Racket with improved handle assembly
The sports racket's handle assembly, with an enlarged proximal region and direct butt cap connection, addresses durability issues by enhancing the connection between the butt cap and handle, improving reliability and torsional stability.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-04-20
- Publication Date
- 2026-04-08
AI Technical Summary
Sports rackets suffer from durability issues with the butt cap detaching or loosening from the handle assembly over time, necessitating an improved handle assembly design that enhances reliability and durability.
A sports racket with a handle assembly featuring a tubular frame made of fiber composite material, a pallet, and a butt cap, where the handle portion includes an enlarged proximal region with a larger cross-sectional area, and the butt cap is directly connected to this region without extending over the pallet, using materials like carbon fiber and plastic.
The design significantly improves the durability and reliability of the racket by strengthening the connection between the butt cap and handle, reducing the likelihood of detachment and enhancing torsional stability.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention generally relates to a sports racket. In particular, the present invention relates to a sports racket. In particular, the present invention relates to a handle assembly for a sports racket, the handle assembly including a handle portion having an enlarged proximal region.
Background Art
[0002] Sports rackets such as tennis, racquetball, squash and badminton rackets are well known and generally include a head portion coupled to a handle assembly. The head portion supports a string bed having a plurality of main string segments with a plurality of cross string segments woven alternately. The handle assembly generally includes a handle, a pallet, a butt cap and a grip.
[0003] The pallet is generally formed of a rigid material extending to the proximal end of the handle portion, and the butt cap is attached to the pallet at the proximal end of the racket. Sometimes, the butt cap may come off, loosen or be detached from the racket's pallet over time. Therefore, there is a continuing need for a racket with an improved handle assembly that improves the durability and reliability of the racket's handle assembly and further inhibits the butt cap from coming off or being cut off from the racket's handle portion.
Summary of the Invention
Means for Solving the Problems
[0004] The present invention provides a sports racket comprising a tubular frame formed of a fiber composite material, a pallet, and a butt cap. The frame includes a first end region, a second end region, and an intermediate region. The first and second end regions extend parallel to each other in the handle portion, and the intermediate region forms a portion of the head portion. The handle portion includes a distal region, a proximal region, and a central region positioned between the distal and proximal regions of the handle portion. The central and proximal regions of the handle portion have outer surfaces defining a first and second cross-sectional area, respectively. The second cross-sectional area is larger than the first cross-sectional area. The pallet is coupled to the central region of the handle portion and extends longitudinally, but does not extend over the proximal region of the handle portion. The butt cap is fastened to the proximal region of the handle portion. The butt cap includes a proximal end wall and a circumferential wall. The proximal wall has a length that extends from the proximal end wall around the proximal region of the handle, with less than half the length of the proximal end wall extending onto the pallet.
[0005] According to a key aspect of a preferred embodiment of the present invention, the handle assembly of a sports racket includes a handle base portion formed of a fiber composite material, a pallet, and a butt cap. The handle base portion includes a distal region, a proximal region, and a central region positioned between the distal and proximal regions of the handle base portion. The central and proximal regions of the handle base portion have outer surfaces defining a first cross-sectional area and a second cross-sectional area, respectively. The second cross-sectional area is larger than the first cross-sectional area. The proximal region includes a proximal end and a side wall that forms a polygonal cross-sectional area. The side wall has a first side and a second side. The first side extends from the proximal end and has a length of at least 10 mm. The first side defines a constant polygonal cross-sectional area along the length of the first side. The second side wall defines a cross-sectional area that varies from the first side wall to the central region of the handle base portion. The second side wall portion has a length of at least 10 mm. The pallet is coupled to the central region of the handle base portion and extends longitudinally, but does not extend over the proximal region of the handle portion. The butt cap is fixed to the proximal region of the handle base portion. The butt cap includes a proximal end wall and a circumferential wall. The proximal wall has a length that extends from the proximal end wall around the proximal region of the handle portion, with less than half the length of the proximal end wall extending over the pallet.
[0006] The present invention will be more fully understood from the following detailed description in conjunction with the accompanying drawings described below. Herein, similar reference numerals refer to similar parts. [Brief explanation of the drawing]
[0007] [Figure 1] This is a front perspective view of a racket according to one embodiment of the present invention. [Figure 2] This is a side view of a portion of the layup or configuration of the fiber composite material layers positioned around the bladder and mandrel before molding. [Figure 3] This is an upper perspective view of the layup of the fiber composite material layer with the mandrel removed, the layup of the fiber composite material layer curved to approximate the shape of a racket, and the layup of the yoke fiber composite material. [Figure 4] Figure 7 shows an upper perspective view of the layup of the fiber composite material layers before they are placed inside the racket forming mold. [Figure 5] This is an upper exploded view of the layup of the fiber material layers placed inside the racket forming mold. [Figure 6] Figure 1 is a perspective view of the side end of the handle portion of the racket. [Figure 7] Figure 7A is a cross-sectional view along the line 7A-7A in Figure 6. Figure 7B is a cross-sectional view along the line 7B-7B in Figure 6. Figure 7C is a cross-sectional view along the line 7B-7B in Figure 6 according to an alternative embodiment of the present invention. [Figure 8] Figure 1 is a top view of the handle portion of the racket. [Figure 9] Figure 1 is a side view of the handle portion of the racket. [Figure 10] Figure 1 is a longitudinal cross-sectional view of the racket handle assembly. [Figure 11] This is a top perspective view of the central and proximal regions of the handle, and a longitudinal cross-sectional view of the bat cap of the racket, according to another embodiment of the present invention. [Figure 12] This is a top perspective view of the central and proximal regions of the handle, and a longitudinal cross-sectional view of the bat cap of the racket, according to another embodiment of the present invention. [Figure 13] This is a top perspective view of the central and proximal regions of the handle, and a longitudinal cross-sectional view of the bat cap of the racket, according to another embodiment of the present invention. [Figure 14] This is a top perspective view of the central and proximal regions of the handle, and a longitudinal cross-sectional view of the bat cap of the racket, according to another embodiment of the present invention. [Figure 15] This is a top and side perspective view of the racket torsional stability test assembly with the first weight applied to the racket torsional stability assembly, and the racket undergoing the racket torsional stability test. [Figure 16] Figure 15 is a side perspective view of the first end of the racket torsional stability test assembly. [Figure 17]Figure 15 shows the racket torsional stability test assembly with the first weight removed, and a top and side perspective view of the racket undergoing the racket torsional stability test. [Modes for carrying out the invention]
[0008] Referring to Figure 1, the sports racket is generally indicated by reference numeral 10. Although the racket 10 in Figure 1 is configured as a tennis racket, the present invention can also be formed as other types of sports rackets, such as a racquetball racket, a squash racket, or a badminton racket. The racket 10 includes a frame 12 defining a head portion 14 and a handle assembly 16. In one embodiment, the frame 12 may further include a pair of throat tubes 18 that form a throat region 20 between the head portion 14 and the handle portion 40.
[0009] The frame 12 is preferably formed from a strong, lightweight material such as a fiber composite. As used herein, the terms “fiber composite” or “composite” refer to multiple fibers within a resin and multiple fibers permeating the entire resin. The fibers can be aligned coaxially to form a sheet, layer or ply, braided or woven into a sheet or layer, and / or chopped and randomly dispersed in one or more layers. A single ply typically contains hundreds or thousands of fiber bundles, which are initially arranged in the uncured resin to extend coaxially and parallel to one another. Each fiber bundle contains multiple fibers. The fibers are formed from a material with high tensile strength, such as carbon. Alternatively, the fibers can be formed from other materials such as glass, graphite, boron, basalt, carrot, Kevlar®, Spectra®, poly(p-phenylene-2,6-poly(p-phenylenebenzobisoxazole) (PBO), hemp, flax, other natural fibers, and combinations thereof. In one preferred embodiment, the resin is preferably a thermosetting resin such as epoxy or polyester resin. In another preferred embodiment, the resin may be a thermoplastic resin. The composite material is generally wound around a mandrel and / or equivalent structure and cured under heat and / or pressure. During curing, the resin is configured to flow and spread completely throughout the fiber matrix. In multilayer or ply structures, the fibers can be aligned in different directions with respect to the longitudinal axis 22 and / or braided or woven layer by layer.
[0010] Referring to Figures 2 to 5, a fabricated frame 12 of a racket 10 made of fiber composite material is shown. Figure 2 shows an exemplary configuration of layers of fiber composite material forming a tube 26 of uncured fiber composite material that is wound around or formed around a mandrel 28. The configuration of the layers of fiber composite material of the tube 26 can include a wide range of the number of layers, the length of the layers, the width of the layers, the shape of the layers, the range of fiber angle values of the layers, other arrangements of layers, and combinations thereof, as intended under the present invention. The number of plies used to form the frame 12 can be in the range of 2 to 150. In a preferred embodiment, the number of plies used to form the frame 12, or the head portion 14, throat region 20 and handle portion 40 of the frame 12, can be at least 10 plies. In other embodiments, other numbers of plies may be used.
[0011] The mandrel 28 is a body that is molded as a whole to form the inner surface of the molded part and functions as a core. Layers of uncured fiber composite material can be wrapped around or applied to the core. In one embodiment, the mandrel 28 is an elongated body with a roughly rectangular cross-section with rounded corners. In other embodiments, the mandrel may have other cross-sectional shapes. The bladder 30 is positioned on the outer circumference of the mandrel 28 and fits around the mandrel 28. Each layer is wrapped around or formed around the bladder 30 and the mandrel 28 and conforms to the form or shape of the bladder 30 and the mandrel 28.
[0012] In one embodiment, at least 50 percent of the layers forming the layup or multi-ply tube 26 can be made of carbon fiber. The layup may contain resin, at least 120 g / m² 2 It can have a fiber surface area mass.
[0013] Referring to FIG. 2, when the fiber composite material ply is wound or laid around bladder 30 and mandrel 28, the ply is no longer arranged in a flat sheet, and thus, the fiber bundles and fibers of the ply no longer follow or define generally parallel lines. Rather, the fiber bundles and fibers are adjacent to each other and are curved or otherwise formed to follow substantially the same adjacent path. The fibers remain adjacent to each other, are aligned with each other, and follow substantially similar paths that are essentially parallel (or even coaxial).
[0014] In one embodiment, mandrel 28 may include a pull tab to facilitate pulling or removing mandrel 28 from tube 26 that is wound around bladder 30 and mandrel 28. Referring to FIGS. 3 and 4, when mandrel 28 is removed from bladder 30 and the layup or tube 26, the uncured tube 26 can be gently positioned in the shape of a racket frame. The uncured tube 26 includes a first end region 56, a second end region 58, and an intermediate region 60. The first end region 56 and the second end region 58 are arranged side by side to form the handle portion 40. The intermediate region 60 is used to form the head portion 14 together with the yoke layup 34. The uncured yoke layup 34 can also be formed of a fiber composite material. As shown in FIG. 4, the tube 26 can be shaped like a racket frame, and the yoke layup 34 can be attached to the tube 26.
[0015] Referring to Figure 5, the uncured tube 26 and uncured yoke layup 34 are positioned within the mold cavity 36 of the racket forming mold 38. The mold cavity 36 of the racket forming mold 38 includes a specific shape that defines a specific shape for the handle portion 16 of the frame 12. A supply line 42 can be attached to the bladder 30 to supply air or other gas to the bladder, and the parts of the racket forming mold 38 can be positioned around the tube 26 and yoke layup 34. The bladder 30 can be pressurized to a predetermined pressure with air or other gas, and then the racket forming mold 38 can be heated to a predetermined temperature in an oven or furnace. Upon heat and pressure, the viscosity of the resin in the layer layup within the tube 26 and yoke layup 34 decreases, causing the resin to flow out through the tube 26 and yoke layup 34 within the mold cavity 36, creating a more uniform structure and positioning the fibers in the shape of the mold cavity. After a first predetermined time, the heating of the racket forming mold 38 is stopped, and the tube 26 and yoke layup 34 are cooled and hardened. After a second predetermined time, the racket forming mold 38 is opened, and the racket frame 12 is removed from the mold 38. The frame 12 of the racket 10 can have a weight in the range of 260 gm to 355 gm. In other embodiments, the racket frame can have a weight outside the range of 180 gm to 370 gm.
[0016] Referring to FIG. 1, the head portion 14 is a tubular structure that defines an opening 46 having a generally elliptical shape. The head portion 14 maintains a lattice of strings that form the string bed 48 in a tensioned state. The string bed 48 defines a string bed plane 49. The throat region 20 includes a pair of throat tubes 18 that extend outwardly from the head portion 14 and converge at the handle portion 40. The throat region 20 couples the head portion 14 to the handle portion 40. In one embodiment, the pair of throat tubes 18 are integrally formed with the head portion 14 and the handle portion 40. In an alternative preferred embodiment, the throat region 20 can include an elastomeric isolator (not shown) positioned between the head portion 14 and the handle portion 40. The handle portion 40 extends outwardly from the throat region 20 along the longitudinal axis 22.
[0017] Referring to Figures 6 to 14, the handle assembly 16 is shown in more detail. The handle assembly 16 includes a handle portion 40, a pallet 50, a grip 52, and a butt cap 54. The handle assembly 16 is configured so that the player can grip it with one or both hands during use. Referring to Figure 10, in one embodiment, the handle portion 40 is formed by a first end region 56 and a second end region 58 of the cured tube 26. During molding and curing, the first end region 56 and the second end region 58 expand to take the shape of the surface of the mold cavity and cure together as a single integral member. The first end region 56 and the second end region 58 extend side by side to form a single integral structure. Thus, in such an embodiment, the frame 12 can be formed from a single continuous tube of a material (e.g., fiber composite material) that curves in an intermediate region 60 to form the head portion 14. Next, each side of the continuous tube of material can form a throat tube 18 that converges toward each other in the throat region 20, and the first end region 56 and the second end region 58 of the continuous tube can be arranged side by side to form a handle portion 40. In such embodiments, the frame 12 is formed as a single, integrated structure. In other embodiments, the handle portion 40 can be a tubular structure that does not include an extension of the throat tube 18. In such embodiments, the handle portion 40 may be a tubular structure separate from either the throat portion 20 or the head portion 14 of the frame 12, and may be attached to the throat portion 20 using conventional fasteners, molding techniques, joining techniques, adhesives, or a combination thereof.
[0018] Referring to Figures 6 to 8, the handle portion 40 includes a distal region 62, a proximal region 64, and a central region 66 positioned between the distal region 62 and the proximal region 64 of the handle portion 40. The central region 66 and the proximal region 64 of the handle portion 40 have outer surfaces 68 and 70 that define a first and second cross-sectional area, respectively. Figure 7A shows the first cross-sectional area of the central region 66, which has an octagonal shape. Figure 7B shows the second cross-sectional area of the proximal region 64, which also has an octagonal shape. Figure 7C shows the second cross-sectional area of the proximal region 64, which also has an octagonal shape. In the racket of Figure 7C, the sound and feel of the racket can be improved by filling the tubular frame 12 with a filler material 86. In one embodiment, the filler material 86 can be urethane foam having a total weight in the range of 8 to 14 grams. In other embodiments, other materials such as other foams can be used as the filler material, and the weight of the filler material can also be varied.
[0019] The key feature is that the proximal region 64 of the handle portion 40 is enlarged such that the second cross-sectional area defined by the outer surface 70 of the proximal region 64 is greater than the first cross-sectional area defined by the outer surface 68 of the central region 66. Each of the distal region 62, the proximal region 64, and the central region 66 has an outer surface that defines a polygonal cross-sectional shape. In other embodiments, other cross-sectional shapes such as elliptical, circular, and irregular shapes can be used. The proximal region 64 of the handle portion 40 includes a proximal end 72 and a side wall 74 having a first length l1 and a second length l2. The first length l1 of the side wall 74 can define a constant polygonal cross-sectional area extending in the direction from the proximal end 72 of the proximal region 64 toward the head portion 14. In one embodiment, the first length l1 can be at least 10 mm. In other embodiments, the first length l1 can be in the range of 10 to 50 mm. In other embodiments, the first length l1 can be in the range of 10 to 30 mm. Figures 11 to 13 show three examples in which the first length l1 is of a different length, thereby increasing or decreasing the length and size of the proximal region 64 of the handle portion 40. The second length l2 of the side wall 74 has a cross-sectional area that changes from the first length l1 to the central region 66 of the handle portion 40. The second length l2 can be at least 10 mm. The central region 66, the second length l2 of the proximal region 64, and the distal region 62 can define a recess 80. The recess 80 can have a depth d of at least 2 mm, defined by the outer surface 76 of the central region 66 and the outer surface of the proximal region 64. In other embodiments, the depth d of the recess 80 can be in the range of 1 to 10 mm. The recess 80 can extend uniformly and inward on both sides of the central region 66 of the polygon such that the second cross-sectional area of the proximal region 64 is larger than the first cross-sectional area of the central region 66.
[0020] Referring to Figure 14, in another embodiment, the proximal region 64 can be formed to have a continuously variable cross-sectional shape from the proximal end 72 to the central region 64 of the handle portion 40. In such an embodiment, the handle portion does not necessarily need to have two separate lengths l1 and l2 defined by a region of constant and variable cross-sectional area, but rather has one total length l3 defining a continuously variable cross-sectional shape. In the embodiment of Figure 14, the cross-sectional shape is polygonal (e.g., octagonal) and decreases in size from the proximal end 72 to the central region 64. In other embodiments, the cross-sectional area can take other shapes and can be varied in other ways, such as by a specific sub-length, a substantially convex shape, a substantially concave shape, or a variable amount of tapering. In each case, the proximal region 64 is enlarged to allow direct connection or attachment of the butt cap 54 to the proximal region 64.
[0021] Referring to Figure 10, the pallet 50 is coupled to the central region 66 of the handle portion 40 and extends longitudinally, but does not extend over the proximal region 64 of the handle portion 40. For the purposes of this specification, the term “coupled” means connected directly or indirectly. In one embodiment, the pallet 50 is positioned on the central region 66 of the handle portion 40. In other embodiments, the pallet 50 may also be positioned over the proximal region 64 and a portion of the distal region 62 of the handle portion 40. In each case, the pallet 50 is formed or sized to match the contour of the central region 66 and any portion of the proximal region 64 and / or distal region 62 over which the pallet 50 may extend. In one embodiment, the pallet 50 can be overmolded onto the handle portion 40. In other embodiments, the pallet 50 can be applied to the handle portion via other means such as adhesive, one or more fasteners, interlocking fits, and combinations thereof. The pallet 50 preferably has a polygonal cross-sectional shape, such as an octagon, formed by eight outer longitudinally extending surfaces interconnected along eight longitudinally extending gripping edges. In an alternative preferred embodiment, the pallet 50 may have an alternative cross-sectional shape, such as other polygons, ellipses, circles, and irregular shapes. The pallet 50 is made of a strong, lightweight, and durable material, such as rigid polyurethane foam. Alternatively, the pallet 50 may be made of other materials, such as other structural polyurethane foams, other structural foams, plastic materials, or wood. In another embodiment, the pallet 50 may be made of an elastomer material that can be stretched over the handle portion 40. In a preferred embodiment, the pallet 50 has a length of 4.0 to 9.5 inches. And in a particularly preferred embodiment, the pallet 50 has a length of approximately 6.0 to 8.0 inches.
[0022] The butt cap 54 is fastened to the proximal region 64 of the handle portion 40, covering the proximal end 72 and at least a portion of the outer surface 70 of the proximal region 64. The butt cap 54 is formed from a lightweight and durable material such as plastic. Alternatively, the butt cap can be formed from other materials such as nylon, wood, thermosetting materials, thermoplastic materials, and combinations thereof. The butt cap 54 includes a proximal end wall 84 and a peripheral wall 82 that extends around the proximal region 64 of the handle portion 40 without extending from the proximal end wall 84 onto the pallet 50. In one embodiment, the peripheral wall 82 extends over a first length l1 of the proximal region 64. In one embodiment, the butt cap 54 is directly connected to the proximal region 64 of the handle portion 40. In other embodiments, the butt cap 54 can be fastened to the proximal region 64 via one or more fastening mechanisms such as adhesive, pins, screws, nails, rivets, staples, interlocking fits, and combinations thereof. In one embodiment, the butt cap 54 is fixed to the proximal region 64 via one or more staples. The peripheral wall 82 has a length that extends from the proximal end wall 84 around the proximal region 64 of the handle portion 40, with less than half the length of the proximal end wall extending over the pallet 50. In one embodiment, the butt cap 54 is fixed to the proximal region 64 of the handle portion 40 such that the peripheral wall 82 extends over the proximal region 64 and less than half the length of the peripheral wall 82 can extend over a portion of the pallet 50. The length of the peripheral wall 82 is measured with respect to the longitudinal axis 22 of the racket 10 and extends from the proximal end wall 84 to the distal edge of the peripheral wall 82 of the butt cap 54. In another embodiment, less than a quarter of the length of the peripheral wall 82 can extend over the pallet 50. In yet another embodiment, the peripheral wall 82 extends only over the proximal region 64 of the handle portion 40 and not over the pallet 50.
[0023] The enlarged proximal region 64 of the handle portion 40 allows the butt cap 54 to be connected to the proximal region 64 without the peripheral wall 82 extending over the pallet 50. The proximal region 64, formed of fiber composite material, is stronger and more durable than the pallet 50. Therefore ,By directly connecting the butt cap 54 to the proximal region 64, the durability of the butt cap 54 and the racket 10 is significantly improved. Conventional racket butt caps are generally connected to a less durable pallet, which generally extends all the way to the proximal end of the racket. The pallet is weaker than the proximal region 64 of the handle 40 and is prone to cracking or breakage. When the racket is dropped, the butt cap may hit the ground or other surface. In addition, players often grip the butt cap when serving or performing other tennis strokes. Therefore, the butt cap is subjected to a lot of stress during use. With repeated use over long periods, the connection of the butt cap to the pallet weakens, and the butt cap may even loosen, detach from the racket, and / or separate. in the region Connect directly and This significantly strengthens the connection between the butt cap 54 and the handle portion 40, thereby greatly improving the overall reliability and durability of the racket 10.
[0024] The grip 52 is applied across the outer surface of the pallet 50, a portion of the proximal region 64, and a portion of the peripheral wall 82 of the butt cap 54. In one embodiment, the grip 52 includes adhesive tape. Alternatively, the grip 52 can be attached to the pallet 50 and the proximal region 64 by other means, such as conventional fluid adhesives, thermal bonding, or mechanical bonding. The grip 52 is an elongated strip of a soft and durable material. The grip 52 can be made of leather, synthetic leather, rubber, other thermosetting materials, thermoplastic materials, or combinations thereof. The grip 52 is generally wound spirally or helically around the outer surface of the pallet 50. In an alternative preferred embodiment, the grip 28 can be a tubular member slidably connected to the outer surface of the pallet 50 and the proximal region 64.
[0025] Referring to Figures 15-17, Wilson Sporting Goods conducted a racket torsional stability test using a racket torsional stability test assembly 140. The racket torsional stability test includes a frame 142 having a first test fixture 144 and a second test fixture 146 for mounting the racket 10 at a first position 148 and a second position 150, respectively. The term “racket torsional stability test” means the test that fits the following description. Remove the string bed from the head portion 14 of the frame 12, and remove the grip 52 and butt cap 54 from the handle assembly 16 of the racket 10. Position the racket 10 in the first test fixture 144 and the second test fixture 146 with the longitudinal axis 22 and the string bed plane 49 of the racket 10 parallel to the ground. The first test fixture 144 clamps and secures a handle assembly 16 without a grip and butt cap, and is pivotably mounted on a frame 142, allowing for pivotal or rotational movement of the first fixture 144 (and the handle assembly 16 clamped to the first fixture 144) about the longitudinal axis 22 of the racket 10. The first test fixture 144 further includes the first test fixture 144 and an arm 152 projecting or extending radially from the longitudinal axis 16. The arm 152 includes one or more indexes 154 for receiving a first weight 156 at a predetermined distance from the longitudinal axis 16. In one embodiment, the first weight weighs 6.9 kg, and the predetermined distance is 40 cm from the longitudinal axis 22. The second test fixture 146 clamps and secures the head portion 18 of the racket 10 in a fixed position with the string bed plane 49 of the racket 10 positioned parallel to the ground. A digital inclinometer 160, such as a Wixey® digital angle gauge, model number WR300, type 2, manufactured by Barry Wixey Development in Sanibel, Florida, is detachably mounted on a second test fixture 144 along the longitudinal axis 22. A first weight 156 is attached to an arm 152 at a predetermined distance of 40 cm from the axis 22. The first weight 156 attached to the arm 152 applies a torsional load to the handle assembly 16 of the racket 10, causing the first test fixture 144 (and the handle assembly 16) to rotate around the frame 142 and the longitudinal axis 22.Referring to Figure 17, the digital inclinometer 160 is set to zero and the first weight 156 is removed. The angular deflection or movement of the arm 152 and handle assembly 16 relative to the longitudinal axis 22 is measured. The rackets shown in Figures 15 to 17 are stringless, but the racket torsional stability test can also be performed on rackets with strings. In the claimed invention, the racket tested in the racket torsional stability test is stringless.
[0026] Six rackets were subjected to racket torsional stability tests. The first set of three rackets consisted of three existing Wilson® Blade® v7.0 rackets, which did not include the enlarged proximal region 64 of the handle portion 40. In the first set of three Wilson® Blade® v7.0 rackets, the cross-sectional area of the handle portion 40 was rather constant from the central region 66 of the handle portion 40 to the proximal end 72. In addition, the pallet 50 also extended to the proximal end 72 of the handle portion 40, and the butt cap 54 was attached to the pallet 50 in a conventional manner. The second set of three rackets consisted of prototype rackets, which were identical to the three Wilson® Blade® v7.0 rackets in the first set, except that the handle portion 40 was formed by enlarging the proximal region 64 of the handle portion 40 according to an embodiment of the present invention, as shown in Figures 9 and 10. The results of the racket lateral bending tests for the three rackets in the first and second sets are listed in Table 1 below. All rackets were tested without strings.
[0027] [Table 1]
[0028] The results of racket torsional stability tests of three existing rackets from a first set, compared to three prototype rackets from a second set having an enlarged proximal region 64 of the handle portion 40, demonstrated a significant improvement in racket torsional stability or a reduction in the amount of angle deflection of the rackets under test. The three prototype rackets with the enlarged proximal region 64 of the handle portion 40 showed that the torsional angle deflection values were at least 13.3 percent lower or better than those of the corresponding existing rackets. The prototype rackets showed an angle deflection value of 4.7 degrees or less under racket torsional stability tests. Therefore, rackets formed according to the present invention provide a more durable butt cap connection to the handle assembly and also significantly improve torsional stability.
[0029] While preferred embodiments of the present invention have been described and illustrated, many other configurations can be conceived by those skilled in the art. Therefore, the present invention is not limited to those described above, but is limited only by the scope and spirit of the appended claims.
Claims
1. A sports racket comprising a tubular frame formed of a fiber composite material, a pallet, and a butt cap, The tubular frame includes a first end region, a second end region, and an intermediate region. The first end region and the second end region extend side by side to form a part of the handle portion of the sports racket. The aforementioned intermediate region forms a part of the head portion of the sports racket. The first and second end regions of the integrated tubular frame include a distal region, a proximal region, and a central region positioned between the distal region and the proximal region. The central region and the proximal region of the integrated tubular frame have a first outer surface and a second outer surface that define a first cross-sectional area and a second cross-sectional area, respectively. The second cross-sectional area is larger than the first cross-sectional area. The pallet is coupled to the central region of the integrated tubular frame and extends in the longitudinal direction, but does not extend to the proximal region of the integrated tubular frame. The butt cap is fastened and secured to the proximal regions of the first and second end regions of the integrated tubular frame. The butt cap includes a proximal end wall and a circumferential wall, A sports racket wherein the peripheral wall is directly connected to the second outer surface and has a length extending from the proximal end wall around the proximal region of the integral tubular frame, with less than half the length of the peripheral wall extending onto the pallet.
2. The sports racket according to claim 1, wherein the second cross-sectional area is polygonal in shape.
3. The sports racket according to claim 1, further comprising a grip placed on the aforementioned pallet.
4. The sports racket according to claim 1, wherein the intermediate region of the tubular frame further forms a pair of throat tubes between the head portion and the handle portion.
5. The sports racket according to claim 1, wherein the bat cap is directly connected via adhesive to the proximal regions of the first and second end regions of the integrated tubular frame.
6. The sports racket according to claim 1, wherein the butt cap is connected to the proximal regions of the first and second end regions of the integrated tubular frame by a fastening mechanism selected from the group consisting of adhesive, staples, nails, rivets, pins, screws, interlocking fits and combinations thereof.
7. The sports racket according to claim 2, wherein the proximal region includes a side wall having the second outer surface and forming the second cross-sectional area.
8. The first end region and the second end region of the integrated tubular frame include a proximal end, The sports racket according to claim 7, wherein the side wall has a first length that defines a certain polygonal cross-sectional area extending in the direction toward the head portion from the proximal ends of the first end region and the second end region of the integrated tubular frame.
9. The sports racket according to claim 8, wherein the first length of the side wall, measured from the proximal end toward the head portion, is at least 10 mm.
10. The sports racket according to claim 8, wherein the first length of the side wall, measured from the proximal end toward the head portion, is in the range of 10 to 50 mm.
11. The sports racket according to claim 8, wherein the side wall further defines a second length having a cross-sectional area that changes from the first length to the central region of the first and second end regions of the integrated tubular frame.
12. The sports racket according to claim 11, wherein the second length of the side wall is at least 10 mm.
13. The sports racket according to claim 11, wherein the second length defines a depth of at least 5 mm.
14. The sports racket according to claim 1, wherein the proximal end wall of the butt cap does not extend onto the pallet.
15. The sports racket according to claim 1, wherein the proximal region of the first end region and the second end region of the integrated tubular frame is larger than other longitudinal positions along the distal region and the central region of the first end region and the second end region of the integrated tubular frame.
16. The sports racket according to claim 1, wherein the entire peripheral wall of the bat cap does not extend onto the pallet.
17. The sports racket according to claim 1, wherein the peripheral wall of the bat cap abuts against the second outer surface.
18. The sports racket according to claim 1, wherein the peripheral wall of the bat cap has a minimum thickness, and a portion of the peripheral wall of the bat cap is positioned transversely at a distance less than the minimum thickness from the second outer surface.
19. The sports racket according to claim 1, wherein the distal regions of the first and second end regions of the integrated tubular frame have a third outer surface that defines a third cross-sectional area larger than the first cross-sectional area, thereby holding the pallet longitudinally along the central region between the proximal region and the distal region.
20. A sports racket extending along its longitudinal axis, A one-piece tubular frame formed from a fiber composite material, having a first end region, a second end region and an intermediate region, wherein the first and second end regions extend parallel to each other in the handle portion, the intermediate region forms part of the head portion, the handle portion includes a distal region, a proximal region and a central region located between the distal and proximal regions of the handle portion, the central region and the proximal region of the handle portion each having outer surfaces defining a first cross-sectional area and a second cross-sectional area, the second cross-sectional area being larger than the first cross-sectional area and larger than any other longitudinal position along the distal and central regions of the handle portion; A pallet connected to the central region of the handle portion and extending longitudinally over the central region, but not extending over the proximal region of the handle portion; and A butt cap fixedly attached to the proximal region of the handle portion, the butt cap includes a proximal end wall and a circumferential wall, the circumferential wall having a length extending from the proximal end wall and extending around the proximal region of the handle portion, but less than half the length of the circumferential wall extending onto the pallet, and Equipped with, A sports racket in which the proximal end wall of the bat cap does not extend onto the pallet.
21. The sports racket according to claim 20, wherein the entire peripheral wall of the bat cap does not extend onto the pallet.
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