METHOD FOR REDUCING VIBRATION IN CLUB SHAFT
20190151731 ยท 2019-05-23
Inventors
Cpc classification
B32B2266/0228
PERFORMING OPERATIONS; TRANSPORTING
B32B1/00
PERFORMING OPERATIONS; TRANSPORTING
B32B3/04
PERFORMING OPERATIONS; TRANSPORTING
B32B5/18
PERFORMING OPERATIONS; TRANSPORTING
B32B5/24
PERFORMING OPERATIONS; TRANSPORTING
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A golf club is disclosed having a shaft which reduces or dampens vibrations. A method for making the golf club is also disclosed. A cavity is centrally formed within the shaft and a viscoelastic material is disposed within the cavity. The viscoelastic material forms a network of elastic dampeners configured to attenuate propagation of vibrational energy through the shaft.
Claims
1. A golf club comprising: a head having a club face; a shaft connected to the head; a cavity centrally formed within the shaft and extending along a longitudinal axis thereof; and, a viscoelastic material disposed within the cavity; wherein the viscoelastic material forms a network of elastic dampeners configured to attenuate a propagation of vibrational energy through the shaft.
2. The golf club of claim 1, wherein the viscoelastic material adheres to an internal surface of the cavity.
3. The golf club of claim 1, wherein the viscoelastic material substantially fills the cavity along one or more longitudinal length segments of the shaft.
4. The golf club of claim 3, wherein the viscoelastic material substantially fills the cavity of the shaft along a total longitudinal length of the shaft.
5. The golf club of claim 3, wherein the viscoelastic material substantially fills some of the one or more longitudinal length segments of the shaft and the other one or more longitudinal segments are empty.
6. The golf club of claim 1, wherein the shaft has an inner diameter and an outer diameter, and an outer dimension of the viscoelastic material coincides with the inner diameter of the shaft.
7. The golf club of claim 1, wherein the viscoelastic material is a viscoelastic foam.
8. The golf club of claim 7, wherein the viscoelastic foam adds no more than about 8 grams to the shaft.
9. The golf club of claim 7, wherein the viscoelastic foam is polystyrene.
10. The golf club of claim 1, wherein the viscoelastic material is a two-part cured soft urethane foam.
11. The golf club of claim 10, wherein the two-part cured soft urethane foam adds no more than about 8 to 10 grams to the shaft.
12. The golf club of claim 1, wherein the viscoelastic material is disposed within at least one of a lower section of the shaft, an upper section of the shaft, and a middle section of the shaft.
13. The golf club of claim 12, wherein said viscoelastic material in said lower section of said shaft is of a lower density than said viscoelastic material in said middle section of said shaft and said upper section of said shaft.
14. A golf club comprising: a head having a club face; a shaft connected to the head and having an annular cross-section with an inner and an outer diameter; a cavity defined by the inner diameter of the shaft and extending along a longitudinal axis thereof; and, a vibration dampening material disposed in the cavity along one or more longitudinal length segments of the shaft, the vibration dampening material forming a network of elastic dampeners configured to attenuate a propagation of vibrational energy through the shaft, wherein voids of vibration dampening material are substantially absent from the cavity at the one or more longitudinal length segments having vibration dampening material disposed therein.
15. The golf club of claim 14, wherein voids of vibration dampening material are substantially absent from the cavity along a total longitudinal length of the shaft.
16. The golf club of claim 14, wherein voids of vibration dampening material are substantially absent from the cavity along some of the one or more longitudinal length segments of the shaft and the other one or more longitudinal length segments are empty.
17. The golf club of claim 14, wherein the vibration dampening material is selected from at least one of a viscoelastic foam and a two-part cured soft urethane foam.
18. A method of making a golf club comprising the steps of: providing a shaft having a centrally formed cavity extending along a longitudinal axis of the shaft; substantially filling the cavity with a viscoelastic material along one or more longitudinal length segments of the shaft; and, allowing the viscoelastic material to rest and adhere to an internal surface of the cavity along the one or more longitudinal length segments of the shaft, wherein the viscoelastic material forms a network of elastic dampeners configured to attenuate a propagation of vibrational energy through the shaft.
19. The method of claim 18, further comprising substantially filling the cavity with the viscoelastic material along a total longitudinal length of the shaft.
20. The method of claim 18, further comprising substantially filling the cavity with the viscoelastic material along some of the one or more longitudinal length segments of the shaft and not others.
21. The method of claim 18, wherein the viscoelastic material is selected from at least one of a viscoelastic foam and a two-part cured soft urethane foam.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] For a better understanding of the present disclosure, reference may be had to the following detailed description taken in conjunction with the accompanying drawings in which:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF THE DISCLOSURE
[0033] Referring to
[0034] The golf club 10 also includes a shaft 16 connected to the club head 12. The shaft 16 has a predetermined length and resonant frequencies over a predetermined range. The shaft 16 is hollow and may be manufactured from a variety of materials commonly known in the art. The shaft 16 has a grip 18 at its end opposite the club head 12 which is grasped by the golfer during play.
[0035] With reference to
[0036] As illustrated in
[0037] In accordance with another aspect of the embodiment, there are several (such as three) segments of the shaft 16 which have cavities 22 filled with the viscoelastic material 20, and several (such as two) segments of the shaft which are empty cavities 22 and are interposed between the foam filled segments. The foam segments may be formed from one or more types of foam such as polyurethane foam or polystyrene foam. The foams can be formed of various density foam, such as a low density foam near the bottom end of the shaft and higher density foams near the upper end of the shaft. That is, the foam density can continuously increase along the length of the shaft. This helps reduce the overall weight of the shaft.
[0038] The exemplary viscoelastic material 20 of the present disclosure is low weight, flexible, and acts to reduce vibration in the golf club shaft 16. Moreover, exemplary golf clubs including the viscoelastic material 20 emit a different sound and resonance in response to a vibration event than that of a standard golf club shaft. In some embodiments, the viscoelastic material 20 has intrinsic characteristics which allow adhesion to the internal surface of the cavity 22. However, in other embodiments, an adhesive layer (not shown) interposed between the viscoelastic material 20 and the internal surface of the cavity 22 can also be included to provide or enhance adhesion therebetween. Viscoelastic material can be polystyrene or polyurethane foam.
[0039] In some embodiments of the present disclosure, the viscoelastic material 20 is a viscoelastic foam. The viscoelastic foam is configured to substantially or entirely fill the hollow internal portion or cavity 22 of the golf club shaft 16, along either the entire longitudinal length of the shaft or along only some longitudinal length segments. The exemplary viscoelastic foam 20 is initially poured or injected into the cavity 22 as a liquid or semi-liquid, bubbles up, expands to completely fill the cavity. The viscoelastic foam 20 is allowed to rest or dry over time, if necessary, and thereafter bonds/adheres to the internal surface of the cavity. The bonded foam cells of the viscoelastic foam 20 form a network of elastic dampeners that attenuate the propagation of vibrational energy through the shaft wall. That is, vibration in the golf club shaft 16 is reduced. The expanded viscoelastic foam is low weight and flexible. For example, the expanded viscoelastic foam adds no more than about 5 to 10 grams of weight to the shaft. In some particular embodiments, the expanded viscoelastic foam adds no more than about 8 grams of weight to the shaft. Such an exemplary low weight is advantageously unnoticeable to most golfers. In particular embodiments, the viscoelastic foam 20 is polystyrene.
[0040] Use of expanded foam for the viscoelastic material 20, such as in the aforementioned exemplary embodiments, results in an increased smoothness when the club head 12 contacts an associated golf ball. That is, the viscoelastic foam causes vibration to be absorbed within the shaft instead of being transmitted through the shaft to the golfer's hands. As such, the feel of the club is improved, golfer comfort is increased, and golfer fatigue is reduced. Moreover, the shaft does not show any sign of vibration and emits less sound when dropped, thus adding perceived value to the shaft during demonstrations, for example.
[0041] In other particular embodiments, the viscoelastic material 20 is a two-part cured soft urethane foam. The two-part cured soft urethane foam is configured to substantially or entirely fill the hollow internal portion or cavity 22 of the golf club shaft 16, along either the entire longitudinal length of the shaft or along only some longitudinal length segments. The exemplary viscoelastic urethane material is initially poured or injected as a liquid or semi-liquid into the cavity 22, bubbles up and fills the entirety of the shaft interior. The viscoelastic urethane material 20 is allowed to rest or cure over time, thereafter bonding or adhering to the internal surface of the cavity.
[0042] One key aspect of the exemplary viscoelastic urethane is that flexibility is retained as the material cures. That is, the material cures soft, not as a hard solid, but still adheres to the inside of the shaft. The exemplary two-part urethane also cures with closed cell structure and a low hardness (as measured with a durometer). The bonded foam cells of the viscoelastic two-part cured soft urethane foam 20 form a network of elastic dampeners that attenuate the propagation of vibrational energy through the shaft wall. That is, vibration in the golf club shaft 16 is reduced. Moreover, the exemplary cured two-part soft urethane foam is low weight and flexible. For example, the cured two-part soft urethane foam adds no more than about 5 to 12 grams of weight, including about 8 to 10 grams. Such an exemplary low weight is advantageously unnoticeable to most golfers.
[0043] Use of a two-part cured soft urethane foam for the viscoelastic material 20, such as in the aforementioned exemplary embodiments, also results in an increased smoothness when the club head 12 contacts an associated golf ball, since vibration is absorbed within the shaft instead of being transmitted through the shaft to the golfer's hands. As a result, the feel of the club is improved, golfer comfort is increased, and golfer fatigue is reduced. Moreover, the shaft does not show any sign of vibration and emits less sound when dropped, thus adding perceived value to the shaft during demonstrations, for example.
[0044] With reference to
[0045]
[0046]
[0047]
[0048]
[0049] Moreover, while the partially filled golf club shafts in
[0050] Thus, in accordance with one aspect of the embodiments of the present disclosure, a method for reducing vibration of a golf club shaft, and the golf club shaft produced thereby, is provided. In accordance with another aspect of the embodiments of the disclosure, the material that is filled into the shaft is of low weight and retains flexibility. In a further aspect of the embodiments disclosed herein, a viscoelastic expanded foam is very effective at reducing vibration and is used as the filling material. In another aspect of the embodiments of the disclosure, a two-part cured soft urethane foam which is very effective at reducing vibration is used as the filling material. Another aspect of the embodiments of the disclosure is a difference in sound and resonance compared with standard golf club shafts, which adds perceived value to the shaft during demonstrations. An additional aspect of the embodiments of the disclosure is a shaft being substantially entirely filled or partially filled with viscoelastic material.
[0051] The exemplary embodiment has been described with reference to the preferred embodiments. Obviously, modifications and alterations will occur to others upon reading and understanding the preceding detailed description. It is intended that the exemplary embodiment be construed as including all such modifications and alterations insofar as they come within the scope of the above disclosures or the equivalents thereof.