Putter-type golf club head

Information

  • Patent Grant
  • 9694259
  • Patent Number
    9,694,259
  • Date Filed
    Tuesday, January 28, 2014
    10 years ago
  • Date Issued
    Tuesday, July 4, 2017
    7 years ago
Abstract
A putter-type golf club head that, when oriented in a reference position, includes a striking wall extending in the heel to toe direction and defines a substantially planar striking surface for hitting a golf ball. A central elongate member is in communication with, and extends rearward from, the striking wall. An upper surface of the central elongate member includes a plurality of alignment elements. At least one of the plurality of alignment elements has a parallel visual indicator section, at least a portion of which extends substantially parallel to the striking surface. The width of the at least one of the plurality of alignment elements is substantially equivalent to the diameter of a golf ball.
Description
BACKGROUND

A critical component of effective putting is the ability to properly align a putter-type golf club with the cup. To better facilitate this proper alignment, various solutions have previously been proposed and manufactured. For example, as evidenced by U.S. Pat. Nos. D401,636 and D429,297, a putter-type golf club head has been produced with grooves on its upper surface that are perpendicular to the striking surface of the club head. As evidenced by U.S. Pat. Nos. 6,905,420 and 6,679,782, a putter-type golf club head has also been produced with a “2-ball” design, in which multiple circular elements are provided on the upper surface of the club head. These circular elements are typically centered on an imaginary vertical plane extending rearwardly and perpendicularly from a center point of the striking surface of the putter-type club head. Such design attempts do not, however, adequately provide feedback to the golfer in a manner that avoids strain and unnecessary mental computation. The result is a golfer's loss of confidence in his equipment and greater difficulty in applying a smooth and accurate putting stroke.


SUMMARY

The conventional grooves and circular alignment elements often fail to result in effective alignment of the putter-type golf club head with the cup, thereby frequently resulting in erroneous shots. Accordingly, it is an object of the present invention to provide a putter-type golf club head with more effective alignment elements.


According to experiments carried out by the present inventors, the presence of at least one rectangular alignment element, such as a rectangle or square, allowed a golfer to more effectively align the putter-type golf club head with the cup than the “2-ball” design. One explanation for this improvement is the right-angle characteristic of rectangles and squares, in which one visual indicator section, for example an edge, of the at least one alignment element was parallel to the striking surface of the club head and another edge extended parallel to the travelling direction of the golf ball. Also according to the experiments carried out by the present inventors, by making the width of the at least one alignment element substantially equal to the diameter of the golf ball, heel-to-toe (translational) alignment was improved, thereby further reducing the likelihood of off-centered shots.


Thus, one example of the putter-type golf club head according to one or more aspects of the present invention may include a striking wall having a substantially planar striking surface. A central elongate member may extend rearward from the striking wall, and an upper surface of the central elongate member may include a plurality of alignment elements. At least one of the plurality of alignment elements may have an edge that extends substantially parallel to the striking surface, and the width of the at least one alignment element may be substantially equivalent to the diameter of a golf ball.


In another example, a putter-type golf club head according to one or more aspects of the present invention may include a striking surface, a bottom surface, and a top surface opposite the bottom surface. The top surface may include a first alignment element having a generally rectangular shape. The top surface may also include a second alignment element spaced rearwardly from the first alignment element that also has a generally rectangular shape.


To accommodate the alignment elements, the putter-type golf club head, in one example according to one or more aspects of the present invention, may have a length no less than 3.50 inches. The width of the club head may be no less than its length. And the volume of the club head may be no greater than 60 cubic centimeters.


These and other features and advantages of the putter-type golf club head according to the various aspects of the present invention will become more apparent upon consideration of the following description, drawings, and appended claims. The drawings described below are for illustrative purposes only and are not intended to limit the scope of the present invention.





BRIEF DESCRIPTION OF THE DRAWINGS

Exemplary embodiments of the present invention will now be described with reference to the accompanying drawings.



FIG. 1 shows a perspective view of an exemplary putter-type golf club head in accordance with one or more aspects of the present invention.



FIG. 2 shows a top plan view of the putter-type golf club head of FIG. 1.



FIG. 3 shows a top plan view of the putter-type golf club head of FIG. 1.



FIG. 4 shows a side view of the putter-type golf club head of FIG. 1.



FIG. 5 shows a crosssectional view taken along the line 5-5 of FIG. 3.



FIG. 6 shows a top plan view of an exemplary putter-type golf club head in accordance with one or more aspects of the present invention.



FIG. 7 shows a top plan view of an exemplary putter-type golf club head in accordance with one or more aspects of the present invention.



FIG. 8 shows a top plan view of an exemplary putter-type golf club head in accordance with one or more aspects of the present invention.



FIG. 9 shows a perspective view of an exemplary putter-type golf club head in accordance with one or more aspects of the present invention.



FIG. 10 shows a perspective view of an exemplary putter-type golf club head in accordance with one or more aspects of the present invention.



FIG. 11 shows a top plan view of an exemplary putter-type golf club head in accordance with one or more aspects of the present invention.



FIG. 12 shows a side perspective view of the putter-type golf club head of FIG. 11.





DETAILED DESCRIPTION OF THE EMBODIMENTS

Referring to FIG. 1, a putter-type golf club head 100, according to one or more aspects of the present invention, may generally include a body 102 formed from metallic and/or non-metallic materials. For example, the body 102 may be formed from any one of or a combination of aluminum, stainless steel, titanium, composites, polymeric materials, and/or any other suitable material. The body 102 may include a front portion 110 having a striking wall including a striking surface 112 for contacting a golf ball and an opposing rear surface (not shown), a rear portion 114, a toe portion 116, a heel portion 118, a sole portion 120, and an upper portion 122. The heel portion 118 may include a hosel 130, or aperture extending from the exterior surface of the upper portion 122, configured to receive and secure a shaft (not shown) of the golf club.


As shown, the hosel 130 is located toward the heel portion 118 of the club head 100. In certain other aspects, such as those shown in FIGS. 9-12, the hosel (or aperture) 130 is located even more toward the heel portion 118. In yet other aspects, the hosel (or aperture) is located toward the toe portion 116 of the club head 100, or the hosel (or aperture) 130 is located in a generally central location of the club head 100 relative to the heel to toe direction. In certain aspects, the hosel extends outward from the top portion 142 of the club head 100. Specifically, the hosel may comprise a plumber's neck type hosel or a flare-tip type hosel.


The body 102 may also include a central elongate member 140 projecting from the striking surface 112 and/or striking wall of the front portion 110 toward the rear of the body 102. The central elongate member 140 may include a top portion 142, an uppermost surface of which may be substantially planar and may include one or more alignment elements 200. In certain aspects, such as that shown in FIG. 1, the top portion 142 of the central elongate member 140 may be located above, and supported by, a central vertical wall 201 that extends rearwardly from the striking surface 112.


Referring to FIG. 2, the golf club head 100 is shown in top plan view. The golf club head 100 is considered to be in a reference position. “Reference position,” as used herein, refers to an orientation of a club head, e.g. club head 100, relative to a ground plane, in which the club head 100 is permitted to rest on the ground plane such that the sole portion 120 of the club head 100 contacts the ground plane at a point midway between a heel-most end of the club head 100 and a toe-most end of the club head 100. Unless otherwise specified, all club head dimensions described herein are taken with the club head in the reference position. In certain aspects, the top portion 142 of the central elongate member 140 may form a generally planar upper surface that optionally is substantially parallel to the ground plane.


The one or more alignment elements 200 may comprise any number and any type of design sufficient to aid a golfer to align the putter-type golf club head 100 with a cup. For example, with further reference to FIG. 2, an alignment element 210 may include a visual indicator section, for example an edge 212, substantially parallel to the striking surface 112. An imaginary vertical plane A-A′ may be perpendicular to the general plane of the striking surface 112 when the club head 100 is in the reference position. The edge 212 may be provided so as to be intersected by the imaginary vertical plane A-A′ extending perpendicularly thereto and from the striking surface 112 toward the rear portion 114. In certain aspects, the imaginary vertical plane A-A′ may intersect a center B of the striking surface 112, and in such cases, it may bisect the edge 212, i.e. split the edge 212 into two equal halves. The length 214 of the edge 212 may be chosen to facilitate proper alignment of the golf club head 100 with the golf ball. For example, the length 214 may be equal to or substantially equal to the diameter of a golf ball, 1.62 inches (“in”). Alternatively, the length 214 may be slightly more than or slightly less than the diameter of a golf ball.


The alignment element 210 may also include an additional edge 216 that is substantially perpendicular to the edge 212. In certain aspects, the length of the edge 216 may be, like the length 214 of the edge 212, slightly less than, slightly more than, substantially equal to, or equal to the 1.62-in diameter of a golf ball. The alignment element 210 may also include additional edges. For example, the alignment element 210 may include an edge 220 parallel to the edge 212 and may include an edge 222 parallel to the edge 216. Thus, the alignment element 210 may be rectangular in shape. In certain aspects, the edges 212, 216, 220, and 222 may all be equal in length. Accordingly, the alignment element 210 may be square in shape, and its geometric center C may be positioned on the vertical plane A-A′.


The one or more alignment elements 200 may also comprise an additional alignment element 240. For example, with further reference to FIG. 2, the alignment element 240 may be provided rearward of the alignment element 210. This second alignment element 240 may comprise edges 242, 246, 250, and 252. Edge 242, like edge 212 of the alignment element 210, may be provided substantially parallel to the striking surface 112; may have a length that is slightly less than, slightly more than, substantially equal to, or equal to the 1.62-in diameter of a golf ball; and may be bisected into equal halves by imaginary plane A-A′. Edge 246, like edge 216 of the alignment element 210, may be substantially perpendicular to the edge 242 and may, in certain aspects, have a length equal to that of the edge 242. Edges 250 and 252 may be provided so as to be respectively parallel to edges 242 and 246, thereby providing the alignment element 240 with a rectangular shape. In certain aspects, the edges 242, 246, 250, and 252 may be equal in length. Thus, the alignment element 240 may also be square in shape, and its geometric center D may be positioned on the plane A-A′.


The edges of the alignment elements 200 may be of any kind sufficient to delineate the size and shape of the alignment elements 200. The edges may be formed, for example, as edges of shallow grooves in the top portion 142 of the central elongate member 140. These grooves may have a depth of between 0.25 millimeters (“mm”) and 1.00 mm extending from the upper surface of the top portion 142 toward the ground plane. More specifically, these grooves may have a depth substantially equal to 0.50 mm. The depth of the grooves may be selected to be sufficient to enable application and retention of a paint fill. In certain aspects, these grooves are filled with a paint or other organic coating preferably distinguished in appearance from its surrounding environment. In certain aspects, the groove is partially or entirely filled with a material distinguished in appearance from its surrounding environment, say a colored opaque or translucent polymer.


The presence of the alignment elements 200 on the top portion 142 of the central elongate member 140 may play a role in dictating the shape and dimensions of the putter-type golf club head 100. Notably, the alignment elements 200, as they may comprise plural square-shaped elements with dimensions corresponding to a golf ball diameter, require a relatively large layout area. In turn, these alignment elements 200 may require that a relatively significant amount of mass be placed proximate the top portion 142 of the central elongate member 140. Therefore, given a predetermined mass budget, mass in the remaining regions of the golf club head 100 may preferably be reduced. The walls forming the body 102 of the golf club head 100 may thus be generally thin-walled, and the golf club head 100 may be considered to have a high projected area (as projected into a ground plane when viewed in top plan) to volume ratio. Similarly, the golf club 100 may be considered to have a high length relative to its volume. Specific dimensions and properties of the golf club head 100 are discussed in detail below.


The term “volume,” as used herein, denotes the volume measured using the conventional water displacement method as specified by the United States Golf Association (“USGA”) and the R&A Rules Limited (“R&A”), wherein like features of wood type golf club heads are substituted for those of other types of club heads under consideration, e.g. a putter type club head.


In FIG. 3, the golf club head 100 of FIG. 2 is shown. With reference to the “x” (i.e. front to rear) direction indicated in FIG. 3, an overall length 150 of the body 102 may be greater than or equal to 3.5 in. More specifically, the length 150 may be greater than or equal to 3.55 in. Even more specifically, the length 150 may be between 3.55 and 4.0 in. With reference to the “y” (i.e. heel to toe) direction perpendicular to the “x” direction, the overall width 152 of the body 102 may be, for example, greater than the length 150. In certain aspects, the width 152 may be greater than or equal to 3.8 in. More specifically, the width 152 may be between 4.0 and 4.5 in. Even more specifically, the width 152 may be between 4.1 and 4.4 in. In certain aspects, the product (“*”) of the length 150 and the width 152 may be, for example, greater than or equal to 14 in2. More specifically, the product of the length 150 and the width 152 may be between 14 in2 and 20 in2. These dimensions ensure that the desired alignment elements may be properly sized and positioned in a club head that conforms with USGA regulations (and similar regulations of other golf equipment regulatory bodies). Defining a relatively large projected area when viewed in top plan view also ensures that the club head possesses a sufficiently high moment of inertia to provide adequate performance on off-centered shots.


Other dimensions of the body 102 may also be specified. For example, with further reference to FIG. 3, a width 154 of the striking surface 112, taken in a direction parallel to the width 152 (i.e. the heel to toe direction), may be less than or equal to the width 152, preferably less than width 152. More specifically, the width 154 may be greater than or equal to 3.8 in. These dimensions ensure compliance with USGA regulations and, also, instill in the golfer a sense of convergence toward a golf cup, when the club head is viewed from above. This may result in improved accuracy. Furthermore, the width 156 of the central elongate member 140, taken in a direction parallel to the widths 152 and 154, may be, for example, less than the widths 152 and 154. In certain aspects, the width 156 may be greater than or equal to 1.0 in. More specifically, the width 156 may be greater than or equal to 1.5 in, or the width 156 may be greater than or equal to 1.75 in. Even more specifically, the width 156 may be between 1.75 and 2.0 in. Finally, the width 156 may be substantially equal to 1.8 in. These parameters, when the club head 100 is viewed from above by a golfer, are believed to ensure continuity between the club head 100 and the golf ball intended to be contacted. Specifically, the bounds of the central elongate member 140, when the club head 100 is in a state of being swung toward a golf ball, are believed to be perceived as motion lines by the golfer. These motion lines could be projected toward the bounds of the golf ball by the golfer with minimal mental exertion. Similarly, having plural alignment elements, when the club head 100 is in a state of being swung toward a golf ball, is believed to provide an indication to the golfer of rate of travel with minimal mental exertion, which minimizes over-hitting. Specifically, the cyclical alternations between the surfaces of the alignment elements and the surrounding environment are believed to readily indicate swing speed. This effect is believed to be even further strengthened by the presence of parallel edges 212, 220, 242, and 250.


The projected area of the club head 100 when in a reference position relative to a ground plane, and when viewed in top plan view, may be, for example, less than the product of the length 150 and the width 152. For example, the projected area of the club head 100 may be greater than or equal to 50% of the product of the length 150 and the width 152. More specifically, the projected area of the club head 100 may be greater than or equal to 65% of the product of the length 150 and the width 152. Even more specifically, the projected area of the club head 100 may be greater than or equal to 75% of the product of the length 150 and the width 152.


The height and thickness of the body 102 may also be defined. For example, with reference to FIG. 4, the maximum height 160 from the bottommost point of the sole portion 120 to the uppermost point of the top portion 142 may be greater than or equal to 0.80 in. More specifically, the height 160 may be greater than or equal to 0.85 in. Even more specifically, the height 160 may be greater than or equal to 0.95 in. In certain aspects, the height 160 may be between 0.95 and 1.05 in. The minimum thickness 162 of the top portion 142 may also be specified. For example, the thickness 162 may be less than or equal to 5 mm. More specifically, the thickness 162 may be less than or equal to 3 mm. Even more specifically, the thickness 162 may be between 1 and 3 mm.



FIG. 5 shows a cross-sectional view of the putter-type golf club head 100 along the line 5-5 illustrated in FIG. 3. Although the line 5-5 is shown as intersecting the center B of the striking surface 112 as well as the centers C and D of the alignment elements 200, this need not be the case. Rather, line 5-5 may be positioned anywhere within dashed, imaginary vertical planes F and G, which are each provided 0.5 in from the center B of the striking surface 112. The height 172 is measured at a length 180 (from the forwardmost point 170), which is one half the length 150 of the body 102. The height 172 may be, for example, greater than or equal to the product of 0.5 and the maximum height 160. More specifically, the height 172 may be greater than or equal to the product of 0.75 and the maximum height 160. Even more specifically, the height 172 may be greater than or equal to the product of 0.85 and the maximum height 160. The height 174 is measured at a length 182 (from the forwardmost point 170), which is three-quarters the length 150 of the body 102. The height 174 may be, for example, greater than or equal to the product of 0.5 and the maximum height 160. More specifically, the height 174 may be greater than or equal to the product of 0.75 and the maximum height 160. Even more specifically, the height 174 may be greater than or equal to the product of 0.85 and the maximum height 160. Moreover, the height 176 is measured at a length 184 (from the forwardmost point 170), which is equal to the length 150 of the body 102. The height 176 may be, for example, greater than or equal to the product of 0.5 and the maximum height 160. More specifically, the height 176 may be greater than or equal to the product of 0.75 and the maximum height 160. Even more specifically, the height 176 may be greater than or equal to the product of 0.85 and the maximum height 160.


The provision of the alignment elements 200 may in part dictate other properties of the putter-type golf club head 100. For example, the volume V of the golf club head 100 may be less than or equal to 60 cubic centimeters (“cc”). More specifically, the volume V may be less than or equal to 55 cc. Even more specifically, the volume V may be between 40 and 55 cc. In certain aspects, the volume V may be equal to or about 52 cc. The mass M of the golf club head 100 may be, for example, between 300 and 400 grams (“g”). More specifically, the mass M may be between 340 and 380 g. Even more specifically, the mass M may be substantially equal to or about 360 g. These combined mass and volume parameters ensure that, while keeping manufacturing costs low and maintaining a viable overall mass budget, the alignment features described above may be provided.


Furthermore, with reference to FIG. 3, the moment of inertia Ixx of the putter-type golf club head 100 about an axis through the center of gravity of the club head 100 and extending parallel to the x-axis may be, for example, greater than or equal to 2,000 g*cm2. The moment of inertia Iyy of the golf club head 100 about an axis through the center of gravity of the club head 100 and extending parallel to the y-axis may be, for example, greater than or equal to 2,200 g*cm2. Finally, the moment of inertia Izz of the golf club head 100 about an axis through the center of gravity of the club head 100 and extending parallel to the z-axis may be, for example, no less than 3,500 g*cm2. More specifically, Izz may be no less than 4,000 g*cm2. Even more specifically, Izz may be between 4,000 and 4,500 g*cm2.


In the above discussion, a non-limiting example of the one or more alignment elements 200 has been described. By virtue of the right-angle characteristics of the alignment elements 200, superior alignment of the putter-type golf club head 100 with the cup may be achieved. Moreover, by virtue of the correspondence between the dimensions of the one or more alignment elements 200 and the diameter of the golf ball, heel-to-toe alignment of the golf ball with the golf club head 100 may be improved, thereby increasing the likelihood of an effective shot.


Other non-limiting examples of the alignment elements are envisioned as being within the scope of the invention. For example, FIG. 6 shows alignment element 310. Alignment element 310 may substantially correspond to alignment element 210 in size and in position on the top portion 142 of the central elongate member 140; however, alignment element 310 may also include a guide line 312. The guide line 312 may be formed in the same manner as the edges of the alignment element 310, say as a groove. As shown in FIG. 6, the guide line 312 may extend perpendicularly to the striking surface 112, and it may run centrally through the alignment element 310 so as to divide the alignment element 310 into two equal portions 314, 316. As shown in FIG. 6, the guide line 312 may extend from the edge of the alignment element 310 closest to the striking surface 112 more than half the length 318 of the alignment element 310 so as to allow the portions 314, 316 to connect. Alternatively, the guide line 312 may extend the entire length 318 of the alignment element 310 so as to completely separate the portions 314, 316. In certain other aspects, the guide line 312 may be intermittent, e.g. dashed.


Another alignment element 340 may also be provided. The alignment element 340 may substantially correspond to alignment element 240 in size and in position on the top portion 142 of the central elongate member 140; however, the alignment element 340 may also include a guide line 342. The guide line 342 may be formed in the same manner as the edges of the alignment element 340, say as a groove. As shown in FIG. 6, the guide line 342 may extend perpendicularly to the striking surface 112, and it may run centrally through the alignment element 340 so as to divide the alignment element 340 into two equal portions 344, 346. As shown in FIG. 6, the guide line 342 may extend from the edge of the alignment element 340 closest to the striking surface 112 more than half the length 348 of the alignment element 340 so as to allow the portions 344, 346 to connect. Alternatively, the guide line 342 may extend the entire length 348 of the alignment element 340 so as to completely separate the portions 344, 346. In certain other aspects, the guide line 342 may be intermittent, e.g. dashed.



FIG. 7 shows another non-limiting example of the putter-type golf club head 100 according to the present invention. In this example, at least one of alignment elements 410 and 440 may be provided. Alignment elements 410 and 440 may substantially correspond to alignment elements 210 and 240, respectively, in overall size and in position on the top portion 142 of the central elongate member 140. The edges of the alignment elements 410 and 440 may substantially correspond to the edges 212, 216, 220, and 222 of the alignment element 210 and to the edges 242, 246, 250, and 252 of the alignment element 240, respectively, in length and in depth of the grooves forming the edges. However, the central portions of these edges may not be recessed into the top portion 142, thereby forming the alignment elements 410 and 440 as a plurality of corners 411, 413, 415, 417, 441, 443, 445, and 447. The lengths of the grooves forming these corners of the alignment elements 410 and 440 need not be particularly limited, for the grooves need only be of sufficient length to delineate to a golfer the orientation and dimensions of the alignment elements 410 and 440. In certain aspects, the portion of each corner parallel to the striking surface 112 may be equal in length to each corresponding corner portion perpendicular to the striking surface 112. Alternatively, the portion of each corner parallel to the striking surface 112 may be of different length (shorter or longer) than each corresponding corner portion perpendicular to the striking surface 112. In certain aspects, the grooves forming the plurality of corners 411, 413, 415, 417, 441, 443, 445, and 447 may all be of equal length. Alternatively, certain corners may be of different length than others. For example, corners 411, 417, 441, and 447 may be longer than corners 413, 415, 443, and 445.



FIG. 8 shows another non-limiting example of the putter-type golf club head 100 according to the present invention. In this example, at least one of alignment elements 510 and 540 may be provided. Alignment elements 510 and 540 may be provided as “cross-hairs,” respectively comprising edges 512, 514 and 542, 544. Edges 512, 514 and 542, 544 may be formed in a manner substantially similar to edges 212, 216, 220, 222, 242, 246, 250, and 252 of the alignment elements 210 and 240. Edges 512 and 542 may be substantially parallel to the striking surface 112, and they may be slightly less than, slightly more than, substantially equal to, or equal to the 1.62 in. diameter of a golf ball. Edges 514 and 544 may be perpendicular to the striking surface 112, and they may respectively intersect the centers of the edges 512 and 542. In certain aspects, edges 514 and 544 may also be slightly less than, slightly more than, substantially equal to, or equal to the 1.62 in. diameter of a golf ball. As seen in FIG. 8, the edges forming the alignment elements 510 and 540 may intersect at points C and D on the top surface 142, points C and D respectively corresponding to the centers of the alignment elements 210 and 240.


In the preceding examples, the alignment elements have all been formed by grooves projecting into the top surface 142 of the central elongate member 140. However, this need not be the case. For example, as illustrated in FIG. 9, at least one alignment element may be an insert provided in a corresponding opening in the top surface 142. FIG. 9 shows inserts 211 and 241 respectively forming alignment elements 210 and 240. Examples of materials suitable for fabricating the inserts may include polyurethane, silicone, Nylon, polypropylene (PP), polyethylene (PE), thermoplastic rubber (TPR), thermoplastic vulcanizate (TPV), thermoplastic polyurethane (TPU), thermoplastic elastomers (TPE), ionomers such as Surlyn®, and natural rubber. The inserts may be a different color than the body 102 of the club head 100, say white, through painting or doping of the insert with coloring agents, and the inserts may be bonded to the central elongate member 140 using, e.g., an epoxy-type adhesive. The thickness of the inserts is not particularly limited, but in certain aspects, the thickness of the inserts may be less than the thickness 162 of the top portion 142.


In another example, such as that illustrated in FIG. 10, at least one of the alignment elements may be recessed into the top portion 142 of the central elongate member 140 substantially over its entire planar area, more preferably over its entire planar area. FIG. 10 shows the edges of the alignment elements 210 and 240 not as portions of grooves, but as beveled edges projecting from the uppermost surface of the top portion 142 downward. Center, recessed portions 213 and 243 of the alignment elements 210 and 240 are lower (i.e. closer to the sole portion 120) than the uppermost surface of the top portion 142. In certain aspects, the beveled edges of the alignment elements 210 and 240 are a different color than the body 102 of the club head 100. In certain other aspects, the center, recessed portions 213 and 243 are a different color than the body 102 of the club head 100. In yet other aspects, both the beveled edges and the center portions 213 and 243 are a different color than the body 102.


Even further non-limiting examples are envisioned as being within the scope of the present invention. For example, as shown in FIGS. 11 and 12, the top surface 142 of the central elongate member 140 need not be entirely planar. Rather, the top surface 142 may comprise a front portion 144, a rear portion 146, and a central portion 148 that is recessed from the portions 144, 146 toward the sole portion 120. In certain aspects, surface portions 144, 146, and 148 are each planar and parallel to each other. Beveled connecting portions 145 and 147 may respectively connect the portions 144, 148 and 146, 148. As shown in FIG. 11, when viewed from directly above by a golfer in the reference position, with eyes generally above the club head, the alignment elements 210 and 240 appear as squares. However, when the golfer views the club head in the same position, but the club head 100 is angularly offset from the reference position about the x-axis (see FIG. 3), the alignment features do not form geometric squares having straight lines. Rather, when the club head 100 is offset, the edges of the alignment features appear as jagged lines to the golfer instead of straight lines. This feature further assists the golfer in quickly aligning the club head in its proper position with minimal mental exertion.


In the foregoing discussion, the present invention has been described with reference to specific exemplary aspects thereof. However, it will be evident that various modifications and changes may be made to these exemplary aspects without departing from the broader spirit and scope of the invention. For example, while the visual indicator section has been referred to as an edge, it should be appreciated that the visual indicator section can be any element capable of defining an orientation and length when viewed from above. Accordingly, the foregoing discussion and the accompanying drawings are to be regarded as merely illustrative of the present invention rather than as limiting its scope in any manner.

Claims
  • 1. A putter-type golf club head that, when oriented in a reference position, comprises: a striking wall extending in a heel-to-toe direction;a central elongate member in communication with, and extending rearwardly from, the striking wall, the central elongate member including a top wall and a sole wall defining at least one hollow region therebetween;a length L no less than 3.50 in;a width no less than the length; anda volume no greater than 60 cc.
  • 2. The putter-type golf club head of claim 1, further comprising a maximum height hmax no less than 0.80 in.
  • 3. The putter-type golf club head of claim 2, wherein: the striking wall comprises a striking surface including a face center; andin a vertical cross-section that is perpendicular to the striking surface and horizontally spaced from the face center by no greater than 0.5 in: the club head includes, specific to the vertical cross-section, a forwardmost point and a rearwardmost point opposite the forwardmost point; anda first height h1 of no less than 0.75*hmax, the first height h1 measured at a first rearward distance d1 equal to 0.5* L, the first rearward distance measured from the forwardmost point.
  • 4. The putter-type golf club head of claim 3, wherein, in the vertical cross-section, the club head further includes a second height h2 of no less than 0.75*hmax, the second height h2 measured at a second rearward distance d2 equal to 0.75*L, the second rearward distance d2 measured from the forwardmost point.
  • 5. The putter-type golf club head of claim 4, wherein the vertical cross-section passes through the face center.
  • 6. The putter-type golf club head of claim 1, wherein the top wall of the central elongate member comprises a generally planar top surface having a width no less than 1.0 in.
  • 7. The putter-type golf club head of claim 6, wherein the top wall has a minimum thickness no greater than 5 mm.
  • 8. The putter-type golf club head of claim 1, wherein the top wall of the central elongate member is contoured to form at least one rectangular-shaped alignment feature.
  • 9. The putter-type golf club head of claim 8, wherein the at least one rectangular-shaped alignment feature comprises a square shape.
  • 10. The putter-type golf club head of claim 9, wherein the at least one rectangular-shaped alignment feature comprises a plurality of square shapes.
  • 11. The putter-type golf club head of claim 1, further comprising a volume no greater than 55 cc.
  • 12. The putter-type golf club head of claim 1, further comprising a mass between 300 g and 400 g.
  • 13. A putter-type golf club head having a heel and toe defining a heel-to-toe direction that, when oriented in a reference position, comprises: a volume no greater than 60 cc;a club head length of greater than 3.5 inches;a striking wall extending in the heel-to-toe direction and defining a substantially planar striking surface;a central elongate member in communication with, and extending rearwardly from, the striking wall, the central elongate member including a top wall and a sole wall defining at least one hollow region therebetween; andan upper surface of the central elongate member comprising a plurality of alignment elements, at least one of the plurality of alignment elements comprising a parallel visual indicator section, at least a portion of which extends substantially parallel to the striking surface, the width of the at least one alignment element being substantially equivalent to the diameter of a golf ball.
  • 14. The putter-type golf club head of claim 13, wherein the at least one alignment element has a perpendicular visual indicator section that extends substantially perpendicular to the parallel visual indicator section, the perpendicular visual indicator section and the parallel visual indicator section being substantially equal in length.
  • 15. The putter-type golf club head of claim 14, wherein the at least one alignment element comprises four sides substantially defining a square, the square being defined at least in part by the parallel visual indicator section and by the perpendicular visual indicator section.
  • 16. The putter-type golf club head of claim 13, wherein the parallel visual indicator section is about 1.62 inches in length or less.
  • 17. The putter-type golf club head of claim 13, wherein: the parallel visual indicator section is a first parallel visual indicator section; and the plurality of alignment elements include: a first alignment element having the first parallel visual indicator section; anda second alignment element having a second parallel visual indicator section, at least a portion of which extends substantially parallel to the striking surface, the width of the second alignment element being substantially equivalent to the diameter of a golf ball.
  • 18. The putter-type golf club head of claim 17, wherein the second alignment element is rearward of the first alignment element.
  • 19. The putter-type golf club head of claim 18, wherein the first parallel visual indicator section and the second parallel visual indicator section are intersected by an imaginary vertical plane extending substantially perpendicularly from the striking surface.
  • 20. The putter-type golf club head of claim 19, wherein the imaginary vertical plane extends from a midpoint of the striking surface and bisects the first parallel visual indicator section and the second parallel visual indicator section.
  • 21. The putter-type golf club head of claim 20, wherein the first and second alignment elements substantially comprise squares defined at least in part by the first parallel visual indicator section and by the second parallel visual indicator section.
  • 22. The putter-type golf club head of claim 21, wherein the upper surface of the central elongate member is planar.
  • 23. The putter-type golf club head of claim 17, wherein the first alignment element and the second alignment element are substantially identical in shape.
  • 24. The putter-type golf club head of claim 13, wherein the upper surface is generally planar and has a width no less than the diameter of a golf ball.
  • 25. The putter-type golf club head of claim 13, wherein the top wall of the central elongate member has a minimum thickness no greater than 5 mm.
  • 26. The putter-type golf club head of claim 13, further comprising a maximum height hmax no less than 0.80 in.
  • 27. The putter-type golf club head of claim 13, further comprising a mass between 300 g and 400 g.
RELATED APPLICATION

This application is based on and claims benefit of U.S. Provisional Application No. 61/891,639, filed Oct. 16, 2013, entitled “Putter-Type Golf Club Head.” A claim of priority to this prior application is hereby made, and the disclosure of this prior application is hereby incorporated by reference.

US Referenced Citations (186)
Number Name Date Kind
1291967 McDougal Jan 1919 A
D58209 Bacheller Jun 1921 S
D205041 Capps Jun 1966 S
3333854 White Aug 1967 A
3880430 McCabe Apr 1975 A
4312509 Grant Jan 1982 A
4629193 Pierman Dec 1986 A
4688798 Pelz Aug 1987 A
4754976 Pelz Jul 1988 A
4795157 Bencriscutto Jan 1989 A
4964639 Tucker Oct 1990 A
5167414 Montgomery, III Dec 1992 A
5533728 Pehoski Jul 1996 A
5676603 Miller Oct 1997 A
D398353 Wooten Sep 1998 S
5816930 Brown Oct 1998 A
D401636 Duclos Nov 1998 S
6045452 Ahn Apr 2000 A
6062986 Kaise May 2000 A
D429297 Hettinger Aug 2000 S
D441042 Hettinger Apr 2001 S
D443320 Breier et al. Jun 2001 S
D443906 Hettinger et al. Jun 2001 S
6273831 Dewanjee Aug 2001 B1
D447782 Hettinger et al. Sep 2001 S
D449085 Breier et al. Oct 2001 S
D457586 Tang et al. May 2002 S
6386991 Reyes May 2002 B1
D458656 Tang et al. Jun 2002 S
6422949 Byrne Jul 2002 B1
6422950 Whitlam Jul 2002 B1
D461514 Tang et al. Aug 2002 S
D461515 Tang et al. Aug 2002 S
D461860 Tang Aug 2002 S
D461861 Tang et al. Aug 2002 S
D462100 Breier et al. Aug 2002 S
D463002 Tang et al. Sep 2002 S
6471600 Tang Oct 2002 B2
D467985 Tang et al. Dec 2002 S
6506125 Helmstetter Jan 2003 B2
D470904 Tang et al. Feb 2003 S
D471245 Tang et al. Mar 2003 S
D471940 Tang et al. Mar 2003 S
D472594 Tang et al. Apr 2003 S
D472595 Tang et al. Apr 2003 S
D481089 Breier et al. Oct 2003 S
D485320 Breier et al. Jan 2004 S
D485323 Wagner et al. Jan 2004 S
D485592 Hettinger et al. Jan 2004 S
6679782 Tang Jan 2004 B2
D486194 Helmstetter et al. Feb 2004 S
6692372 Colucci Feb 2004 B1
D488200 Olsavsky et al. Apr 2004 S
6716110 Ballow Apr 2004 B1
D496417 Tang Sep 2004 S
D496418 Tang et al. Sep 2004 S
6793588 Tang et al. Sep 2004 B2
D499777 Yamamoto Dec 2004 S
6837801 Souza Jan 2005 B1
D505703 Fiskari May 2005 S
D506237 Byrne et al. Jun 2005 S
6905420 Tang et al. Jun 2005 B2
D507319 Kramski Jul 2005 S
D508546 Oldknow Aug 2005 S
D508723 Rollinson et al. Aug 2005 S
6926615 Souza Aug 2005 B1
6929564 Olsavsky et al. Aug 2005 B2
6960140 Solheim et al. Nov 2005 B2
6974394 Tang et al. Dec 2005 B1
D513777 Cuellar Jan 2006 S
D514182 Olsavsky et al. Jan 2006 S
6988955 Stoakes Jan 2006 B2
D515647 Morgulis Feb 2006 S
7004849 Cameron Feb 2006 B2
D517143 Petsel et al. Mar 2006 S
D519180 Oldknow Apr 2006 S
D520583 Rollinson May 2006 S
7052410 Cameron May 2006 B2
7052411 Solheim et al. May 2006 B2
D523102 Stites Jun 2006 S
7070516 Dewanjee et al. Jul 2006 B2
7086957 Solheim et al. Aug 2006 B2
D532066 Tang Nov 2006 S
D532467 Aguinaldo et al. Nov 2006 S
D532844 Rollinson Nov 2006 S
D532845 Rollinson Nov 2006 S
D532847 Rollinson Nov 2006 S
D533242 Tang Dec 2006 S
D533244 Kroll, Jr. Dec 2006 S
D533613 Byrne et al. Dec 2006 S
D533913 Byrne et al. Dec 2006 S
7147569 Tang Dec 2006 B2
D534974 Haack Jan 2007 S
7163469 Bonneau Jan 2007 B2
7166036 Byrne Jan 2007 B2
7166039 Hettinger et al. Jan 2007 B2
7169061 Hou Jan 2007 B2
D539860 Fussell Apr 2007 S
7232379 Riseley Jun 2007 B2
D548295 Jertson et al. Aug 2007 S
D548296 Rollinson Aug 2007 S
D549795 Rollinson Aug 2007 S
D552197 Wells et al. Oct 2007 S
D552699 Rollinson Oct 2007 S
D552700 Rollinson Oct 2007 S
D557361 Rollinson Dec 2007 S
D561282 Rollinson Feb 2008 S
D562926 Roberts et al. Feb 2008 S
D564606 Oldknow et al. Mar 2008 S
7344451 Tang Mar 2008 B2
D565681 Tanaka Apr 2008 S
D568427 Nguyen et al. May 2008 S
D569462 Rollinson May 2008 S
D571878 Jones et al. Jun 2008 S
7387580 Hasegawa Jun 2008 B2
D572331 Oldknow et al. Jul 2008 S
D572780 Rollinson Jul 2008 S
D573673 Noyes Jul 2008 S
D574908 Hettinger et al. Aug 2008 S
D575366 Rollinson Aug 2008 S
D577085 Nicolette et al. Sep 2008 S
D577398 Hilton Sep 2008 S
7435188 Tateno Oct 2008 B2
D579995 Nicolette et al. Nov 2008 S
D581477 Burdick Nov 2008 S
D582497 Rollinson Dec 2008 S
7481713 Beckman Jan 2009 B2
D588657 Hettinger et al. Mar 2009 S
D589575 Kim et al. Mar 2009 S
D590034 Foster et al. Apr 2009 S
D590035 Hilton Apr 2009 S
D590461 Kim et al. Apr 2009 S
D590462 Hettinger et al. Apr 2009 S
D591371 Hilton Apr 2009 S
D591372 Tang et al. Apr 2009 S
D591806 Cameron May 2009 S
D591807 Rollinson May 2009 S
D592717 Rollinson May 2009 S
D594517 Tang et al. Jun 2009 S
D595372 Rollinson Jun 2009 S
D595373 Kim et al. Jun 2009 S
7540810 Hettinger et al. Jun 2009 B2
D595793 Rollinson Jul 2009 S
7578752 Flores Aug 2009 B1
D599425 Laub Sep 2009 S
D603006 Foster et al. Oct 2009 S
7611419 O'Neill Nov 2009 B2
D616513 Feret May 2010 S
D617857 Sones Jun 2010 S
D619665 Rollinson et al. Jul 2010 S
7766762 Stellander Aug 2010 B2
D630690 Rollinson Jan 2011 S
D634801 Rollinson Mar 2011 S
D635625 Rollinson Apr 2011 S
7918745 Morris Apr 2011 B2
D638892 Hettinger et al. May 2011 S
D640341 Foster et al. Jun 2011 S
7955180 Bittner Jun 2011 B2
D641057 Rollinson Jul 2011 S
D641438 Rollinson Jul 2011 S
D641439 Rollinson et al. Jul 2011 S
D641440 Hettinger et al. Jul 2011 S
D641441 Hilton et al. Jul 2011 S
D641442 Rollinson Jul 2011 S
D641814 Hilton et al. Jul 2011 S
D641815 Rollinson et al. Jul 2011 S
D650459 Rollinson Dec 2011 S
8246481 Stites Aug 2012 B2
8506415 Franklin Aug 2013 B2
D709971 Trahan Jul 2014 S
D709972 Trahan Jul 2014 S
D709973 Trahan Jul 2014 S
8834285 Franklin Sep 2014 B2
8900064 Franklin Dec 2014 B2
8905857 Eckhart Dec 2014 B1
D730462 Becktor May 2015 S
D730463 Dolezel May 2015 S
D732120 Becktor Jun 2015 S
D732121 Trahan Jun 2015 S
D732122 Becktor Jun 2015 S
D732618 Becktor Jun 2015 S
D749685 Dolezel Feb 2016 S
D757193 Dolezel May 2016 S
20090111605 Fujimoto Apr 2009 A1
20090215547 Hegarty Aug 2009 A1
20100173720 Kim Jul 2010 A1
Foreign Referenced Citations (2)
Number Date Country
WO 2006113966 Nov 2006 AU
2008168139 Jul 2008 JP
Non-Patent Literature Citations (2)
Entry
June 16, 2016 Office Action issued in U.S. Appl. No. 14/311,047.
December 30, 2016 Office Action issued in U.S. Appl. No. 14/311,047.
Related Publications (1)
Number Date Country
20150105178 A1 Apr 2015 US
Provisional Applications (1)
Number Date Country
61891639 Oct 2013 US