20 inches (0.51 cm). In further examples, the back radius of curvature 398 can be about 0.10 inches (0.25 cm), 0.15 inches (0.38 cm), 0.20 inches (0.51 cm), or 0.25 inches (0.64 cm). iii. Turbulator
[0137] 7 , in some embodiments, club head 300 may further include a plurality of turbulators 414, as described in U.S. patent application Ser. No. 13 / 536,753, now U.S. Patent No. 8,608,587, issued December 17, 2013, entitled "Golf Club Head With Turbulators And Method of Manufacturing a Golf Club Head," the contents of which are incorporated herein in their entirety. In many embodiments, the plurality of turbulators 414 disrupt the airflow, thereby creating small vortices or turbulence within the boundary layer, imparting energy to the boundary layer and delaying separation of the airflow over crown 316 during a swing.
[0138] In some embodiments, the plurality of turbulators 414 can be adjacent to a crown transition point 594 of the club head 300. The plurality of turbulators 414 protrude from the outer surface of the crown 316 and include a length extending between the front end 308 and the back end 310 of the club head 300 and a width extending from the heel 320 to the toe 322 of the club head 300. In many embodiments, the length of the plurality of turbulators 414 is greater than the width. In some embodiments, the plurality of turbulators 414 can include the same width. In some embodiments, the plurality of turbulators 414 can vary in height profile. In some embodiments, the plurality of turbulators 414 can be taller toward the apex of the crown 316 compared to the front of the crown 316. In other embodiments, the plurality of turbulators 414 can be taller toward the front of the crown 316 and shorter in height toward the apex of the crown 316. In other embodiments, the plurality of turbulators 414 can include a constant height profile. Additionally, in many embodiments, at least a portion of at least one turbulator is disposed between striking face 304 and the apex of crown 316, and the spacing between adjacent turbulators is greater than the respective widths of the adjacent turbulators. iv. Back cavity
[0139] 8-9 , in some embodiments, the club head 300 can further include a cavity 420 located at the back end 310 and trailing edge 328 of the club head 300. The cavity 420 is similar to the cavity described in U.S. Patent Application No. 14 / 882,092, now U.S. Patent No. 9,492,721, issued November 15, 2016, entitled “Golf Club Head and Aerodynamic Features and Related Methods,” the contents of which are incorporated herein in their entirety. In many embodiments, the cavity 420 can break up vortices generated behind the golf club head 300 into smaller vortices, reducing the size of turbulence and / or reducing drag. In some embodiments, breaking up the vortices into smaller vortices can create a high-pressure region behind the golf club head 300. In some embodiments, this high-pressure region can push the golf club head 300 forward, reducing drag and / or improving the aerodynamic design of the golf club head 300. In many embodiments, the net effect of smaller vortices and reduced drag is an increase in the velocity of the golf club head 300. This effect causes the golf ball to leave the striking face 304 faster after impact, potentially increasing the ball's flight distance.
[0140] In many embodiments, cavity 420 includes a rear wall 422 oriented in a direction perpendicular to the X'Z' plane and further includes a width, depth 424, and height 426 measured in the direction from heel 320 to toe 322. The width of cavity 420 can be about 1.0 inch (about 2.54 centimeters) to about 8 inches (about 20.32 cm), about 1.0 inch (about 2.54 cm) to about 2.25 inches (about 5.72 cm), or about 1.75 inches (about 4.5 cm) to about 2.25 inches (about 5.72 cm). For example, the width of cavity 420 can be about 2.0 inches (5.08 cm), 3.0 inches (7.62 cm), 4.0 inches (10.16 cm), 5.0 inches (12.7 cm), 6.0 inches (15.24 cm), or 7.0 inches (17.78 cm). In some embodiments, the width of the cavity 420 may remain constant from near the top of the cavity 420 (toward the crown 316 of the club head 300) to near the bottom of the cavity 420 (toward the sole 318 of the club head 300). In other embodiments, the width of the cavity 420 may vary from near the top to near the bottom. In the embodiment shown in FIG. 8, the width of the cavity 420 is greatest near the top and smallest near the bottom. In other embodiments, the width of the cavity 420 may vary according to any contour. For example, in other embodiments, the width of the cavity 420 may be greatest at the top, bottom, center, or any other location extending from the top to the bottom of the cavity 420.
[0141] The depth 424 of the cavity 420 can be about 0.025 inches (about 0.127 cm) to about 0.250 inches (about 0.635 cm), or about 0.025 inches (about 0.127 cm) to about 0.150 inches (about 0.381 cm). For example, the depth 424 of the cavity 420 can be about 0.1 inches (about 0.254 cm), or about 0.05 inches (about 0.127 cm). In some embodiments, the depth 424 of the cavity 420 can remain constant between the heel and toe and / or between the top and bottom of the cavity 420. In other embodiments, the depth 424 of the cavity 420 can vary between the heel and toe and / or between the top and bottom of the cavity 420. For example, the depth 424 of the cavity 420 may be greatest near the heel, near the toe, near the crown, near the sole, near the center, or at any combination of the listed locations.
[0142] Height 426 of cavity 420 can be measured along a direction from crown 316 to sole 318. Height 426 of cavity 420 can be between about 0.19 inches (about 0.48 cm) and about 0.21 inches (about 0.53 cm). In some embodiments, height 426 of cavity 420 can be between about 0.10 inches (about 0.25 cm) and about 0.50 inches (about 1.27 cm). In some embodiments, height 426 of cavity 420 can be between about 0.10 inches (about 0.25 cm) and about 0.40 inches (about 1.02 cm). In some embodiments, height 426 of cavity 420 can be between about 0.10 inches (about 0.25 cm) and about 0.30 inches (about 0.76 cm). In some embodiments, the height 426 of the cavity 420 can be from about 0.10 inches (about 0.25 cm) to about 0.20 inches (about 0.51 cm). In some embodiments, the height 426 of the cavity 420 can remain constant between the heel and toe of the cavity 420. In other embodiments, the height 426 of the cavity 420 can vary between the heel and toe of the cavity 420. For example, the height 426 of the cavity 420 can be greatest near the heel, near the toe, near the center, or any combination of the described locations. v. Hosel structure
[0143] In some embodiments, the hosel structure 330 can have a smaller outer diameter to reduce air resistance on the club head 300 during a swing, compared to a similar club head having a larger diameter hosel structure. In many embodiments, the hosel structure 330 has an outer diameter of less than 0.545 inches. For example, the hosel structure 330 can have an outer diameter of less than 0.60 inches, less than 0.59 inches, less than 0.58 inches, less than 0.57 inches, less than 0.56 inches, less than 0.55 inches, less than 0.54 inches, less than 0.53 inches, less than 0.52 inches, less than 0.51 inches, or less than 0.50 inches. In many embodiments, the outer diameter of the hosel structure 330 is reduced while maintaining the adjustability of the loft and / or lie angle of the club head 300. vi. Projected area
[0144] In many embodiments, the club head 300 further includes a frontal area and a side area. The frontal area is the area of the club head 300 as seen from a front view and projected onto the X'Y' plane, as shown in Figure 1. The side area is the area of the club head 300 as seen from a side view and projected onto the Y'Z' plane.
[0145] In many embodiments, the frontal area of the club head 300 is 0.00400 m 2 ~0.00700m 2 For example, in the illustrated embodiment, the frontal area of the club head can be between 0.00655 m 2 In another embodiment, the frontal area is 0.00400 m 2 ~0.00665m 2 Between, 0.00400m 2 ~0.00675m 2 Between, 0.00400m 2 ~0.00685m 2 Between or 0.00400m 2~0.00695m 2 It can be between.
[0146] In many embodiments, the projected lateral area of the club head 300 is 0.00500 m 2 ~0.00650m 2 For example, in the illustrated embodiment, the projected lateral area of the club head is 0.00579 m 2 In another embodiment, the lateral projected area is 0.00545 m 2 ~0.00565m 2 Between, 0.00535m 2 ~0.00575m 2 Between, 0.00525m 2 ~0.00585m 2 Between, 0.00515m 2 ~0.00595m 2 It can be between. C. Balance of CG position, moment of inertia, and air resistance
[0147] In current golf club head designs, increasing or maximizing the club head's moment of inertia and / or head CG position can adversely affect other club head performance characteristics, such as air resistance. The club head 300 described herein increases or maximizes the club head's moment of inertia while simultaneously maintaining or reducing air resistance, as described in further detail below. Thus, the club head 300, which improves impact performance characteristics (e.g., spin, launch angle, ball speed, and forgiveness), also balances or improves swing performance characteristics (e.g., air resistance, ability to square the club head at impact, and swing speed). II. Small-volume driver-type club head
[0148] According to another embodiment, golf club head 500 may include a low volume and a low loft. In many embodiments, golf club head 500 includes a driver-type club head. In other embodiments, golf club head 500 may include any type of golf club head having a loft and volume as described herein. In many embodiments, club head 500 includes the same or similar parameters as club head 100, and the parameters are listed with the reference numbers of club head 100 plus 400.
[0149] In many embodiments, the loft angle of the club head 500 is less than about 16 degrees, less than about 15 degrees, less than about 14 degrees, less than about 13 degrees, less than about 12 degrees, less than about 11 degrees, or less than about 10 degrees. Additionally, in many embodiments, the volume of the club head 500 is less than about 450 cc, less than about 440 cc, less than about 430 cc, less than about 425 cc, less than about 400 cc, less than about 375 cc, or less than about 350 cc. In some embodiments, the volume of the club head may be between about 300 cc and 450 cc, between about 300 cc and 400 cc, between about 325 cc and 425 cc, between about 350 cc and 450 cc, between about 400 cc and 450 cc, between about 420 cc and 450 cc, or between about 440 cc and 450 cc.
[0150] In many embodiments, the length 562 of the club head 500 is greater than 4.85 inches. In other embodiments, the length 562 of the club head 500 is greater than 4.5 inches, greater than 4.6 inches, greater than 4.7 inches, greater than 4.8 inches, greater than 4.9 inches, or greater than 5.0 inches. For example, in some embodiments, the length 562 of the club head 500 may be between 4.6 and 5.0 inches, between 4.7 and 5.0 inches, between 4.8 and 5.0 inches, between 4.85 and 5.0 inches, or between 4.9 and 5.0 inches.
[0151] In many embodiments, the depth 560 of the club head 500 is at least 0.70 inches less than the length 562 of the club head 500. In many embodiments, the depth 560 of the club head 500 is greater than 4.75 inches. In other embodiments, the depth 560 of the club head 500 is greater than 4.5 inches, greater than 4.6 inches, greater than 4.7 inches, greater than 4.8 inches, greater than 4.9 inches, or greater than 5.0 inches. For example, in some embodiments, the depth 560 of the club head 500 may be between 4.6 and 5.0 inches, between 4.7 and 5.0 inches, between 4.75 and 5.0 inches, between 4.8 and 5.0 inches, or between 4.9 and 5.0 inches.
[0152] In many embodiments, the club head height 564 is less than approximately 2.8 inches. In other embodiments, the club head 500 height 564 is less than 3.0 inches, less than 2.9 inches, less than 2.8 inches, less than 2.7 inches, or less than 2.6 inches. For example, in some embodiments, the club head 500 height 564 may be between 2.0 and 2.8 inches, between 2.2 and 2.8 inches, between 2.5 and 2.8 inches, or between 2.5 and 3.0 inches. Furthermore, in many embodiments, the club head 500 face height 544 may be between approximately 1.3 inches (33 mm) and approximately 2.8 inches (71 mm). Furthermore, in many embodiments, the club head 500 may include a mass between 185 grams and 225 grams.
[0153] Club head 500 further includes a balance of various additional parameters, such as head CG location, club head moment of inertia, and air resistance, to provide both improved impact performance characteristics (e.g., spin, launch angle, velocity, forgiveness) and improved swing performance characteristics (e.g., air resistance, ability to square the club head at impact). In many embodiments, the balance of the parameters described below provides improved impact performance while maintaining or improving swing performance characteristics. Furthermore, in many embodiments, the balance of the parameters described below provides improved swing performance characteristics while maintaining or improving impact performance characteristics. A. Center of gravity and moment of inertia
[0154] In many embodiments, a low, rearward club head CG and a high moment of inertia can be achieved by increasing discretionary weight and relocating discretionary weight in areas of the club head where the distance from the head CG is greatest. Increased discretionary weight can be achieved by thinning the crown and / or using optimized materials, as described above with respect to head CG location. Relocation of discretionary weight to maximize the distance from the head CG can be achieved using removable weights, recessed weights, or a steep crown angle, as described above with respect to head CG location.
[0155] In many embodiments, the club head 500 has a flexural strength of approximately 3000 g·cm 2 Larger, approximately 3250g·cm 2 Larger, approximately 3500g·cm 2 Larger, approximately 3750g·cm 2 Larger, about 4000g·cm 2 Larger, approximately 4250g·cm 2 Larger, approximately 4500g·cm 2 Larger, approximately 4750g·cm 2 Larger, about 5000g·cm 2 Larger, approximately 5250g·cm2 Larger, approximately 5500g·cm 2 Larger, approximately 5750g·cm 2 Larger, approximately 6000g·cm 2 Larger, approximately 6250g·cm 2 Larger, approximately 6500g·cm 2 Larger, approximately 6750g·cm 2 greater than, or about 7000 g·cm 2 Includes a larger crown-sole moment of inertia Ixx.
[0156] In many embodiments, the club head 500 has a compressive strength of approximately 5000 g·cm 2 Larger, approximately 5250g·cm 2 Larger, approximately 5500g·cm 2 Larger, approximately 5750g·cm 2 Larger, approximately 6000g·cm 2 Larger, approximately 6250g·cm 2 Larger, approximately 6500g·cm 2 Larger, approximately 6750g·cm 2 greater than, or about 7000 g·cm 2 It includes a larger heel-toe moment of inertia Iyy.
[0157] In many embodiments, the club head 500 has a flexural modulus of 8000 g·cm 2 Greater than 8500g·cm 2 Larger than 8750g·cm 2 Greater than 9000g·cm 2 Larger than 9250g·cm 2 Greater than 9500g·cm 2 Greater than 9750g·cm 2 Greater than 10,000 g·cm 2 Greater than 10250g·cm 2 Greater than 10500g·cm 2 Greater than 10750g·cm 2 Greater than 11000g·cm 2 Greater than 11250g·cm 2Greater than 11500g·cm 2 Larger than 11750g·cm 2 or greater than 12000 g·cm 2 The composite moment of inertia (i.e., the sum of the crown-sole moment of inertia Ixx and the heel-toe moment of inertia Iyy) is greater than
[0158] In many embodiments, the club head 500 has a head CG height 574 that is less than about 0.20 inches, less than about 0.15 inches, less than about 0.10 inches, less than about 0.09 inches, less than about 0.08 inches, less than about 0.07 inches, less than about 0.06 inches, or less than about 0.05 inches. Additionally, in many embodiments, the club head 500 includes a head CG height 574 that has an absolute value of less than about 0.20 inches, less than about 0.15 inches, less than about 0.10 inches, less than about 0.09 inches, less than about 0.08 inches, less than about 0.07 inches, less than about 0.06 inches, or less than about 0.05 inches.
[0159] In many embodiments, the club head 500 includes a head CG depth 572 that is greater than about 1.2 inches, greater than about 1.3 inches, greater than about 1.4 inches, greater than about 1.5 inches, greater than about 1.6 inches, greater than about 1.7 inches, greater than about 1.8 inches, greater than about 1.9 inches, or greater than about 2.0 inches.
[0160] In some embodiments, the club head 500 can include a first performance characteristic of 0.56 or less, where the first performance characteristic is defined as the ratio between (a) the difference between 72 mm and the face height 544, and (b) the head CG depth 572. In these or other embodiments, the club head 500 can include a second performance characteristic of 425 cc or more, where the second performance characteristic is defined as the sum of (a) the volume of the club head 500 and (b) the ratio between the absolute value of the head CG depth 572 and the head CG height 574. In some embodiments, the second performance characteristic can be 450 cc or more, 475 cc or more, 490 cc or more, 495 cc or more, 500 cc or more, 505 cc or more, or 510 cc or more.
[0161] A club head 500 with a reduced head CG height 574 can reduce the backspin of a golf ball at impact compared to a similar club head with a higher head CG height. In many embodiments, reducing backspin can increase both ball speed and flight distance for improved club head performance. Additionally, a club head 500 with an increased head CG depth 572 can increase the heel-toe moment of inertia compared to a similar club head with a head CG depth closer to the ball striking surface. Increasing the heel-toe moment of inertia can increase the club head's forgiveness at impact for improved club head performance. Furthermore, a club head 500 with an increased head CG depth 572 can increase the club head's dynamic loft at impact compared to a similar club head with a head CG depth closer to the ball striking surface, thereby increasing the launch angle of the golf ball at impact.
[0162] Head CG height 574 and / or head CG depth 572 can be achieved by reducing the weight of the club head in various areas, thereby increasing discretionary weight, and altering the discretionary weight in strategic areas of the club head to shift the head CG lower and more rearward. Various means for reducing and relocating club head weight are described below. i. Thin areas
[0163] In some embodiments, head CG height 574 and / or head CG depth 572 can be achieved by thinning and removing excess weight in various areas of club head 500. Removing excess weight provides increased discretionary weight that can be strategically repositioned in areas of club head 500 to achieve a desired low and rearward club head CG position.
[0164] In many embodiments, the club head 500 can have one or more thin regions. The thin regions can be similar to or identical to the one or more thin regions 376 of the club head 300. The one or more thin regions can be located on the striking face 504, the body 502, or a combination of the striking face 504 and the body 502. Additionally, the one or more thin regions can be located in any region of the body 502, including the crown 516, the sole 518, the heel 520, the toe 522, the front end 508, the back end 510, the skirt 528, or any combination of the described locations. For example, in some embodiments, the one or more thin regions can be located on the crown 516. In a further example, the one or more thin regions can be located on a combination of the striking face 504 and the crown 516. In a further example, the one or more thin regions can be located on a combination of the striking face 504, the crown 516, and the sole 518. In a further example, the entire body 502 and / or the entire striking face 504 can include thin regions.
[0165] In embodiments in which one or more thinned regions are disposed on the striking surface 504, the thickness of the striking surface 504 can vary between a maximum striking surface thickness and a minimum striking surface thickness. In these embodiments, the minimum striking surface thickness can be less than 0.10 inches, less than 0.09 inches, less than 0.08 inches, less than 0.07 inches, less than 0.06 inches, less than 0.05 inches, less than 0.04 inches, or less than 0.03 inches. In these or other embodiments, the maximum striking surface thickness can be less than 0.20 inches, less than 0.19 inches, less than 0.18 inches, less than 0.17 inches, less than 0.16 inches, less than 0.15 inches, less than 0.14 inches, less than 0.13 inches, less than 0.12 inches, less than 0.11 inches, or less than 0.10 inches.
[0166] In embodiments in which one or more thinned regions are disposed on body 502, the thinned regions can comprise a thickness of less than about 0.020 inches. In other embodiments, the thinned regions can comprise a thickness of less than 0.025 inches, less than 0.020 inches, less than 0.019 inches, less than 0.018 inches, less than 0.017 inches, less than 0.016 inches, less than 0.015 inches, less than 0.014 inches, less than 0.013 inches, less than 0.012 inches, or less than 0.010 inches. For example, the thinned regions can comprise a thickness of about 0.010-0.025 inches, about 0.013-0.020 inches, about 0.014-0.020 inches, about 0.015-0.020 inches, about 0.016-0.020 inches, about 0.017-0.020 inches, or about 0.018-0.020 inches.
[0167] In the illustrated embodiment, the thinned regions vary in shape and location and cover approximately 25% of the surface area of the club head 500. In other embodiments, the thinned regions may cover approximately 20-30%, approximately 15-35%, approximately 15-25%, approximately 10-25%, approximately 15-30%, or approximately 20-50% of the surface area of the club head 500. Additionally, in other embodiments, the thinned regions may cover up to 5%, up to 10%, up to 15%, up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, or up to 50% of the surface area of the club head 500.
[0168] In many embodiments, the crown 516 can include one or more thin regions, such that approximately 51% of the crown's surface area includes a thin region. In other embodiments, the crown 516 can include one or more thin regions, such that up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, up to 45%, up to 50%, up to 55%, up to 60%, up to 65%, up to 70%, or up to 75% of the crown includes a thin region. For example, in some embodiments, approximately 40-60% of the crown can include a thin region. By way of further example, in other embodiments, approximately 50-100%, about 40-80%, about 35-65%, about 30-70%, or about 25-75% of the crown 516 can include a thin region. In some embodiments, the crown 516 can include one or more thin regions, each of which has a tapered thinning. In this exemplary embodiment, the one or more thin regions of the crown 516 extend in a heel-to-toe direction, and each of the one or more thin regions decreases in thickness in a direction from the striking face 504 toward the back end 510.
[0169] In many embodiments, the sole 518 can include one or more thin regions such that approximately 64% of the surface area of the sole 518 includes a thin region. In other embodiments, the sole 518 can include one or more thin regions such that up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, up to 45%, up to 50%, up to 55%, up to 60%, up to 65%, up to 70%, up to 75%, up to 80%, up to 85%, or up to 90% of the sole includes a thin region. For example, in some embodiments, approximately 40-60% of the sole can include a thin region. By way of further example, in other embodiments, approximately 50-100%, approximately 40-80%, approximately 35-65%, or approximately 30-70%, or approximately 25-75% of the sole 518 can include a thin region.
[0170] The thin regions can include any shape, such as a circle, a triangle, a square, a rectangle, an oval, or any other polygon or shape having at least one curved side. Additionally, one or more thin regions can include the same shape as the rest of the thin regions or a different shape.
[0171] In many embodiments, the club head 500 having the thinned regions can be manufactured using centrifugal casting. In these embodiments, centrifugal casting allows the club head 500 to have thinner walls than club heads manufactured using traditional casting. In other embodiments, the portions of the club head 500 having the thinned regions can be manufactured using other suitable methods, such as stamping, forging, or machining. In embodiments in which the portions of the club head 500 having the thinned regions are manufactured using stamping, forging, or machining, the portions of the club head 500 can be joined using epoxy, tape, welding, mechanical fasteners, or other suitable methods. ii. Optimized materials
[0172] In some embodiments, the striking face 504 and / or body 502 may include an optimized material with increased specific strength and / or increased specific flexibility. Specific flexibility is measured as the ratio of the yield strength to the elastic modulus of the optimized material. Increasing specific strength and / or specific flexibility allows portions of the club head to be thinner while maintaining durability.
[0173] In some embodiments, the first material of the striking face 504 can be an optimized material as described in U.S. Provisional Patent Application No. 62 / 399,929, entitled "Golf Club Head with Optimized Material Properties." In these or other embodiments, the first material, including an optimized titanium alloy, can provide a resistance of approximately 900,000 PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 910,000 PSI / lb / in 3 (227MPa / g / cm 3) or more, approximately 920,000PSI / lb / in 3 (229MPa / g / cm 3 ) or more, approximately 930,000PSI / lb / in 3 (232MPa / g / cm 3 ) or more, approximately 940,000PSI / lb / in 3 (234MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 960,000PSI / lb / in 3 (239MPa / g / cm 3 ) or more, approximately 970,000PSI / lb / in 3 (242MPa / g / cm 3 ) or more, approximately 980,000PSI / lb / in 3 (244MPa / g / cm 3 ) or more, approximately 990,000PSI / lb / in 3 (247MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm 3 ) or more, approximately 1,050,000PSI / lb / in 3 (262MPa / g / cm 3 ) or more, approximately 1,100,000PSI / lb / in 3 (274MPa / g / cm 3 ) or approximately 1,150,000 PSI / lb / in 3 (286MPa / g / cm 3 ) or more.
[0174] Additionally, in these or other embodiments, the first material comprising an optimized titanium alloy can have a relative flexibility of about 0.0075 or greater, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0091 or greater, about 0.0092 or greater, about 0.0093 or greater, about 0.0094 or greater, about 0.0095 or greater, about 0.0096 or greater, about 0.0097 or greater, about 0.0098 or greater, about 0.0099 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, or about 0.0120 or greater.
[0175] In these or other embodiments, the first material comprising an optimized steel alloy has a resistance of about 650,000 PSI / lb / in 3 (162MPa / g / cm 3 ) or more, approximately 700,000PSI / lb / in 3 (174MPa / g / cm 3 ) or more, approximately 750,000PSI / lb / in 3 (187MPa / g / cm 3 ) or more, approximately 800,000PSI / lb / in 3 (199MPa / g / cm 3 ) or more, approximately 810,000PSI / lb / in 3 (202MPa / g / cm 3 ) or more, approximately 820,000PSI / lb / in 3 (204MPa / g / cm 3 ) or more, approximately 830,000PSI / lb / in 3 (207MPa / g / cm 3 ) or more, approximately 840,000PSI / lb / in 3 (209MPa / g / cm 3 ) or more, approximately 850,000PSI / lb / in 3 (212MPa / g / cm 3 ) or more, approximately 900,000PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm3 ), approximately 1,050,000 PSI / lb / in 3 (262MPa / g / cm 3 ) or more, approximately 1,100,000PSI / lb / in 3 (274MPa / g / cm 3 ) or more, approximately 1,115,000PSI / lb / in 3 (278MPa / g / cm 3 ) or approximately 1,120,000 PSI / lb / in 3 (279MPa / g / cm 3 ) or more.
[0176] Additionally, in these or other embodiments, the first material comprising the optimized steel alloy can have a relative flexibility of about 0.0060 or greater, about 0.0065 or greater, about 0.0070 or greater, about 0.0075, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0095 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, about 0.0120 or greater, about 0.0125 or greater, about 0.0130 or greater, about 0.0135 or greater, about 0.0140 or greater, about 0.0145 or greater, or about 0.0150 or greater.
[0177] In these embodiments, the increased strength-to-weight ratio and / or increased flexibility-to-weight ratio of the optimized first material allows for the striking face 504, or portions thereof, to be thinned as described above while maintaining durability. By thinning the striking face 504, the weight on the striking face can be reduced, thereby increasing discretionary weight that can be strategically placed in other areas of the club head 500, thereby positioning the head CG lower and further back and / or increasing the club head's moment of inertia.
[0178] In some embodiments, the second material of the body 502 can be an optimized material as described in U.S. Provisional Patent Application No. 62 / 399,929, entitled "Golf Club Head with Optimized Material Properties." In these or other embodiments, the second material, which comprises an optimized titanium alloy, can provide a resistance of approximately 730,500 PSI / lb / in 3 (182MPa / g / cm 3 ) or greater. For example, the specific strength of an optimized titanium alloy is approximately 650,000 PSI / lb / in 3 (162MPa / g / cm 3 ) or more, approximately 700,000PSI / lb / in 3 (174MPa / g / cm 3 ), approximately 750,000 PSI / lb / in 3 (187MPa / g / cm 3 ) or more, approximately 800,000PSI / lb / in 3 (199MPa / g / cm 3 ), approximately 850,000 PSI / lb / in 3 (212MPa / g / cm 3 ) or more, approximately 900,000PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm 3 ) or more, approximately 1,050,000PSI / lb / in 3 (262MPa / g / cm 3 ) or approximately 1,100,000 PSI / lb / in 3 (272MPa / g / cm 3 ) or more.
[0179] Additionally, in these or other embodiments, the second material comprising an optimized titanium alloy can have a relative flexibility of about 0.0060 or greater, about 0.0065 or greater, about 0.0070 or greater, about 0.0075, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0095 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, or about 0.0120 or greater.
[0180] In these or other embodiments, the second material comprising optimized steel has a resistance of about 500,000 PSI / lb / in 3 (125MPa / g / cm 3 ) or more, approximately 510,000PSI / lb / in 3 (127MPa / g / cm 3 ) or more, approximately 520,000PSI / lb / in 3 (130MPa / g / cm 3 ) or more, approximately 530,000PSI / lb / in 3 (132MPa / g / cm 3 ) or more, approximately 540,000PSI / lb / in 3 (135MPa / g / cm 3 ) or more, approximately 550,000PSI / lb / in 3 (137MPa / g / cm 3 ) or more, approximately 560,000PSI / lb / in 3 (139MPa / g / cm 3 ) or more, approximately 570,000PSI / lb / in 3 (142MPa / g / cm 3 ) or more, approximately 580,000PSI / lb / in 3 (144MPa / g / cm 3 ) or more, approximately 590,000PSI / lb / in 3 (147MPa / g / cm 3 ) or more, approximately 600,000PSI / lb / in 3 (149MPa / g / cm 3 ) or more, approximately 625,000PSI / lb / in 3 (156MPa / g / cm 3 ) or more, approximately 675,000PSI / lb / in 3(168MPa / g / cm 3 ) or more, approximately 725,000PSI / lb / in 3 (181MPa / g / cm 3 ) or more, approximately 775,000PSI / lb / in 3 (193MPa / g / cm 3 ) or more, approximately 825,000PSI / lb / in 3 (205MPa / g / cm 3 ) or more, approximately 875,000PSI / lb / in 3 (218MPa / g / cm 3 ) or more, approximately 925,000PSI / lb / in 3 (230MPa / g / cm 3 ) or more, approximately 975,000PSI / lb / in 3 (243MPa / g / cm 3 ) or more, approximately 1,025,000PSI / lb / in 3 (255MPa / g / cm 3 ) or more, approximately 1,075PSI / lb / in 3 (268MPa / g / cm 3 ), or approximately 1,125,000 PSI / lb / in 3 (280MPa / g / cm 3 ) or more.
[0181] Additionally, in these or other embodiments, the second material comprising optimized steel can have a specific flexibility of about 0.0060 or greater, about 0.0062 or greater, about 0.0064 or greater, about 0.0066 or greater, about 0.0068 or greater, about 0.0070 or greater, about 0.0072 or greater, about 0.0076 or greater, about 0.0080 or greater, about 0.0084 or greater, about 0.0088 or greater, about 0.0092 or greater, about 0.0096 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, about 0.0120 or greater, about 0.0125 or greater, about 0.0130 or greater, about 0.0135 or greater, about 0.0140 or greater, about 0.0145 or greater, or about 0.0150 or greater.
[0182] In these embodiments, the increased specific strength and / or increased specific flexibility of the optimized second material allows for the body 502, or portions thereof, to be thinner while maintaining durability. Thinning the body 502 allows for less weight in the club head, thereby increasing discretionary weight to be strategically placed in other areas of the club head 500, thereby positioning the head CG lower and further back and / or increasing the club head's moment of inertia. iii. Removable weights
[0183] In some embodiments, the club head 500 can include one or more weight structures 580 that include one or more removable weights 582. The one or more weight structures 580 and / or the one or more removable weights 582 can be positioned toward the sole 518 and back end 510, thereby allowing discretionary weights to be positioned near the sole 518 and back end 510 of the club head to achieve a low, rearward head CG position. In many embodiments, the one or more weight structures 580 removably receive the one or more removable weights 582. In these embodiments, the one or more removable weights 582 can be coupled to the one or more weight structures 580 using any suitable method, such as threaded fasteners, adhesives, magnets, snap fits, or any other mechanism capable of securing the one or more removable weights to the one or more weight structures.
[0184] The weight structures 580 and / or removable weights 582 can be positioned relative to a clock grid 2000 (shown in FIG. 3 ), which can be aligned with the striking face 504 when viewed from a top view. The clock grid includes at least a 12 o'clock ray, a 3 o'clock ray, a 4 o'clock ray, a 5 o'clock ray, a 6 o'clock ray, a 7 o'clock ray, an 8 o'clock ray, and a 9 o'clock ray. For example, the clock grid 2000 includes a 12 o'clock ray 2012 aligned with the geometric center 540 of the striking face 504. The 12 o'clock ray 2012 is orthogonal to the X'Y' plane. The center of the clock grid 2000 can be located at the midpoint between the front end 508 and the back end 510 of the club head 500 along the 12 o'clock ray 2012. In the same or another example, the clock grid midpoint 2010 can be centered adjacent to the geometric center point of the golf club head 500 when viewed from a bottom view. The clock grid 2000 also includes a 3 o'clock radial line 2003 extending toward the heel 520 and a 9 o'clock radial line 2009 extending toward the toe 522 of the club head 500 .
[0185] Weight perimeter 584 of weight structure 580, in this embodiment, is disposed toward back end 510 and is at least partially bounded between 4 o'clock radiation 2004 and 8 o'clock radiation 2008 of clock grid 2000, while removable weight 582 disposed within weight structure 580 is disposed between 5 o'clock radiation 2005 and 7 o'clock radiation 2007. In this example, weight perimeter 584 is completely enclosed between 4 o'clock radiation 2004 and 8 o'clock radiation 2008. In this example, weight perimeter 584 is defined external to club head 500, although there may be other instances in which weight perimeter 584 extends internal to or may be defined within club head 500. In some examples, the position of weight structure 580 may be established relative to a larger area. For example, in such an example, the weight perimeter 584 of the weight structure 580 can be positioned toward the back end 510 that is at least partially bounded between the 4 o'clock ray 2004 and the 9 o'clock ray 2009 of the clock grid 2000, while the weight center 586 can be located between the 5 o'clock ray 2005 and the 8 o'clock ray 2008.
[0186] In this example, weight structure 580 protrudes from the exterior contour of sole 518 and is therefore at least partially external to allow for greater adjustment of head CG 570. In some examples, weight structure 580 can include a mass between about 2 grams and about 50 grams and / or a volume between about 1 cc and about 30 cc. In other examples, weight structure 580 can remain flush with the exterior contour of body 502.
[0187] In many embodiments, the removable weight 582 can include a mass between about 0.5 grams and about 30 grams and can be replaced with one or more other similar removable weights to adjust the position of the head CG 570. In the same or other examples, the weight center 586 can include at least one of the center of gravity of the removable weight 582 and / or the geometric center of the removable weight 582. iv. Embedded weights
[0188] In some embodiments, club head 500 may include one or more embedded weights to place discretionary weights on the sole 518, in the skirt 528, and / or near the back end 510 of club head 500 to achieve a low, rearward head CG position. The one or more embedded weights of club head 500 may be similar to or identical to one or more embedded weights 383 of club head 300. In many embodiments, the one or more embedded weights are permanently fixed to or within club head 500. In these embodiments, the embedded weights may be similar to the high density metal pieces (HDMPs) described in U.S. Provisional Patent Application No. 62 / 372,870, entitled "Embedded High Density Casting."
[0189] In many embodiments, one or more embedded weights are located near the back end 510 of the club head 500. For example, the weight center of the embedded weight can be located between the 5 o'clock radiant 2005 and the 7 o'clock radiant 2007 of the clock grid 2000, or between the 5 o'clock radiant 2005 and the 8 o'clock radiant 2008. In many embodiments, the one or more embedded weights can be located on the skirt near the back end of the club head, on the sole near the back end of the club head, or on the skirt and the sole near the back end of the club head.
[0190] In many embodiments, the center of weight of one or more embedded weights is located within 0.10 inch, 0.20 inch, 0.30 inch, 0.40 inch, 0.50 inch, 0.60 inch, 0.70 inch, 0.80 inch, 0.90 inch, 1.0 inch, 1.1 inch, 1.2 inch, 1.3 inch, 1.4 inch, or 1.5 inch of the perimeter of the club head 500 when viewed from a top view. In these embodiments, the proximity of the embedded weights to the perimeter of the club head 500 may maximize a low and rearward head CG position, crown-sole moment of inertia Ixx, and / or heel-toe moment of inertia Iyy.
[0191] In many embodiments, the weight center of one or more embedded weights is positioned at a distance from the head CG570 that is greater than 1.6 inches, greater than 1.7 inches, greater than 1.8 inches, greater than 1.9 inches, greater than 2.0 inches, greater than 2.1 inches, greater than 2.2 inches, greater than 2.3 inches, greater than 2.4 inches, greater than 2.5 inches, greater than 2.6 inches, greater than 2.7 inches, greater than 2.8 inches, greater than 2.9 inches, or greater than 3.0 inches.
[0192] In many embodiments, the weight center of the one or more embedded weights is positioned at a distance greater than 4.0 inches, greater than 4.1 inches, greater than 4.2 inches, greater than 4.3 inches, greater than 4.4 inches, greater than 4.5 inches, greater than 4.6 inches, greater than 4.7 inches, greater than 4.8 inches, greater than 4.9 inches, or greater than 5.0 inches from the geometric center 540 of the striking face 504.
[0193] In many embodiments, the one or more embedded weights can include a mass between 3.0 and 70 grams. For example, in some embodiments, the one or more embedded weights can include a mass between 3.0 and 25 grams, 10 and 30 grams, 20 and 40 grams, 30 and 50 grams, 40 and 60 grams, or 50 and 70 grams. In embodiments in which the one or more embedded weights include two or more weights, each of the embedded weights can include the same or different masses.
[0194] In many embodiments, the one or more embedded weights can comprise a material having a specific gravity between 10.0 and 22.0. For example, in many embodiments, the one or more embedded weights can comprise a material having a specific gravity greater than 10.0, greater than 11.0, greater than 12.0, greater than 13.0, greater than 14.0, greater than 15.0, greater than 16.0, greater than 16.0, greater than 17.0, greater than 18.0, or greater than 19.0. In embodiments in which the one or more embedded weights include two or more weights, each of the embedded weights can comprise the same or different materials. v. Steep crown angle
[0195] In some embodiments, the golf club head 500 can further include a steep crown angle 588 to achieve a low, rearward position of the head CG. The steep crown angle 588 positions the back end of the crown 516 toward the sole or ground, thereby lowering the club head CG position.
[0196] The crown angle 588 is measured as the acute angle between the crown axis 1090 and the front face 1020. In these embodiments, the crown axis 1090 lies within a cross-section of the club head taken along a plane disposed perpendicular to the ground plane 1030 and the front face 1020. The crown axis 1090 can be further described with reference to an upper transition boundary and a rear transition boundary.
[0197] The club head 500 includes an upper transition boundary between the front end 508 and the crown 516 that extends from near the heel 520 to near the toe 522. The upper transition boundary includes a crown transition profile 590 when viewed from a cross-sectional side view taken along a plane perpendicular to the front surface 1020 and perpendicular to the ground contact surface 1030 when the club head 500 is in the address position. The cross-sectional side view can be taken at any point on the club head 500 from near the heel 520 to near the toe 522. The crown transition profile 590 defines a front radius of curvature 592 that extends from the front end 508 of the club head 500 to a crown transition point 594, where the front end 508 of the club head 500 is where the contour departs from the undulating and / or bulging range of the striking face 504, and the crown transition point 594 marks the change in curvature from the front radius of curvature 592 to the curvature of the crown 516. In some embodiments, the front radius of curvature 592 includes a single radius of curvature extending from an upper end 593 of the striking face perimeter 542 near the crown 516 to a crown transition point 594, where the upper end 593 of the striking face perimeter 542 near the crown 516 is where the contour deviates from the undulating and / or bulging range of the striking face 504, and the crown transition point 594 marks a change in curvature from the front radius of curvature 592 to one or more different curvatures of the crown 516.
[0198] Club head 500 further includes a rear transition boundary between crown 516 and skirt 528, extending from near heel 520 to near toe 522. The rear transition boundary includes a rear transition profile 596 when viewed from a cross-sectional side view taken along a plane perpendicular to front surface 1020 and perpendicular to ground contact surface 1030 when club head 500 is in the address position. The cross-sectional view can be taken at any point on club head 500 from near heel 520 to near toe 522. Rear transition profile 596 defines a back radius of curvature 598 that extends from crown 516 to skirt 528 of club head 500. In many embodiments, back radius of curvature 598 includes a single radius of curvature that transitions crown 516 along the rear transition boundary to skirt 528 of club head 500. A first rear transition point 602 is located at the junction between crown 516 and rear transition boundary. The second rear transition point 603 is located at the junction between the rear transition boundary of the club head 500 and the skirt 528 .
[0199] The front radius of curvature 592 of the upper transition boundary may remain constant or may vary from near the heel 520 to near the toe 522 of the club head 500. Similarly, the back radius of curvature 598 of the rear transition boundary may remain constant or may vary from near the heel 520 to near the toe 522 of the club head 500.
[0200] A crown axis 1090 extends between a crown transition point 594 near the front end 508 of the club head 500 and a rear transition point 602 near the back end 510 of the club head 500. The crown angle 588 may remain constant or may vary from near the heel 520 to near the toe 522 of the club head 500. For example, the crown angle 588 may change when a cross-sectional side view is taken at different positions relative to the heel 520 and toe 522.
[0201] In the illustrated embodiment, the crown angle 588 near the toe 522 is approximately 72.25 degrees, the crown angle 588 near the heel 520 is approximately 64.5 degrees, and the crown angle 588 near the center of the golf club head is approximately 64.2 degrees. In many embodiments, the maximum crown angle 588 taken anywhere from near the toe 522 to near the heel 520 is less than 79 degrees, less than about 78 degrees, less than about 77 degrees, less than about 76 degrees, less than about 75 degrees, less than about 74 degrees, less than about 73 degrees, less than about 72 degrees, less than about 71 degrees, less than about 70 degrees, less than about 69 degrees, or less than about 68 degrees. For example, in some embodiments, the maximum crown angle is between 50 and 79 degrees, between 60 and 79 degrees, or between 70 and 79 degrees.
[0202] In other embodiments, the crown angle 588 near the toe 522 of the club head 500 can be less than about 79 degrees, less than about 78 degrees, less than about 77 degrees, less than about 76 degrees, less than about 75 degrees, less than about 74 degrees, less than about 73 degrees, less than about 72 degrees, less than about 71 degrees, less than about 70 degrees, less than about 69 degrees, or less than about 68 degrees. For example, the crown angle 588 taken along a cross-sectional side view positioned approximately 1.0 inch from the geometric center 540 of the striking face 504 toward the toe 522 can be less than 79 degrees, less than 78 degrees, less than 77 degrees, less than 76 degrees, less than 75 degrees, less than 74 degrees, less than 73 degrees, less than 72 degrees, less than 71 degrees, less than 70 degrees, less than 69 degrees, or less than 68 degrees.
[0203] Additionally, in other embodiments, the crown angle 588 near the heel 520 can be less than about 70 degrees, less than about 69 degrees, less than about 68 degrees, less than about 67 degrees, less than about 66 degrees, less than about 65 degrees, less than about 64 degrees, less than about 63 degrees, less than about 62 degrees, less than about 61 degrees, less than about 60 degrees, or less than about 59 degrees. For example, the crown angle 588 taken along a cross-sectional side view disposed approximately 1.0 inch from the geometric center 540 of the striking face 504 towards the heel 520 can be less than about 70 degrees, less than about 69 degrees, less than about 68 degrees, less than about 67 degrees, less than about 66 degrees, less than about 65 degrees, less than about 64 degrees, less than about 63 degrees, less than about 62 degrees, less than about 61 degrees, less than about 60 degrees, or less than about 59 degrees.
[0204] Additionally, in other embodiments, the crown angle 588 near the center of the club head 500 can be less than 75 degrees, less than 74 degrees, less than 73 degrees, less than 72 degrees, less than 71 degrees, less than about 70 degrees, less than about 69 degrees, less than about 68 degrees, less than about 67 degrees, less than about 66 degrees, less than about 65 degrees, less than about 64 degrees, less than about 63 degrees, less than about 62 degrees, less than about 61 degrees, less than about 60 degrees, or less than about 59 degrees. For example, the crown angle 588 taken along a side cross-sectional view located approximately at the geometric center 540 of the striking face 504 can be less than about 70 degrees, less than about 69 degrees, less than about 68 degrees, less than about 67 degrees, less than about 66 degrees, less than about 65 degrees, less than about 64 degrees, less than about 63 degrees, less than about 62 degrees, less than about 61 degrees, less than about 60 degrees, or less than about 59 degrees.
[0205] In many embodiments, decreasing the crown angle 588 compared to current club heads creates a steeper crown or a crown that is positioned closer to the ground plane 1030 when the club head 500 is in the address position. Thus, decreasing the crown angle 588 may result in a lower head CG position compared to club heads with higher crown angles. vi.Hosel sleeve weight
[0206] In some embodiments, head CG height 174 and / or head CG depth 172 can be achieved by reducing the mass of hosel sleeve 534. Removing excess weight from hosel sleeve 534 allows increased discretionary weight to be repositioned strategically in areas of club head 500 to achieve a desired low and rearward club head CG position.
[0207] Reducing the mass of the hosel sleeve 534 can be achieved by thinning the sleeve wall, reducing the height of the hosel sleeve 534, reducing the diameter of the hosel sleeve 534, and / or introducing voids into the wall of the hosel sleeve 534. In many embodiments, the mass of the hosel sleeve 534 can be less than 6 grams, less than 5.5 grams, less than 5.0 grams, less than 4.5 grams, or less than 4.0 grams. In many embodiments, a club head 500 with a hosel sleeve having a reduced mass results in a club head CG position that is lower (closer to the sole) and more rearward (closer to the back end) than a similar club head with a heavier hosel sleeve. B. Air resistance
[0208] In many embodiments, the club head 500 includes a combination of a low and rearward CG position of the club head and an increased moment of inertia of the club head, along with reduced aerodynamic drag.
[0209] In many embodiments, the club head 500 experiences an air resistance force of less than about 1.3 lbf, less than 1.425 lbf, less than 1.2 lbf, less than 1.15 lbf, less than 1.1 lbf, less than 1.05 lbf, or less than 1.0 lbf when tested in a wind tunnel with a square face and a wind speed of 102 miles per hour (mph). In these or other embodiments, the club head 500 experiences an air resistance force of less than about 1.3 lbf, less than 1.425 lbf, less than 1.2 lbf, less than 1.15 lbf, less than 1.1 lbf, less than 1.05 lbf, or less than 1.0 lbf when calculated using computational fluid dynamics with a square face and a wind speed of 102 miles per hour (mph). In these embodiments, the airflow experienced by the square-faced club head 500 is directed toward the striking face 504 in a direction perpendicular to the X'Y' plane. As described below, a club head 500 with reduced air resistance can be achieved using various means. i. Crown angle height
[0210] In some embodiments, decreasing the crown angle 588 to create a steeper crown and a lower head CG position may result in an undesirable increase in aerodynamic drag due to increased airflow separation over the crown during swing. To prevent the increased drag associated with decreasing the crown angle 588, the maximum crown height 604 may be increased. The maximum crown height 604 is the maximum distance between the surface of the crown 516 and the crown axis 1090 as viewed in any cross-sectional side view of the club head 500 along a plane parallel to the Y'Z' plane. In many embodiments, a larger maximum crown height 604 results in a crown 516 with a greater curvature. The greater the curvature of the crown 516, the further rearward the location of airflow separation during swing. In other words, a greater curvature allows the airflow to remain in contact with the club head 500 for a longer distance along the crown 516 during swing. Moving the airflow separation point rearward on the crown 516 may reduce aerodynamic drag and increase the club head swing speed, thereby increasing ball speed and distance.
[0211] In many embodiments, the maximum crown height 404 can be greater than about 0.20 inches (5 mm), greater than about 0.30 inches (7.5 mm), greater than about 0.40 inches (10 mm), greater than about 0.50 inches (12.5 mm), greater than about 0.60 inches (15 mm), greater than about 0.70 inches (17.5 mm), greater than about 0.80 inches (20 mm), greater than about 0.90 inches (22.5 mm), or greater than about 1.0 inches (25 mm). Additionally, in other embodiments, the maximum crown height can be within the range of 0.20 inches (5 mm) to 0.60 inches (15 mm), 0.40 inches (10 mm) to 0.80 inches (20 mm), or 0.60 inches (15 mm) to 1.0 inches (25 mm). For example, in some embodiments, the maximum crown height 404 can be about 0.52 inches (13.3 mm), about 0.54 inches (13.8 mm), about 0.59 inches (15 mm), about 0.65 inches (16.5 mm), or about 0.79 inches (20 mm). ii. Transition Profile
[0212] In many embodiments, the transition profile from the striking face 504 to the crown 516, the striking face 504 to the sole 518, and / or the crown 516 to the sole 518 along the back end 510 of the club head 500 affects the air resistance on the club head 500 during a swing.
[0213] In some embodiments, club head 500 having an upper transition boundary defining crown transition profile 590 and a rear transition boundary defining rear transition profile 596 further includes a sole transition boundary defining sole transition profile 610. The sole transition boundary extends between front end 508 and sole 518 from near heel 520 to near toe 522. The sole transition boundary includes sole transition profile 610 when viewed from a cross-sectional side view taken along a plane parallel to the Y'Z' plane. The cross-sectional side view can be taken along any point on club head 500 from near heel 520 to near toe 522. The sole transition profile 610 defines a sole radius of curvature 612 extending from the front end 508 of the club head 500 to a sole transition point 614, where the front end 508 of the club head 500 is where the contour deviates from the undulating and / or bulging range of the striking face 504, and the sole transition point 614 marks a change in curvature from the sole radius of curvature 612 to the curvature of the sole 518. In some embodiments, the sole radius of curvature 612 includes a single radius of curvature extending from a bottom end 613 of the striking face perimeter 542 near the sole 518 to the sole transition point 614, where the bottom end 613 of the striking face perimeter 542 near the sole 518 is where the contour deviates from the undulating and / or bulging range, and the sole transition point 614 marks a change in curvature from the sole radius of curvature 612 to the curvature of the sole 614.
[0214] In many embodiments, the crown transition profile 590, the sole transition profile 610, and the rear transition profile 596 can be similar to the crown transition profile, the sole transition profile, and the rear transition profile described in U.S. Patent Application No. 15 / 233,486, entitled "Golf Club Head Having a Transition Profile for Reducing Aerodynamic Drag." Additionally, the front radius of curvature 592, the sole radius of curvature 612, and the back radius of curvature 398 can be similar to the first crown radius of curvature, the first sole radius of curvature, and the back radius of curvature described in U.S. Patent Application No. 15 / 233,486, entitled "Golf Club Head Having a Transition Profile for Reducing Aerodynamic Drag."
[0215] In some embodiments, the front radius of curvature 592 can be in the range of approximately 0.18 to 0.30 inches (0.46 to 0.76 cm). Additionally, in other embodiments, the front radius of curvature 592 can be less than 0.40 inches (1.02 cm), less than 0.375 inches (0.95 cm), less than 0.35 inches (0.89 cm), less than 0.325 inches (0.83 cm), or less than 0.30 inches (0.76 cm). For example, the front radius of curvature 592 can be approximately 0.18 inches (0.46 cm), 0.20 inches (0.51 cm), 0.22 inches (0.66 cm), 0.24 inches (0.61 cm), 0.26 inches (0.66 cm), 0.28 inches (0.71 cm), or 0.30 inches (0.76 cm).
[0216] In some embodiments, the sole radius of curvature 612 can be in the range of approximately 0.25 to 0.50 inches (0.76 to 1.27 cm). For example, the sole radius of curvature 612 can be less than approximately 0.5 inches (1.27 cm), less than approximately 0.475 inches (1.21 cm), less than approximately 0.45 inches (1.14 cm), less than approximately 0.425 inches (1.08 cm), or less than approximately 0.40 inches (1.02 cm). In further examples, the sole radius of curvature 612 can be approximately 0.30 inches (0.76 cm), 0.35 inches (0.89 cm), 0.40 inches (1.02 cm), 0.45 inches (1.14 cm), or 0.50 inches (1.27 cm).
[0217] In some embodiments, the back radius of curvature 598 can be in the range of about 0.10 to 0.25 inches (0.25 to 0.64 cm). For example, the back radius of curvature 598 can be less than about 0.3 inches (0.76 cm), less than about 0.275 inches (0.70 cm), less than about 0.25 inches (0.64 cm), less than about 0.225 inches (0.57 cm), or less than about 0.20 inches (0.51 cm). In further examples, the back radius of curvature 598 can be about 0.10 inches (0.25 cm), 0.15 inches (0.38 cm), 0.20 inches (0.51 cm), or 0.25 inches (0.64 cm). iii. Turbulator
[0218] In some embodiments, club head 500 may further include a plurality of turbulators 614, as described in U.S. patent application Ser. No. 13 / 536,753, now U.S. Patent No. 8,608,587, issued December 17, 2013, entitled "Golf Club Head With Turbulators And Method of Manufacturing a Golf Club Head," the contents of which are incorporated herein in their entirety. In many embodiments, the plurality of turbulators 614 disrupt the airflow, thereby creating small vortices or turbulence within the boundary layer, imparting energy to the boundary layer and delaying separation of the airflow over the crown during the swing.
[0219] In some embodiments, the plurality of turbulators 614 can be adjacent to a crown transition point 794 of the club head 500. The plurality of turbulators 614 protrude from the outer surface of the crown 516 and include a length extending between the front end 508 and the back end 510 of the club head 500 and a width extending from the heel 520 to the toe 522 of the club head 500. In many embodiments, the length of the plurality of turbulators 614 is greater than the width. In some embodiments, the plurality of turbulators 614 can include the same width. In some embodiments, the plurality of turbulators 614 can vary in height profile. In some embodiments, the plurality of turbulators 614 can be taller toward the apex of the crown 516 compared to the front of the crown 516. In other embodiments, the plurality of turbulators 614 can be taller toward the front of the crown 516 and shorter in height toward the apex of the crown 516. In other embodiments, the plurality of turbulators 614 can include a constant height profile. Additionally, in many embodiments, at least a portion of at least one turbulator is disposed between striking face 504 and the apex of crown 516, and the spacing between adjacent turbulators is greater than the respective widths of the adjacent turbulators. iv. Back cavity
[0220] In some embodiments, the club head 500 may further include a cavity 620 located at the back end 510 and the trailing edge 528 of the club head 500. In some embodiments, the cavity may be similar to the cavity 420 on the club head 300. Furthermore, the cavity may be similar to the cavity described in U.S. Patent Application No. 14 / 882,092, entitled "Golf Club Head and Aerodynamic Features and Related Methods." In many embodiments, the cavity 620 may break up vortices generated behind the golf club head 500 into smaller vortices, reducing the size of the turbulent air and / or reducing drag. In some embodiments, breaking up the vortices into smaller vortices may create a high-pressure region behind the golf club head 500. In some embodiments, this high-pressure region may push the golf club head 500 forward, reducing drag and / or improving the aerodynamic design of the golf club head 500. In many embodiments, the net effect of the smaller vortices and reduced drag is an increase in the speed of the golf club head 500. The effect of this is that the golf ball leaves the striking face more quickly after impact, potentially increasing the ball's flight distance.
[0221] In many embodiments, cavity 620 can include a rear wall 622 similar to rear wall 422, oriented in a direction perpendicular to the X'Z' plane, and can further include a width measured in a direction from heel 520 to toe 522, a depth 624 (similar to depth 424 of cavity 420), and a height 626 (similar to height 426 of cavity 420). The width of cavity 620 can be from about 1.0 inch (about 2.54 centimeters) to about 8 inches (about 20.32 cm), from about 1.0 inch (about 2.54 cm) to about 2.25 inches (about 5.72 cm), or from about 1.75 inches (about 4.5 cm) to about 2.25 inches (about 5.72 cm). For example, the width of cavity 420 may be approximately 2.0 inches (5.08 cm), 3.0 inches (7.62 cm), 4.0 inches (10.16 cm), 5.0 inches (12.7 cm), 6.0 inches (15.24 cm), or 7.0 inches (17.78 cm). In some embodiments, the width of cavity 620 may remain constant from near the top of cavity 620 (toward the crown 516 of club head 500) to near the bottom of cavity 620 (toward the sole 518 of club head 500). In other embodiments, the width of cavity 620 may vary from near the top to near the bottom. In some embodiments, the width of the cavity may be greatest near the top and smallest near the bottom. In other embodiments, the width of the cavity may vary according to any contour. For example, in other embodiments, the width of the cavity can be greatest at the top, bottom, center, or any other location extending from the top to the bottom of the cavity.
[0222] The depth 624 of the cavity 620 can be about 0.025 inches (about 0.127 cm) to about 0.250 inches (about 0.635 cm), or about 0.025 inches (about 0.127 cm) to about 0.150 inches (about 0.381 cm). For example, the depth 624 of the cavity 620 can be about 0.1 inches (about 0.254 cm), or about 0.05 inches (about 0.127 cm). In some embodiments, the depth of the cavity can remain constant between the heel and toe and / or between the top and bottom of the cavity. In other embodiments, the depth of the cavity can vary between the heel and toe and / or between the top and bottom of the cavity. For example, the depth of the cavity can be greatest near the heel, near the toe, near the crown, near the sole, near the center, or any combination of the listed locations.
[0223] Height 626 of cavity 620 can be measured along a direction from crown 516 to sole 518. Height 626 of cavity 620 can be between about 0.19 inches (about 0.48 cm) and about 0.21 inches (about 0.53 cm). In some embodiments, height 626 of cavity 620 can be between about 0.10 inches (about 0.25 cm) and about 0.50 inches (about 1.27 cm). In some embodiments, height 626 of cavity 620 can be between about 0.10 inches (about 0.25 cm) and about 0.40 inches (about 1.02 cm). In some embodiments, height 626 of cavity 620 can be between about 0.10 inches (about 0.25 cm) and about 0.30 inches (about 0.76 cm). In some embodiments, the height 626 of the cavity 620 can be from about 0.10 inches (about 0.25 cm) to about 0.20 inches (about 0.51 cm). In some embodiments, the height of the cavity can remain constant between the heel and toe of the cavity. In other embodiments, the height of the cavity can vary between the heel and toe of the cavity. For example, the height of the cavity can be greatest near the heel, near the toe, near the center, or any combination of the listed locations. v. Hosel structure
[0224] In some embodiments, the hosel structure 530 can have a smaller outer diameter to reduce air resistance on the club head 500 during a swing, compared to a similar club head having a larger diameter hosel structure. In many embodiments, the hosel structure 530 has an outer diameter of less than 0.545 inches. For example, the hosel structure 530 can have an outer diameter of less than 0.60 inches, less than 0.59 inches, less than 0.58 inches, less than 0.57 inches, less than 0.56 inches, less than 0.55 inches, less than 0.54 inches, less than 0.53 inches, less than 0.52 inches, less than 0.51 inches, or less than 0.50 inches. In many embodiments, the outer diameter of the hosel structure 530 is reduced while maintaining the adjustability of the loft and / or lie angle of the club head 500. vi. Projected area
[0225] In many embodiments, the club head 500 further includes a frontal area and a side area. The frontal area is the area of the club head 500 as viewed from the front and projected onto the X'Y' plane, as shown in Figure 1. The side area is the area of the club head 500 as viewed from the side and projected onto the Y'Z' plane.
[0226] In many embodiments, the frontal area of the club head 500 is 0.00400 m 2 ~0.00700m 2 For example, in the illustrated embodiment, the frontal area of the club head can be between 0.00655 m 2 In another embodiment, the frontal area is 0.00400 m 2 ~0.00665m 2 Between, 0.00400m 2 ~0.00675m 2 Between, 0.00400m 2 ~0.00685m 2 Between or 0.00400m 2 ~0.00695m 2 It can be between.
[0227] In many embodiments, the projected lateral area of the club head 500 is 0.00500 m 2 ~0.00650m 2 For example, in the illustrated embodiment, the projected lateral area of the club head is 0.00579 m 2 In another embodiment, the lateral projected area is 0.00545 m 2 ~0.00565m 2 Between, 0.00535m 2 ~0.00575m 2 Between, 0.00525m 2 ~0.00585m 2 Between, 0.00515m 2 ~0.00595m 2 It can be between. C. Balance of CG position, moment of inertia, and air resistance
[0228] In current golf club head designs, increasing or maximizing the club head's moment of inertia and / or head CG position can adversely affect other club head performance characteristics, such as air resistance. The club head 500 described herein increases or maximizes the club head's moment of inertia while simultaneously maintaining or reducing air resistance. Thus, the club head 500, which improves impact performance characteristics (e.g., spin, launch angle, ball speed, and forgiveness), also balances or improves swing performance characteristics (e.g., air resistance, ability to square the club head at impact, and swing speed).
[0229] In the example club heads 300 and 500 described below, the aerodynamic drag of the club head is measured using computational fluid dynamics simulations with the front end of the club head oriented square in an airstream at an air speed of 102 miles per hour (mph). In other embodiments, the aerodynamic drag can be measured using other methods, such as using wind tunnel testing.
[0230] In many known golf club heads, increasing or maximizing the club head's moment of inertia adversely affects air resistance. Figures 10A-C show that for many known club heads having similar volumes and / or loft angles to club head 300 or club head 500, as the club head's moment of inertia increases (to increase the club head's forgiveness), drag increases during a swing (thereby decreasing swing speed and ball flight distance).
[0231] For example, as shown in Figure 10A, for many known club heads, drag increases as the moment of inertia about the x-axis increases. By way of further example, with reference to Figure 10B, for many known club heads, drag increases as the moment of inertia about the y-axis increases. By way of further example, with reference to Figure 10C, for many known club heads, drag increases as the resultant moment of inertia (i.e., the sum of the moment of inertia about the x-axis and the moment of inertia about the y-axis) increases.
[0232] The club heads 300, 500 described herein increase or maximize the club head's moment of inertia while simultaneously maintaining or reducing air resistance compared to known club heads of similar volume and / or loft. Thus, the club heads 300, 500 have improved impact performance characteristics (e.g., spin, launch angle, ball speed, and forgiveness) that also balance or improve swing performance characteristics (e.g., air resistance, ability to square the club head at impact, and swing speed).
[0233] In many embodiments, as shown in FIG. 11, the club head 300, 500 reduces club head drag (F) compared to known golf club heads of similar volume and / or loft angle. D One or more of the following relationships are satisfied so that the resultant moment of inertia (Ixx+Iyy) of the club head is increased while maintaining or reducing the moment of inertia (Ixx+Iyy):
number
number
number
[0234] For example, in many embodiments, the club head 300, 500 satisfies Relationship 3 and has a flexural modulus of 9000 g cm 2 In other embodiments, the club head 300, 500 can satisfy Relationship 3 and have a resultant moment of inertia greater than 9010 g cm 2 Greater than 9025g·cm 2 Greater than 9050g·cm 2 Larger than 9075g·cm 2 Greater than 10,000 g·cm 2 Greater than 10250g·cm 2 Greater than 10500g·cm 2 Greater than 10750g·cm 2 greater than or equal to 11000 g·cm 2 The moment of inertia may be greater than .
[0235] As a further example, in many embodiments, the club head 300, 500 satisfies Relationship 3 and has a drag force of less than 1.16 lbf. In other embodiments, the club head 300, 500 can satisfy Relationship 3 and have a drag force of less than 1.15 lbf, less than 1.10 lbf, less than 1.00 lbf, less than 0.900 lbf, less than 0.800 lbf, less than 0.75 lbf, less than 0.700 lbf, less than 0.600 lbf, or less than 0.500 lbf.
[0236] As a further example, in many embodiments, the club head 300, 500 satisfies Relationship 4 and has a flexural modulus of 9000 g cm 2In other embodiments, the club head 300, 500 can satisfy Relationship 4 and have a resultant moment of inertia greater than 9010 g cm 2 Greater than 9025g·cm 2 Greater than 9050g·cm 2 Larger than 9075g·cm 2 Greater than 10,000 g·cm 2 Greater than 10250g·cm 2 Greater than 10500g·cm 2 Greater than 10750g·cm 2 greater than or equal to 11000 g·cm 2 The moment of inertia may be greater than .
[0237] As a further example, in many embodiments, the club head 300, 500 satisfies Relationship 4 and has a drag force of less than 1.16 lbf. In other embodiments, the club head 300, 500 can satisfy Relationship 4 and have a drag force of less than 1.15 lbf, less than 1.10 lbf, less than 1.00 lbf, less than 0.900 lbf, less than 0.800 lbf, less than 0.75 lbf, less than 0.700 lbf, less than 0.600 lbf, or less than 0.500 lbf.
[0238] As a further example, in many embodiments, the club head 300, 500 satisfies relationship 5 and has a flexural modulus of 9000 g cm 2 In other embodiments, the club head 300, 500 can satisfy relationship 5 and have a resultant moment of inertia greater than 9010 g cm 2 Greater than 9025g·cm 2 Greater than 9050g·cm 2 Larger than 9075g·cm 2 Greater than 10,000 g·cm 2 Greater than 10250g·cm 2 Greater than 10500g·cm 2 Greater than 10750g·cm 2 greater than or equal to 11000 g·cm 2The moment of inertia may be greater than .
[0239] As a further example, in many embodiments, the club head 300, 500 satisfies relationship 5 and has a drag force of less than 1.16 lbf. In other embodiments, the club head 300, 500 can satisfy relationship 5 and have a drag force of less than 1.15 lbf, less than 1.10 lbf, less than 1.00 lbf, less than 0.900 lbf, less than 0.800 lbf, less than 0.75 lbf, less than 0.700 lbf, less than 0.600 lbf, or less than 0.500 lbf. i.CG position and air resistance
[0240] In many known golf club heads, shifting the CG position further rearward to increase the golf ball launch angle and / or increase the club head's inertia can adversely affect other performance characteristics of the club head, such as air resistance. Figure 12 shows that in many known club heads having similar volumes and / or loft angles to club head 300 or club head 500, as the depth of the club head CG increases (to increase the club head's forgiveness and / or launch angle), drag increases during a swing (thereby decreasing swing speed and ball flight distance). For example, as shown in Figure 12, in many known club heads, drag on the club head increases as the depth of the head CG increases.
[0241] The club heads 300, 500 described herein increase or maximize the club head's CG depth while simultaneously maintaining or reducing air resistance compared to known club heads of similar volume and / or loft angle. Thus, the club heads 300, 500 with improved impact performance characteristics (e.g., spin, launch angle, ball speed, and forgiveness) also balance or improve swing performance characteristics (e.g., air resistance, ability to square the club head at impact, and swing speed).
[0242] In many embodiments, as shown in FIG. 13, the club head 300, 500 reduces the drag force (F) on the club head compared to known golf club heads. D CG depth (CG) D ) is increased, one or more of the following relationships are satisfied:
number
number
number
[0243] For example, in many embodiments, the club head 300, 500 satisfies relationship 6 and has a head CG depth of greater than 1.65 inches. In other embodiments, the club head 300, 500 can satisfy relationship 6 and have a head CG depth of greater than 1.60 inches, greater than 1.62 inches, greater than 1.64 inches, greater than 1.68 inches, greater than 1.70 inches, greater than 1.72 inches, greater than 1.74 inches, greater than 1.76 inches, greater than 1.78 inches, greater than 1.80 inches, greater than 1.85 inches, or greater than 1.90 inches.
[0244] As a further example, in many embodiments, the club head 300, 500 satisfies Relationship 6 and has a drag force of less than 1.16 lbf. In other embodiments, the club head 300, 500 can satisfy Relationship 6 and have a drag force of less than 1.15 lbf, less than 1.10 lbf, less than 1.00 lbf, less than 0.900 lbf, less than 0.800 lbf, less than 0.75 lbf, less than 0.700 lbf, less than 0.600 lbf, or less than 0.500 lbf.
[0245] As a further example, in many embodiments, the club head 300, 500 satisfies relationship 7 and has a flexural modulus of 9000 g cm 2 In other embodiments, the club head 300, 500 can satisfy relationship 7 and can have a head CG depth greater than 1.60 inches, greater than 1.62 inches, greater than 1.64 inches, greater than 1.68 inches, greater than 1.70 inches, greater than 1.72 inches, greater than 1.74 inches, greater than 1.76 inches, greater than 1.78 inches, greater than 1.80 inches, greater than 1.85 inches, or greater than 1.90 inches.
[0246] As a further example, in many embodiments, the club head 300, 500 satisfies relationship 7 and has a drag force of less than 1.16 lbf. In other embodiments, the club head 300, 500 can satisfy relationship 7 and have a drag force of less than 1.15 lbf, less than 1.10 lbf, less than 1.00 lbf, less than 0.900 lbf, less than 0.800 lbf, less than 0.75 lbf, less than 0.700 lbf, less than 0.600 lbf, or less than 0.500 lbf.
[0247] As a further example, in many embodiments, the club head 300, 500 satisfies relationship 8 and has a flexural modulus of 9000 g cm 2 In other embodiments, the club head 300, 500 can satisfy relationship 8 and can have a head CG depth greater than 1.60 inches, greater than 1.62 inches, greater than 1.64 inches, greater than 1.68 inches, greater than 1.70 inches, greater than 1.72 inches, greater than 1.74 inches, greater than 1.76 inches, greater than 1.78 inches, greater than 1.80 inches, greater than 1.85 inches, or greater than 1.90 inches.
[0248] As a further example, in many embodiments, the club head 300, 500 satisfies relationship 8 and has a drag force of less than 1.16 lbf. In other embodiments, the club head 300, 500 can satisfy relationship 8 and have a drag force of less than 1.15 lbf, less than 1.10 lbf, less than 1.00 lbf, less than 0.900 lbf, less than 0.800 lbf, less than 0.75 lbf, less than 0.700 lbf, less than 0.600 lbf, or less than 0.500 lbf. ii. Moment of inertia and CG depth
[0249] As shown in Figure 14, many known golf club heads have limited composite moment of inertia and / or head CG depth. For example, many known golf club heads having similar volumes and / or loft angles to club head 300 or club head 500 have a head CG depth of less than 1.6 inches and a head CG of 8900 g cm. 2 The club heads 300, 500 described herein have a greater head CG depth and a greater composite moment of inertia than known club heads of similar volume and / or loft angle, while simultaneously maintaining or reducing air resistance. Thus, the club heads 300, 500 with improved impact performance characteristics (e.g., spin, launch angle, ball speed, and forgiveness) also balance or improve swing performance characteristics (e.g., air resistance, ability to square the club head at impact, and swing speed).
[0250] For example, in many embodiments, the club head 300, 500 has a head CG depth of greater than 1.65 inches and a club head weight of 9000 g·cm 2In other embodiments, the club head 300, 500 can have a head CG depth greater than 1.60 inches, greater than 1.62 inches, greater than 1.64 inches, greater than 1.68 inches, greater than 1.70 inches, greater than 1.72 inches, greater than 1.74 inches, greater than 1.76 inches, greater than 1.78 inches, greater than 1.80 inches, greater than 1.85 inches, or greater than 1.90 inches. Additionally, in other embodiments, the club head 300, 500 can have a head CG depth greater than 9010 g·cm 2 Greater than 9025g·cm 2 Greater than 9050g·cm 2 Larger than 9075g·cm 2 Greater than 10,000 g·cm 2 Greater than 10250g·cm 2 Greater than 10500g·cm 2 Greater than 10750g·cm 2 greater than or equal to 11000 g·cm 2 The moment of inertia may be greater than . III. Fairway wood type club head
[0251] According to another embodiment, golf club head 700 may comprise a fairway wood type club head. In many embodiments, club head 700 includes the same or similar parameters as club head 100, and the parameters are designated by the reference numeral of club head 100 plus 600.
[0252] In many embodiments, the loft angle of the club head 700 is less than about 35 degrees, less than about 34 degrees, less than about 33 degrees, less than about 32 degrees, less than about 31 degrees, or less than about 30 degrees. Additionally, in many embodiments, the loft angle of the club head 700 is greater than about 12 degrees, greater than about 13 degrees, greater than about 14 degrees, greater than about 15 degrees, greater than about 16 degrees, greater than about 17 degrees, greater than about 18 degrees, greater than about 19 degrees, or greater than about 20 degrees. For example, in some embodiments, the loft angle of the club head 700 may be between 12 and 35 degrees, between 15 and 35 degrees, between 20 and 35 degrees, or between 12 and 30 degrees.
[0253] In many embodiments, the volume of the club head 700 is less than about 400 cc, less than about 375 cc, less than about 350 cc, less than about 325 cc, less than about 300 cc, less than about 275 cc, less than about 275 cc, less than about 250 cc, less than about 225 cc, or less than about 200 cc. In some embodiments, the volume of the club head can be between about 150 cc and 200 cc, between about 150 cc and 250 cc, between about 150 cc and 300 cc, between about 150 cc and 350 cc, between about 150 cc and 400 cc, between about 200 cc and 300 cc, between about 200 cc and 350 cc, between about 300 cc and 400 cc, between about 325 cc and 400 cc, between about 350 cc and 400 cc, between about 250 cc and 400 cc, between about 250 cc and 350 cc, or between about 275 and 375 cc. In other embodiments, golf club head 700 may include any type of golf club head having loft angles and volumes as described herein.
[0254] In many embodiments, the length 762 of the club head 700 may be between 3.5 inches and 4.75 inches, between 4.0 inches and 4.85 inches, between 3.5 inches and 5.0 inches, or between 4.0 inches and 4.5 inches. In many embodiments, the depth 760 of the club head 700 is at least 0.70 inches less than the length 762 of the club head 700. For example, in many embodiments, the depth 760 of the club head 700 may be between 2.75 inches and 4.5 inches, between 3.0 inches and 4.0 inches, between 3.0 inches and 3.75 inches, or between 3.0 inches and 4.85 inches.
[0255] In many embodiments, the height 764 of the club head 700 is less than approximately 2.0 inches. In other embodiments, the height 764 of the club head 700 is less than 2.5 inches, less than 2.4 inches, less than 2.3 inches, less than 2.2 inches, less than 2.1 inches, less than 1.9 inches, or less than 1.8 inches. For example, in some embodiments, the height 764 of the club head 700 may be between 1.3 and 1.7 inches, between 1.5 and 2.0 inches, between 1.75 and 2.5 inches, between 1.75 and 2.0 inches, or between 2.0 and 2.5 inches. Furthermore, in many embodiments, the face height 744 of the club head may be between approximately 0.5 inches (12.7 mm) and approximately 2.0 inches (50.8 mm). Furthermore, in many embodiments, the club head 700 may include a mass between 185 grams and 250 grams.
[0256] Club head 700 further includes a balance of various additional parameters, such as head CG location, club head moment of inertia, and aerodynamic drag, to provide both improved impact performance characteristics (e.g., spin, launch angle, velocity, forgiveness) and improved swing performance characteristics (e.g., aerodynamic drag, ability to square the club head at impact). In many embodiments, the balance of the parameters described below provides improved impact performance while maintaining or improving swing performance characteristics. Furthermore, in many embodiments, the balance of the parameters described below provides improved swing performance characteristics while maintaining or improving impact performance characteristics. A. Center of gravity and moment of inertia
[0257] In many embodiments, a low, rearward club head CG and a high moment of inertia can be achieved by increasing discretionary weight and relocating discretionary weight in areas of the club head where the distance from the head CG is greatest. Increased discretionary weight can be achieved by thinning the crown and / or using optimized materials, as described above with respect to head CG location. Relocation of discretionary weight to maximize the distance from the head CG can be achieved using removable weights, recessed weights, or a steep crown angle, as described above with respect to head CG location.
[0258] In many embodiments, the club head 700 has a compressive strength of approximately 1500 g·cm 2 Larger than approx. 1600g·cm 2 Larger than approx. 1600g·cm 2 Larger than approx. 1650g·cm 2 Larger than approx. 1700g·cm 2 Larger than approx. 1750g·cm 2 Larger than approx. 1800g·cm 2 Larger than approx. 1850g·cm 2 Larger than approx. 1900g·cm 2Larger than approx. 1950g·cm 2 Larger than 2000g cm 2 Larger than 2100g·cm 2 Larger than 2200g·cm 2 Larger than 2300g·cm 2 Larger than 2400g·cm 2 Larger than approx. 2500g·cm 2 Larger than approx. 2600g·cm 2 Larger than 2700g·cm 2 Greater than, or about 2800 g·cm 2 Including the crown-sole moment of inertia Ixx, which is greater than
[0259] In many embodiments, the club head 700 has a compressive strength of approximately 3000 g·cm 2 Larger than 3100g·cm 2 Larger than 3200g·cm 2 Larger than approx. 3250g·cm 2 Larger than 3300g·cm 2 Larger than 3400g·cm 2 Larger than 3500g cm 2 Larger than 3600g·cm 2 Larger than approx. 3750g·cm 2 Larger than 4000g·cm 2 Larger than approx. 4250g·cm 2 Larger than 4500g·cm 2 Larger than approx. 4750g·cm 2 Larger than 5000g cm 2 Larger than 5250g·cm 2 Larger than 5500g·cm 2 Larger than approx. 5750g·cm 2 Larger than approx. 6000g·cm 2 Larger than approx. 6250g·cm 2 Larger than approx. 6500g·cm 2 Larger than approx. 6750g·cm 2greater than, or about 7000 g·cm 2 including a heel-toe moment of inertia Iyy, which is greater than
[0260] In many embodiments, the club head 700 has a flexural modulus of 4900 g·cm 2 Larger than 4950g·cm 2 Greater than 5000g·cm 2 Greater than 5100g·cm 2 Greater than 5200g·cm 2 Greater than 5300g·cm 2 Greater than 5400g·cm 2 Greater than 5500g·cm 2 Greater than 5600g·cm 2 Greater than 5700g·cm 2 Greater than 5800g·cm 2 Larger than 5900g·cm 2 or greater than 6000 g·cm 2 The composite moment of inertia (i.e., the sum of the crown-sole moment of inertia Ixx and the heel-toe moment of inertia lyy) is greater than
[0261] In many embodiments, the club head 700 includes a head CG height 774 that is less than about 0.50 inches, less than about 0.475 inches, less than about 0.45 inches, less than about 0.425 inches, less than about 0.40 inches, less than about 0.35 inches, less than about 0.30 inches, less than about 0.25 inches, less than about 0.20 inches, less than 0.15 inches, or less than 0.10 inches. Furthermore, in many embodiments, the club head 700 includes a head CG height 774 that has an absolute value of less than about 0.50 inches, less than about 0.475 inches, less than about 0.45 inches, less than about 0.425 inches, less than about 0.40 inches, less than about 0.35 inches, less than about 0.30 inches, or less than about 0.25 inches.
[0262] In many embodiments, the club head 700 includes a head CG depth 772 that is greater than about 1.0 inches, greater than about 1.1 inches, greater than about 1.22 inches, greater than about 1.2 inches, greater than about 1.3 inches, greater than about 1.4 inches, greater than about 1.5 inches, greater than about 1.6 inches, greater than about 1.7 inches, or greater than about 1.8 inches.
[0263] A club head 700 with a reduced head CG height 774 can reduce the backspin of a golf ball at impact compared to a similar club head with a higher head CG height. In many embodiments, reducing backspin can increase both ball speed and flight distance for improved club head performance. Additionally, a club head 700 with an increased head CG depth 772 can increase the heel-toe moment of inertia compared to a similar club head with a head CG depth closer to the ball striking surface. Increasing the heel-toe moment of inertia can increase the club head's forgiveness at impact for improved club head performance. Furthermore, a club head 700 with an increased head CG depth 772 can increase the club head's dynamic loft at impact compared to a similar club head with a head CG depth closer to the ball striking surface, thereby increasing the launch angle of the golf ball at impact.
[0264] Head CG height 774 and / or head CG depth 772 can be achieved by reducing the weight of the club head in various areas, thereby increasing discretionary weight, and altering the discretionary weight in strategic areas of the club head to shift the head CG lower and more rearward. Various means for reducing and repositioning club head weight are described below. i. Thin areas
[0265] In some embodiments, head CG height 774 and / or head CG depth 772 can be achieved by thinning various areas of the club head to remove excess weight. Removing excess weight provides increased discretionary weight that can be strategically repositioned in areas of the club head 700 to achieve a desired low and rearward club head CG position.
[0266] In many embodiments, the club head 700 can have one or more thin regions. The one or more thin regions can be similar to or identical to one or more thin regions 376 of the club head 300 or to one or more thin regions of the club head 500. The one or more thin regions can be located on the striking face 704, the body 702, or a combination of the striking face 704 and the body 702. Furthermore, the one or more thin regions can be located in any region of the body 702, including the crown 716, the sole 718, the heel 720, the toe 722, the front end 708, the back end 710, the skirt 728, or any combination of the described locations. For example, in some embodiments, the one or more thin regions can be located on the crown 716. In a further example, the one or more thin regions can be located on a combination of the striking face 704 and the crown 716. In a further example, the one or more thin regions can be located on a combination of the striking face 704, the crown 716, and the sole 718. In a further example, the entire body 702 and / or the entire striking surface 704 can include thinned regions.
[0267] In embodiments in which one or more thinned regions are disposed on the striking face 716, the thickness of the striking face 704 can vary between a maximum striking face thickness and a minimum striking face thickness. In these embodiments, the minimum striking face thickness can be less than 0.10 inches, less than 0.09 inches, less than 0.08 inches, less than 0.07 inches, less than 0.06 inches, less than 0.05 inches, less than 0.04 inches, less than 0.03 inches, or less than 0.02 inches. In these or other embodiments, the maximum striking face thickness can be less than 0.20 inches, less than 0.19 inches, less than 0.18 inches, less than 0.17 inches, less than 0.16 inches, less than 0.15 inches, less than 0.14 inches, less than 0.13 inches, less than 0.12 inches, less than 0.11 inches, or less than 0.10 inches.
[0268] In embodiments in which one or more thinned regions are disposed on body 302, the thinned regions can comprise a thickness of less than about 0.022 inches. In other embodiments, the thinned regions can comprise a thickness of less than 0.025 inches, less than 0.020 inches, less than 0.019 inches, less than 0.018 inches, less than 0.017 inches, less than 0.016 inches, less than 0.015 inches, less than 0.014 inches, less than 0.013 inches, less than 0.012 inches, or less than 0.010 inches. For example, the thinned regions can comprise a thickness of about 0.010-0.025 inches, about 0.013-0.022 inches, about 0.014-0.020 inches, about 0.015-0.020 inches, about 0.016-0.020 inches, about 0.017-0.020 inches, or about 0.018-0.020 inches.
[0269] In the illustrated embodiment, the thinned regions vary in shape and location and cover approximately 25% of the surface area of the club head 700. In other embodiments, the thinned regions may cover approximately 20-30%, approximately 15-35%, approximately 15-25%, approximately 10-25%, approximately 15-30%, or approximately 20-50% of the surface area of the club head 700. Additionally, in other embodiments, the thinned regions may cover up to 5%, up to 10%, up to 15%, up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, or up to 50% of the surface area of the club head 700.
[0270] In many embodiments, the crown 716 includes one or more thin regions such that approximately 51% of the crown's surface area includes a thin region. In other embodiments, the crown 716 includes one or more thin regions such that up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, up to 45%, up to 50%, up to 55%, up to 60%, up to 65%, up to 70%, up to 75%, up to 80%, up to 85%, or up to 90% of the crown includes a thin region. For example, in some embodiments, approximately 40-60% of the crown may include a thin region. By way of further example, in other embodiments, approximately 50-100%, about 40-90%, about 35-65%, about 30-70%, or about 25-75% of the crown may include a thin region. In some embodiments, the crown 716 may include one or more thin regions, each of which has a tapered thinning. In this exemplary embodiment, the one or more thin regions of the crown 716 extend in a heel-to-toe direction, and each of the one or more thin regions decreases in thickness in a direction from the striking face 704 toward the back end 710.
[0271] In many embodiments, sole 718 includes one or more thin regions such that approximately 64% of the surface area of sole 718 includes thin regions. In other embodiments, sole 718 can include one or more thin regions such that up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, up to 45%, up to 50%, up to 55%, up to 60%, up to 65%, up to 70%, up to 75%, up to 80%, up to 85%, or up to 90% of sole 718 includes thin regions. For example, in some embodiments, approximately 40-60% of sole 718 can include thin regions. By way of further example, in other embodiments, approximately 50-100%, approximately 40-90%, approximately 35-65%, or approximately 30-70%, or approximately 25-75% of sole 718 can include thin regions.
[0272] The thin regions can include any shape, such as a circle, a triangle, a square, a rectangle, an oval, or any other polygon or shape having at least one curved side. Additionally, one or more thin regions can include the same shape as the rest of the thin regions or a different shape.
[0273] In many embodiments, the club head 700 with the thinned regions can be manufactured using centrifugal casting. In these embodiments, centrifugal casting allows the club head 700 to have thinner walls than club heads manufactured using traditional casting. In other embodiments, the portions of the club head 700 with the thinned regions can be manufactured using other suitable methods, such as stamping, forging, or machining. In embodiments in which the portions of the club head 700 with the thinned regions are manufactured using stamping, forging, or machining, the portions of the club head 700 can be joined using epoxy, tape, welding, mechanical fasteners, or other suitable methods. ii. Optimized materials
[0274] In some embodiments, the striking face 704 and / or body 702 may include an optimized material with increased specific strength and / or increased specific flexibility. Specific flexibility is measured as the ratio of the yield strength to the modulus of elasticity of the optimized material. Increasing specific strength and / or specific flexibility allows portions of the club head to be thinner while maintaining durability.
[0275] In some embodiments, the first material of the striking face 704 can be an optimized material as described in U.S. Provisional Patent Application No. 62 / 399,929, entitled "Golf Club Head with Optimized Material Properties." In these or other embodiments, the first material, including an optimized titanium alloy, can provide a resistance of approximately 900,000 PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 910,000 PSI / lb / in 3 (227MPa / g / cm 3) or more, approximately 920,000PSI / lb / in 3 (229MPa / g / cm 3 ) or more, approximately 930,000PSI / lb / in 3 (232MPa / g / cm 3 ) or more, approximately 940,000PSI / lb / in 3 (234MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 960,000PSI / lb / in 3 (239MPa / g / cm 3 ) or more, approximately 970,000PSI / lb / in 3 (242MPa / g / cm 3 ) or more, approximately 980,000PSI / lb / in 3 (244MPa / g / cm 3 ) or more, approximately 990,000PSI / lb / in 3 (247MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm 3 ) or more, approximately 1,050,000PSI / lb / in 3 (262MPa / g / cm 3 ) or more, approximately 1,100,000PSI / lb / in 3 (274MPa / g / cm 3 ) or approximately 1,150,000 PSI / lb / in 3 (286MPa / g / cm 3 ) or more.
[0276] Additionally, in these or other embodiments, the first material comprising an optimized titanium alloy can have a relative flexibility of about 0.0075 or greater, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0091 or greater, about 0.0092 or greater, about 0.0093 or greater, about 0.0094 or greater, about 0.0095 or greater, about 0.0096 or greater, about 0.0097 or greater, about 0.0098 or greater, about 0.0099 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, or about 0.0120 or greater.
[0277] In these or other embodiments, the first material comprising an optimized steel alloy has a resistance of about 650,000 PSI / lb / in 3 (162MPa / g / cm 3 ) or more, approximately 700,000PSI / lb / in 3 (174MPa / g / cm 3 ) or more, approximately 750,000PSI / lb / in 3 (187MPa / g / cm 3 ) or more, approximately 800,000PSI / lb / in 3 (199MPa / g / cm 3 ) or more, approximately 810,000PSI / lb / in 3 (202MPa / g / cm 3 ) or more, approximately 820,000PSI / lb / in 3 (204MPa / g / cm 3 ) or more, approximately 830,000PSI / lb / in 3 (207MPa / g / cm 3 ) or more, approximately 840,000PSI / lb / in 3 (209MPa / g / cm 3 ) or more, approximately 850,000PSI / lb / in 3 (212MPa / g / cm 3 ) or more, approximately 900,000PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm3 ), approximately 1,050,000 PSI / lb / in 3 (262MPa / g / cm 3 ) or more, approximately 1,100,000PSI / lb / in 3 (274MPa / g / cm 3 ) or more, approximately 1,115,000PSI / lb / in 3 (278MPa / g / cm 3 ) or approximately 1,120,000 PSI / lb / in 3 (279MPa / g / cm 3 ) or more.
[0278] Additionally, in these or other embodiments, the first material comprising the optimized steel alloy can have a relative flexibility of about 0.0060 or greater, about 0.0065 or greater, about 0.0070 or greater, about 0.0075, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0095 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, about 0.0120 or greater, about 0.0125 or greater, about 0.0130 or greater, about 0.0135 or greater, about 0.0140 or greater, about 0.0145 or greater, or about 0.0150 or greater.
[0279] In these embodiments, the increased strength-to-weight ratio and / or increased flexibility-to-weight ratio of the optimized first material allows for the striking face 704, or portions thereof, to be thinned as described above while maintaining durability. By thinning the striking face 704, the weight of the striking face 704 can be reduced, thereby increasing discretionary weight that can be strategically placed in other areas of the club head 700, thereby positioning the head CG lower and further back and / or increasing the club head's moment of inertia.
[0280] In some embodiments, the second material of the body 702 can be an optimized material as described in U.S. Provisional Patent Application No. 62 / 399,929, entitled "Golf Club Head with Optimized Material Properties." In these or other embodiments, the second material, which comprises an optimized titanium alloy, can provide a resistance of approximately 730,500 PSI / lb / in 3 (182MPa / g / cm 3 ) or greater. For example, the specific strength of an optimized titanium alloy is approximately 650,000 PSI / lb / in 3 (162MPa / g / cm 3 ) or more, approximately 700,000PSI / lb / in 3 (174MPa / g / cm 3 ), approximately 750,000 PSI / lb / in 3 (187MPa / g / cm 3 ) or more, approximately 800,000PSI / lb / in 3 (199MPa / g / cm 3 ), approximately 850,000 PSI / lb / in 3 (212MPa / g / cm 3 ) or more, approximately 900,000PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm 3 ) or more, approximately 1,050,000PSI / lb / in 3 (262MPa / g / cm 3 ) or approximately 1,100,000 PSI / lb / in 3 (272MPa / g / cm 3 ) or more.
[0281] Additionally, in these or other embodiments, the second material comprising an optimized titanium alloy can have a relative flexibility of about 0.0060 or greater, about 0.0065 or greater, about 0.0070 or greater, about 0.0075, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0095 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, or about 0.0120 or greater.
[0282] In these or other embodiments, the second material comprising optimized steel has a resistance of about 500,000 PSI / lb / in 3 (125MPa / g / cm 3 ) or more, approximately 510,000PSI / lb / in 3 (127MPa / g / cm 3 ) or more, approximately 520,000PSI / lb / in 3 (130MPa / g / cm 3 ) or more, approximately 530,000PSI / lb / in 3 (132MPa / g / cm 3 ) or more, approximately 540,000PSI / lb / in 3 (135MPa / g / cm 3 ) or more, approximately 550,000PSI / lb / in 3 (137MPa / g / cm 3 ) or more, approximately 560,000PSI / lb / in 3 (139MPa / g / cm 3 ) or more, approximately 570,000PSI / lb / in 3 (142MPa / g / cm 3 ) or more, approximately 580,000PSI / lb / in 3 (144MPa / g / cm 3 ) or more, approximately 590,000PSI / lb / in 3 (147MPa / g / cm 3 ) or more, approximately 600,000PSI / lb / in 3 (149MPa / g / cm 3 ) or more, approximately 625,000PSI / lb / in 3 (156MPa / g / cm 3 ) or more, approximately 675,000PSI / lb / in 3(168MPa / g / cm 3 ) or more, approximately 725,000PSI / lb / in 3 (181MPa / g / cm 3 ) or more, approximately 775,000PSI / lb / in 3 (193MPa / g / cm 3 ) or more, approximately 825,000PSI / lb / in 3 (205MPa / g / cm 3 ) or more, approximately 875,000PSI / lb / in 3 (218MPa / g / cm 3 ) or more, approximately 925,000PSI / lb / in 3 (230MPa / g / cm 3 ) or more, approximately 975,000PSI / lb / in 3 (243MPa / g / cm 3 ) or more, approximately 1,025,000PSI / lb / in 3 (255MPa / g / cm 3 ) or more, approximately 1,075PSI / lb / in 3 (268MPa / g / cm 3 ), or approximately 1,125,000 PSI / lb / in 3 (280MPa / g / cm 3 ) or more.
[0283] Additionally, in these or other embodiments, the second material comprising optimized steel can have a specific flexibility of about 0.0060 or greater, about 0.0062 or greater, about 0.0064 or greater, about 0.0066 or greater, about 0.0068 or greater, about 0.0070 or greater, about 0.0072 or greater, about 0.0076 or greater, about 0.0080 or greater, about 0.0084 or greater, about 0.0088 or greater, about 0.0092 or greater, about 0.0096 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, about 0.0120 or greater, about 0.0125 or greater, about 0.0130 or greater, about 0.0135 or greater, about 0.0140 or greater, about 0.0145 or greater, or about 0.0150 or greater.
[0284] In these embodiments, the increased specific strength and / or increased specific flexibility of the optimized second material allows for the body 702, or portions thereof, to be thinner while maintaining durability. Thinning the body 702 allows for less weight in the club head, thereby increasing discretionary weight to be strategically placed in other areas of the club head 700, thereby positioning the head CG lower and further back and / or increasing the club head's moment of inertia. iii. Removable weights
[0285] In some embodiments, the club head 700 can include one or more weight structures 780 that include one or more removable weights 782. The one or more weight structures 780 and / or the one or more removable weights 782 can be positioned toward the sole 718 and back end 710, thereby allowing discretionary weights to be positioned near the sole 718 and back end 710 of the club head to achieve a low, rearward head CG position. In many embodiments, the one or more weight structures 780 removably receive the one or more removable weights 782. In these embodiments, the one or more removable weights 782 can be coupled to the one or more weight structures 780 using any suitable method, such as threaded fasteners, adhesives, magnets, snap fits, or any other mechanism capable of securing the one or more removable weights to the one or more weight structures.
[0286] The weight structures 780 and / or removable weights 782 can be positioned relative to a clock grid 2000 (shown in FIG. 3 ), which can be aligned with the striking face 704 when viewed from a top view. The clock grid includes at least a 12 o'clock ray, a 3 o'clock ray, a 4 o'clock ray, a 5 o'clock ray, a 6 o'clock ray, a 7 o'clock ray, an 8 o'clock ray, and a 9 o'clock ray. For example, the clock grid 2000 includes a 12 o'clock ray 2012 aligned with the geometric center 740 of the striking face 704. The 12 o'clock ray 2012 is orthogonal to the X'Y' plane. The center of the clock grid 2000 can be located at the midpoint between the front end 708 and the back end 710 of the club head 700 along the 12 o'clock ray 2012. In the same or another example, the clock grid midpoint 2010 can be centered adjacent to the geometric center point of the golf club head 700 when viewed from a bottom view. The clock grid 2000 also includes a 3 o'clock radial line 2003 extending toward the heel 720 and a 9 o'clock radial line 2009 extending toward the toe 722 of the club head 700 .
[0287] Weight perimeter 784 of weight structure 780, in this embodiment, is disposed toward back end 710 and is at least partially bounded between 4 o'clock radiation 2004 and 8 o'clock radiation 2008 of clock grid 2000, while removable weight 782 disposed within weight structure 780 is disposed between 5 o'clock radiation 2005 and 7 o'clock radiation 2007. In this example, weight perimeter 784 is completely enclosed between 4 o'clock radiation 2004 and 8 o'clock radiation 2008. In this example, weight perimeter 784 is defined external to club head 700, although there may be other instances in which weight perimeter 784 extends internal to or may be defined within club head 700. In some examples, the position of weight structure 780 may be established relative to a larger area. For example, in such an example, the weight perimeter 784 of the weight structure 780 can be positioned toward a back end bounded at least in part between the 4 o'clock ray 2004 and the 9 o'clock ray 2009 of the clock grid 2000, while the weight center 786 can be located between the 5 o'clock ray 2005 and the 8 o'clock ray 2008.
[0288] In this example, weight structure 780 protrudes from the exterior contour of sole 718 and is therefore at least partially external to allow for greater adjustment of head CG 770. In some examples, weight structure 780 can include a mass of between about 2 grams and about 50 grams and / or a volume of between about 1 cc and about 30 cc. In other examples, weight structure 780 can remain flush with the exterior contour of body 702.
[0289] In many embodiments, the removable weight 782 can include a mass between about 0.5 grams and about 30 grams and can be replaced with one or more other similar removable weights to adjust the position of the head CG 770. In the same or other examples, the weight center 786 can include at least one of the center of gravity of the removable weight 782 and / or the geometric center 782 of the removable weight. iv. Embedded weights
[0290] In some embodiments, club head 700 may include one or more embedded weights to place discretionary weights on the sole 718, in the skirt 728, and / or near the back end 710 of club head 700 to achieve a low, rearward head CG position. The one or more embedded weights in club head 700 may be similar to or identical to one or more embedded weights 383 in club head 300 or to one or more embedded weights in club head 500. In many embodiments, the one or more embedded weights are permanently fixed to or within club head 700. In these embodiments, the embedded weights may be similar to the high density metal pieces (HDMP) described in U.S. Provisional Patent Application No. 62 / 372,870, entitled "Embedded High Density Casting."
[0291] In many embodiments, the one or more embedded weights are located near the back end 710 of the club head. For example, the weight center of the embedded weight may be located between the 5 o'clock radiant 2005 and the 8 o'clock radiant 2008 of the clock grid 2000. In many embodiments, the one or more embedded weights may be located on the skirt 728 near the back end 710 of the club head 700, on the sole 718 near the back end 710 of the club head 700, or on the skirt 728 and the sole 718 near the back end 710 of the club head 700.
[0292] In many embodiments, the center of weight of one or more embedded weights is located within 0.10 inch, 0.20 inch, 0.30 inch, 0.40 inch, 0.50 inch, 0.60 inch, 0.70 inch, 0.80 inch, 0.90 inch, 1.0 inch, 1.1 inch, 1.2 inch, 1.3 inch, 1.4 inch, or 1.5 inch of the perimeter of the club head 700 when viewed from a top view. In these embodiments, the proximity of the embedded weights to the perimeter of the club head 700 may maximize a low and rearward head CG position, crown-sole moment of inertia Ixx, and / or heel-toe moment of inertia Iyy.
[0293] In many embodiments, the weight center of one or more embedded weights is positioned at a distance from the head CG770 that is greater than 1.6 inches, greater than 1.7 inches, greater than 1.8 inches, greater than 1.9 inches, greater than 2.0 inches, greater than 2.1 inches, greater than 2.2 inches, greater than 2.3 inches, greater than 2.4 inches, greater than 2.5 inches, greater than 2.6 inches, greater than 2.7 inches, greater than 2.8 inches, greater than 2.9 inches, or greater than 3.0 inches.
[0294] In many embodiments, the weight center of the one or more embedded weights is positioned at a distance greater than 4.0 inches, greater than 4.1 inches, greater than 4.2 inches, greater than 4.3 inches, greater than 4.4 inches, greater than 4.5 inches, greater than 4.6 inches, greater than 4.7 inches, greater than 4.8 inches, greater than 4.9 inches, or greater than 5.0 inches from the geometric center 740 of the striking face 704.
[0295] In many embodiments, the one or more embedded weights can include a mass between 3.0 and 90 grams. For example, in some embodiments, the one or more embedded weights can include a mass between 3.0 and 25 grams, 10 and 40 grams, 20 and 50 grams, 30 and 60 grams, 40 and 70 grams, 50 and 80 grams, or 60 and 90 grams. In embodiments in which the one or more embedded weights include two or more weights, each of the embedded weights can include the same or different masses.
[0296] In many embodiments, the one or more embedded weights can comprise a material having a specific gravity between 10.0 and 22.0. For example, in many embodiments, the one or more embedded weights can comprise a material having a specific gravity greater than 10.0, greater than 11.0, greater than 12.0, greater than 13.0, greater than 14.0, greater than 15.0, greater than 16.0, greater than 16.0, greater than 17.0, greater than 18.0, or greater than 19.0. In embodiments in which the one or more embedded weights include two or more weights, each of the embedded weights can comprise the same or different materials. v. Steep crown angle
[0297] In some embodiments, the golf club head 700 can further include a steep crown angle 788 to achieve a low, rearward position of the head CG. The steep crown angle 788 positions the back end of the crown 716 toward the sole 718 or ground, thereby lowering the club head CG position.
[0298] The crown angle 788 is measured as the acute angle between the crown axis 1090 and the front face 1020. In these embodiments, the crown axis 1090 lies within a cross-section of the club head 700 taken along a plane disposed perpendicular to the ground plane 1030 and the front face 1020. The crown axis 1090 can be further described with reference to an upper transition boundary and a rear transition boundary.
[0299] Club head 700 includes an upper transition boundary between the front end 708 and the crown 716 that extends from near the heel 720 to near the toe 722. The upper transition boundary includes a crown transition profile 790 when viewed from a cross-sectional side view taken along a plane perpendicular to the front surface 1020 and perpendicular to the ground contact surface 1030 when the club head 700 is in the address position. The cross-sectional side view can be taken at any point on the club head 700 from near the heel 720 to near the toe 722. The crown transition profile 790 defines a front radius of curvature 792 that extends from the front end 708 of the club head 700 to a crown transition point 794, where the front end 708 of the club head 700 is where the contour departs from the undulating and / or bulging range of the striking face 704, and the crown transition point 794 marks the change in curvature from the front radius of curvature 792 to the curvature of the crown 716. In some embodiments, the front radius of curvature 792 includes a single radius of curvature extending from an upper end 793 of the striking face perimeter 742 near the crown 716 to a crown transition point 794, where the upper end 793 of the striking face perimeter 742 near the crown 716 is where the contour deviates from the undulating and / or bulging range of the striking face 704, and the crown transition point 794 marks a change in curvature from the front radius of curvature 792 to one or more curvatures of the crown 716.
[0300] Club head 700 further includes a rear transition boundary between crown 716 and skirt 728, extending from near heel 720 to near toe 722. The rear transition boundary includes a rear transition profile 796 when viewed from a cross-sectional side view taken along a plane perpendicular to front surface 1020 and perpendicular to ground contact surface 1030 when club head 700 is in the address position. The cross-sectional view can be taken at any point on club head 700 from near heel 720 to near toe 722. Rear transition profile 796 defines a back radius of curvature 798 that extends along the rear transition boundary from crown 716 to skirt 728 of club head 700. In many embodiments, back radius of curvature 798 includes a single radius of curvature that transitions to skirt 728 of club head 700. A first rear transition point 802 is located at the junction between crown 716 and rear transition boundary. The second rear transition point 803 is located at the junction between the rear transition boundary of the club head 700 and the skirt 728 .
[0301] The front radius of curvature 792 of the upper transition boundary may remain constant or may vary from near the heel 520 to near the toe 522 of the club head 700. Similarly, the back radius of curvature 798 of the rear transition boundary may remain constant or may vary from near the heel 720 to near the toe 722 of the club head 700.
[0302] A crown axis 1090 extends between a crown transition point 794 near the front end 708 of the club head 700 and a rear transition point 802 near the back end 710 of the club head 700. The crown angle 788 may remain constant or may vary from near the heel 720 to near the toe 722 of the club head 700. For example, the crown angle 788 may change when a cross-sectional side view is taken at different positions relative to the heel 720 and toe 722.
[0303] In many embodiments, the maximum crown angle 788 taken anywhere from near the toe 722 to near the heel 720 is less than 79 degrees, less than about 95 degrees, less than about 93 degrees, less than about 91 degrees, less than about 89 degrees, less than about 87 degrees, less than about 85 degrees, less than about 83 degrees, less than about 81 degrees, less than about 79 degrees, less than about 77 degrees, or less than about 75 degrees. For example, in some embodiments, the maximum crown angle is between 65 and 95 degrees, between 65 and 90 degrees, or between 65 and 85 degrees.
[0304] In many embodiments, decreasing the crown angle 788 compared to current club heads creates a steeper crown or a crown that is positioned closer to the ground plane 1030 when the club head 700 is in the address position. Thus, decreasing the crown angle 788 may result in a lower head CG position compared to club heads with higher crown angles. vi.Hosel sleeve weight
[0305] In some embodiments, head CG height 774 and / or head CG depth 772 can be achieved by reducing the mass of hosel sleeve 734. Removing excess weight from hosel sleeve 734 allows increased discretionary weight to be repositioned strategically in areas of club head 700 to achieve a desired low and rearward club head CG position.
[0306] Reducing the mass of the hosel sleeve 734 can be achieved by thinning the sleeve wall, reducing the height of the hosel sleeve 734, reducing the diameter of the hosel sleeve 734, and / or introducing voids into the wall of the hosel sleeve 734. In many embodiments, the mass of the hosel sleeve 734 can be less than 6 grams, less than 5.5 grams, less than 5.0 grams, less than 4.5 grams, or less than 4.0 grams. In many embodiments, a club head 700 with a hosel sleeve having a reduced mass results in a club head CG position that is lower (closer to the sole) and more rearward (closer to the back end) than a similar club head with a heavier hosel sleeve. B. Air resistance
[0307] In many embodiments, the club head 700 includes a combination of a low and rearward CG position of the club head and an increased moment of inertia of the club head, along with reduced aerodynamic drag.
[0308] In many embodiments, the club head 700 experiences an air resistance force of less than about 1.25 lbf, less than 1.0 lbf, less than 0.95 lbf, less than 0.90 lbf, less than 0.85 lbf, less than 0.83 lbf, or less than 0.80 lbf when tested in a wind tunnel with a square face and a wind speed of 98 miles per hour (mph). In these or other embodiments, the club head 700 experiences an air resistance force of less than about 1.25 lbf, less than 1.0 lbf, less than 0.95 lbf, less than 0.90 lbf, less than 0.85 lbf, less than 0.83 lbf, or less than 0.80 lbf when calculated using computational fluid dynamics with a square face and a wind speed of 98 miles per hour (mph). In these embodiments, the airflow experienced by the square-faced club head 700 is directed toward the striking face 704 in a direction perpendicular to the X'Y' plane. As described below, the reduced aerodynamic drag of the club head 700 can be achieved through a variety of means. i. Crown angle height
[0309] In some embodiments, decreasing the crown angle 788 to create a steeper crown and a lower head CG position can result in an undesirable increase in aerodynamic drag due to increased airflow separation over the crown during swing. To prevent the increased drag associated with decreasing the crown angle 788, the maximum crown height 804 can be increased. The maximum crown height 804 is the maximum distance between the surface of the crown 716 and the crown axis 1090 as viewed in any cross-sectional side view of the club head 700 along a plane parallel to the Y'Z' plane. In many embodiments, a larger maximum crown height 804 results in a crown 716 with a greater curvature. The greater the curvature of the crown 716, the further rearward the location of airflow separation during swing. In other words, a greater curvature allows the airflow to remain in contact with the club head 700 for a longer distance along the crown 716 during swing. Moving the airflow separation point rearward on the crown 716 can reduce aerodynamic drag and increase the club head swing speed, thereby increasing ball speed and distance.
[0310] In many embodiments, the maximum crown height 804 can be greater than about 0.10 inches (2.5 mm), greater than about 0.20 inches (5 mm), greater than about 0.30 inches (7.5 mm), or greater than about 0.40 inches (10 mm). Additionally, in other embodiments, the maximum crown height 804 can be within the range of 0.10 inches (2.5 mm) to 0.40 inches (10 mm), 0.10 inches (2.5 mm) to 0.60 inches (15 mm), or 0.20 inches (5 mm) to 0.60 inches (15 mm). For example, in some embodiments, the maximum crown height 804 can be about 0.20 inches (5 mm), about 0.24 inches (6 mm), about 0.28 inches (7 mm), about 0.31 inches (8 mm), or about 0.35 inches (9 mm). ii. Transition Profile
[0311] In many embodiments, the transition profile from the striking face 704 to the crown 716, the striking face 704 to the sole 718, and / or the crown 716 to the sole 718 along the back end 710 of the club head 700 affects the air resistance on the club head 700 during a swing.
[0312] In some embodiments, club head 700 having an upper transition boundary defining crown transition profile 790 and a rear transition boundary defining rear transition profile 796 further includes a sole transition boundary defining sole transition profile 810. The sole transition boundary extends between front end 708 and sole 718 from near heel 720 to near toe 722. The sole transition boundary includes sole transition profile 810 when viewed from a cross-sectional side view taken along a plane parallel to the Y'Z' plane. The cross-sectional side view can be taken at any point on club head 700 from near heel 720 to near toe 722. Sole transition profile 810 defines a sole radius of curvature 812 extending from the front end 708 of club head 700 to a sole transition point 814, where the front end 708 of club head 700 is where the contour deviates from the undulating and / or bulging range of striking face 704, and where sole transition point 814 marks a change in curvature from sole radius of curvature 812 to the curvature of sole 718. In some embodiments, sole radius of curvature 812 includes a single radius of curvature extending from a bottom end 813 of striking face perimeter 742 near sole 718 to sole transition point 814, where the bottom end 813 of striking face perimeter 742 near sole 718 is where the contour deviates from the undulating and / or bulging range, and where sole transition point 814 marks a change in curvature from sole radius of curvature 812 to the curvature of sole 814.
[0313] In many embodiments, the crown transition profile 790, the sole transition profile 810, and the rear transition profile 796 can be similar to the crown transition profile, the sole transition profile, and the rear transition profile described in U.S. Patent Application No. 15 / 233,486, entitled "Golf Club Head Having a Transition Profile for Reducing Aerodynamic Drag." Additionally, the front radius of curvature 792, the sole radius of curvature 812, and the back radius of curvature 798 can be similar to the first crown radius of curvature, the first sole radius of curvature, and the back radius of curvature described in U.S. Patent Application No. 15 / 233,486, entitled "Golf Club Head Having a Transition Profile for Reducing Aerodynamic Drag."
[0314] In some embodiments, the front radius of curvature 792 can be in the range of approximately 0.10 to 0.50 inches (0.25 to 1.27 cm). Additionally, in other embodiments, the front radius of curvature 792 can be less than 0.40 inches (1.02 cm), less than 0.375 inches (0.95 cm), less than 0.35 inches (0.89 cm), less than 0.325 inches (0.83 cm), or less than 0.30 inches (0.76 cm). For example, the front radius of curvature 792 can be approximately 0.18 inches (0.46 cm), 0.20 inches (0.51 cm), 0.22 inches (0.66 cm), 0.24 inches (0.61 cm), 0.26 inches (0.66 cm), 0.28 inches (0.71 cm), or 0.30 inches (0.76 cm).
[0315] In some embodiments, sole radius of curvature 812 can be in the range of approximately 0.05 to 0.25 inches (0.13 to 0.64 cm). For example, sole radius of curvature 812 can be less than approximately 0.3 inches (0.76 cm), less than approximately 0.275 inches (0.70 cm), less than approximately 0.25 inches (0.64 cm), less than approximately 0.2 inches (0.51 cm), less than approximately 0.15 inches (0.38 cm), or less than approximately 0.1 inches (0.25 cm). In further examples, sole radius of curvature 812 can be approximately 0.10 inches (0.25 cm), 0.15 inches (0.38 cm), 0.20 inches (0.51 cm), or 0.25 inches (0.64 cm).
[0316] In some embodiments, the back radius of curvature 798 can be in the range of about 0.10 to 0.25 inches (0.25 to 0.64 cm). For example, the back radius of curvature 798 can be less than about 0.3 inches (0.76 cm), less than about 0.275 inches (0.70 cm), less than about 0.25 inches (0.64 cm), less than about 0.225 inches (0.57 cm), or less than about 0.20 inches (0.51 cm). In further examples, the back radius of curvature 798 can be about 0.10 inches (0.25 cm), 0.15 inches (0.38 cm), 0.20 inches (0.51 cm), or 0.25 inches (0.64 cm). iii. Turbulator
[0317] In some embodiments, club head 700 may further include a plurality of turbulators 814, as described in U.S. patent application Ser. No. 13 / 536,753, now U.S. Patent No. 8,608,587, issued December 17, 2013, entitled "Golf Club Head With Turbulators And Method of Manufacturing a Golf Club Head," the contents of which are incorporated herein in their entirety. In many embodiments, the plurality of turbulators 814 disrupt the airflow, thereby creating small vortices or turbulence within the boundary layer, imparting energy to the boundary layer and delaying separation of the airflow over the crown during the swing.
[0318] In some embodiments, the plurality of turbulators 614 can be adjacent to a crown transition point 994 of the club head 700. The plurality of turbulators 814 protrude from the outer surface of the crown 716 and include a length extending between the front end 708 and the back end 710 of the club head 700 and a width extending from the heel 720 to the toe 722 of the club head 700. In many embodiments, the length of the plurality of turbulators 814 is greater than the width. In some embodiments, the plurality of turbulators 814 can include the same width. In some embodiments, the plurality of turbulators 814 can vary in height profile. In some embodiments, the plurality of turbulators 814 can be taller toward the apex of the crown 716 compared to the front of the crown 716. In other embodiments, the plurality of turbulators 814 can be taller toward the front of the crown 716 and shorter in height toward the apex of the crown 716. In other embodiments, the plurality of turbulators 814 can include a constant height profile. Additionally, in many embodiments, at least a portion of at least one turbulator is disposed between the striking face and the apex of crown 716, and the spacing between adjacent turbulators is greater than the respective widths of the adjacent turbulators. iv. Back cavity
[0319] In some embodiments, the club head 700 may further include a cavity 820 located at the back end 710 and the trailing edge 728 of the club head 700. In some embodiments, the cavity 820 may be equivalent to the cavity 420 on the club head 300 or the cavity 620 on the club head 500. Furthermore, the cavity may be similar to the cavity described in U.S. patent application Ser. No. 14 / 882,092, entitled "Golf Club Head and Aerodynamic Features and Related Methods." In many embodiments, the cavity 820 may break up vortices generated behind the golf club head 700 into smaller vortices, reducing the size of the turbulent air and / or reducing drag. In some embodiments, breaking up the vortices into smaller vortices may create a high-pressure region behind the golf club head 700. In some embodiments, this high-pressure region may push the golf club head 700 forward, reducing drag and / or improving the aerodynamic design of the golf club head 700. In many embodiments, the net effect of smaller vortices and reduced drag is an increase in the velocity of the golf club head 700. This effect causes the golf ball to leave the striking face 704 faster after impact, potentially increasing the ball's flight distance.
[0320] In many embodiments, cavity 820 can include a rear wall 822 oriented in a direction perpendicular to the X'Z' plane and can further include a width, depth 824, and height 826 measured in a direction from heel 720 to toe 722. The width of cavity 820 can be about 1.0 inch (about 2.54 centimeters) to about 8 inches (about 20.32 cm), about 1.0 inch (about 2.54 cm) to about 2.25 inches (about 5.72 cm), or about 1.75 inches (about 4.5 cm) to about 2.25 inches (about 5.72 cm). For example, the width of cavity 420 can be about 2.0 inches (5.08 cm), 3.0 inches (7.62 cm), 4.0 inches (10.16 cm), 5.0 inches (12.7 cm), 6.0 inches (15.24 cm), or 7.0 inches (17.78 cm). In some embodiments, the width of cavity 820 may remain constant from near the top of cavity 820 (toward the crown 716 of club head 700) to near the bottom of cavity 820 (toward the sole 718 of club head 700). In other embodiments, the width of cavity 820 may vary from near the top to near the bottom. In the embodiment shown in FIG. 8, the width of cavity 820 may be greatest near the top and smallest near the bottom. In other embodiments, the width of cavity 820 may vary according to any contour. For example, in other embodiments, the width of cavity 820 may be greatest at the top, bottom, center, or any other location extending from the top to the bottom of the cavity.
[0321] Depth 824 of cavity 820 can be about 0.025 inches (about 0.127 cm) to about 0.250 inches (about 0.635 cm), or about 0.025 inches (about 0.127 cm) to about 0.150 inches (about 0.381 cm). For example, depth 824 of cavity 820 can be about 0.1 inches (about 0.254 cm), or about 0.05 inches (about 0.127 cm). In some embodiments, the depth of cavity 820 can remain constant between the heel and toe and / or between the top and bottom of cavity 820. In other embodiments, the depth of cavity 820 can vary between the heel and toe and / or between the top and bottom of cavity 820. For example, the depth of cavity 820 may be greatest near the heel, near the toe, near the crown, near the sole, near the center, or any combination of the locations listed.
[0322] Height 826 of cavity 820 can be measured along a direction from crown 716 to sole 718. Height 826 of cavity 820 can be between about 0.19 inches (about 0.48 cm) and about 0.21 inches (about 0.53 cm). In some embodiments, height 826 of cavity 820 can be between about 0.10 inches (about 0.25 cm) and about 0.50 inches (about 1.27 cm). In some embodiments, height 826 of cavity 820 can be between about 0.10 inches (about 0.25 cm) and about 0.40 inches (about 1.02 cm). In some embodiments, height 826 of cavity 820 can be between about 0.10 inches (about 0.25 cm) and about 0.30 inches (about 0.76 cm). In some embodiments, the height 826 of the cavity 820 can be from about 0.10 inches (about 0.25 cm) to about 0.20 inches (about 0.51 cm). In some embodiments, the height 826 of the cavity 820 can remain constant between the heel and toe of the cavity 820. In other embodiments, the height 826 of the cavity 820 can vary between the heel and toe of the cavity 820. For example, the height 826 of the cavity 820 can be greatest near the heel, near the toe, near the center, or any combination of the described locations. v. Hosel structure
[0323] In some embodiments, the hosel structure 730 can have a smaller outer diameter to reduce air resistance on the club head 700 during a swing compared to a similar club head having a larger diameter hosel structure. In many embodiments, the hosel structure 730 has an outer diameter of less than 0.545 inches. For example, the hosel structure 730 can have an outer diameter of less than 0.60 inches, less than 0.59 inches, less than 0.58 inches, less than 0.57 inches, less than 0.56 inches, less than 0.55 inches, less than 0.54 inches, less than 0.53 inches, less than 0.52 inches, less than 0.51 inches, or less than 0.50 inches. In many embodiments, the outer diameter of the hosel structure 730 is reduced while maintaining the adjustability of the loft and / or lie angle of the club head 700. C. Balance of CG position, moment of inertia, and air resistance
[0324] In current golf club head designs, increasing or maximizing the club head's moment of inertia can adversely affect other club head performance characteristics, such as air resistance. The club head 700 described herein increases or maximizes the club head's moment of inertia while simultaneously maintaining or reducing air resistance. Thus, club head 700, which improves impact performance characteristics (e.g., spin, launch angle, ball speed, and forgiveness), also balances or improves swing performance characteristics (e.g., air resistance, ability to square the club head at impact, and swing speed).
[0325] In the example club head 700 described below, the aerodynamic drag of the club head is measured using computational fluid dynamics simulations with the front end of the club head oriented square in an airstream at an air speed of 102 miles per hour (mph). In other embodiments, aerodynamic drag can be measured using other methods, such as using wind tunnel testing.
[0326] In many known golf club heads, increasing or maximizing the club head's moment of inertia adversely affects air resistance. Figures 23A-C show that for many known club heads having similar volumes and / or loft angles to club head 700, as the club head's moment of inertia increases (to increase the club head's forgiveness), drag increases during a swing (thereby decreasing swing speed and ball flight distance).
[0327] For example, as shown in Figure 23A, for many known club heads, drag increases as the moment of inertia about the x-axis increases. By way of further example, with reference to Figure 23B, for many known club heads, drag increases as the moment of inertia about the y-axis increases. By way of further example, with reference to Figure 23C, for many known club heads, drag increases as the resultant moment of inertia (i.e., the sum of the moment of inertia about the x-axis and the moment of inertia about the y-axis) increases.
[0328] The club head 700 described herein increases or maximizes the club head's moment of inertia while simultaneously maintaining or reducing aerodynamic drag compared to known club heads of similar volume and / or loft. Thus, the club head 700, which has improved impact performance characteristics (e.g., spin, launch angle, ball speed, and forgiveness), also balances or improves swing performance characteristics (e.g., aerodynamic drag, ability to square the club head at impact, and swing speed).
[0329] In many embodiments, as shown in FIG. 24, the club head 700 reduces club head drag (F) compared to known golf club heads of similar volume and / or loft angle. D One or more of the following relationships are satisfied so that the resultant moment of inertia (Ixx+Iyy) of the club head is increased while maintaining or reducing the moment of inertia (Ixx+Iyy):
number
number
[0330] For example, in many embodiments, the club head 700 satisfies relationship 9. In other embodiments, the club head 700 may satisfy relationship 9 and have a flexural modulus of 4900 g cm. 2 Greater than 5000g·cm 2 Greater than 5100g·cm 2 Greater than 5200g·cm 2 Greater than 5300g·cm 2 Greater than 5400g·cm 2 Greater than 5500g·cm 2 Greater than 5600g·cm 2 Greater than 5700g·cm 2 Greater than 5800g·cm 2 Larger than 5900g·cm 2 or greater than 6000 g·cm 2 In still other embodiments, the club head 700 can satisfy relationship 9 and have a drag force less than 1.25 lbf, less than 1.0 lbf, less than 0.95 lbf, less than 0.90 lbf, less than 0.850 lbf, less than 0.83 lbf, or less than 0.80 lbf.
[0331] As a further example, in many embodiments, the club head 700 satisfies the relationship 10. In other embodiments, the club head 700 may satisfy the relationship 10 and have a flex of 4900 g cm. 2 Greater than 5000g·cm 2 Greater than 5100g·cm 2 Greater than 5200g·cm 2 Greater than 5300g·cm 2 Greater than 5400g·cm 2 Greater than 5500g·cm2 Greater than 5600g·cm 2 Greater than 5700g·cm 2 Greater than 5800g·cm 2 Larger than 5900g·cm 2 or greater than 6000 g·cm 2 In still other embodiments, the club head 700 can satisfy relationship 10 and have a drag force less than 1.25 lbf, less than 1.0 lbf, less than 0.95 lbf, less than 0.90 lbf, less than 0.850 lbf, less than 0.83 lbf, or less than 0.80 lbf. i.CG position and aerodynamic drag
[0332] In many known golf club heads, shifting the CG position further rearward to increase the golf ball launch angle and / or increase the club head's inertia can adversely affect other performance characteristics of the club head, such as air resistance. Figure 25 shows that in many known club heads having similar volumes and / or loft angles to club head 700, as the depth of the club head CG increases (to increase the club head's forgiveness and / or launch angle), drag increases during a swing (thereby decreasing swing speed and ball flight distance). For example, as shown in Figure 25, in many known club heads, drag on the club head increases as the depth of the head CG increases.
[0333] The club head 700 described herein increases or maximizes the club head's CG depth while simultaneously maintaining or reducing air resistance compared to known club heads of similar volume and / or loft angle. Thus, the club head 700, which has improved impact performance characteristics (e.g., spin, launch angle, ball speed, and forgiveness), also balances or improves swing performance characteristics (e.g., air resistance, ability to square the club head at impact, and swing speed).
[0334] In many embodiments, as shown in FIG. 26, the club head 700 reduces the drag force (F) on the club head compared to known golf club heads of similar volume and / or loft angle. D CG depth (CG) D ) is increased, one or more of the following relationships are satisfied:
number
number
[0335] For example, in many embodiments, the club head 700 satisfies relationship 11. In other embodiments, the club head 700 can satisfy relationship 11 and have a head CG depth greater than 1.1 inches, greater than 1.2 inches, greater than 1.3 inches, greater than 1.4 inches, greater than 1.5 inches, greater than 1.6 inches, greater than 1.7 inches, or greater than 1.8 inches. Additionally, in other embodiments, the club head 700 can satisfy relationship 11 and have a drag force less than 1.25 lbf, less than 1.0 lbf, less than 0.95 lbf, less than 0.90 lbf, less than 0.85 lbf, less than 0.83 lbf, or less than 0.80 lbf.
[0336] By way of further example, in many embodiments, the club head 700 satisfies relationship 12. In other embodiments, the club head 700 can satisfy relationship 7 and have a head CG depth greater than 1.1 inches, greater than 1.2 inches, greater than 1.3 inches, greater than 1.4 inches, greater than 1.5 inches, greater than 1.6 inches, greater than 1.7 inches, or greater than 1.8 inches. Furthermore, in other embodiments, the club head 700 can satisfy relationship 12 and have a drag force less than 1.25 lbf, less than 1.0 lbf, less than 0.95 lbf, less than 0.90 lbf, less than 0.85 lbf, less than 0.83 lbf, or less than 0.80 lbf. By way of further example, in many embodiments, the club head 300, 500 satisfies relationship 7 and has a drag force less than 1.16 lbf. ii. Moment of inertia and CG depth
[0337] 27, many known golf club heads have limited composite moment of inertia and / or head CG depth. For example, many known golf club heads having similar volume and / or loft angles to club head 700 have a head CG depth of less than 1.2 inches and a head CG of 5000 g cm. 2 The club head 700 described herein has a greater head CG depth and a greater composite moment of inertia than known club heads of similar volume and / or loft angle, while simultaneously maintaining or reducing air resistance. Thus, the club heads 300, 500 with improved impact performance characteristics (e.g., spin, launch angle, ball speed, and forgiveness) also balance or improve swing performance characteristics (e.g., air resistance, ability to square the club head at impact, and swing speed).
[0338] For example, in many embodiments, the club head 700 has a head CG depth of greater than 1.22 inches and a club head weight of 5000 g·cm 2In other embodiments, the club head 300, 500 can have a head CG depth greater than 1.1 inches, greater than 1.2 inches, greater than 1.3 inches, greater than 1.4 inches, greater than 1.5 inches, greater than 1.6 inches, greater than 1.7 inches, or greater than 1.8 inches. Additionally, in other embodiments, the club head 700 can have a head CG depth greater than 5000 g·cm 2 Greater than 5100g·cm 2 Greater than 5200g·cm 2 Greater than 5300g·cm 2 Greater than 5400g·cm 2 Greater than 5500g·cm 2 Greater than 5600g·cm 2 Greater than 5700g·cm 2 Greater than 5800g·cm 2 Larger than 5900g·cm 2 or greater than 6000 g·cm 2 The moment of inertia may be greater than . IV. Hybrid type club head
[0339] According to another embodiment, golf club head 900 may include a hybrid-type club head. In many embodiments, club head 900 includes the same or similar parameters as club head 100, and the parameters are designated by the reference numbers of club head 100 plus 800.
[0340] In many embodiments, the loft angle of the club head 900 is less than about 40 degrees, less than about 39 degrees, less than about 38 degrees, less than about 37 degrees, less than about 36 degrees, less than about 35 degrees, less than about 34 degrees, less than about 33 degrees, less than about 32 degrees, less than about 31 degrees, or less than about 30 degrees. Additionally, in many embodiments, the loft angle of the club head 900 is greater than about 16 degrees, greater than about 17 degrees, greater than about 18 degrees, greater than about 19 degrees, greater than about 20 degrees, greater than about 21 degrees, greater than about 22 degrees, greater than about 23 degrees, greater than about 24 degrees, or greater than about 25 degrees.
[0341] In many embodiments, the volume of club head 900 is less than about 200 cc, less than about 175 cc, less than about 150 cc, less than about 125 cc, less than about 100 cc, or less than about 75 cc. In some embodiments, the volume of the club head can be between about 100 cc and 150 cc, between about 75 cc and 150 cc, between about 100 cc and 125 cc, between about 75 cc and 100 cc, or between about 75 cc and 125 cc. In other embodiments, golf club head 900 can include any type of golf club head having the loft angles and volumes described herein.
[0342] In many embodiments, the length 962 of the club head 900 is between 3.5 inches and 4.5 inches, between 3.75 inches and 4.75 inches, or between 3.5 inches and 4.75 inches. In other embodiments, the length 962 of the club head 900 is less than 4.5 inches, less than 4.4 inches, less than 4.3 inches, less than 4.2 inches, less than 4.1 inches, or less than 4.0 inches.
[0343] In many embodiments, the depth 960 of the club head 900 is at least 0.70 inches less than the length 962 of the club head 900. In many embodiments, the depth 960 of the club head 900 is between 2.0 inches and 3.0 inches, between 2.0 inches and 2.75 inches, or between 2.0 inches and 2.5 inches. In other embodiments, the depth 960 of the club head 900 is less than 3.0 inches, less than 2.9 inches, less than 2.8 inches, less than 2.7 inches, less than 2.6 inches, less than 2.5 inches, less than 2.4 inches, less than 2.3 inches, less than 2.2 inches, less than 2.1 inches, or less than 2.0 inches.
[0344] In many embodiments, the height 964 of the club head 900 is less than about 1.75 inches. In other embodiments, the height 964 of the club head 900 is less than 2.0 inches, less than 1.9 inches, less than 1.8 inches, less than 1.7 inches, less than 1.6 inches, or less than 1.5 inches. For example, in some embodiments, the height of the club head 900 may be between 1.5 and 1.75 inches, between 1.0 and 1.75 inches, between 1.5 and 2.0 inches, or between 1.25 and 1.75 inches.
[0345] Club head 900 further includes a balance of various additional parameters, such as head CG location, club head moment of inertia, and aerodynamic drag, to provide both improved impact performance characteristics (e.g., spin, launch angle, velocity, forgiveness) and improved swing performance characteristics (e.g., aerodynamic drag, ability to square the club head at impact). In many embodiments, the balance of the parameters described below provides improved impact performance while maintaining or improving swing performance characteristics. Furthermore, in many embodiments, the balance of the parameters described below provides improved swing performance characteristics while maintaining or improving impact performance characteristics. A. Center of gravity and moment of inertia
[0346] In many embodiments, a low, rearward club head CG and a high moment of inertia can be achieved by increasing discretionary weight and relocating discretionary weight in areas of the club head where the distance from the head CG is greatest. Increased discretionary weight can be achieved by thinning the crown and / or using optimized materials, as described above with respect to head CG location. Relocation of discretionary weight to maximize the distance from the head CG can be achieved using removable weights, recessed weights, or a steep crown angle, as described above with respect to head CG location.
[0347] In many embodiments, the club head 900 has a flexural strength of approximately 3000 g·cm 2 Larger than approx. 3250g·cm 2 Larger than 3500g cm 2 Larger than approx. 3750g·cm 2 Larger than 4000g·cm 2 Larger than approx. 4250g·cm 2 Larger than 4500g·cm 2 Larger than approx. 4750g·cm 2 Larger than 5000g cm 2 Larger than 5250g·cm 2 Larger than 5500g·cm 2 Larger than approx. 5750g·cm 2 Larger than approx. 6000g·cm 2 Larger than approx. 6250g·cm 2 Larger than approx. 6500g·cm 2 Larger than approx. 6750g·cm 2 greater than, or about 7000 g·cm 2 Including the crown-sole moment of inertia Ixx, which is greater than
[0348] In many embodiments, the club head 900 has a compressive strength of approximately 5000 g·cm 2 Larger than 5250g·cm 2 Larger than 5500g·cm2 Larger than approx. 5750g·cm 2 Larger than approx. 6000g·cm 2 Larger than approx. 6250g·cm 2 Larger than approx. 6500g·cm 2 Larger than approx. 6750g·cm 2 greater than, or about 7000 g·cm 2 including a heel-toe moment of inertia Iyy, which is greater than
[0349] In many embodiments, the club head 900 has a flexural modulus of 8000 g·cm 2 Greater than 8500g·cm 2 Larger than 8750g·cm 2 Greater than 9000g·cm 2 Larger than 9250g·cm 2 Greater than 9500g·cm 2 Greater than 9750g·cm 2 Greater than 10,000 g·cm 2 Greater than 10250g·cm 2 Greater than 10500g·cm 2 Greater than 10750g·cm 2 Greater than 11000g·cm 2 Greater than 11250g·cm 2 Greater than 1100g·cm 2 Larger than 11750g·cm 2 or greater than 12000 g·cm 2 The composite moment of inertia (i.e., the sum of the crown-sole moment of inertia Ixx and the heel-toe moment of inertia lyy) is greater than
[0350] In many embodiments, the club head 900 has a head CG height 974 that is less than about 0.20 inches, less than about 0.15 inches, less than about 0.10 inches, less than about 0.09 inches, less than about 0.08 inches, less than about 0.07 inches, less than about 0.06 inches, or less than about 0.05 inches. Furthermore, in many embodiments, the club head 900 includes a head CG height 974 that has an absolute value of less than about 0.20 inches, less than about 0.15 inches, less than about 0.10 inches, less than about 0.09 inches, less than about 0.08 inches, less than about 0.07 inches, less than about 0.06 inches, or less than about 0.05 inches.
[0351] Additionally, in many embodiments, the club head 900 includes a head CG depth 972 greater than about 0.75 inches, greater than about 0.80 inches, greater than about 0.85 inches, greater than about 0.90 inches, greater than about 0.95 inches, or greater than about 0.10 inches.
[0352] A club head 900 with a reduced head CG height 974 can reduce the backspin of a golf ball at impact compared to a similar club head with a higher head CG height. In many embodiments, reducing backspin can increase both ball speed and flight distance for improved club head performance. Additionally, a club head 900 with an increased head CG depth 972 can increase the heel-toe moment of inertia compared to a similar club head with a head CG depth closer to the ball striking surface. Increasing the heel-toe moment of inertia can increase the club head's forgiveness at impact for improved club head performance. Furthermore, a club head 900 with an increased head CG depth 973 can increase the club head's dynamic loft at impact compared to a similar club head with a head CG depth closer to the ball striking surface, thereby increasing the launch angle of the golf ball at impact.
[0353] Head CG height 974 and / or head CG depth 972 can be achieved by reducing the weight of the club head in various areas, thereby increasing discretionary weight, and varying discretionary weight in strategic areas of club head 900 to shift the head CG lower and more rearward. Various means for reducing and relocating club head weight are described below. i. Thin areas
[0354] In some embodiments, head CG height 974 and / or head CG depth 972 can be achieved by thinning various areas of the club head to remove excess weight. Removing excess weight provides increased discretionary weight that can be strategically repositioned in areas of the club head 900 to achieve a desired low and rearward club head CG position.
[0355] In many embodiments, the club head 900 can have one or more thin regions. The one or more thin regions can be similar to or identical to one or more thin regions 376 of the club head 300 or to one or more thin regions of the club heads 500, 700. The one or more thin regions can be located on the striking face 904, the body 902, or a combination of the striking face 904 and the body 902. Furthermore, the one or more thin regions can be located in any region of the body 902, including the crown 916, the sole 918, the heel 920, the toe 922, the front end 908, the back end 910, the skirt 928, or any combination of the described locations. For example, in some embodiments, the one or more thin regions can be located on the crown 916. In a further example, the one or more thin regions can be located on a combination of the striking face 904 and the crown 916. In a further example, the one or more thin regions can be located on a combination of the striking face 904, the crown 916, and the sole 918. In a further example, the entire body 902 and / or the entire striking surface 904 can include thinned regions.
[0356] In embodiments in which one or more thinned regions are disposed on the striking surface 904, the thickness of the striking surface 904 can vary between a maximum striking surface thickness and a minimum striking surface thickness. In these embodiments, the minimum striking surface thickness can be less than 0.10 inches, less than 0.09 inches, less than 0.08 inches, less than 0.07 inches, less than 0.06 inches, less than 0.05 inches, less than 0.04 inches, less than 0.03 inches, or less than 0.02 inches. In these or other embodiments, the maximum striking surface thickness can be less than 0.20 inches, less than 0.19 inches, less than 0.18 inches, less than 0.17 inches, less than 0.16 inches, less than 0.15 inches, less than 0.14 inches, less than 0.13 inches, less than 0.12 inches, less than 0.11 inches, or less than 0.10 inches.
[0357] In embodiments in which one or more thinned regions are disposed on body 902, the thinned regions can comprise a thickness of less than about 0.022 inches. In other embodiments, the thinned regions can comprise a thickness of less than 0.025 inches, less than 0.020 inches, less than 0.019 inches, less than 0.018 inches, less than 0.017 inches, less than 0.016 inches, less than 0.015 inches, less than 0.014 inches, less than 0.013 inches, less than 0.012 inches, or less than 0.010 inches. For example, the thinned regions can comprise a thickness of about 0.010-0.025 inches, about 0.013-0.022 inches, about 0.014-0.020 inches, about 0.015-0.020 inches, about 0.016-0.020 inches, about 0.017-0.020 inches, or about 0.018-0.020 inches.
[0358] In the illustrated embodiment, the thinned regions vary in shape and location and cover approximately 25% of the surface area of the club head 900. In other embodiments, the thinned regions may cover approximately 20-30%, approximately 15-35%, approximately 15-25%, approximately 10-25%, approximately 15-30%, or approximately 20-50% of the surface area of the club head 900. Additionally, in other embodiments, the thinned regions may cover up to 5%, up to 10%, up to 15%, up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, or up to 50% of the surface area of the club head 900.
[0359] In many embodiments, the crown 916 includes one or more thin regions such that approximately 51% of the crown's surface area includes a thin region. In other embodiments, the crown 916 includes one or more thin regions such that up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, up to 45%, up to 50%, up to 55%, up to 60%, up to 65%, up to 70%, or up to 75% of the crown includes a thin region. For example, in some embodiments, approximately 40-60% of the crown 916 can include a thin region. By way of further example, in other embodiments, approximately 35-65%, about 30-70%, or about 25-75% of the crown 916 can include a thin region. In some embodiments, the crown 916 can include one or more thin regions, each of which has a tapered thinning. In this exemplary embodiment, the one or more thin regions of the crown 916 extend in a heel-to-toe direction, and each of the one or more thin regions decreases in thickness in a direction from the striking face 904 toward the back end 910.
[0360] In many embodiments, sole 918 includes one or more thin regions such that approximately 64% of the surface area of sole 918 includes thin regions. In other embodiments, sole 918 can include one or more thin regions such that up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, up to 45%, up to 50%, up to 55%, up to 60%, up to 65%, up to 70%, or up to 75% of sole 918 includes thin regions. For example, in some embodiments, approximately 40-60% of sole 918 can include thin regions. By way of further example, in other embodiments, approximately 35-65%, or approximately 30-70%, or approximately 25-75% of sole 918 can include thin regions.
[0361] The thin regions can include any shape, such as a circle, a triangle, a square, a rectangle, an oval, or any other polygon or shape having at least one curved side. Additionally, one or more thin regions can include the same shape as the rest of the thin regions or a different shape.
[0362] In many embodiments, the club head 900 with the thinned regions can be manufactured using centrifugal casting. In these embodiments, centrifugal casting allows the club head 900 to have thinner walls than club heads manufactured using traditional casting. In other embodiments, the portions of the club head 900 with the thinned regions can be manufactured using other suitable methods, such as stamping, forging, or machining. In embodiments in which the portions of the club head 900 with the thinned regions are manufactured using stamping, forging, or machining, the portions of the club head 900 can be joined using epoxy, tape, welding, mechanical fasteners, or other suitable methods. ii. Optimized materials
[0363] In some embodiments, the striking face 904 and / or body 902 may include an optimized material with increased specific strength and / or increased specific flexibility. Specific flexibility is measured as the ratio of the yield strength to the modulus of elasticity of the optimized material. Increasing specific strength and / or specific flexibility allows portions of the club head to be thinner while maintaining durability.
[0364] In some embodiments, the first material of the striking face 904 can be an optimized material as described in U.S. Provisional Patent Application No. 62 / 399,929, entitled "Golf Club Head with Optimized Material Properties." In these or other embodiments, the first material, including an optimized titanium alloy, can provide a resistance of approximately 900,000 PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 910,000 PSI / lb / in 3 (227MPa / g / cm 3 ) or more, approximately 920,000PSI / lb / in 3 (229MPa / g / cm 3 ) or more, approximately 930,000PSI / lb / in 3 (232MPa / g / cm 3 ) or more, approximately 940,000PSI / lb / in 3 (234MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 960,000PSI / lb / in 3 (239MPa / g / cm 3 ) or more, approximately 970,000PSI / lb / in 3 (242MPa / g / cm 3 ) or more, approximately 980,000PSI / lb / in 3 (244MPa / g / cm 3 ) or more, approximately 990,000PSI / lb / in 3 (247MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm 3) or more, approximately 1,050,000PSI / lb / in 3 (262MPa / g / cm 3 ) or more, approximately 1,100,000PSI / lb / in 3 (274MPa / g / cm 3 ) or approximately 1,150,000 PSI / lb / in 3 (286MPa / g / cm 3 ) or more.
[0365] Additionally, in these or other embodiments, the first material comprising an optimized titanium alloy can have a relative flexibility of about 0.0075 or greater, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0091 or greater, about 0.0092 or greater, about 0.0093 or greater, about 0.0094 or greater, about 0.0095 or greater, about 0.0096 or greater, about 0.0097 or greater, about 0.0098 or greater, about 0.0099 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, or about 0.0120 or greater.
[0366] In these or other embodiments, the first material comprising an optimized steel alloy has a resistance of about 650,000 PSI / lb / in 3 (162MPa / g / cm 3 ) or more, approximately 700,000PSI / lb / in 3 (174MPa / g / cm 3 ) or more, approximately 750,000PSI / lb / in 3 (187MPa / g / cm 3 ) or more, approximately 800,000PSI / lb / in 3 (199MPa / g / cm 3 ) or more, approximately 810,000PSI / lb / in 3 (202MPa / g / cm 3 ) or more, approximately 820,000PSI / lb / in 3 (204MPa / g / cm 3 ) or more, approximately 830,000PSI / lb / in 3 (207MPa / g / cm 3 ) or more, approximately 840,000PSI / lb / in 3(209MPa / g / cm 3 ) or more, approximately 850,000PSI / lb / in 3 (212MPa / g / cm 3 ) or more, approximately 900,000PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm 3 ), approximately 1,050,000 PSI / lb / in 3 (262MPa / g / cm 3 ) or more, approximately 1,100,000PSI / lb / in 3 (274MPa / g / cm 3 ) or more, approximately 1,115,000PSI / lb / in 3 (278MPa / g / cm 3 ) or approximately 1,120,000 PSI / lb / in 3 (279MPa / g / cm 3 ) or more.
[0367] Additionally, in these or other embodiments, the first material comprising the optimized steel alloy can have a relative flexibility of about 0.0060 or greater, about 0.0065 or greater, about 0.0070 or greater, about 0.0075, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0095 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, about 0.0120 or greater, about 0.0125 or greater, about 0.0130 or greater, about 0.0135 or greater, about 0.0140 or greater, about 0.0145 or greater, or about 0.0150 or greater.
[0368] In these embodiments, the increased strength-to-weight ratio and / or increased flexibility-to-weight ratio of the optimized first material allows for the striking face 904, or portions thereof, to be thinned as described above while maintaining durability. By thinning the striking face 904, the weight of the striking face 904 can be reduced, thereby increasing discretionary weight that can be strategically placed in other areas of the club head 900, thereby positioning the head CG lower and further back and / or increasing the club head's moment of inertia.
[0369] In some embodiments, the second material of the body 902 can be an optimized material as described in U.S. Provisional Patent Application No. 62 / 399,929, entitled "Golf Club Head with Optimized Material Properties." In these or other embodiments, the second material, which comprises an optimized titanium alloy, can provide a resistance of approximately 730,500 PSI / lb / in 3 (182MPa / g / cm 3 ) or greater. For example, the specific strength of an optimized titanium alloy is approximately 650,000 PSI / lb / in 3 (162MPa / g / cm 3 ) or more, approximately 700,000PSI / lb / in 3 (174MPa / g / cm 3 ), approximately 750,000 PSI / lb / in 3 (187MPa / g / cm 3 ) or more, approximately 800,000PSI / lb / in 3 (199MPa / g / cm 3 ), approximately 850,000 PSI / lb / in 3 (212MPa / g / cm 3 ) or more, approximately 900,000PSI / lb / in 3 (224MPa / g / cm 3 ) or more, approximately 950,000PSI / lb / in 3 (237MPa / g / cm 3 ) or more, approximately 1,000,000PSI / lb / in 3 (249MPa / g / cm 3 ) or more, approximately 1,050,000PSI / lb / in 3(262MPa / g / cm 3 ) or approximately 1,100,000 PSI / lb / in 3 (272MPa / g / cm 3 ) or more.
[0370] Additionally, in these or other embodiments, the second material comprising an optimized titanium alloy can have a relative flexibility of about 0.0060 or greater, about 0.0065 or greater, about 0.0070 or greater, about 0.0075, about 0.0080 or greater, about 0.0085 or greater, about 0.0090 or greater, about 0.0095 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, or about 0.0120 or greater.
[0371] In these or other embodiments, the second material comprising optimized steel has a resistance of about 500,000 PSI / lb / in 3 (125MPa / g / cm 3 ) or more, approximately 510,000PSI / lb / in 3 (127MPa / g / cm 3 ) or more, approximately 520,000PSI / lb / in 3 (130MPa / g / cm 3 ) or more, approximately 530,000PSI / lb / in 3 (132MPa / g / cm 3 ) or more, approximately 540,000PSI / lb / in 3 (135MPa / g / cm 3 ) or more, approximately 550,000PSI / lb / in 3 (137MPa / g / cm 3 ) or more, approximately 560,000PSI / lb / in 3 (139MPa / g / cm 3 ) or more, approximately 570,000PSI / lb / in 3 (142MPa / g / cm 3 ) or more, approximately 580,000PSI / lb / in 3 (144MPa / g / cm 3 ) or more, approximately 590,000PSI / lb / in 3 (147MPa / g / cm 3 ) or more, approximately 600,000PSI / lb / in3 (149MPa / g / cm 3 ) or more, approximately 625,000PSI / lb / in 3 (156MPa / g / cm 3 ) or more, approximately 675,000PSI / lb / in 3 (168MPa / g / cm 3 ) or more, approximately 725,000PSI / lb / in 3 (181MPa / g / cm 3 ) or more, approximately 775,000PSI / lb / in 3 (193MPa / g / cm 3 ) or more, approximately 825,000PSI / lb / in 3 (205MPa / g / cm 3 ) or more, approximately 875,000PSI / lb / in 3 (218MPa / g / cm 3 ) or more, approximately 925,000PSI / lb / in 3 (230MPa / g / cm 3 ) or more, approximately 975,000PSI / lb / in 3 (243MPa / g / cm 3 ) or more, approximately 1,025,000PSI / lb / in 3 (255MPa / g / cm 3 ) or more, approximately 1,075PSI / lb / in 3 (268MPa / g / cm 3 ), or approximately 1,125,000 PSI / lb / in 3 (280MPa / g / cm 3 ) or more.
[0372] Additionally, in these or other embodiments, the second material comprising optimized steel can have a specific flexibility of about 0.0060 or greater, about 0.0062 or greater, about 0.0064 or greater, about 0.0066 or greater, about 0.0068 or greater, about 0.0070 or greater, about 0.0072 or greater, about 0.0076 or greater, about 0.0080 or greater, about 0.0084 or greater, about 0.0088 or greater, about 0.0092 or greater, about 0.0096 or greater, about 0.0100 or greater, about 0.0105 or greater, about 0.0110 or greater, about 0.0115 or greater, about 0.0120 or greater, about 0.0125 or greater, about 0.0130 or greater, about 0.0135 or greater, about 0.0140 or greater, about 0.0145 or greater, or about 0.0150 or greater.
[0373] In these embodiments, the increased strength-to-weight ratio and / or increased flexibility-to-flex ratio of the optimized second material allows for the body 902, or portions thereof, to be thinned while maintaining durability. Thinning the body 902 allows for less weight in the club head, thereby increasing discretionary weight to be strategically placed in other areas of the club head 900, thereby positioning the head CG lower and further back and / or increasing the club head's moment of inertia. iii. Removable weights
[0374] In some embodiments, the club head 900 can include one or more weight structures 980 that include one or more removable weights 982. The one or more weight structures 980 and / or the one or more removable weights 982 can be positioned toward the sole 918 and back end 910, thereby allowing discretionary weights to be positioned near the sole 918 and back end 910 of the club head to achieve a low, rearward head CG position. In many embodiments, the one or more weight structures 980 removably accept one or more removable weights 982. In these embodiments, the one or more removable weights 982 can be coupled to the one or more weight structures 980 using any suitable method, such as threaded fasteners, adhesives, magnets, snap fits, or any other mechanism capable of securing the one or more removable weights to the one or more weight structures.
[0375] The weight structures 980 and / or removable weights 982 can be positioned relative to a clock grid 2000 (shown in FIG. 3 ), which can be aligned with the striking face 904 when viewed from a top view. The clock grid includes at least a 12 o'clock ray, a 3 o'clock ray, a 4 o'clock ray, a 5 o'clock ray, a 6 o'clock ray, a 7 o'clock ray, an 8 o'clock ray, and a 9 o'clock ray. For example, the clock grid 2000 includes a 12 o'clock ray 2012 aligned with the geometric center 940 of the striking face 904. The 12 o'clock ray 2012 is orthogonal to the X'Y' plane. The center of the clock grid 2000 can be located at the midpoint between the front end 908 and the back end 910 of the club head 900 along the 12 o'clock ray 2012. In the same or another example, the clock grid midpoint 2010 can be centered adjacent to the geometric center point of the golf club head 900 when viewed from a bottom view. The clock grid 2000 also includes a 3 o'clock radial line 2003 extending toward the heel 920 and a 9 o'clock radial line 2009 extending toward the toe 922 of the club head 900 .
[0376] Weight perimeter 984 of weight structure 980, in this embodiment, is disposed toward back end 910 and is at least partially bounded between 4 o'clock radiation 2004 and 8 o'clock radiation 2008 of clock grid 2000, while removable weight 982 disposed within weight structure 980 is disposed between 5 o'clock radiation 2005 and 7 o'clock radiation 2007. In this example, weight perimeter 984 is completely enclosed between 4 o'clock radiation 2004 and 8 o'clock radiation 2008. In this example, weight perimeter 984 is defined external to club head 900, although there may be other instances in which weight perimeter 984 extends internal to or may be defined within club head 900. In some examples, the position of weight structure 980 may be established relative to a larger area. For example, in such an example, the weight perimeter 984 of the weight structure 980 can be positioned toward a back end bounded at least in part between the 4 o'clock ray 2004 and the 9 o'clock ray 2009 of the clock grid 2000, while the weight center 986 can be located between the 5 o'clock ray 2005 and the 8 o'clock ray 2008.
[0377] In this example, weight structure 980 protrudes from the exterior contour of sole 918 and is therefore at least partially external to allow for greater adjustment of head CG 770. In some examples, weight structure 980 can include a mass between about 2 grams and about 50 grams and / or a volume between about 1 cc and about 30 cc. In other examples, weight structure 980 can remain flush with the exterior contour of body 902.
[0378] In many embodiments, the removable weight 982 can include a mass between about 0.5 grams and about 30 grams and can be replaced with one or more other similar removable weights to adjust the position of the head CG 970. In the same or other examples, the weight center 986 can include the center of gravity of the removable weight 982 and / or at least one of the geometric centers 982 of the removable weights. iv. Embedded weights
[0379] In some embodiments, club head 900 may include one or more embedded weights to place discretionary weights on the sole 918, in the skirt 928, and / or near the back end 910 of club head 900 to achieve a low, rearward head CG position. The one or more embedded weights in club head 900 may be similar to or identical to one or more embedded weights 383 in club head 300, one or more embedded weights in club head 500, or one or more embedded weights in club head 700. In many embodiments, the one or more embedded weights are permanently fixed to or within club head 900. In these embodiments, the embedded weights may be similar to the high density metal pieces (HDMPs) described in U.S. Provisional Patent Application No. 62 / 372,870, entitled "Embedded High Density Casting."
[0380] In many embodiments, one or more embedded weights are positioned near the back end 910 of the club head 900. For example, the weight center of the embedded weight can be located between the 5 o'clock radiant 2005 and the 7 o'clock radiant 2007 of the clock grid 2000, or between the 5 o'clock radiant 2005 and the 8 o'clock radiant 2008 of the clock grid 2000. In many embodiments, the one or more embedded weights can be positioned on the skirt 928 near the back end 910 of the club head 900, on the sole 918 near the back end 910 of the club head 900, or on the skirt 928 and the sole 918 near the back end 910 of the club head 900.
[0381] In many embodiments, the center of weight of one or more embedded weights is located within 0.10 inch, 0.20 inch, 0.30 inch, 0.40 inch, 0.50 inch, 0.60 inch, 0.70 inch, 0.80 inch, 0.90 inch, 1.0 inch, 1.1 inch, 1.2 inch, 1.3 inch, 1.4 inch, or 1.5 inch of the perimeter of club head 900 when viewed from a top view. In these embodiments, the proximity of the embedded weights to the perimeter of club head 900 may maximize a low and rearward head CG position, crown-sole moment of inertia Ixx, and / or heel-toe moment of inertia Iyy.
[0382] In many embodiments, the weight center of one or more embedded weights is positioned at a distance from the head CG970 that is greater than 1.6 inches, greater than 1.7 inches, greater than 1.8 inches, greater than 1.9 inches, greater than 2.0 inches, greater than 2.1 inches, greater than 2.2 inches, greater than 2.3 inches, greater than 2.4 inches, greater than 2.5 inches, greater than 2.6 inches, greater than 2.7 inches, greater than 2.8 inches, greater than 2.9 inches, or greater than 3.0 inches.
[0383] In many embodiments, the weight center of the one or more embedded weights is positioned at a distance greater than 4.0 inches, greater than 4.1 inches, greater than 4.2 inches, greater than 4.3 inches, greater than 4.4 inches, greater than 4.5 inches, greater than 4.6 inches, greater than 4.7 inches, greater than 4.8 inches, greater than 4.9 inches, or greater than 5.0 inches from the geometric center 940 of the striking face 904.
[0384] In many embodiments, the one or more embedded weights can include a mass between 3.0 and 120 grams. For example, in some embodiments, the one or more embedded weights can include a mass between 3.0 and 25 grams, 10 and 40 grams, 20 and 50 grams, 30 and 60 grams, 40 and 70 grams, 50 and 80 grams, 60 and 90 grams, 70 and 100 grams, 80 and 120 grams, or 90 and 120 grams. In embodiments in which the one or more embedded weights include two or more weights, each of the embedded weights can include the same or different masses.
[0385] In many embodiments, the one or more embedded weights can comprise a material having a specific gravity between 10.0 and 22.0. For example, in many embodiments, the one or more embedded weights can comprise a material having a specific gravity greater than 10.0, greater than 11.0, greater than 12.0, greater than 13.0, greater than 14.0, greater than 15.0, greater than 16.0, greater than 16.0, greater than 17.0, greater than 18.0, or greater than 19.0. In embodiments in which the one or more embedded weights include two or more weights, each of the embedded weights can comprise the same or different materials. v. Steep crown angle
[0386] In some embodiments, the golf club head 900 can further include a steep crown angle 988 to achieve a low, rearward position of the head CG. The steep crown angle 988 positions the back end of the crown 916 toward the sole 918 or ground, thereby lowering the club head CG position.
[0387] The crown angle 988 is measured as the acute angle between the crown axis 1090 and the front face 1020. In these embodiments, the crown axis lies in a cross-section of the club head taken along a plane disposed perpendicular to the ground plane 1030 and the front face 1020. The crown axis 1090 can be further described with reference to an upper transition boundary and a rear transition boundary.
[0388] Club head 900 includes an upper transition boundary between front end 908 and crown 916 that extends from near heel 920 to near toe 922. The upper transition boundary includes a crown transition profile 990 when viewed from a cross-sectional side view taken along a plane perpendicular to front surface 1020 and perpendicular to ground contact surface 1030 when club head 900 is in the address position. The cross-sectional side view can be taken at any point on club head 900 from near heel 920 to near toe 922. Crown transition profile 990 defines a front radius of curvature 992 that extends from front end 908 of club head 900 to crown transition point 994, where front end 908 of club head 900 is where the contour departs from the undulating and / or bulging range of striking face 904, and crown transition point 994 marks the change in curvature from front radius of curvature 992 to the curvature of crown 916. In some embodiments, the front radius of curvature 992 includes a single radius of curvature extending from an upper end 993 of the striking face perimeter 942 near the crown 916 to a crown transition point 994, where the upper end 993 of the striking face perimeter 942 near the crown 916 is where the contour deviates from the undulating and / or bulging range of the striking face 904, and the crown transition point 994 marks a change in curvature from the front radius of curvature 992 to one or more curvatures of the crown 916.
[0389] Club head 900 further includes a rear transition boundary between crown 916 and skirt 928, extending from near heel 920 to near toe 922. The rear transition boundary includes a rear transition profile 996 when viewed from a cross-sectional side view taken along a plane perpendicular to front surface 1020 and perpendicular to ground contact surface 1030 when club head 900 is in the address position. The cross-sectional view can be taken at any point on club head 900 from near heel 920 to near toe 922. Rear transition profile 996 defines a back radius of curvature 998 that extends from crown 916 to skirt 928 of club head 900. In many embodiments, back radius of curvature 998 includes a single radius of curvature that transitions along the rear transition boundary to skirt 928 of club head 900. A first rear transition point 1002 is located at the junction between crown 916 and rear transition boundary. A second rear transition point 1003 is located at the junction between the rear transition boundary of the club head 900 and the skirt 928 .
[0390] The front radius of curvature 992 of the upper transition boundary may remain constant or may vary from near the heel 920 to near the toe 922 of the club head 900. Similarly, the back radius of curvature 998 of the rear transition boundary may remain constant or may vary from near the heel 920 to near the toe 922 of the club head 900.
[0391] A crown axis 1090 extends between a crown transition point 994 near the front end 908 of the club head 900 and a rear transition point 1002 near the back end 910 of the club head 900. The crown angle 988 may remain constant or may vary from near the heel 920 to near the toe 922 of the club head 900. For example, the crown angle 988 may change when a cross-sectional side view is taken at different positions relative to the heel 920 and toe 922.
[0392] In many embodiments, reducing the crown angle 988 compared to current club heads creates a steeper crown or a crown that is positioned closer to the ground plane when the club head is in the address position. Thus, reducing the crown angle 988 can result in a lower head CG position compared to club heads with higher crown angles. vi.Hosel sleeve weight
[0393] In some embodiments, head CG height 974 and / or head CG depth 972 can be achieved by reducing the mass of hosel sleeve 934. Removing excess weight from hosel sleeve 934 allows increased discretionary weight to be repositioned strategically in areas of club head 900 to achieve a desired low and rearward club head CG position.
[0394] Reducing the mass of the hosel sleeve 934 can be achieved by thinning the sleeve wall, reducing the height of the hosel sleeve 934, reducing the diameter of the hosel sleeve 934, and / or introducing voids into the wall of the hosel sleeve 934. In many embodiments, the mass of the hosel sleeve 934 can be less than 6 grams, less than 5.5 grams, less than 5.0 grams, less than 4.5 grams, or less than 4.0 grams. In many embodiments, a club head 900 with a hosel sleeve having a reduced mass results in a club head CG position that is lower (closer to the sole) and more rearward (closer to the back end) than a similar club head with a heavier hosel sleeve. B. Air resistance
[0395] In many embodiments, the club head 900 includes a combination of a low and rearward CG position of the club head and an increased moment of inertia of the club head, along with reduced aerodynamic drag.
[0396] In many embodiments, the club head 900 experiences an air resistance force of less than about 1.0 lbf, less than 0.90 lbf, less than 0.80 lbf, less than 0.75 lbf, less than 0.70 lbf, less than 0.65 lbf, or less than 0.60 lbf when tested in a wind tunnel with a square face and a wind speed of 95 miles per hour (mph). In these or other embodiments, the club head 900 experiences an air resistance force of less than about 1.0 lbf, less than 0.90 lbf, less than 0.80 lbf, less than 0.75 lbf, less than 0.70 lbf, less than 0.65 lbf, or less than 0.60 lbf when calculated using computational fluid dynamics with a square face and a wind speed of 95 miles per hour (mph). In these embodiments, the airflow experienced by the square-faced club head 900 is directed toward the striking face 904 in a direction perpendicular to the X'Y' plane. As described below, the reduced aerodynamic drag of the club head 900 can be achieved through a variety of means. i. Crown angle height
[0397] In some embodiments, decreasing the crown angle 988 to create a steeper crown and a lower head CG position can result in an undesirable increase in aerodynamic drag due to increased airflow separation over the crown during swing. To prevent the increased drag that accompanies a decreased crown angle 988, the maximum crown height 1004 can be increased. The maximum crown height 1004 is the maximum distance between the crown 916 and the crown axis 1090 as viewed in any cross-sectional side view of the club head along a plane parallel to the Y'Z' plane. In many embodiments, a greater maximum crown height 1004 results in a crown 916 with a greater curvature. The greater the curvature of the crown 916, the further rearward the location of airflow separation during swing. In other words, a greater curvature allows the airflow to remain in contact with the club head 900 for a longer distance along the crown 916 during swing. Moving the airflow separation point rearward on the crown 916 can reduce aerodynamic drag and increase the club head swing speed, thereby increasing ball speed and distance. ii. Transition Profile
[0398] In many embodiments, the transition profile from the striking face 904 to the crown 916, the striking face 904 to the sole 918, and / or the crown 916 to the sole 918 along the back end 910 of the club head 900 affects the aerodynamic drag on the club head 900 during a swing.
[0399] In some embodiments, club head 900 having an upper transition boundary defining crown transition profile 990 and a rear transition boundary defining rear transition profile 996 further includes a sole transition boundary defining sole transition profile 1010. The sole transition boundary extends between front end 908 and sole 918 from near heel 920 to near toe 922. The sole transition boundary includes sole transition profile 1010 as viewed from a cross-sectional side view taken along a plane parallel to the Y'Z' plane. The cross-sectional side view can be taken at any point on club head 900 from near heel 920 to near toe 922. The sole transition profile 1010 defines a sole radius of curvature 1012 extending from the front end 908 of the club head 900 to a sole transition point 1014, where the front end 908 of the club head 900 is where the contour deviates from the undulating and / or bulging range of the striking face 904, and the sole transition point 1014 marks a change in curvature from the sole radius of curvature 1012 to the curvature of the sole 918. In some embodiments, the sole radius of curvature 1012 includes a single radius of curvature extending from a bottom end 1013 of the striking face perimeter 942 near the sole 918 to the sole transition point 1014, where the bottom end 1013 of the striking face perimeter 942 near the sole 918 is where the contour deviates from the undulating and / or bulging range, and the sole transition point 1014 marks a change in curvature from the sole radius of curvature 1012 to the curvature of the sole 1014.
[0400] In many embodiments, the crown transition profile 990, the sole transition profile 1010, and the rear transition profile 996 can be similar to the crown transition profile, the sole transition profile, and the rear transition profile described in U.S. Patent Application No. 15 / 233,486, entitled "Golf Club Head Having a Transition Profile for Reducing Aerodynamic Drag." Additionally, the front radius of curvature 992, the sole radius of curvature 1012, and the back radius of curvature 998 can be similar to the first crown radius of curvature, the first sole radius of curvature, and the back radius of curvature described in U.S. Patent Application No. 15 / 233,486, entitled "Golf Club Head Having a Transition Profile for Reducing Aerodynamic Drag." iii. Turbulator
[0401] In some embodiments, club head 900 may further include a plurality of turbulators 914, as described in U.S. Patent Application No. 13 / 536,753, now U.S. Patent No. 8,608,587, issued December 17, 2013, entitled "Golf Club Head With Turbulators And Method of Manufacturing a Golf Club Head," the contents of which are incorporated herein in their entirety. In many embodiments, the plurality of turbulators 914 disrupt the airflow, thereby creating small vortices or turbulence within the boundary layer, imparting energy to the boundary layer and delaying separation of the airflow over the crown during the swing.
[0402] In some embodiments, the plurality of turbulators 614 can be adjacent to the crown transition point 394 of the club head 900. The plurality of turbulators 914 protrude from the outer surface of the crown 916 and include a length extending between the front end 908 and the back end 910 of the club head 900 and a width extending from the heel 920 to the toe 922 of the club head 900. In many embodiments, the length of the plurality of turbulators 914 is greater than the width. In some embodiments, the plurality of turbulators 914 can include the same width. In some embodiments, the plurality of turbulators 914 can vary in height profile. In some embodiments, the plurality of turbulators 914 can be taller toward the apex of the crown 916 compared to the front of the crown 916. In other embodiments, the plurality of turbulators 914 can be taller toward the front of the crown 916 and shorter in height toward the apex of the crown 916. In other embodiments, the plurality of turbulators 914 can include a constant height profile. Additionally, in many embodiments, at least a portion of at least one turbulator is disposed between the striking face and the apex of crown 916, and the spacing between adjacent turbulators is greater than the respective widths of the adjacent turbulators. iv. Back cavity
[0403] In some embodiments, the club head 900 may further include a cavity 1020 located at the back end 910 and trailing edge 928 of the club head 900, similar to the cavity described in U.S. Patent Application No. 14 / 882,092, entitled "Golf Club Head and Aerodynamic Features and Related Methods." In many embodiments, the cavity 1024 may break up vortices generated behind the golf club head 900 into smaller vortices, reducing the size of the turbulence and / or reducing drag. In some embodiments, breaking up the vortices into smaller vortices may create a high-pressure region behind the golf club head 900. In some embodiments, this high-pressure region may push the golf club head 900 forward, reducing drag and / or improving the aerodynamic design of the golf club head 900. In many embodiments, the net effect of the smaller vortices and reduced drag is an increase in the velocity of the golf club head 900. This effect may result in the golf ball leaving the striking face faster after impact, potentially increasing the ball's flight distance.
[0404] In many embodiments, the cavity 1020 includes a rear wall 1022 oriented in a direction perpendicular to the X'Z' plane, and further includes a width, a depth 1024, and a height 1026 measured in the direction from the heel 920 to the toe 922. v. Hosel structure
[0405] In some embodiments, hosel structure 930 can have a smaller outer diameter to reduce air resistance on club head 900 during a swing compared to a similar club head having a larger diameter hosel structure. In many embodiments, hosel structure 930 has an outer diameter of less than 0.553 inches. For example, hosel structure 930 can have an outer diameter of less than 0.60 inches, less than 0.59 inches, less than 0.58 inches, less than 0.57 inches, less than 0.56 inches, less than 0.55 inches, less than 0.54 inches, less than 0.53 inches, less than 0.52 inches, less than 0.51 inches, or less than 0.50 inches. In many embodiments, the outer diameter of hosel structure 930 is reduced while maintaining the adjustability of the loft and / or lie angle of club head 900. C. Balance of CG position, moment of inertia, and air resistance
[0406] In current golf club head designs, increasing or maximizing the club head's moment of inertia can adversely affect other club head performance characteristics, such as air resistance. The club head 900 described herein increases or maximizes the club head's moment of inertia while simultaneously maintaining or reducing air resistance. Thus, club head 900, which improves impact performance characteristics (e.g., spin, launch angle, ball speed, and forgiveness), also balances or improves swing performance characteristics (e.g., air resistance, ability to square the club head at impact, and swing speed). V. Manufacturing method
[0407] In many embodiments, a method of forming the club head 100 can include forming the body 102, forming the striking face 104, and joining the striking face 104 to the body 102 to form the club head 100. In many embodiments, forming the body 102 can comprise casting, 3D printing, machining, or any other suitable method for forming the body 102. In some embodiments, the body can be formed as a single piece. In other embodiments, the body 102 can be formed from multiple components joined to form the body 102.
[0408] In many embodiments, forming the striking surface 104 may comprise machining, 3D printing, casting, or otherwise forming the striking surface 104. In many embodiments, bonding the striking surface 104 to the body 102 may be achieved by welding, mechanical fastening, or any other suitable method of bonding the striking surface 104 to the body 102. VI. Examples
[0409] Example 1 Described herein is an exemplary golf club head 300 having a capacity of 466 cc, a depth 360 of 4.81 inches, a length 362 of 4.88 inches, and a height 364 of 2.65 inches. The exemplary club head 300 includes multiple thin regions 376 on the crown 316 that comprise 57% of the surface area of the crown 316 and have a minimum thickness of 0.013 inches. The exemplary club head 300 further includes a crown angle 388 of 68.6 degrees and a crown angle height 404 of 0.522 inches.
[0410] The exemplary club head 300 includes an embedded weight 383 comprising tungsten having a specific gravity between 14 and 15 and a mass of 14.5 grams. In this example, the distance from a weight center 387 of the embedded weight 383 to the perimeter of the club head 300 is 0.183 inches when viewed from a top or bottom view. Furthermore, in this example, the distance from the weight center 387 to the head center of gravity 370 is 2.67 inches, and the distance from the weight center 387 to the geometric center 340 of the striking face 304 is 4.58 inches. The exemplary club head 300 further includes a weight structure 380 that houses a removable weight 382. In this example, the weight structure 380 at least partially protrudes from the outer contour of the sole 318. Furthermore, the exemplary club head 300 includes a hosel sleeve 334 having a mass of 4.5 grams.
[0411] As a result of the above-mentioned and / or additional parameters, the example club head 300 includes a head CG depth 372 of 1.87 inches and a head CG height 374 of 0.083 inches. Furthermore, as ... 2 Crown round-sole moment of inertia Ixx: 5710g·cm 2 The heel-toe moment of inertia is Iyy, and 9968 g cm 2 This includes the resultant moment of inertia Ixx+lyy.
[0412] The example club head 300 further includes a front radius of curvature 392 of 0.24 inches, a sole radius of curvature 412 of 0.30 inches, and a back radius of curvature 398 of 0.20 inches. 2 (0.00434m 2 ) frontal area, 8.73in 2 (0.00563m 2) and a hosel structure 330 with an outer diameter of 0.54 inches. As a result of these and / or additional parameters, the example club head 300 includes an air resistance of 0.95 lbf when calculated using computational fluid dynamics for a square face at an air speed of 102 miles per hour (mph).
[0413] Example 2 Described herein is an example golf club head 500 having a capacity of 445 cc, a depth 560 of 4.64 inches, a length 562 of 4.77 inches, and a height 564 of 2.66 inches. The example club head 500 includes multiple thin areas 576 on the crown 516 that comprise 55% of the surface area of the crown 516 and have a minimum thickness of 0.013 inches. The example club head 500 further includes a crown angle 588 of 70.0 degrees and a crown angle height 604 of 0.543 inches.
[0414] The exemplary club head 500 includes an embedded weight 583 comprising tungsten having a specific gravity between 15 and 17 and a mass of 7 grams. In this example, the distance from a weight center 587 of the embedded weight 583 to the perimeter of the club head 500 is 0.274 inches when viewed from a top or bottom view. Furthermore, in this example, the distance from the weight center 587 to the head center of gravity 570 is 2.58 inches, and the distance from the weight center 587 to the geometric center 540 of the striking face 504 is 4.31 inches. The exemplary club head 500 further includes a weight structure 580 that houses a removable weight 582. In this example, the weight structure 580 at least partially protrudes from the outer contour of the sole 518. Furthermore, the exemplary club head 500 includes a hosel sleeve 534 having a mass of 4.5 grams.
[0415] As a result of the above-mentioned and / or additional parameters, the example club head 500 includes a head CG depth 572 of 1.70 inches and a head CG height 574 of 0.113 inches. Furthermore, as ... 2 Crown-sole moment of inertia Ixx: 5379 g cm 2 heel-toe moment of inertia Iyy, and 9147 g cm 2 This includes the resultant moment of inertia Ixx+lyy.
[0416] The example club head 500 further includes a front radius of curvature 592 of 0.24 inches, a sole radius of curvature 612 of 0.30 inches, and a back radius of curvature 598 of 0.20 inches. 2 (0.00413m 2 ) frontal projection area, 8.18in 2 (0.00528m 2 ) and a hosel structure 530 with an outer diameter of 0.54 inches. Furthermore, the example club head 500 includes a back cavity 620 having a length of 1.7 inches, a height 626 of 0.215 inches, and a depth 624 of 0.75 inches. As a result of these and / or additional parameters, the example club head 500 includes an air resistance of 0.83 lbf when calculated using computational fluid dynamics for a square face at an air speed of 102 miles per hour (mph).
[0417] The substitution of one or more claimed elements constitutes a rearrangement, not a repair. Furthermore, benefits, other advantages, and solutions to problems have been described with respect to particular embodiments. However, the benefits, advantages, solutions to problems, and any elements that may give rise to or make more apparent any benefits, advantages, or solutions should not be construed as key, necessary, or essential features or elements of such claims.
[0418] The Rules of Golf may change from time to time (e.g., new Rules may be adopted, or old Rules may be repealed or modified, by golf's standards bodies and / or governing bodies such as the United States Golf Association (USGA) or the Royal and American Golf Association (R&A)), and golf equipment relating to the devices, methods, and / or articles of manufacture disclosed herein may or may not conform to the Rules of Golf at any given time. Accordingly, golf equipment relating to the devices, methods, and / or articles of manufacture disclosed herein may be advertised, offered for sale, and / or sold as conforming or not conforming to golf equipment. The devices, methods, and / or articles of manufacture disclosed herein are not limited in this respect.
[0419] Although the above examples may be described in the context of a driver-type golf club, the devices, methods, and articles of manufacture described herein may also be applied to other types of golf clubs, such as fairway wood-type golf clubs, hybrid-type golf clubs, iron-type golf clubs, wedge-type golf clubs, or putter-type golf clubs, or to other types of sports equipment, such as hockey sticks, tennis rackets, fishing rods, ski poles, etc.
[0420] Furthermore, embodiments and limitations disclosed herein are not available to the public under the doctrine of public domain if the embodiment and / or limitation (1) is not explicitly claimed in the claims and (2) is a potential equivalent of an explicit element and / or limitation of the claims under the doctrine of equivalents.
[0421] Various features and advantages of the disclosure are set forth in the following claims.
Claims
1. A hollow golf club head, a body having a front end, a back end opposite the front end, a crown, a sole opposite the crown, a heel, a toe opposite the heel, a skirt adjacent the crown and the sole, and a hosel structure having a hosel axis extending through a center of a hole; a hitting surface located at the front end and defining a geometric center, the hitting surface having a loft plane tangent to the geometric center and a head depth plane passing through the geometric center from the heel to the toe and perpendicular to the loft plane; The volume of the golf club head is greater than 400 cc, a head center of gravity of the golf club head is located at a head CG depth from the loft plane measured in a direction perpendicular to the loft plane and at a head CG height from the head depth plane measured in a direction perpendicular to the head depth plane; the head CG height is less than 0.2 inches; the head CG depth is greater than 1.2 inches; a coordinate system is defined having an origin at the geometric center of the striking surface; The coordinate system is an X' axis extending in a heel-to-toe direction of the golf club head through the geometric center of the striking face; a Y' axis extending from the crown to the sole of the golf club head through the geometric center of the striking face and perpendicular to the X' axis; a Z' axis extending through the geometric center of the striking face in a direction from the front end toward the back end of the golf club head and perpendicular to the X' axis and the Y' axis; an X'Y' plane extends through the X' axis and the Y' axis, extends through the geometric center of the striking face, is parallel to the hosel axis, and is disposed at an angle from the loft plane corresponding to the loft angle of the golf club head; When the golf club head is subjected to a wind of 98 mph in a direction perpendicular to the X'Y' plane, the golf club head generates a drag force F of less than 1.0 lbf. D Experienced the golf club head has a crown-sole moment of inertia Ixx, a heel-toe moment of inertia Iyy, and a resultant moment of inertia Ixx+Iyy measured as the sum of the crown-sole moment of inertia and the heel-toe moment of inertia; The golf club head satisfies relationship A and relationship B. Relationship A: (F D +1.65) / (2.0 (head CG depth))<1 Relationship B: (F D +0.3) / (0.0002(Ixx+Iyy))<1
2. The golf club head of claim 1 , further comprising one or more thinned areas on the body having a thickness of less than 0.02 inches.
3. a front curvature radius between 0.18 and 0.30 inches; It also has a back curvature radius and the front radius of curvature extends from an upper end of the striking face to a crown transition point, the crown transition point marking a change in curvature from the front radius of curvature to a different curvature of the crown; 3. The golf club head of claim 1, wherein the back radius of curvature extends along a rear transition boundary between the crown and the skirt of the golf club head from a first rear transition point to a second rear transition point, the first rear transition point being located at the junction of the crown and the rear transition boundary, and the second rear transition point being located at the junction of the rear transition boundary and the skirt of the golf club head.
4. 9000 g cm 2 The golf club head according to any one of claims 1 to 3, further comprising a composite moment of inertia greater than
5. a clock grid including at least a 12 o'clock ray, a 3 o'clock ray, a 4 o'clock ray, a 5 o'clock ray, an 8 o'clock ray, and a 9 o'clock ray; a weight structure disposed toward the sole and back end of the golf club head, the weight structure having a weight perimeter and a removable weight; the 12 o'clock radial line is aligned with the geometric center of the striking face, and the center of the front clock grid is at a midpoint between the front front end and the front back end of the golf club head along the 12 o'clock radial line; the 3 o'clock radial line extends toward the heel of the golf club head; The golf club head of any one of claims 1 to 4, wherein the nine o'clock radial line extends toward the toe of the golf club head.
6. The golf club head of claim 5 , wherein the weight structure protrudes from an outer contour of the sole.
7. The golf club head of claim 5 , wherein the weight structure includes a removable weight having a weight center located between the 5 o'clock radial line and the 8 o'clock radial line of the clock grid.
8. A hollow golf club head, a body having a front end, a back end opposite the front end, a crown, a sole opposite the crown, a heel, a toe opposite the heel, a skirt adjacent the crown and the sole, and a hosel structure having a hosel axis extending through a center of a hole; a hitting surface located at the front end and defining a geometric center, the hitting surface having a loft plane tangent to the geometric center and a head depth plane passing through the geometric center from the heel to the toe and perpendicular to the loft plane; a head center of gravity of the golf club head is located at a head CG depth from the loft plane measured in a direction perpendicular to the loft plane and at a head CG height from the head depth plane measured in a direction perpendicular to the head depth plane; the head CG height is less than 0.2 inches; the head CG depth is greater than 1.2 inches; a coordinate system is defined having an origin at the geometric center of the striking surface; The coordinate system is an X' axis extending in a heel-to-toe direction of the golf club head through the geometric center of the striking face; a Y' axis extending from the crown to the sole of the golf club head through the geometric center of the striking face and perpendicular to the X' axis; a Z' axis extending through the geometric center of the striking face in a direction from the front end toward the back end of the golf club head and perpendicular to the X' axis and the Y' axis; an X'Y' plane extends through the X' axis and the Y' axis, extends through the geometric center of the striking face, is parallel to the hosel axis, and is disposed at an angle from the loft plane corresponding to the loft angle of the golf club head; When the golf club head is subjected to a wind of 98 mph in a direction perpendicular to the X'Y' plane, the golf club head generates a drag force F of less than 1.0 lbf. D Experienced the golf club head has a crown-sole moment of inertia Ixx, a heel-toe moment of inertia Iyy, and a resultant moment of inertia Ixx+Iyy measured as the sum of the crown-sole moment of inertia and the heel-toe moment of inertia; Iyy is 3100 g cm 2 is larger than The golf club head further comprises an embedded weight including a weight center located at one or more of the following locations: (a) Within 0.5 inches of the circumference of the golf club head. (b) A position greater than 2.2 inches from the center of gravity of the head.
9. The golf club head of claim 8 , further comprising one or more thinned areas on the body having a thickness of less than 0.02 inches.
10. a front curvature radius between 0.18 and 0.30 inches; It also has a back curvature radius and the front radius of curvature extends from an upper end of the striking face to a crown transition point, the crown transition point marking a change in curvature from the front radius of curvature to a different curvature of the crown; 10. The golf club head of claim 8, wherein the back radius of curvature extends along a rear transition boundary between the crown and the skirt of the golf club head from a first rear transition point to a second rear transition point, the first rear transition point being located at the junction of the crown and the rear transition boundary, and the second rear transition point being located at the junction of the rear transition boundary and the skirt of the golf club head.
11. 9000 g cm 2 The golf club head according to any one of claims 8 to 10, further comprising a composite moment of inertia greater than
12. a clock grid including at least a 12 o'clock ray, a 3 o'clock ray, a 4 o'clock ray, a 5 o'clock ray, an 8 o'clock ray, and a 9 o'clock ray; a weight structure disposed toward the sole and back end of the golf club head, the weight structure having a weight perimeter and a removable weight; the 12 o'clock radial line is aligned with the geometric center of the striking face, and the center of the front clock grid is at a midpoint between the front front end and the front back end of the golf club head along the 12 o'clock radial line; the 3 o'clock radial line extends toward the heel of the golf club head; The golf club head of any one of claims 8 to 11, wherein the nine o'clock radial line extends toward the toe of the golf club head.
13. The golf club head of claim 12 , wherein the weight structure protrudes from an outer contour of the sole.
14. The golf club head of claim 12 , wherein the weight structure includes a removable weight having a weight center located between the 5 o'clock radial line and the 8 o'clock radial line of the clock grid.
15. A hollow golf club head, a body having a front end, a back end opposite the front end, a crown, a sole opposite the crown, a heel, a toe opposite the heel, a skirt adjacent the crown and the sole, and a hosel structure having a hosel axis extending through a center of a hole; a hitting surface located at the front end and defining a geometric center, the hitting surface having a loft plane tangent to the geometric center and a head depth plane passing through the geometric center from the heel to the toe and perpendicular to the loft plane; a head center of gravity of the golf club head is located at a head CG depth from the loft plane measured in a direction perpendicular to the loft plane and at a head CG height from the head depth plane measured in a direction perpendicular to the head depth plane; the head CG height is less than 0.2 inches; the head CG depth is greater than 1.2 inches; a coordinate system is defined having an origin at the geometric center of the striking surface; The coordinate system is an X' axis extending in a heel-to-toe direction of the golf club head through the geometric center of the striking face; a Y' axis extending from the crown to the sole of the golf club head through the geometric center of the striking face and perpendicular to the X' axis; a Z' axis extending through the geometric center of the striking face in a direction from the front end toward the back end of the golf club head and perpendicular to the X' axis and the Y' axis; an X'Y' plane extends through the X' axis and the Y' axis, extends through the geometric center of the striking face, is parallel to the hosel axis, and is disposed at an angle from the loft plane corresponding to the loft angle of the golf club head; When the golf club head is subjected to a wind of 98 mph in a direction perpendicular to the X'Y' plane, the golf club head generates a drag force F of less than 1.0 lbf. D Experienced the golf club head has a crown-sole moment of inertia Ixx, a heel-toe moment of inertia Iyy, and a resultant moment of inertia Ixx+Iyy measured as the sum of the crown-sole moment of inertia and the heel-toe moment of inertia; Iyy is 3100 g cm 2 is larger than the golf club head has a front radius of curvature between 0.2 and 0.30 inches; the front radius of curvature extends from an upper end of the striking face to a crown transition point, the crown transition point marking a change in curvature from the front radius of curvature to a different curvature of the crown; the golf club head has a maximum crown height greater than 0.30 inches; The golf club head, wherein the maximum crown height is measured as the maximum distance between the surface of the crown and the crown axis.
16. The golf club head of claim 15 further comprising one or more thinned areas on the body having a thickness of less than 0.02 inches.
17. a front curvature radius between 0.18 and 0.30 inches; It also has a back curvature radius and the front radius of curvature extends from an upper end of the striking face to a crown transition point, the crown transition point marking a change in curvature from the front radius of curvature to a different curvature of the crown; 17. The golf club head of claim 15, wherein the back radius of curvature extends along a rear transition boundary between the crown and the skirt of the golf club head from a first rear transition point to a second rear transition point, the first rear transition point being located at the junction of the crown and the rear transition boundary, and the second rear transition point being located at the junction of the rear transition boundary and the skirt of the golf club head.
18. 9000 g cm 2 The golf club head according to any one of claims 15 to 17, further comprising a composite moment of inertia greater than
19. a clock grid including at least a 12 o'clock ray, a 3 o'clock ray, a 4 o'clock ray, a 5 o'clock ray, an 8 o'clock ray, and a 9 o'clock ray; a weight structure disposed toward the sole and back end of the golf club head, the weight structure having a weight perimeter and a removable weight; the 12 o'clock radial line is aligned with the geometric center of the striking face, and the center of the front clock grid is at a midpoint between the front front end and the front back end of the golf club head along the 12 o'clock radial line; the 3 o'clock radial line extends toward the heel of the golf club head; The golf club head of any one of claims 15 to 18, wherein the nine o'clock radial line extends toward the toe of the golf club head.
20. The golf club head of claim 19 , wherein the weight structure protrudes from an outer contour of the sole.
21. 20. The golf club head of claim 19, wherein the weight structure comprises a removable weight having a weight center located between the 5 o'clock radial line and the 8 o'clock radial line of the clock grid.
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