Golf club head
The integration of a composite wraparound component in a golf club head design addresses the challenge of forming complex geometries, resulting in a lightweight, high-strength club with improved performance and efficiency.
Patent Information
- Application Number
- JP2025166421
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2019-11-26
- Filing Date
- 2025-10-02
- Publication Date
- 2026-01-14
AI Technical Summary
Existing methods for manufacturing composite golf club heads struggle to form complex geometries such as the hosel or skirt, limiting the ability to create unique shapes and reducing manufacturing efficiency.
A golf club head design featuring a metal main component and a composite wraparound component, where the wraparound component is injection molded to form the crown and sole, incorporating thickened regions for material flow and reducing weight, allowing for complex geometries and improved acoustic response.
The design achieves a lightweight, high-strength golf club head with a lower center of gravity, increased moment of inertia, and enhanced forgiveness, while reducing manufacturing time and improving acoustic performance.
Smart Images

Figure 2026004480000001_ABST
Abstract
Description
[Technical Field]
[0001] (Related Applications) This application claims the benefit of U.S. Provisional Patent Application No. 62 / 891,158, filed August 23, 2019, and U.S. Provisional Patent Application No. 62 / 940,799, filed November 26, 2019, all of which are incorporated herein by reference.
[0002] FIELD OF THE DISCLOSURE The present disclosure relates generally to golf equipment, and more particularly to methods of manufacturing composite golf club head components. [Background technology]
[0003] Typically, golf club heads may be formed primarily from metal materials. In some cases, golf club heads may be formed from composite materials including polymer resins and reinforcing fibers. The reinforcing fibers may be provided in sheet form. The sheets may be pre-impregnated with the polymer resin. Sometimes, the sheets are first molded into the desired shape and then impregnated with the polymer resin. These fiber-impregnated sheets can only be formed into simple shapes, such as crown inserts or sole inserts. The sheets cannot be easily formed into unique shapes, such as the geometry of a hosel or a piece covering the skirt of a club head. There is a need in the art for a technique for manufacturing composite (or plastic) components of clubs with complex geometries. [Brief explanation of the drawings]
[0004] [Figure 1] FIG. 1 shows a perspective view of a golf club head according to one embodiment.
[0005] [Figure 2] FIG. 2 shows a sole (or bottom) view of the golf club head of FIG.
[0006] [Figure 3]FIG. 3 shows a cross-sectional view of the golf club head of FIG. 1 taken along the dotted line in FIG. 2 as viewed from the toe side.
[0007] [Figure 4] FIG. 4 shows a rear view of the main components according to one embodiment.
[0008] [Figure 5] FIG. 5 shows a crown (or top) view of the main components of FIG.
[0009] [Figure 6] FIG. 6 shows a sole (or bottom) view of the main components of FIG.
[0010] [Figure 7] FIG. 7 shows a sole (or bottom) view of a golf club head according to the second embodiment.
[0011] [Figure 8] FIG. 8 shows a sole (or bottom) view of a golf club head according to a third embodiment.
[0012] [Figure 9A] FIG. 9A shows a front view of a wraparound component according to one embodiment.
[0013] [Figure 9B] FIG. 9B shows a front view of a wraparound component according to an alternative embodiment.
[0014] [Figure 10] FIG. 10 shows a rear view of the wraparound component of FIG. 9A.
[0015] [Figure 11] FIG. 11 shows a heel side view of the wraparound component of FIG. 9A.
[0016] [Figure 12]FIG. 12 shows a toe side view of the wraparound component of FIG. 9A.
[0017] [Figure 13] FIG. 13 shows a bottom view of the wraparound component of FIG. 9A.
[0018] [Figure 14] FIG. 14 shows an exploded perspective view of the wraparound component of FIG. 9A being assembled onto the main component of FIG. 4 to form the golf club head of FIG.
[0019] [Figure 15] FIG. 15 illustrates a method for manufacturing a golf club head according to one embodiment.
[0020] [Figure 16] FIG. 16 shows a bottom view of the upper mold half of the mold, according to one embodiment.
[0021] [Figure 17] FIG. 17 shows a top perspective view of the lower mold half of the mold, according to one embodiment.
[0022] [Figure 18] FIG. 18 shows a top view of the lower mold half of FIG.
[0023] [Figure 19] FIG. 19 shows a top view of the upper mold half of FIG.
[0024] [Figure 20] FIG. 20 shows a front view of the assembly of the lower mold half of FIG. 17 and the upper mold half of FIG.
[0025] [Figure 21] FIG. 21 shows a top perspective view of the mold slide and lock.
[0026] [Figure 22]FIG. 22 shows a top perspective view of the assembly of the lower mold half of FIG. 17 and the slide and lock of FIG.
[0027] [Figure 23] FIG. 23 shows a top perspective view of the lower mold half of FIG. 17, the upper mold half of FIG. 16, and the slide and lock assembly of FIG.
[0028] [Figure 24] 24 shows a top perspective view of the assembly of the lower mold half of FIG. 17, the slide and lock of FIG. 21, and an injection molded wraparound component similar to the wraparound component of FIG.
[0029] [Figure 25] FIG. 25 shows a schematic diagram of an injection molding compression screw.
[0030] [Figure 26] Figure 26 shows a top view of the mold path simulation (material flow direction) over time in the first stage.
[0031] [Figure 27] Figure 27 shows a top view of the mold path simulation (material flow direction) over time in the second stage.
[0032] [Figure 28] Figure 28 shows a top view of the mold path simulation (material flow direction) over time in the third stage.
[0033] [Figure 29] Figure 29 shows a top view of the mold path simulation (material flow direction) over time at the fourth stage.
[0034] [Figure 30] FIG. 30 shows a top view of the mold filling simulation over time in the first stage.
[0035] [Figure 31] FIG. 31 shows a top view of the mold filling simulation over time during the second stage.
[0036] [Figure 32] FIG. 32 shows a top view of the mold filling simulation over time at the third stage.
[0037] [Figure 33] FIG. 33 shows a top view of the mold filling simulation in time at the fourth stage.
[0038] [Figure 34] FIG. 34 shows a top view of the mold path simulation (material flow direction) for the wraparound component of FIG. 9A.
[0039] [Figure 35] FIG. 35 shows a top view of the mold path simulation (material flow direction) for the wraparound component of FIG. 9B.
[0040] [Figure 36A] FIG. 36A is a crown view of a wraparound mold path simulation similar to the second component of FIG. 9A.
[0041] [Figure 36B] FIG. 36B shows a crown view of a wraparound mold path simulation similar to the second component of FIG. 9B. DETAILED DESCRIPTION OF THE INVENTION
[0042] Described herein is a golf club head having an injection-molded wraparound component with high strength and low weight. The golf club head is formed of a metal front component and a composite rear wraparound component. In addition to forming the striking face, the main component has an extension that extends rearward along the sole. A low-density composite piece can slide or cap over the main component, reducing the weight of the top and rear of the club head. A single composite piece forms the majority of the crown and wraps around the skirt of the club to form a portion of the sole. The composite wraparound component is injection molded through a gate at the rear peripheral edge of the crown. The wraparound component can include thickened regions that act as flow leaders or highways for distributing molten composite material to the ends of the mold during injection molding. The wraparound component can be formed from a polymer composite material.
[0043] A golf club head can be made by a method that produces a strong, flexible striking face coupled with a lightweight, durable rear crown and toe and heel portions. The wraparound component that forms the rear crown and a portion of the sole can be injection molded. The injection molding process, enabled by the geometry of the wraparound component, produces a component with high strength and low weight. Furthermore, the injection molding process can reduce manufacturing time. Forming a portion of the crown and sole from a composite material can improve the acoustic response of the golf club head upon impact with a golf ball.
[0044] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art. In case of conflict, the present specification, including definitions, shall prevail. Preferred methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention. The materials, methods, and examples disclosed herein are merely illustrative and are not intended to be limiting.
[0045] The terms "comprise," "include," "having," "has," "can," "contain," and variations thereof, as used herein, are intended to be open-ended transitional phrases, terms, or words that do not exclude the possibility of additional acts or structures. The singular forms "a," "and," and "the" include plural references unless the context clearly dictates otherwise. The present disclosure also contemplates other embodiments that "comprise," "consist," and "consist essentially of" the embodiments or elements presented herein, whether explicitly stated or not.
[0046] The modifiers "about," "approximately," or "approximately" used in connection with quantities are inclusive of the stated value and have the meaning dictated by the context (e.g., include at least the degree of error associated with measuring the particular quantity). The modifiers "about," "nearly," or "approximately" should also be considered to disclose a range defined by the absolute values of the two endpoints. For example, the phrase "about 2 to about 4" also discloses a range of "2 to 4," and the terms "about," "nearly," or "approximately" can mean plus or minus 10% of the indicated number. For example, "about 10%" can indicate a range of 9% to 11%, and "about 1" can mean 0.9 to 1.1. Other meanings of "about," "nearly," or "approximately" may be apparent from the context.
[0047] As used herein, "sole" may refer to the bottom surface or bottom portion of the golf club head when the golf club head is set at address. The sole may not be visible from the top surface or crown of the golf club head.
[0048] As used herein, "crown" can refer to the top surface or upper portion of the golf club head when the golf club head is set at address. The crown may not be visible from the bottom or sole of the golf club head.
[0049] As used herein, "injection molding" can refer to the process of heating a polymeric or composite material, pressing the polymeric or composite material into a mold, cooling the material in the mold to form a solid part, and removing the solid part from the mold.
[0050] As used herein, "mold" may refer to two or more pieces of metal that together form a cavity. The cavity may be in the shape of a desired product or component, such as a golf club head component. The mold may include gates or other passages for the flow of material not contained in the cavity. The mold may also include cooling lines that allow coolant to flow through the mold.
[0051] As used herein, "top mold half" can refer to the first, upper portion of the mold. As used herein, "bottom mold half" can refer to the second, lower portion of the mold. The top mold half is configured to pull, lift, or otherwise move away from the bottom mold half when the part is removed from the mold.
[0052] As used herein, "springback" can refer to the warping phenomenon that occurs in some injection molded parts when they are removed from a mold. If the inner surface of a part has a different surface area than the outer surface of the part, the part can warp when it is removed from the mold. Compressive stresses on the larger surface (typically the outer surface) can exceed the compressive stresses on the smaller surface (typically the inner surface), causing the part to warp.
[0053] As used herein, "shrinkage" may refer to the amount a material shrinks after being removed from a mold in an injection molding process. The shrinkage is related to the properties of the material used in the injection molding process. Unlike springback, the shrinkage is not dependent on or significantly affected by the geometry of the part.
[0054] As used herein, "path" can refer to a simulated or actual direction that material can flow. A simulated path can also represent the rate at which material fills an area of a mold. A path can indicate or represent the direction and / or rate of filling during an injection molding process. A higher density path in one portion of the mold can represent the portion of the mold that will fill first.
[0055] As used herein, "gate" can refer to the opening of a mold used in injection molding. During the injection molding process, material first enters the mold through the gate. In some embodiments, "gate" can also refer to the injection molding material that was in the gate of the mold before the part was removed from the mold.
[0056] As used herein, "flow leader" can mean a channel, an area of increased thickness, and / or a path along or through which material flows during the injection molding process. Flow leaders can extend from the gate to other areas of the club head. Flow leaders can be angled toward areas of the mold that would otherwise be difficult for material to reach.
[0057] As used herein, a "weld line" may refer to a line where two separate streams of material intersect or connect. A weld line may also refer to a weak seam formed in a mold during the injection molding process.
[0058] As used herein, "freeze-off thickness" can refer to the minimum thickness at which a material can successfully flow. Molds designed for injection molding must be designed so that all areas of the mold contain a thickness equal to or greater than the freeze-off thickness.
[0059] As used herein, "cycle time" can refer to the amount of time to injection mold a single part during an injection molding process. I) Golf club head with wraparound component
[0060] The golf club head 10 described herein includes a generally metal main component 60 and a composite wraparound component 100. The composite material can be injection molded to form the lightweight wraparound component 100. The wraparound component 100 can include a thin crown section 110 to reduce the weight of the crown 16 compared to conventional metal golf club heads. The wraparound component 100 can also include heel wings 150 and toe wings 130 that form part of the sole 18 to reduce the weight of the sole 18 and therefore direct the center of gravity rearward. The metal main component 60 includes a rearward extension 72 that supports a weight channel or port 82 for securing a weight 84 to the rear end 14 of the club head 10. The combination of the metal main component 60 and the composite wraparound component 100 forms a club head 10 that has a lower and more rearwardly located center of gravity, a higher moment of inertia, and the benefits of reduced spin, launch, and forgiveness than a club head lacking the composite wraparound component feature. Furthermore, forming high strength, low weight wraparound components requires specific mold designs and manufacturing methods, as described below.
[0061] 1-3 and 14 , a golf club head 10 described herein includes a front end 12, a rear end 14, a crown 16, a sole 18, a skirt 24 connecting the crown 16 to the sole 18, a toe end 20, and a heel end 22. The golf club head 10 includes a main component 60 forming a strike face 62 at the front end 12 of the golf club head. The main component 60 may further define a return 64 that extends rearward from the strike face 62 and forms a portion of the sole 18 and a portion of the crown 16. The main component 60 further includes a sole extension 72 connected to a sole portion of the return 64. The sole extension 72 reaches or extends from the return 64 to the rear end 14 of the golf club head 10. In some embodiments, the sole extension 72 includes a weight port or weight channel 82 for receiving a weight 84. The main component 60 may include a lip 80 extending along the trailing edge 66 of the return 64 and along the edges 74 , 76 of the sole extension 72 .
[0062] The golf club head 10 further includes a wraparound component 100 that forms the remaining portion of the golf club head 10 not formed by the main component 60. The wraparound component 100 forms portions of both the crown 16 and the sole 18 of the golf club head 10. The wraparound component 100 may include a crown section 110, a toe wing 130, and a heel wing 150. The crown section 110 of the wraparound component 100 forms the central and rear portions of the crown 16 of the club head 10. The toe wing 130 of the wraparound component 100 extends from the crown section 110, around the skirt 24, and into the sole 18. The toe wing 130 forms a portion of the toe end 20 of the club head 10. Similarly, the heel wing 150 of the wraparound component 100 extends from the crown section 110 opposite the toe wing 130, around the skirt 24, and into the sole 18. The heel wing 150 forms part of the heel end 22 of the club head 10. The wraparound component 100 may include a lip (not shown) configured to engage with the lip 80 of the main component. In the assembled club head 10, the overlap of the lips forms a lap joint configuration that allows the wraparound component 100 to join to the main component 60. a. coordinate system
[0063] 2 and 3 , a coordinate system may be defined having an origin 30 at the strike face center of the strike face 62, and having an X-axis 32, a Y-axis 34, and a Z-axis 36. The X-axis 32 extends through the strike face center of the strike face 62 in a direction from the heel end 22 to the toe end 20 of the golf club head 10 and is a horizontal axis parallel to the ground plane 40 when the club head 10 is at address. The Y-axis 34 extends through the strike face center 30 of the strike face 62 in a direction from the crown 16 to the sole 18 of the golf club head 10 and is a vertical axis perpendicular to the X-axis 32. The Z-axis 36 extends through the strike face center 30 in a direction from the strike face to the rear end 14 of the golf club head 10 and is perpendicular to the X-axis and Y-axis.
[0064] The coordinate system defines an XY plane extending through the X axis 32 and the Y axis 34, an XZ plane extending through the X axis 32 and the Z axis 36, and a YZ plane extending through the Y axis 34 and the Z axis 36, where the XY, XZ, and YZ planes are all perpendicular to one another and intersect at the coordinate system origin 30 at the strike face center. A loft plane 42 is tangent to the strike face 62 at the origin 30. The loft plane 42 is angled from the XY plane by a loft angle 44 when viewed perpendicular to the YZ plane.
[0065] In some embodiments, particularly when the golf club head 10 is a driver, the loft angle 44 of the club head 10 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.
[0066] In some embodiments, particularly when the golf club head 10 is a fairway wood, the loft angle 44 of the club head 10 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. Furthermore, in many embodiments, the loft angle 44 of the club head 10 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 may be between 12 and 35 degrees, between 15 and 35 degrees, between 20 and 35 degrees, or between 12 and 30 degrees.
[0067] In some embodiments, particularly when the golf club head 10 is a hybrid, the loft angle 44 of the club head 10 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 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.
[0068] 4, hosel axis 38 is tilted from X-axis 32 at an angle, referred to as lie angle 46, when viewed perpendicular to the X-Y plane. Hosel axis 38 can be tilted from X-axis 23 by lie angle 46 between 54 and 65 degrees.
[0069] The length 52 of the club head 10 can be measured as the farthest distance of the club head 10 from the heel end 22 to the toe end 20 in a direction parallel to the X-axis 32 when viewed from the front. In many embodiments, the length 52 of the club head 10 can be measured in accordance with a golf governing body, such as the United States Golf Association (USGA). For example, the length of the club head can 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) (available at 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”). The maximum length of the club head can be in the range of 3 to 5 inches.
[0070] The height 54 of the club head 10 can be measured as the farthest distance of the club head 10 from the crown 16 to the sole 18 in a direction parallel to the Y-axis 34 in a front view. In many embodiments, the height 54 of the club head 10 can be measured in accordance with a golf governing body, such as the United States Golf Association (USGA). For example, the club head height can 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) (available at 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”). The maximum club head height can range from 2 to 2.8 inches.
[0071] The depth 56 of the golf club head 10 may be measured as the farthest distance of the club head 10 from the front end 12 to the rear end 14 in a direction parallel to the Z-axis 36 when viewed from a top view. The club head depth 56 may range from 2 inches to 5 inches. The volume of the club head 10 may be measured by immersing the club head 10 in a fluid and measuring the volume of the fluid displaced. In many embodiments, the volume of the club head 10 may be measured in accordance with a golf governing body, such as the United States Golf Association (USGA). For example, the volume of the club head may be determined according to the USGA Procedure for Measuring the Club Head Size of Wood Clubs (USGA-TPX3003, Rev. 1.0.0, November 21, 2003) (available at 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”).
[0072] The volume of the club head 10 (i.e., the volume encompassed by the outermost surface of the club head) can range from 200 cc to 800 cc. In some embodiments, particularly when the golf club head is a driver, the volume of the club head 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 425cc and 500cc, between about 500cc and 600cc, 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.
[0073] In some embodiments, particularly when the golf club head is a fairway wood, the volume of the club head 10 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 250 cc, less than about 225 cc, or less than about 200 cc. In some embodiments, the volume of the club head can be about 150 cc to 200 cc, about 150 cc to 250 cc, about 150 cc to 300 cc, about 150 cc to 350 cc, about 150 cc to 400 cc, about 300 cc to 400 cc, about 325 cc to 400 cc, about 350 cc to 400 cc, about 250 cc to 400 cc, about 250 cc to 350 cc, or about 275 to 375 cc.
[0074] In some embodiments, particularly when the golf club head is a hybrid, the volume of the club head 10 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, or between about 75 cc and 125 cc. b. Main Components
[0075] The golf club head 10 includes a main component 60 and a wraparound component 100. The main component 60 is made of metal and is generally T-shaped when viewed from the crown or sole. The trunk or base of the T is formed by a sole extension 72, which centralizes weight in the central sole and supports a weight channel or port 82 that secures a weight 84 to the rear end 14 of the golf club head 10. The top of the T includes a strike face 62 and a face return 64, which form the front end 12 of the club head 10. The metal main component 60 provides the club head 10 with durability to withstand impacts and contributes to the club head's desired weighting characteristics, i.e., a low, rearward center of gravity and forgiveness.
[0076] As shown in FIGS. 4-6 , the main component 60 can include a strike face 62, a return 64, and a sole extension 72. The strike face 62 is located at the front end 12 of the golf club head 10. The strike face 62 is tangent to the loft plane 42 and is angled from the XY plane when the golf club head 10 is at address. The strike face 62 can be formed from a face plate that is secured within a front cavity (not shown) of a body piece to together form the main component 60. In other embodiments, the strike face 62 and return 64 of the main component are integrally formed as a single unit. The main component 60 can further include an upper hosel opening 26 for receiving a shaft or hosel sleeve. In some embodiments, the main component 60 can further include a lower hosel opening or port 28 located in the sole portion of the extension 72. In these embodiments, the lower hosel opening 28 can be used to secure a hosel sleeve with a fastener.
[0077] The return 64 of the primary component 60 extends rearward from the strike face 62. The return 64 forms a portion of the crown 16, a portion of the sole 18, a portion of the toe end 20, and a portion of the heel end 22. The return 64 may include a depth 68 measured perpendicular to the XY plane. The ratio of the return depth 68 to the club head depth 56 may be between 0.20 and 0.75. In some embodiments, the ratio of the return depth 68 to the club head depth 56 may be between 0.20 and 0.30, between 0.20 and 0.35, between 0.20 and 0.40, between 0.20 and 0.45, or between 0.20 and 0.50. In some embodiments, the return 64 may have a depth 68 that varies depending on where it is measured. For example, the return depth 68 may be greater adjacent the toe end 20 than adjacent the heel end 22. The variable return depth 68 can increase the forgiveness of the club head 10 by allowing one or both of the heel end 22 and toe end 20 to be heavier than the center.
[0078] 3, the return 64 can have a thickness 70 in the range of 0.015 inches to 0.040 inches. In other embodiments, the return thickness 70 can be in the range of 0.010 inches to 0.040 inches, 0.010 inches to 0.020 inches, 0.015 inches to 0.025 inches, 0.020 inches to 0.030 inches, 0.025 inches to 0.035 inches, 0.030 inches to 0.040 inches, 0.040 inches to 0.10 inches, or 0.10 inches to 0.25 inches. For example, the return thickness 70 can be 0.010 inches, 0.015 inches, 0.020 inches, 0.025 inches, 0.030 inches, 0.035 inches, or 0.040 inches.
[0079] 5 and 6 , the sole extension 72 extends from the return 64 to the rear end 14 of the club head 10. The sole extension 72 may further include a weight channel 82 adjacent the rear end 14. The sole extension 72 may include a width 86 measured parallel to the X-axis 32 from the first edge 74 to the second edge 76 of the sole extension 72. In some embodiments, the width 86 of the extension 72 is uniform, while in other embodiments, the extension width 86 varies depending on where the width 86 is measured. The sole extension width 86 is less than the length 52 of the golf club head 10 (the sole extension width 86 and the club head length 52 are both measured heel-to-toe). The sole extension width 86 may be in the range of 25% to 85% of the maximum club head width. The sole extension width 86 may be 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, or 85% of the maximum club head length 52. In some embodiments, the sole extension width 86 may range from 0.4 inches to 2.5 inches. As the sole extension width 86 decreases, less metal material is used to form the sole extension 72, reducing the weight of the main component 60. A lighter main component 60 increases discretionary mass that can be redistributed to desired locations on the club head 10 to increase forgiveness and / or position the center of gravity lower and rearward. However, a larger sole extension width 86 provides greater structural support for the rear weight channel or port 82, increasing the durability of the club head 10. Therefore, the sole extension width 86 may be selected to accommodate a desired weighting arrangement for the club head 10.
[0080] 7 and 8 , the sole extension axis 88 is approximately the center of the sole extension 72. The extension axis 88 extends between a front midpoint 90 and a rear midpoint 92 of the sole extension 72. The front midpoint 90 is located midway between a first intersection point 94 and a second intersection point 96. The first intersection point 94 and the second intersection point 96 are locations where the edges 74, 76 of the sole extension 72 connect to the return 64. The rear midpoint 92 is centrally located along the rear or peripheral edge 78 of the sole extension 72.
[0081] The sole extension 72 can include a length (not shown) measured parallel to the Z-axis 36 from the return 64 of the main component 60 to the rear end 14 of the golf club head 10. More specifically, the length of the sole extension is measured from the front midpoint 90 to the rear midpoint 92 of the sole extension 72. The length of the sole extension is shorter than the length 52 of the golf club head 10. The length of the sole extension can be in the range of 60% to 90% of the maximum club head length 52. In some embodiments, the length of the sole extension can be in the range of 60% to 70%, 70% to 80%, 70% to 80%, 65% to 75%, 75% to 85%, or 85% to 90% of the maximum club head length 52. The length of the sole extension can be 60%, 65%, 70%, 75%, 80%, 85%, or 90% of the maximum club head length 52.
[0082] In some embodiments, the extension axis 88 is approximately parallel to the YZ plane. In other embodiments, the sole extension 72 can extend at an angle 98 from the return 64. The extension axis 88 can intersect the YZ plane at a point adjacent to the rear end 14 of the club head 10. For example, the sole extension 72 can be attached to the return 64 closer to either the heel end 22 or the toe end 20, and the sole extension 72 can point toward the center of the club head 10 as it extends rearward. In yet other embodiments, the extension axis 88 can intersect the YZ plane at a point adjacent to the return 64. For example, the sole extension 72 can point away from the center of the golf club head 10 as it extends rearward.
[0083] The sole extension 72 can be positioned so that the extension axis 88 intersects the YZ plane at an extension angle 98, as illustrated in FIGS. 7 and 8 . The extension angle 98 can range from 0 degrees to 45 degrees. In some embodiments, the extension angle 98 can range from 0 to 10 degrees, 0 to 20 degrees, 0 to 30 degrees, 0 to 40 degrees, 10 to 20 degrees, 10 to 30 degrees, 10 to 40 degrees, 10 to 45 degrees, 20 to 30 degrees, 20 to 40 degrees, 20 to 45 degrees, 30 to 40 degrees, or 30 to 45 degrees. This offset positioning can give the club head 10 either a slight draw bias or a slight fade bias to accommodate players with certain swing tendencies. In some embodiments, the front end of the sole extension 72 is offset relative to the heel end 22 or the toe end 20. In some of these embodiments (not shown), the rear weight channel or port 82 remains centered in the rear end 14 of the club head 10. In other examples of these embodiments, the front and rear ends of the sole extension 72 are both offset in different directions from the YZ plane. By offsetting the front end of the sole extension 72, the center of gravity moves slightly toward the heel end 22 or toe end 20 of the club head 10, but the center of gravity shift is less dramatic than when the weight 84 is offset. c. Wraparound Components
[0084] The golf club head 10 further includes a wraparound component 100 that is attached to the main component 60 to form the hollow golf club head 10. The wraparound component 100 is formed from a lightweight composite material to allow for more discretionary weight redistribution around the perimeter of the club head 10. The injection-molded composite material of the wraparound component 100 exhibits high strength and low weight. Additionally, the wraparound component structure includes thickened sections 118 that allow the composite material to flow evenly through the mold during injection molding and provide additional durability to the finished wraparound component 100.
[0085] 3 and 9-14, the wraparound component 100 includes a crown section 110, a toe wing 130, and a heel wing 150. The wraparound component 100 includes an outer surface 102 and an inner surface 104. The outer surface 102 is smooth. The inner surface 104 includes a thicker transition area that protrudes slightly away from the remainder of the inner surface 104, as described below. The wraparound component 100 can include one or more thicknesses 106 ranging from 0.017 inches to 0.060 inches. In some embodiments, the one or more thicknesses 106 of the wraparound component can be in the range of 0.017 inches to 0.021 inches, 0.021 inches to 0.030 inches, 0.030 inches to 0.045 inches, or 0.045 inches to 0.060 inches. In some embodiments, the thinnest area of the wraparound component 100, which forms the majority of the wraparound component 100, can have a thickness 106 between 0.030 inches and 0.045 inches.
[0086] In some embodiments, the wraparound component 100 can include at least one thickness 106 of about 0.017 inches, about 0.020 inches, about 0.025 inches, about 0.030 inches, about 0.035 inches, about 0.040 inches, about 0.045 inches, or about 0.050 inches. In some embodiments, the thickness 106 of at least one of the wraparound components 100 is less than 0.025 inches, less than 0.026 inches, less than 0.027 inches, less than 0.028 inches, less than 0.029 inches, less than 0.030 inches, less than 0.031 inches, less than 0.032 inches, less than 0.033 inches, less than 0.034 inches, less than 0.035 inches, less than 0.036 inches, less than 0.037 inches, less than 0.038 inches, less than 0.039 inches, less than 0.040 inches, less than 0.041 inches, less than 0.042 inches, less than 0.043 inches, less than 0.044 inches, or less than 0.045 inches.
[0087] The crown section 110 of the wraparound component 100 forms the majority of the golf club head crown 16. The crown section 100 may include a gently sloping surface having one or more thicknesses 106. A cross section of the crown section 110 taken along a plane parallel to the XY plane may have an arcuate or parabolic profile.
[0088] In some embodiments, such as that shown schematically in FIG. 9A , the crown section 110 can include a plurality of thickened portions 118. The thickened portions 118 can be in the form of channels, ridges, scalloped structures, or other thicker regions on the inner surface 104 of the crown section 110. The thickened portions 118 are elongated regions that extend either generally from front to back or generally from heel to toe. In some embodiments, an array of thickened portions 118 is scalloped across the inner surface 104 (bottom surface) of the crown section 110. The thickened portions 118 can include a thickness that is greater than the thickness of the remainder of the crown section. The thickened portions 118 can include a thickness between 0.030 inches and 0.060 inches. The thickened portion 118 can include a thickness of 0.030 inch, 0.032 inch, 0.034 inch, 0.036 inch, 0.038 inch, 0.040 inch, 0.042 inch, 0.044 inch, 0.046 inch, 0.048 inch, 0.050 inch, 0.052 inch, 0.054 inch, 0.056 inch, 0.058 inch, or 0.060 inch. Because the thickness of the thickened portion is greater than the thickness of the remainder of the wraparound component, the thickened portion 118 can act as a flow leader or highway for material flow during the injection molding process, as described further below.
[0089] The thickened portions 118 can each have a width 120. The width 120 of each thickened portion 118 can range from 0.05 inches to 0.20 inches. In some embodiments, the width 120 of each thickened portion 118 is between 0.10 inches and 0.12 inches, 0.12 inches and 0.14 inches, 0.14 inches and 0.16 inches, 0.16 inches and 0.18 inches, or 0.18 inches and 0.20 inches. As described further below, the thickened portions 118 can act as flow leaders, providing a means for the composite material to flow through the mold during the injection molding process.
[0090] 9B, the crown section 110 can include a central thickened portion 124 or scalloped portion having a thickness greater than the remainder of the crown. In one configuration, this central thickened portion 124 has a thickness of approximately 1.5 inches measured from the crown perspective (when viewed parallel to the XZ plane). 2 ~approximately 3.0 inches 2 In another configuration, the central thickened portion 124 has a total area of about 2.0 inches. 2 from about 2.5 inches 2 In some embodiments, the central thickened portion 124 has a total area of up to 1.25 inches. In some embodiments, the central thickened portion 124 has a slightly trapezoidal shape, whereby at least a portion of the central thickened portion 124 near the face and / or leading edge 114 is wider than a portion of the central thickened portion 124 farther from the face. The central thickened portion 124 may be spaced from the leading edge 114 of the crown section 110 by a distance (d) greater than about 0.8 inches, or between 0.8 inches and 1.0 inches, or between 1.0 inches and 1.2 inches, or between 1.2 inches and 1.4 inches. In some embodiments, the distance (d) is about 1.25 inches. As described further below, the central thickened portion 124 can act as a flow leader, providing a means for the composite material to flow through the mold during the injection molding process.
[0091] The toe wing 130 and heel wing 150 of the wraparound component 100 form part of the sole 18, allowing for more weight discretion than is possible in a golf club head having only a composite crown. The toe wing 130 and heel wing 150 fill the areas of the sole 18 not formed by the main component 60, making the sole 18 partially composite and allowing the sole 18 to have low-weight areas. The toe wing 130 and heel wing 150 are integral with the crown section 110 of the wraparound component 100. The toe wing 130 forms part of the toe end 20 of the club head 10. The heel wing 150 forms part of the heel end 22 of the club head 10. In the assembled club head 10, the wraparound component 100 may be asymmetrical with respect to the YZ plane. In some embodiments, the toe wing 130 is larger than the heel wing 150. The toe wing 130 and heel wing 150 are attached to the crown section 110 along the skirt 24 of the golf club head 10. Attaching the toe wing 130 and heel wing 150 along the skirt 24 instead of forming a separate composite sole panel allows for more weight discretion and simplifies assembly of the club head 10.
[0092] The toe wings 130 curve downward and inward from the toe skirt or perimeter edge of the crown section 110. The toe wings 130 may curve downward and inward or wrap around to a gradual extent. The desired final shape of the golf club head 10, particularly the shape of the sole 18, may determine the degree to which the toe wings 130 curve inward. The toe wings 130 may be three-sided. The toe wings 130 may include a crown connector or connecting edge 132, a leading edge 134, and side edges 136. The crown connector 132 is integral with the perimeter of the crown section 110 of the wraparound component 100. The leading edge 134 connects to the return 64 of the main component 60 when the club head 10 is assembled. The side edges 136 connect to the sole extension 72 of the main component 60 when the club head 10 is assembled.
[0093] 9A and 9B, the toe wing 130 is attached to the edge of the crown section 110 in an arcuate and / or wraparound manner. The wraparound connection of the toe wing 130 to the crown section 110 via a crown connection 132 defines a radius of curvature 138. The radius of curvature 138 of the toe wing connection can vary slightly or can be constant throughout the transition between the crown section 110 and the toe wing 130. The radius of curvature 138 of the toe wing connection can range between 0.10 inches and 0.40 inches, or between 0.15 inches and 0.25 inches. The crown connection 132 can have a thickness 140 that is greater than the remainder of the toe wing 130. As described below, the crown connection 132 of the toe wing 130 can act as a flow leader, providing a means for the composite material to flow through the mold during the injection molding process.
[0094] The heel wing 150 curves downward and inward from the heel-side skirt or peripheral edge of the crown section 110. Like the toe wing 130, the heel wing 150 can curve downward and inward or wrap around to a gradual extent to form a desired shape on the heel-side sole of the golf club head 10. In some embodiments, the heel wing 150 curves inward less sharply than the toe wing 130. The heel wing 150 does not extend inward as far as the toe wing 130. The heel wing 150 may be three-sided. The heel wing 150 can include a crown connector 152, a leading edge 154, and side edges 156. The crown connector 152 is integral with the periphery of the crown portion 110 of the wraparound component 100. The leading edge 154 connects to the return 64 of the main component 60 when the club head 10 is assembled. The side edge 156 connects to the sole extension 72 of the main component 60 when the club head 10 is assembled.
[0095] 9A and 9B , the heel wing 150, like the toe wing 130, is attached to the edge of the crown section in an arcuate and / or wraparound manner. The wraparound connection of the heel wing 150 to the crown section 110 via the heel wing's crown connection 152 defines a radius of curvature 158. The heel wing connection's radius of curvature 158 can be similar to the toe wing connection's radius of curvature 138. In some embodiments, the heel wing connection's radius of curvature 158 is smaller than the toe wing's radius of curvature 138. As described below, the heel wing's crown connection 152 can act as a flow leader, providing a means for the composite material to flow through the mold during the injection molding process.
[0096] In some embodiments, the toe wing 130 can be larger than the heel wing 150. The toe wing 130 can include more material than the heel wing 150. In embodiments in which the toe wing 130 extends inward more sharply than the heel wing 150, the toe wing connection radius 138 can include a thickness 140 that is greater than the heel wing connection radius thickness 160. The greater thickness at the toe wing connection 132 provides strength to support the toe wing 130 and allows for proper material flow during injection molding, as described below.
[0097] The toe wing 130 and the heel wing 150 may each include a thickness 140, 160 measured perpendicularly from the inner surface 104 to the outer surface 102 of each wing. The thickness 140, 160 of each of the wings 130, 150 may taper downwardly from a location adjacent the crown section 110 to the leading edge 134, 154 and the side edge 136, 156 of the respective wing 130, 150. For example, the thickness 140, 160 of the wings 130, 150 adjacent the crown section 110 may range from 0.050 inches to 0.060 inches, while the thickness 140, 160 of the wings 130, 150 at the leading edge 134, 154 and the side edge 136, 156 of each wing may range from 0.030 inches to 0.050 inches. The leading and side edges may not need to be as strong and durable during impact as the portions of the wing adjacent the crown section 110, including the crown connectors 132, 152. Therefore, to save weight, the leading edges 134, 154 and side edges 136, 156 can be made thinner.
[0098] The wraparound component 100 may further include a thinned region or lip (not shown) extending around the peripheral edge of the wraparound component 100. For example, the lip may extend along the leading edges 134, 154 of the wings 130, 150, the side edges 136, 156 of the wings, the aft peripheral edge 116 of the crown section 110, and the leading edge 114 of the crown section 110. The lip has a thickness that is less than the thickness of the remainder of the wraparound component 100. The lip may have a depth that matches the depth of the main component lip such that the wraparound component lip is configured to interface with the main component lip.
[0099] The wraparound component 100 comprises a material having a lower density than the material of the main component 60. In some embodiments, the wraparound component 100 can comprise a composite formed from a polymer resin and reinforcing fibers. The polymer resin can comprise a thermoplastic resin. More specifically, the thermoplastic resin can comprise a thermoplastic polyurethane (TPU) or a thermoplastic elastomer (TPE). For example, the resin can comprise polyphenylene sulfide (PPS), polyetheretherketone (PEEK), polyimide, polyamide such as PA6 or PA66, polyamideimide, polyphenylene sulfide (PPS), polycarbonate, engineering polyurethane, and / or other similar materials. The reinforcing fibers can comprise carbon fiber (or chopped carbon fiber), glass fiber (or chopped glass fiber), graphite fiber (or chopped graphite fiber), or any other suitable filler material. In other embodiments, the composite material can comprise any reinforcing filler that adds strength and / or durability.
[0100] The density of the composite material forming the wraparound component 100 can range from about 1.15 g / cc to about 2.02 g / cc. In some embodiments, the composite density ranges from about 1.30 g / cc to about 1.40 g / cc, or from about 1.40 g / cc to about 1.45 g / cc. The composite material can have a melting temperature between about 350°F (177°C) and 800°F (427°C). In some embodiments, the composite material has a melting point between about 410°F (210°C) and about 536°F (280°C). In some embodiments, the composite material can have a melting point between about 482°F (250°C) and about 518°F (270°C).
[0101] The wraparound component 100 has a high tensile strength of greater than about 60 MPa, making it durable. High tensile strength is achieved by forming the wraparound component 100 from the polymer resin and reinforcing fibers described above. The polymer resin should preferably incorporate one or more polymers with sufficiently high material strength and / or strength-to-weight ratio properties to withstand typical use while providing weight-saving benefits to the design. Specifically, it is important for the design and materials to efficiently withstand the stresses imparted during impact between the strike face and a golf ball without contributing substantially to the overall weight of the golf club head. Generally, the polymer can be characterized by a yield tensile strength greater than about 60 MPa. When the polymer resin is combined with reinforcing fibers, the resulting composite can have a yield tensile strength greater than about 110 MPa, greater than about 180 MPa, greater than about 220 MPa, greater than about 260 MPa, greater than about 280 MPa, or greater than about 290 MPa. In some embodiments, suitable composite materials may have a tensile strength at yield of from about 60 MPa to about 350 MPa.
[0102] The composite material of the wraparound component 100 can have a fiber content of about 10% to about 60% by weight. In some embodiments, the composite material has a fiber content of about 20% to about 50% by weight, or 30% to 40% by weight. In some embodiments, the composite material has a fiber content of about 10% to about 15% by weight, about 15% to about 20% by weight, about 20% to about 25% by weight, about 25% to about 30% by weight, about 30% to about 35% by weight, about 35% to about 40% by weight, about 40% to about 45% by weight, about 45% to about 50% by weight, about 50% to about 55% by weight, or about 55% to about 60% by weight. Typically, a higher fiber content produces a composite with higher strength, and a lower fiber content produces a composite with lower strength. However, a higher fiber content is not necessarily better than a lower fiber content, as the fiber content also affects the moldability of the component. As described below, the fiber content affects the thickness of the component that can be achieved during injection molding.
[0103] In some embodiments, the reinforcing fibers comprise a plurality of dispersed discontinuous fibers (i.e., "chopped fibers"). In some embodiments, the reinforcing fibers comprise a plurality of discontinuous "long fibers" having a design fiber length of about 3 mm to 25 mm. For example, in some embodiments, the fiber length is about 12.7 mm (0.5 inches) prior to the molding process. Other forms of reinforcing fibers, such as discontinuous "short fibers" ("short fibers" typically have fiber lengths of about 0.01 mm to 3 mm), may not provide sufficient strength properties to the final composite. Long reinforcing fibers are typically provided in premixed lengths. Due to breakage during the molding process, some fibers may actually be shorter than the stated range in the final component. In some configurations, the discontinuous chopped fibers may be characterized by an aspect ratio (e.g., fiber length / diameter) greater than about 10, or more preferably greater than about 50, and less than about 1500.
[0104] In some embodiments, the composite material comprises a long fiber reinforced TPU. The long fiber TPU can exhibit a high modulus of elasticity, greater than that of short carbon fiber compounds. The long fiber TPU can withstand high temperatures, making it suitable for use in golf club heads used and / or stored in high temperature environments. The long fiber TPU also exhibits increased toughness, allowing it to serve as a replacement for traditional metal components. In some embodiments, the long fiber TPU comprises a tensile modulus of between about 26,000 MPa and about 30,000 MPa, or between about 27,000 MPa and about 29,000 MPa. In some embodiments, the long fiber TPU comprises a flexural modulus of between about 21,000 MPa and about 26,000 MPa, or between about 22,000 MPa and 25,000 MPa. The long fiber TPU material can exhibit a tensile elongation (at break) of between about 0.5% and about 2.5%. In some embodiments, the tensile elongation of the composite TPU material can be from about 1.0% to about 2.0%, from about 1.2% to about 1.4%, from about 1.4% to about 1.6%, from about 1.6% to about 1.8%, or from about 1.8% to about 2.0%.
[0105] While strength, weight, and formability are primary considerations for composite materials, suitable composite materials can also exhibit secondary benefits, such as acoustic properties. Some composite materials mimic a metallic sound. For example, PPS and PEEK are two exemplary thermoplastic polymers that meet the strength and weight requirements of this design while generally emitting a metallic acoustic response upon impact. Alternatively, some composite materials are desirable because they dampen the acoustic response upon impact. Furthermore, geometric features such as ribs or additional thickened regions can be easily incorporated into the wraparound component 100 to damp vibrations caused by specific frequencies upon impact. Damping geometries can be placed in areas of the component that exhibit or vibrate at frequencies with amplitudes that are undesirably greater than other amplitudes of acoustic response. II) Method for manufacturing wraparound components
[0106] The following describes a method for manufacturing a multi-material golf club head similar to the golf club heads described above. Referring to Figure 15, the method includes providing a main component 180, providing a mold 182, injection molding a wraparound component 184, plasma treating the wraparound component 186, bonding the wraparound component onto the main component to form a golf club head 188, and finishing the golf club head 190.
[0107] The primary component 60 may be provided by casting the primary component 60 from a metal material. The primary component 60 may initially be cast as a full body. A portion of the crown 16 and sole 18 of the club head 10 may be laser cut from the full body to leave only the primary component 60. This primary component 60 is finished before the wraparound piece 100 is attached in a joining process.
[0108] The mold 200 may be provided in three parts: an upper mold half 202, a lower mold half 212, and a slide 230. Together, the mold parts may define a cavity 226 that corresponds to the desired shape of the wraparound component 100. In some embodiments, the size of the mold cavity 226 may be slightly different from the desired shape of the wraparound component 100 to account for material shrinkage and springback. The lower mold half 212 may include a center ballast 216 that helps hold the component in place for removal from the mold 200. The mold 200 may further include a sprue 204, a gate 206, an ejector pin 218, cooling lines, and other necessary components.
[0109] Injection molding may be used to produce parts with complex shapes and high impact strength. The process of injection molding the wraparound component 100 involves providing a mold 200 designed to account for the shrinkage, springback, and freeze-off thickness of the injected material. The mold 200 is equipped with a gate 206 and flow leaders that guide the injected material evenly throughout the mold. The even spreading of material within and throughout the mold 200 reduces weld seams. Reducing the size of the weld seams increases the strength of the final part.
[0110] Following injection molding, the wraparound component 100 is plasma treated or the surface of the wraparound component 100 is modified. The plasma treatment process can increase the roughness and raise the surface energy of the exterior surface of the wraparound component 100. This higher surface energy improves the ability of the wraparound component 100 to bond to the main component 60 during the final step of the method.
[0111] Bonding the wraparound component 100 to the main component 60 involves applying an adhesive to the lip 80 of the main component 60 and sliding the wraparound component 100 over the main component 60. The lip of the wraparound component 100 may overlap and bond with the lip 80 of the main component 60. The bonding process may further include allowing the adhesive to dry. In other embodiments, the wraparound component 100 may be mechanically secured to the main component 60, epoxied to the main component 60, or any other suitable method of permanently securing the wraparound component 100 to the main component 60.
[0112] After the bonding step, the complete club head 10 can be polished and cleaned. The club head 10 can be coated, plated, or painted. One or more weights can also be secured to the club head 10. After the club head 10 is completed, it is ready to have a shaft and grip attached to form a fully assembled golf club. 1) Providing the main components
[0113] Providing the main component 60 can begin by casting an unfinished version of the main component 60. The unfinished main component can be cast as a full club body with thinned regions. The thinned regions include at least the toe-end and heel-end regions. The majority of the thinned regions, including the toe and heel-end regions, can be located approximately where the wraparound component 100 will later be attached. The perimeter around the edge of the thinned regions will ultimately form the lip of the main component. The unfinished main component is cast with thinned regions because the thinned regions help the main component retain its desired shape during the casting process. Casting the main component 60 without the thinned regions can result in part warpage and other casting quality issues. Therefore, casting with thinned regions that are later removed ensures that the main component 60 maintains its desired shape so that the wraparound component 100 can fit properly over it during the joining step.
[0114] After the unfinished primary component is removed from the mold in which it was cast, a laser is used to cut out the unnecessary portions of the thinned region, leaving only the peripheral portion that will form the lip 80 of the primary component 60. The heel and toe regions of the thinned region are removed because they are intended to be replaced by the wraparound component 100 of the finished club head 10. The lip 80 can be ground or polished as needed. In some embodiments, the strike face 62 of the club head 10 is integrally cast as part of the primary component 60. In other embodiments, the primary component 60 can be cast without a strike face (with an opening or void in the front of the primary component). In these embodiments, the face plate is provided separately by casting or forging it from a metal material. The face plate can be conventionally welded, laser welded, or swaged into the front opening of the primary component 60. The primary component 60 can be completed by sanding, plasma treating, polishing, or other finishing processes. 2) Provision of molds
[0115] 16-24, in most embodiments, the mold 200 includes an upper mold half 202, a lower mold half 212, and a slide 230. With reference to FIGS. 16 and 19, the upper mold half 202 may include a sprue 204, a gate 206, and a top reservoir 208. With reference to FIGS. 17 and 18, the lower mold half 212 may include a lower reservoir 214 and a center ballast 216. FIG. 20 shows a front view of the upper and lower mold halves 202 and 212, which form the exterior shape of the wraparound component 100, before the slide 230 is added to the mold assembly. With reference to FIG. 21, the slide 230 includes a fork 232 and a lock 236. 22-24, once the top and bottom mold halves 202, 212 are compressed, a slide 230 is inserted between the top and bottom mold halves 202, 212 to form a sealed mold cavity 226 in the general shape of the wraparound component 100. A composite material is then dispensed into the mold cavity 226.
[0116] 16, 19, and 25, the upper mold half 202 includes a sprue 204, an upper mold reservoir 208, and a gate 206. The sprue 204 transfers molten composite material from the screw tip 252 of the injection molding compression screw 244 to the gate 206 of the mold 200. The gate 206 then transfers the material evenly into the upper and lower reservoirs 208 and 214 that form the mold cavity 226. The sprue 204, gate 206, and mold 200 walls interact with the flowing composite material to align at least 50% of the fibers in the direction of flow.
[0117] 17 and 18, the lower mold half 212 includes a lower reservoir 214 and a central ballast 216. The central ballast 216 is integrated into the lower mold half 212. The central ballast 216 further includes at least one ejector pin 218 embedded therein. The central ballast 216 functions to form the shape of the wraparound component 100.
[0118] Referring to FIG. 21 , slide 230 includes a fork 232 and a lock 236. Slide 230 is positioned between upper mold half 202 and lower mold half 212, with fork 232 surrounding central ballast 216 of lower mold half 212. In most embodiments, fork 232 is asymmetrical in shape and includes two prongs 234. In other embodiments, fork 232 may be symmetrical or include one to five prongs 234. Fork 232 functions to surround central ballast 216 and form the complete shape of wraparound component 100. Slide lock 236 functions to hold slide 230 between upper mold half 202 and lower mold half 212 during injection, forming sealed, fixed cavity 226. Without lock 236, mold 200 would leak molten composite material, resulting in an improperly formed component. Flow direction and fiber alignment
[0119] The location of the gate 206 affects the flow direction of the molten composite material through the mold 200. The flow direction of the composite material determines the fiber alignment in the finished wraparound component 100. The fiber alignment determines the strength, particularly the directional strength, of the wraparound component 100. An injection-molded component 100 is strongest in a direction parallel to the average fiber alignment direction. Therefore, the location of the gate 206 in the mold 200 is important to the final structural strength and durability of the wraparound component 100 in order to achieve as much fiber alignment as possible in the front-to-back direction.
[0120] In the illustrated embodiment of the mold 200, the gate 206 is positioned in what will become the rear end 14 of the club head 10. The gate 206 connects to the rear peripheral edge 116 of the wraparound component 100. Specifically, the gate 206 connects to the crown section 110 of the wraparound component 100. As discussed further below, locating the gate 206 adjacent to the rear peripheral edge 116 of the crown section 110 allows the material to flow generally forward, thereby initially aligning the fibers in a generally anterior-posterior direction. This can increase the strength of the final component, as the strength of the composite material is affected by fiber alignment. Furthermore, centering the gate 206 between the toe end 20 and the heel end 22 allows the composite material to flow quickly and evenly throughout the part. In contrast, if the gate 206 were connected to the toe wing 20 or heel wing 22 of the club head 10, for example, the flow of material could create an undesirable weld line in the opposite toe or heel wing 130, 150.
[0121] Referring to Figures 26-29, during the injection molding process, the direction of material flow within the mold will affect fiber alignment. Figures 26, 27, 28, and 29 show mold path simulations (showing material flow direction) for the first, second, third, and fourth stages, respectively. By locating the gate 206 at the rear end 222 of the mold 200 (corresponding to the rear peripheral edge 116 of the wraparound component 100), material first flows forward toward the front end 224 of the mold 200 (opposite the gate 206 and corresponding to the front end 114 of the wraparound component 100). This flow aligns the fibers in the central crown section 110 (the upper reservoir 208 of the upper mold half 202) approximately perpendicular to the strike face 62 (approximately parallel to the YZ plane) in the final club head 10. Fiber Alignment and Strength
[0122] The strength of a composite material in a particular direction is affected by fiber alignment. The fiber alignment direction can vary in different portions of the wraparound component 100, and the directional strength also varies throughout the wraparound component 100. However, because the majority of the fibers are aligned approximately in the anterior-posterior direction, the wraparound component 100 is strongest in the anterior-posterior direction. This fiber alignment and strength is achieved by locating the gate 206 at the rear end 222 of the mold 200 (corresponding to the rear peripheral edge 116 of the wraparound component 100).
[0123] Aligning the fibers substantially perpendicular to the strike face 62 improves the front-to-rear durability of the club head 10. Front-to-rear durability of the crown 16 is necessary to prevent breakage because, upon impact with a golf ball, the primary component sole extension 72 flexes upward, stressing the wraparound component crown section 110. The crown section 110 is compressed between the primary component sole extension 72 and the primary component return 64. Therefore, aligning the fibers in the direction of the expected compressive stresses upon impact with a golf ball reduces the likelihood of breakage within the composite wraparound component 100.
[0124] 28 and 29, material also flows outward toward areas of the lower mold half reservoir 214 corresponding to the toe and heel wings 130 and 150 of the wraparound component 100. The material flows around the peripheral edge of the crown section 110 to form the skirt 24, including the rear peripheral edge 116 and the toe and heel wings 130, 150. The flow of material toward the mold areas corresponding to the toe and heel wings 130, 150 causes the fibers inside the areas of the crown section 110 of the wraparound component 100 to align in a center rear-to-toe direction or a center rear-to-heel direction. In other words, some clusters, groups, or areas of reinforcing fibers at the rear toe end of the crown 16 and the rear heel end of the crown 16 can be aligned between 0 and 90 degrees from the YZ plane in the finished golf club head 10. Some fiber groups may be aligned between 0-20 degrees, 10-30 degrees, 20-40 degrees, 30-50 degrees, 40-60 degrees, 50-70 degrees, 60-80 degrees, or 70-90 degrees from the YZ plane of the finished golf club head 10.
[0125] As shown, fiber groups closer to the heel wing 130 and toe wing 150 may be aligned at a greater angle than fiber groups closer to the center of the crown section 110 (closer to the YZ plane). Additionally, fiber groups closer to the rear end 14 of the club head (closer to the mold gate 206) may be aligned at a greater angle than fiber groups closer to the front end 12 of the club head. This change in fiber alignment is caused by the single gate location 206 and the rounded shape of the rear end 14 of the club head. Material is filled outward from the single gate 206 toward the toe and heel ends 20, 22 of the mold 200, causing an initial steeper angle of the fibers toward the toe and heel ends. However, as the material continues to fill the mold 200 (corresponding to the area of the wraparound component 100 closer to the leading edge 114), the alignment angle of the fibers relative to the YZ plane decreases because the rounded shape of the mold cavity 226 (corresponding to the rounded shape of the wraparound component 100) causes the composite material to flow further forward.
[0126] In some embodiments, 30% to 70%, 40% to 60%, or 45% to 55% of the crown section fibers within 1 inch of the gate 206 are aligned 45 to 90 degrees from the YZ plane (toward the toe end 20 or heel end 22 of the finished club head 10 rather than toward the front end 12). In some embodiments, 20% to 60%, 30% to 50%, or 35% to 45% of the crown section fibers more than 1 inch from the gate but within 2 inches of the gate 206 are aligned between 45 and 90 degrees from the YZ plane. In some embodiments, less than 10%, less than 20%, less than 30%, or less than 40% of the crown section fibers more than 2 inches from the gate 206 are aligned between 45 and 90 degrees from the YZ plane.
[0127] The gate placement corresponding to the rear peripheral edge 116 of the wraparound component 100 results in the reinforcing fibers near the leading edge 114 of the wraparound component being more closely aligned (or at a smaller angle) with respect to the YZ plane (perpendicular to the strike face). In the finished golf club head 10, it is desirable for the region near the front end 12 of the golf club head 10 to have greater strength than the region near the rear end 14, because the highest impact stresses occur at the strike face at the front end. Therefore, by placing the gate at the rear end 222 of the mold 200 instead of the front end 224 of the mold 200, the resulting wraparound component 100 is most durable in the region of the golf club head 10 that will withstand higher stresses during impact.
[0128] In some embodiments, the gate 206 is connected to a portion of the mold 200 corresponding to the thickest portion of the component. In other embodiments, the gate 206 is connected to a portion of the mold 200 corresponding to the thinnest portion of the component. Typically, injection-molded components are weaker adjacent to the location where the gate 206 was connected to the component during manufacturing. For this reason, locating the gate 206 at the rear end 222 of the mold 200 instead of the front end 224 of the mold further improves the durability of the resulting wraparound component 100. However, the crown section 110 to which the gate 206 is attached has a thin geometry and must have flow leaders to facilitate material flow throughout the mold 200. As described further below, the thickened portion 118 and crown connection portions 132, 152 of the wraparound component 100 can function as flow leaders during the injection molding process.
[0129] 34A and 34B show simulated mold flow diagrams of different embodiments of the wraparound component 100, as provided in FIGS. 9A and 9B, respectively. As shown, both embodiments provide a substantially uniform flow path from the gate 206. However, the wide gate and thickened central portion 124 shown in FIGS. 9B and 34B act as additional wide flow leaders that uniformly direct the incoming polymer from the gate 206 toward the leading edge 114 of the crown section 110. In other words, the thickened central portion 124 provides more oriented polymer flow (and therefore fiber alignment) at and near the leading edge 114, even though the thickened central portion 124 does not extend all the way to the leading edge 114. By doing so, the material has a more uniform strength across the central region of the crown 16, as opposed to varying strength across the crown 16 due to changes in fiber alignment angle. Springback, clamshell shape
[0130] The mold cavity 226 generally corresponds to the shape of the resulting wraparound component 100. However, to account for springback (warpage) of injection-molded parts, the mold cavity 226 can be shaped slightly differently than the final desired wraparound component structure 100. As illustrated in FIGS. 9A and 9B , the toe wing 130, heel wing 150, and crown section 116 of the wraparound component 100 together form a clamshell-like shape. The toe wing side edges 136, heel wing side edges 156, and the rear peripheral edge 116 of the crown section 110 together define a cutout configured to receive the sole extension 72 of the main component. The clamshell shape causes the outer surface 102 of the wraparound component 100 to have a slightly larger surface area than the inner surface 104 of the wraparound component 100. This non-uniformity in the outer and inner surface areas affects the geometric shape of the wraparound component 100 after it is molded. The compressive stress on the outer surface 102 exceeds the compressive stress on the inner surface 104, pulling the toe and heel wings 130, 150 slightly outward. This phenomenon is known in the injection molding industry as springback. Springback can cause injection molding to warp the wraparound component 100 into a wider clamshell shape than originally molded. To account for this warpage, the mold 200 can be molded with the wings 130, 150 slightly offset inward from the desired final shape. This allows the wings 130, 150 to spring or warp outward to reach the desired shape. Shrinkage rate
[0131] Composite materials can include a shrinkage factor, which is the amount that a part shrinks or contracts after being removed from a mold. Because composite materials can shrink after being removed from the mold 200, the mold 200 must be designed to be larger than the desired final part shape. Depending on the composite material used, the shrinkage factor can vary. Injection molding of wraparound components
[0132] Injection molding the wraparound component 100 can include the steps of selecting a composite material, drying the composite material, heating the composite material, compressing the heated material into a mold 200, cooling the mold 200 to solidify the composite material into the wraparound component 100, and removing the wraparound component 100 from the mold 200. The success of the injection molding process depends on the thickness and shape of the wraparound component 100, which affect the flow rate. Freeze-off thickness and material flow
[0133] The ability of a composite material to flow through the mold 200 is limited by the type of polymer and resin content. Different polymers can have different freeze-off thicknesses. The freeze-off thickness is the thickness at which the material can no longer flow smoothly through or into the region of the mold 200. Composite materials with lower fiber content typically can be molded into thinner parts. Using composite materials with lower fiber content allows for thinner parts to be molded than would be possible with materials with higher fiber content. Thermoplastic composite materials have different freeze-off thicknesses, i.e., the minimum thickness at which the material will flow through the mold. Using a material with a freeze-off thickness greater than the mold's minimum thickness can result in the material freezing off or incomplete mold filling. Because fiber content affects both the strength and the thickness that can be produced of the final component, the composite material must be selected to reflect the desired geometry and properties of the final component.
[0134] In addition to maintaining the thickness 106 of the wraparound component 100 greater than the freeze-off thickness of the selected composite material, the smooth flow of material through the mold 200 can be improved by tapering the thickness in certain areas of the design of the wraparound component 100 and / or by including structures that act as flow leaders. As discussed above, the wraparound component 100 can include multiple thicknesses across the crown section 110, the toe wings 130, and the heel wings 150. As also discussed above, the wraparound component 100 can include a thickened portion 118 (or a central thickened portion 124) in the crown section 110 and crown connection portions 132, 152 where the toe wings 130 and heel wings 150 join the crown section 110. Due to their thickness and orientation, the thickened portion 118 (or a central thickened portion 124) and the crown connection portions 132, 152 can act as flow leaders. During injection molding, these flow leaders can direct molten composite material toward the front end 224, toe, and heel wing regions of the mold 200. The thickened section 118 (or central thickened section 124) directs material generally toward the front end 224. The crown connectors 132, 152 direct material generally toward the toe wing and heel wing regions. The flow leaders ensure that the mold fills evenly and completely without prematurely freezing off.
[0135] The crown connection 132 of the toe wing 130 can act as a toe wing flow leader. The crown connection 132, having a thickness 140 greater than the rest of the toe wing 130, can provide a channel or highway for material flow during the injection molding process. The crown connection 132 (or toe wing flow leader) allows the composite material to evenly and properly fill the toe wing 130. The crown connection 152 of the heel wing 150 can act as a heel wing flow leader. The crown connection 152, having a thickness 160 greater than the rest of the heel wing 150, can provide a channel or highway for material flow during the injection molding process. The crown connection 152 (or heel wing flow leader) allows the composite material to evenly fill the heel wing 150. Additionally, in the completed wraparound component 100, the added thickness at the toe and heel crown connections 132, 152 can provide strength to support the toe and heel wings 130, 150, respectively.
[0136] In addition to flow leaders, tapering in thickness in portions of the wraparound component structure can contribute to smooth material flow into the mold cavity 226. A slight taper in the thickness of each wing 130, 150 can minimize material and mass while leaving enough thickness for material to flow in certain areas (such as the mold areas corresponding to the edges of the wing) during fabrication of the wraparound component 100. The thicker areas facilitate material flow within the mold 200. The minimum thickness of the toe wing 130 and heel wing 150 is determined by the freeze-off thickness of the material. Weld seam reduction
[0137] The three-sided shape of the toe wing 130 facilitates an even / uniform flow of material to the tip of the wing 130 during the injection molding process. During the injection molding process, the crown connector 132 is formed first. Material then flows toward the leading edge 134 and side edge 136 to form the remainder of the toe wing 130. The shape of the toe wing 130 reduces the size of weld lines in the final wraparound component 100. Weld lines can form during the injection molding process when material fills different portions of the mold 200 at different rates and intersects to form discontinuous flow lines or regions. Weld lines are generally located in the portion of the mold 200 that fills last during the injection molding process.
[0138] In some mold designs, injected material reaches two separate regions of the mold faster than the intermediate region. As the material continues to fill the mold, the material in the two separate regions converges in the intermediate region. The angle and speed at which the material converges in the intermediate region can create a weld seam. In some embodiments, the material on one side of the weld line can have an average fiber orientation that differs from the average fiber orientation on the other side of the weld line. In some embodiments, the average fiber orientation on one side of the weld line can differ by between 5 and 90 degrees. The weld line can be a resin-rich region with up to 50% less fiber content than the surrounding region. Low fiber content can lead to increased structural failure along the weld line. Weld lines can contain up to 90% less strength than the rest of the part. Therefore, it is advantageous to limit the number and size of weld lines. The three-sided shape of the towing 130 minimizes or eliminates the formation of weld lines by providing a geometry that can fill evenly and at a relatively steady rate.
[0139] The three-sided shape of the heel wing 150 facilitates material flow to the tip of the wing 150 during the injection molding process. Material flow within the heel wing 150 can be similar to material flow within the toe wing 130, as described above. Like the toe wing 130, the three-sided shape of the heel wing 150 also reduces or eliminates weld lines in the final component.
[0140] Referring to Figures 30-33, the mold 200 fills at a relatively uniform rate at the toe end 20 and heel end 22 of the mold cavity 226. Figures 30, 31, 32, and 33 show mold-filling simulations at first, second, third, and fourth time points, respectively. Molten composite material 256 flows from the gate 206 into the remainder of the mold cavity 226 along a flow direction 258 moving away from the gate 206. The uniform fill rate is achieved, in part, by the location of the gate 206, one or more flow leaders in the crown section 110, and the toe and heel wing crown connections 132, 152, which act as flow leaders along the skirt 24. The aforementioned three-sided shape and optional thickness tapering of the toe and heel wings 130, 150 may also contribute to the uniform fill rate. The gate 206 initiates the directional spread of material as it is injected into the mold cavity 226. The flow leaders, including the crown connectors 132, 152, facilitate the movement of the composite material across the crown section 110 and into the toe and heel wings 130, 150. The uniform fill rate reduces weld lines in the finished part and increases the durability of the wraparound component 100. Composite material selection and drying
[0141] To injection mold the wraparound component 100, the type of composite material must first be selected. As described above, the wraparound component 100 can include a composite formed from a polymer resin and reinforcing fibers. The polymer resin can include a thermoplastic resin. More specifically, the thermoplastic resin can include a thermoplastic polyurethane (TPU) or a thermoplastic elastomer (TPE). For example, the resin can include polyphenylene sulfide (PPS), polyetheretherketone (PEEK), polyimide, polyamide such as PA6 or PA66, polyamideimide, polyphenylene sulfide (PPS), polycarbonate, engineering polyurethane, and / or other similar materials. The reinforcing fibers can include carbon fiber (or chopped carbon fiber), glass fiber (or chopped glass fiber), graphite fiber (or chopped graphite fiber), or any other suitable filler material. In other embodiments, the composite can include any reinforcing filler that adds strength and / or durability. The composite can be provided in pellets containing both the polymer resin and the reinforcing fibers.
[0142] Each of the aforementioned composite materials must be properly dried before heating the composite. The composite must be dried before injection molding to remove any moisture present in or on the material (often the composite is in pellet form in a large bucket, where water or moisture can be trapped between the pellets). To properly dry the composite, the material is placed in a heated, zero-humidity vacuum and allowed to dry for different lengths of time. This step is necessary because moisture heated and compressed within the injection molding machine can turn into steam and exit the machine at high speeds, high temperatures, and pressures. Any moisture trapped in the composite must be removed before the heating process to prevent damage to the injection molding machine or injury to the machine operator.
[0143] Table A below lists five example polymers that can be used in various embodiments of the wraparound component 100 for a golf club head. The drying temperature can range from 150°F to 350°F. In some embodiments, the drying temperature can be 150°F, 175°F, 200°F, 225°F, 250°F, 275°F, 300°F, 325°F, or 350°F, and the drying time can range from 0 hours to at least 24 hours. In some embodiments, no drying time is required. In other embodiments, the required drying time can be at least 2 hours, at least 4 hours, at least 6 hours, at least 8 hours, at least 10 hours, at least 12 hours, or at least 14 hours. In some embodiments, the required drying time can range from 0 to 2 hours, 2 to 4 hours, 4 to 6 hours, 6 to 8 hours, 8 to 10 hours, 10 to 12 hours, 12 to 14 hours, 14 to 16 hours, 16 to 18 hours, 18 to 20 hours, 20 to 22 hours, or 22 to 24 hours. Furthermore, in some embodiments, the drying time can well exceed the minimum drying time (i.e., drying of nylon 66, which has a minimum drying time of 4 hours, 28 hours). [Table 1] Heating of composite materials
[0144] Once the drying process is complete, the selected composite material can be heated in an injection molding machine. Referring to FIG. 25 , in one embodiment, the injection molding machine includes a hopper (not shown), a compression screw 244, a screw tip 252, and a mold 200. The composite material (in pellet form) is placed in the hopper, which slowly feeds the pellets into the compression screw 244. The compression screw 244 slowly rotates, moving the pellets from the hopper toward the screw tip 252. As the pellets move from the hopper to the screw tip 252, they are heated to various temperatures, causing them to liquefy. The molten composite material passes into the screw tip 252 and is then dispensed from the screw tip 252 into the mold 200, thereby forming the wraparound component 100.
[0145] However, there are various factors that must be considered in an injection molding machine to properly heat the selected composite material. The selected composite material must be heated to various temperatures as it travels from the hopper to the compression screw 244, to the screw tip 252, and then to the mold. Additionally, the compression screw 244 includes three different zones, including a feed zone 246, a transition zone 248, and a metering zone 250, in which the composite material can be heated at different temperatures. In total, there are five different areas of the injection molding machine in which the composite material can be heated at various temperatures to optimize the flow and material properties of each material.
[0146] Referring to Table B below, five example polymers that may be used in various embodiments of the golf club head wraparound component 100 and the heating ranges for each of the five zones of the injection molding machine are provided. [Table 2]
[0147] The temperature in the feed zone 246 of the injection molding machine can range from 350°F to 800°F. In some embodiments, the temperature in the feed zone 246 of the injection molding machine can range from 350°F to 400°F, 400°F to 450°F, 450°F to 500°F, 500°F to 550°F, 550°F to 600°F, 600°F to 650°F, 650°F to 700°F, 700°F to 750°F, and 750°F to 800°F. In other embodiments, the temperature in the feed zone of the injection molding machine can be at least 400°F, at least 500°F, at least 600°F, at least 700°F, or at least 800°F. Additionally, in some embodiments, the temperature in the feed zone 246 of the injection molding machine can be in the ranges provided in Table B above.
[0148] The temperature in the transition zone 248 of the injection molding machine can range from 350°F to 800°F. In some embodiments, the temperature in the transition zone 248 of the injection molding machine can range from 350°F to 400°F, 400°F to 450°F, 450°F to 500°F, 500°F to 550°F, 550°F to 600°F, 600°F to 650°F, 650°F to 700°F, 700°F to 750°F, and 750°F to 800°F. In other embodiments, the temperature in the transition zone of the injection molding machine can be at least 400°F, at least 500°F, at least 600°F, at least 700°F, or at least 800°F. Additionally, in some embodiments, the temperature in the transition zone 248 of the injection molding machine can be in the ranges provided in Table B above.
[0149] The temperature in the metering zone 250 of the injection molding machine can range from 350°F to 800°F. In some embodiments, the temperature in the metering zone 250 of the injection molding machine can range from 350°F to 400°F, 400°F to 450°F, 450°F to 500°F, 500°F to 550°F, 550°F to 600°F, 600°F to 650°F, 650°F to 700°F, 700°F to 750°F, and 750°F to 800°F. In other embodiments, the temperature in the metering zone 250 of the injection molding machine can be at least 400°F, at least 500°F, at least 600°F, at least 700°F, or at least 800°F. Additionally, in some embodiments, the temperature in the metering zone 250 of the injection molding machine can be in the ranges provided in Table B above.
[0150] The temperature at the injection molding machine screw tip 252 can range from 350°F to 800°F. In some embodiments, the temperature at the injection molding machine screw tip 252 can range from 350°F to 400°F, 400°F to 450°F, 450°F to 500°F, 500°F to 550°F, 550°F to 600°F, 600°F to 650°F, 650°F to 700°F, 700°F to 750°F, and 750°F to 800°F. In other embodiments, the temperature at the injection molding machine screw tip 252 can be at least 400°F, at least 500°F, at least 600°F, at least 700°F, or at least 800°F. Additionally, in some embodiments, the temperature at the injection molding machine screw tip 252 can be in the ranges provided in Table B above.
[0151] The temperature of the mold 200 can range from 0°F to 400°F. In some embodiments, the temperature of the mold 200 of the injection molding machine can range from 0°F to 50°F, 50°F to 100°F, 100°F to 150°F, 150°F to 200°F, 200°F to 250°F, 250°F to 300°F, 300°F to 350°F, or 350°F to 400°F. In other embodiments, the temperature of the mold 200 can be at least 0°F, at least 100°F, at least 200°F, or at least 300°F. Additionally, in some embodiments, the temperature of the mold 200 can be in the ranges provided in Table B above. The mold 200 can be maintained at a temperature below the melting point of the composite material such that the molten composite material solidifies within the mold 200. The mold 200 may further include cooling lines for maintaining the mold 200 at a desired temperature. Pouring composite material into the mold
[0152] Once the composite material is heated, the screw tip 252 injects or distributes the molten composite material into the desired mold 200. As the molten composite material is injected into the mold 200, it flows around the central ballast 216 and sliding forks 232, flows downward into the lower reservoir 214, and flows upward into the upper reservoir 208. This forms the rounded or clamshell shape of the wraparound component 100 (the composite material "wraps around" or flows around the central ballast 216 and forks 232). The crown section 110 of the wraparound component 110 is partially formed before the toe wing 130 and heel wing 150 begin to form.
[0153] While the mold 200 described above is designed to form a single wraparound component 100, the mold 200 can also be designed to simultaneously form two, three, four, five, or six wraparound components. For example, Figures 26-29 show the material flow path within a part formed in a mold having two cavities for simultaneously forming two wraparound components. As shown, a sprue feeds material from the compression screw of the injection molding machine to two gates, one for each wraparound component being formed.
[0154] The pressure and speed at which the composite material is dispensed into the mold 200 are just as important as the temperature and direction of the composite material in achieving a strong wraparound component 100. Injection molding machine pressure is hydraulically applied to the compression screw 244 from the back of the injection molding machine. The injection molding machine speed is the rate at which the composite material exits the screw tip 252. The pressure and speed help ensure that the composite material flows evenly through the mold and fills the entire mold cavity 226.
[0155] In most embodiments, the injection pressure of the composite material through the injection molding machine can range from 0 to 100 psi. In some embodiments, the injection pressure of the composite material through the injection molding machine can range from 0 to 10 psi, 10 to 20 psi, 20 to 30 psi, 30 to 40 psi, 40 to 50 psi, 50 to 60 psi, 60 to 70 psi, 70 to 80 psi, 80 to 90 psi, or 90 to 100 psi. In other embodiments, the injection pressure of the composite material through the injection molding machine can be at least 10 psi, at least 20 psi, at least 30 psi, at least 40 psi, at least 50 psi, at least 60 psi, at least 70 psi, at least 80 psi, or at least 90 psi. Five exemplary polymers used in various embodiments of the wraparound component of a golf club head—nylon 66, nylon 6, PP, TPU, and PES—can require an injection pressure range of 25 to 50 psi. In most embodiments, the injection speed of the composite material through the injection molding machine can range from 0.1 inches / second to 10 inches / second. In some embodiments, the injection speed of the composite material through the injection molding machine can range from 0.1 to 1 inches / second, 1 to 2 inches / second, 2 to 3 inches / second, 3 to 4 inches / second, 4 to 5 inches / second, 5 to 6 inches / second, 6 to 7 inches / second, 7 to 8 inches / second, 8 to 9 inches / second, or 9 to 10 inches / second. In other embodiments, the injection speed of the composite material through the injection molding machine can be at least 0.1 inches / second, at least 1 inch / second, at least 2 inches / second, at least 3 inches / second, at least 4 inches / second, at least 5 inches / second, at least 6 inches / second, at least 7 inches / second, at least 8 inches / second, or at least 9 inches / second. Five exemplary polymers used in various embodiments of the wraparound component of a golf club head, nylon 66, nylon 6, PP, TPU, and PES, may require an injection velocity range of 2 to 3 inches per second. Removing the Wraparound Component
[0156] After the composite material is injected into the mold to form the wraparound component 100, the wraparound component 100 is removed from the injection molding machine. Referring to FIG. 24 , the upper mold half 202 is removed from the lower mold half 212 and the slide 230 is removed, leaving the wraparound component 100 disposed around the central ballast 216 of the lower mold half. Without the central ballast 216 of the lower mold half, the slide 230 would not be able to retract without pulling the wraparound component 100 away from the mold cavity 226. The central ballast 216 of the lower mold half prevents the wraparound component 100 from moving when the slide 230 is retracted. At least one ejector pin 218 of the central ballast 216 of the lower mold half then extends from the central ballast 216 to eject the wraparound component 100 from the mold 200, completing the injection molding process.
[0157] In some embodiments of the method, the injection molding step may further include cutting the sprue 204 and gate material 206 that remain attached to the unfinished wraparound component after the injection molding process. The area where the gate 206 is attached may be sanded, ground, polished, or otherwise finished to give the wraparound component 100 its desired shape. Generally, to further hide any remaining imperfections from the injection molding process, the mold 200 may be designed with the gate in a location that is less visible on the final club head 10. For example, in the embodiment described above, by locating the gate 206 on the rear peripheral edge 116 of the crown portion 110 rather than on a flat surface, the gate cutoff is less visible when the club head 10 is in the address position.
[0158] The complete injection molding process can be completed within a period of time known as the cycle time. In embodiments where the mold 200 includes two or more cavities 226 for simultaneously forming two or more wraparound components 100, the part production rate is determined by dividing the cycle time by the number of components produced in one cycle. The cycle time can range from 20 to 120 seconds. In some embodiments, the cycle time ranges from 20 to 60 seconds, 30 to 60 seconds, 40 to 60 seconds, 60 to 90 seconds, 70 to 90 seconds, or 100 to 120 seconds. 4) Plasma treatment of wraparound components
[0159] Once the wraparound part 100 is formed by injection molding, the wraparound component 100 is plasma treated to improve the surface energy of the component. Plasma treatment involves reactive treatment of the component, in which positive and negative ions, electrons, and radicals react and collide (in a vacuum) along the surface of the component, thereby removing any foreign matter from the surface and increasing the surface energy of the component (roughening the surface). Increasing the surface energy microscopically alters the surface of the wraparound component, thus increasing its ability to adhere or bond to other materials (i.e., the main component). This treatment not only cleans the wraparound component 100, but also makes it easier to fasten to the main component in the next step. 5) Joint between wraparound component and main component
[0160] Following plasma treatment of the wraparound component 100, the wraparound component 100 and the main component 60 can be joined to form the golf club head 10. Joining the wraparound component 100 to the main component 60 involves applying an adhesive to the lip 80 of the main component 60 and sliding the wraparound component 100 over the main component 60. The lip of the wraparound component 100 can overlap and join with the lip 80 of the main component 60. The ability of the wraparound component 100 to align and join to the main component 60 depends in part on the type of composite material used to form the wraparound component 100. With certain composite materials, the toe wing 130 and heel wing 150 can bend or flex without breaking. In some embodiments, this flexibility allows the wraparound component 100 to be slightly distorted to fit over the lip 80 of the main component 60.
[0161] The bonding step may further comprise the step of allowing the adhesive to dry. In other embodiments, the wraparound component 100 may be mechanically secured to the main component 60, epoxied to the main component, or any other suitable method of permanently securing the wraparound component 100 to the main component 60. Golf club head finishing
[0162] Once the main component 60 is joined to the wraparound component 100, the golf club head 10 is complete. This step may include polishing, cleaning, coating, and / or painting the club head 10. In some embodiments, this may include adding removable / detachable weights to the golf club head 10 or adding embossed lettering and / or logos to the golf club head 10.
[0163] Because the Rules of golf may change from time to time (e.g., new Rules may be adopted, or old Rules may be eliminated or modified by golf standards organizations and / or governing bodies), golf equipment related to the methods, apparatus, and / or products described herein may or may not conform to the Rules of golf at any particular time. Accordingly, golf equipment related to the methods, apparatus, and / or products described herein may be advertised, offered for sale, and / or sold as conforming or non-conforming golf equipment. The methods, apparatus, and / or products described herein are not limited in this respect.
[0164] Although a particular order of operations is described above, these operations may be performed in other time sequences. For example, two or more operations described above may be performed sequentially, simultaneously, or concurrently. Alternatively, two or more operations may be performed in reverse order. Moreover, one or more operations described above may not be performed at all. The apparatus, methods, and articles of manufacture described herein are not limited in this respect.
[0165] While the invention has been described in relation to various aspects, it will be understood that the invention is capable of further modifications. This application is intended to cover any variations, uses, or applications of the invention which comply with the principles of the invention, including departures from the present disclosure which meet known or customary practice within the art to which the invention pertains.
Claims
1. 1. A method of manufacturing a golf club head, comprising: Providing a main component, casting an unfinished version of the main component from a metallic material, the unfinished version of the main component including a thinned region and a lip; removing a majority of the thinned region to complete the primary component, thereby providing a primary component; providing a mold comprising an upper mold half, a lower mold half, and a slide, the upper mold half forming an upper reservoir, the upper mold half comprising a sprue and a gate, the gate connecting to the upper reservoir; 1. A process for injection molding a wraparound component, comprising: drying the composite material; and heating the composite material to a molten state; closing the mold to form a mold cavity in the shape of the wraparound component; injecting the molten composite material into the mold cavity of the mold; solidifying the composite material into the wraparound component; and removing the wraparound component from the mold, thereby injection molding the wraparound component; and joining the wraparound component to the main component to form a golf club head; the golf club head includes a front end, a rear end, a toe end, a heel end, a crown, a sole, and a skirt connecting the crown and the sole; the main component includes a strike face, a return, and a source extension; the return extends rearward from the strike face and forms a portion of the sole and a portion of the crown; the sole extension extends along the sole from the return end to the rear end of the club head; The method of manufacturing, wherein the wraparound component comprises a crown section, a toe wing, and a heel wing.
2. The method of claim 1 , wherein the sole extension further comprises a weight channel configured to receive a weight.
3. the return and the sole extension of the main component are integrally formed from a first metallic material; The method of claim 1 , wherein the strike face is a face plate formed from a second metallic material and secured within a front cavity of the main component.
4. the crown section of the wraparound component includes a rear peripheral edge; the mold sprue is connected to the mold gate; when injection molding the wraparound component, the molten composite material is injected through the sprue and the gate into the mold cavity of the mold; The method of claim 1 , wherein the gate connects to the mold cavity at a location that becomes the rear peripheral edge of the wraparound component.
5. the wraparound component comprises a composite material including a polymer resin and reinforcing fibers; the polymer resin is a material selected from the group consisting of thermoplastic polyurethane (TPU) and thermoplastic elastomer (TPE); the reinforcing fibers are selected from the group consisting of carbon fibers, glass fibers, and graphite fibers; The method of claim 1 , wherein the reinforcing fibers comprise between 10% and 60% of the weight of the wraparound component.
6. at least 50% of the reinforcing fibers are aligned in the direction of flow within the mold; the composite material has a tensile strength greater than about 110 MPa; The method of claim 1 , wherein the composite material has a tensile modulus of between about 26,000 MPa and about 30,000 MPa.
7. the wraparound component further comprises an inner surface, an outer surface, and a flow leader on the crown section of the inner surface, the flow leader protruding from the crown section of the inner surface; a thickness of the wraparound component is defined as the distance between the outer surface and the inner surface; the flow leader has a thickness in the range of 0.045 inches to 0.060 inches; the remainder of the wraparound component has a thickness in the range of 0.030 inches to 0.045 inches; The method of claim 1 , wherein the flow leader has a thickness greater than a thickness of the remainder of the wraparound component.
8. The wraparound component further comprises an inner surface and an outer surface; a thickness of the wraparound component is defined as the distance between the outer surface and the inner surface; the toe wing and the heel wing are integral with the crown section of the wraparound component and are attached to the crown section along the skirt of the golf club head; the toe wing includes a toe crown connector that follows the skirt and acts as a flow leader; the heel wing includes a toe-crown connector that follows the skirt and acts as a flow leader; the toe crown connector has a thickness greater than the thickness of the toe wing; The method of claim 1 , wherein the heel crown connection has a thickness greater than the thickness of the heel wing.
9. the thinned region of the unfinished primary component comprises a toe end region and a heel end region; the toe end region and the heel end region are located approximately where the wraparound component is intended to be attached to the main component when the wraparound component is joined to the main component; The method of claim 1 , wherein the toe end region and the heel end region are removed to complete the main component.
10. The method of claim 1 , wherein when injection molding the wraparound component, the composite material is first dried for at least two hours.
11. The method of claim 1 , wherein when the wraparound component is injection molded, the composite material is first dried for at least four hours.
12. The method of claim 1 , wherein the composite material is heated to between 550°F and 590°F when injection molding the wraparound component.
13. The method of claim 1 , wherein the composite material is heated to between 520°F and 550°F when injection molding the wraparound component.
14. The method of claim 1 , wherein the composite material is heated to between 430°F and 470°F when injection molding the wraparound component.
15. The method of claim 1 , wherein when injection molding the wraparound component, the molten composite material is injected into the mold at a pressure of 25 psi to 50 psi.
16. The method of claim 1 , wherein when injection molding the wraparound component, the molten composite material is injected into the mold at a rate of between 2 inches per second and 3 inches per second.
17. The method of claim 1 , wherein the wraparound component is plasma treated after injection molding the wraparound component and before bonding the wraparound component to the main component.
18. 2. The method of claim 1, wherein joining the wraparound component to the main component requires applying adhesive to the lip of the main component and sliding the wraparound component over the main component.
19. The method of claim 1 , wherein the step of joining the wraparound component to the main component further comprises applying an adhesive to a lip of the wraparound component.
20. 10. The manufacturing method of claim 1, wherein the golf club head is finished by one or more operations selected from the group consisting of polishing, cleaning, coating, painting, attaching removable weights, and adding embossed lettering to the golf club head.