Golf club heads and methods to manufacture golf club heads

Information

  • Patent Grant
  • 10821340
  • Patent Number
    10,821,340
  • Date Filed
    Tuesday, March 26, 2019
    5 years ago
  • Date Issued
    Tuesday, November 3, 2020
    4 years ago
Abstract
Embodiments of golf club heads and methods to manufacture golf club heads are generally described herein. In one example, a golf club head may include a body portion having an interior cavity, a toe portion, a heel portion, a top portion, a sole portion, a front portion, and a back portion. The body portion may include a face portion coupled to the front portion to close the interior cavity with the face portion having a front surface, a back surface having a center portion, and a reinforcement section extending into the interior cavity from the back surface. A polymer material in the interior cavity may be coupled to at least the center portion of the back surface and at least partially surrounded by the reinforcement section. Other examples and embodiments may be described and claimed.
Description
COPYRIGHT AUTHORIZATION

The present disclosure may be subject to copyright protection. The copyright owner has no objection to the facsimile reproduction by anyone of the present disclosure and its related documents, as they appear in the Patent and Trademark Office patent files or records, but otherwise reserves all applicable copyrights.


FIELD

The present disclosure generally relates to golf equipment, and more particularly, to golf club heads and methods to manufacturing golf club heads.


BACKGROUND

Various materials (e.g., steel-based materials, titanium-based materials, tungsten-based materials, etc.) may be used to manufacture golf club heads. By using multiple materials to manufacture golf club heads, the position of the center of gravity (CG) and/or the moment of inertia (MOI) of the golf club heads may be optimized to produce certain trajectory and spin rate of a golf ball.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 depicts a front view of a golf club head according to an embodiment of the apparatus, methods, and articles of manufacture described herein.



FIG. 2 depicts a rear view of the example golf club head of FIG. 1.



FIG. 3 depicts a top view of the example golf club head of FIG. 1.



FIG. 4 depicts a bottom view of the example golf club head of FIG. 1.



FIG. 5 depicts a left view of the example golf club head of FIG. 1.



FIG. 6 depicts a right view of the example golf club head of FIG. 1.



FIG. 7 depicts a cross-sectional view of the example golf club head of FIG. 1 along line 7-7.



FIG. 8 depicts a cross-sectional view of the example golf club head of FIG. 1 along line 8-8.



FIG. 9 depicts a cross-sectional view of the example golf club head of FIG. 1 along line 9-9.



FIG. 10 depicts another rear view of the example golf club head of FIG. 1.



FIG. 11 depicts a top view of a weight portion associated with the example golf club head of FIG. 1.



FIG. 12 depicts a side view of a weight portion associated with the example golf club head of FIG. 1.



FIG. 13 depicts a side view of another weight portion associated with the example golf club head of FIG. 1.



FIG. 14 depicts a rear view of a body portion of the example golf club head of FIG. 1.



FIG. 15 depicts a cross-sectional view of a face portion of the example golf club head of FIG. 1.



FIG. 16 depicts a cross-sectional view of another face portion of the example golf club head of FIG. 1.



FIG. 17 depicts one manner in which the example golf club head described herein may be manufactured.



FIG. 18 depicts another cross-sectional view of the example golf club head of FIG. 4 along line 18-18.





For simplicity and clarity of illustration, the drawing figures illustrate the general manner of construction, and descriptions and details of well-known features and techniques may be omitted to avoid unnecessarily obscuring the present disclosure. Additionally, elements in the drawing figures may not be depicted to scale. For example, the dimensions of some of the elements in the figures may be exaggerated relative to other elements to help improve understanding of embodiments of the present disclosure.


DESCRIPTION

In general, golf club heads and methods to manufacture golf club heads are described herein. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


In the example of FIGS. 1-14, a golf club head 100 may include a body portion 110 (FIG. 14), and two or more weight portions, generally shown as a first set of weight portions 120 (e.g., shown as weight portions 121, 122, 123, and 124) and a second set of weight portions 130 (e.g., shown as weight portions 131, 132, 133, 134, 135, 136, and 137). The body portion 110 may include a toe portion 140, a heel portion 150, a front portion 160, a back portion 170, a top portion 180, and a sole portion 190. The body portion 110 may be made of a first material whereas the first and second sets of weight portions 120 and 130, respectively, may be made of a second material. The first and second materials may be similar or different materials. For example, the body portion 110 may be partially or entirely made of a steel-based material (e.g., 17-4 PH stainless steel, Nitronic® 50 stainless steel, maraging steel or other types of stainless steel), a titanium-based material, an aluminum-based material (e.g., a high-strength aluminum alloy or a composite aluminum alloy coated with a high-strength alloy), any combination thereof, and/or other suitable types of materials. The first and second sets of weight portions 120 and 130, respectively, may be partially or entirely made of a high-density material such as a tungsten-based material or other suitable types of materials. Alternatively, the body portion 110 and/or the first and second sets of weight portions 120 and 130, respectively, may be partially or entirely made of a non-metal material (e.g., composite, plastic, etc.). The apparatus, methods, and articles of manufacture are not limited in this regard.


The golf club head 100 may be an iron-type golf club head (e.g., a 1-iron, a 2-iron, a 3-iron, a 4-iron, a 5-iron, a 6-iron, a 7-iron, an 8-iron, a 9-iron, etc.) or a wedge-type golf club head (e.g., a pitching wedge, a lob wedge, a sand wedge, an n-degree wedge such as 44 degrees (°), 48°, 52°, 56°, 60°, etc.). Although FIGS. 1-10 may depict a particular type of club head, the apparatus, methods, and articles of manufacture described herein may be applicable to other types of club heads (e.g., a driver-type club head, a fairway wood-type club head, a hybrid-type club head, a putter-type club head, etc.). The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


The toe portion 140 and the heel portion 150 may be on opposite ends of the body portion 110. The heel portion 150 may include a hosel portion 155 configured to receive a shaft (not shown) with a grip (not shown) on one end and the golf club head 100 on the opposite end of the shaft to form a golf club.


The front portion 160 may include a face portion 162 (e.g., a strike face). The face portion 162 may include a front surface 164 and a back surface 166. The front surface 164 may include one or more grooves 168 extending between the toe portion 140 and the heel portion 150. While the figures may depict a particular number of grooves, the apparatus, methods, and articles of manufacture described herein may include more or less grooves. The face portion 162 may be used to impact a golf ball (not shown). The face portion 162 may be an integral portion of the body portion 110. Alternatively, the face portion 162 may be a separate piece or an insert coupled to the body portion 110 via various manufacturing methods and/or processes (e.g., a bonding process, a welding process, a brazing process, a mechanical locking method, any combination thereof, or other suitable types of manufacturing methods and/or processes). The face portion 162 may be associated with a loft plane that defines the loft angle of the golf club head 100. The loft angle may vary based on the type of golf club (e.g., a long iron, a middle iron, a short iron, a wedge, etc.). In one example, the loft angle may be between five degrees and seventy-five degrees. In another example, the loft angle may be between twenty degrees and sixty degrees. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


As illustrated in FIG. 14, the back portion 170 may include a back wall portion 1410 with one or more exterior weight ports along a periphery of the back portion 170, generally shown as a first set of exterior weight ports 1420 (e.g., shown as weight ports 1421, 1422, 1423, and 1424) and a second set of exterior weight ports 1430 (e.g., shown as weight ports 1431, 1432, 1433, 1434, 1435, 1436, and 1437). Each exterior weight port may be associated with a port diameter. In one example, the port diameter may be about 0.25 inch (6.35 millimeters). Any two adjacent exterior weight ports of the first set of exterior weight ports 1420 may be separated by less than the port diameter. In a similar manner, any two adjacent exterior weight ports of the second set of exterior weight ports 1430 may be separated by less than the port diameter. The first and second exterior weight ports 1420 and 1430 may be exterior weight ports configured to receive one or more weight portions. In particular, each weight portion of the first set 120 (e.g., shown as weight portions 121, 122, 123, and 124) may be disposed in a weight port located at or proximate to the toe portion 140 and/or the top portion 180 on the back portion 170. For example, the weight portion 121 may be partially or entirely disposed in the weight port 1421. In another example, the weight portion 122 may be disposed in a weight port 1422 located in a transition region between the top portion 180 and the toe portion 140 (e.g., a top-and-toe transition region). Each weight portion of the second set 130 (e.g., shown as weight portions 131, 132, 133, 134, 135, 136, and 137) may be disposed in a weight port located at or proximate to the toe portion 140 and/or the sole portion 190 on the back portion 170. For example, the weight portion 135 may be partially or entirely disposed in the weight port 1435. In another example, the weight portion 136 may be disposed in a weight port 1436 located in a transition region between the sole portion 190 and the toe portion 140 (e.g., a sole-and-toe transition region). As described in detail below, the first and second sets of weight portions 120 and 130, respectively, may be coupled to the back portion 170 of the body portion 110 with various manufacturing methods and/or processes (e.g., a bonding process, a welding process, a brazing process, a mechanical locking method, any combination thereof, or other suitable manufacturing methods and/or processes).


Alternatively, the golf club head 100 may not include (i) the first set of weight portions 120, (ii) the second set of weight portions 130, or (iii) both the first and second sets of weight portions 120 and 130. In particular, the back portion 170 of the body portion 110 may not include weight ports at or proximate to the top portion 180 and/or the sole portion 190. For example, the mass of the first set of weight portions 120 (e.g., 3 grams) and/or the mass of the second set of weight portions 130 (e.g., 16.8 grams) may be integral part(s) of the body portion 110 instead of separate weight portion(s). The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


The first and second sets of weight portions 120 and 130, respectively, may have similar or different physical properties (e.g., color, shape, size, density, mass, volume, etc.). As a result, the first and second sets of weight portions 120 and 130, respectively, may contribute to the ornamental design of the golf club head 100. In the illustrated example as shown in FIG. 11, each of the weight portions of the first and second sets 120 and 130, respectively, may have a cylindrical shape (e.g., a circular cross section). Alternatively, each of the weight portions of the first set 120 may have a first shape (e.g., a cylindrical shape) whereas each of the weight portions of the second set 130 may have a second shape (e.g., a cubical shape). In another example, the first set of weight portions 120 may include two or more weight portions with different shapes (e.g., the weight portion 121 may be a first shape whereas the weight portion 122 may be a second shape different from the first shape). Likewise, the second set of weight portions 130 may also include two or more weight portions with different shapes (e.g., the weight portion 131 may be a first shape whereas the weight portion 132 may be a second shape different from the first shape). Although the above examples may describe weight portions having a particular shape, the apparatus, methods, and articles of manufacture described herein may include weight portions of other suitable shapes (e.g., a portion of or a whole sphere, cube, cone, cylinder, pyramid, cuboidal, prism, frustum, or other suitable geometric shape). While the above examples and figures may depict multiple weight portions as a set of weight portions, each set of the first and second sets of weight portions 120 and 130, respectively, may be a single piece of weight portion. In one example, the first set of weight portions 120 may be a single piece of weight portion instead of a series of four separate weight portions. In another example, the second set of weight portions 130 may be a single piece of weight portion instead of a series of seven separate weight portions. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


Referring to FIGS. 12 and 13, for example, the first and second sets of weight portions 120 and 130, respectively, may include threads, generally shown as 1210 and 1310, respectively, to engage with correspondingly configured threads in the weight ports to secure in the weight ports of the back portion 170 (generally shown as 1420 and 1430 in FIG. 14). For example, each weight portion of the first and second sets of weight portions 120 and 130, respectively, may be a screw. The first and second sets of weight portions 120 and 130, respectively, may not be readily removable from the body portion 110 with or without a tool. Alternatively, the first and second sets of weight portions 120 and 130, respectively, may be readily removable (e.g., with a tool) so that a relatively heavier or lighter weight portion may replace one or more of the weight portions of the first and second sets 120 and 130, respectively. In another example, the first and second sets of weight portions 120 and 130, respectively, may be secured in the weight ports of the back portion 170 with epoxy or adhesive so that the first and second sets of weight portions 120 and 130, respectively, may not be readily removable. In yet another example, the first and second sets of weight portions 120 and 130, respectively, may be secured in the weight ports of the back portion 170 with both epoxy and threads so that the first and second sets of weight portions 120 and 130, respectively, may not be readily removable. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


As mentioned above, the first and second sets of weight portions 120 and 130, respectively, may be similar in some physical properties but different in other physical properties. As illustrated in FIGS. 11-13, for example, each of the weight portions of the first and second sets 120 and 130, respectively, may have a diameter 1110 of about 0.25 inch (6.35 millimeters) but the first and second sets of weight portions 120 and 130, respectively, may be different in height. In particular, each of the weight portions of the first set 120 may be associated with a first height 1220 (FIG. 12), and each of the weight portion of the second set 130 may be associated with a second height 1320 (FIG. 13). The first height 1220 may be relatively shorter than the second height 1320. In one example, the first height 1220 may be about 0.125 inch (3.175 millimeters) whereas the second height 1320 may be about 0.3 inch (7.62 millimeters). In another example, the first height 1220 may be about 0.16 inch (4.064 millimeters) whereas the second height 1320 may be about 0.4 inch (10.16 millimeters). Alternatively, the first height 1220 may be equal to or greater than the second height 1320. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


To provide optimal perimeter weighting for the golf club head 100, the first set of weight portions 120 (e.g., weight portions 121, 122, 123, and 124) may be configured to counter-balance the weight of the hosel 155. The second set of weight portions 130 (e.g., weight portions 131, 132, 133, 134, 135, 136, and 137) may be configured to place the center of gravity of the golf club head 100 at an optimal location. Turning to FIGS. 7-9, for example, the first and second sets of weight portions 120 and 130, respectively, may be located away from the back surface 166 of the face portion 162 (e.g., not directly coupled to each other). That is, the first and second sets of weight portions 120 and 130, respectively, and the back surface 166 may be partially or entirely separated by an interior cavity 700 of the body portion 110. As shown in FIG. 14, for example, each exterior weight port of the first and second sets of exterior weight ports 1420 and 1430 may include an opening (e.g., generally shown as 720 and 730) and a port wall (e.g., generally shown as 725 and 735). The port walls 725 and 735 may be integral portions of the back wall portion 1410 (e.g., a section of the back wall portion 1410). Each of the openings 720 and 730 may be configured to receive a weight portion such as weight portions 121 and 135, respectively. The opening 720 may be located at one end of the weight port 1421, and the port wall 725 may be located or proximate to at an opposite end of the weight port 1421. In a similar manner, the opening 730 may be located at one end of the weight port 1435, and the port wall 735 may be located at or proximate to an opposite end of the weight port 1435. The port walls 725 and 735 may be separated from the face portion 162 (e.g., separated by the interior cavity 700). As a result, the center of gravity (CG) of the golf club head 100 may be relatively farther back away from the face portion 162 and relatively lower towards a ground plane (e.g., one shown as 1010 in FIG. 10) with the second set of weight portions 130 being away from the back surface 166 than if the second set of weight portions 130 were directly coupled to the back surface 166. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


While the figures may depict weight ports with a particular cross-section shape, the apparatus, methods, and articles of manufacture described herein may include weight ports with other suitable cross-section shapes. In one example, the weight ports of the first and/or second sets of weight ports 1420 and 1430 may have U-like cross-section shape. In another example, the weight ports of the first and/or second set of weight ports 1420 and 1430 may have V-like cross-section shape. One or more of the weight ports associated with the first set of weight portions 120 may have a different cross-section shape than one or more weight ports associated with the second set of weight portions 130. For example, the weight port 1421 may have a U-like cross-section shape whereas the weight port 1435 may have a V-like cross-section shape. Further, two or more weight ports associated with the first set of weight portions 120 may have different cross-section shapes. In a similar manner, two or more weight ports associated with the second set of weight portions 130 may have different cross-section shapes. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


Referring back to FIG. 10, for example, the golf club head 100 may be associated with a ground plane 1010, a horizontal midplane 1020, and a top plane 1030. In particular, the ground plane 1010 may be a tangential plane to the sole portion 190 of the golf club head 100 when the golf club head 100 is at an address position (e.g., the golf club head 100 is aligned to strike a golf ball). A top plane 1030 may be a tangential plane to the top portion of the 180 of the golf club head 100 when the golf club head 100 is at the address position. The ground and top planes 1010 and 1030, respectively, may be substantially parallel to each other. The horizontal midplane 1020 may be vertically halfway between the ground and top planes 1010 and 1030, respectively.


The first and second sets of weight portions 120 and 130, respectively, may be similar in mass (e.g., all of the weight portions of the first and second sets 120 and 130, respectively, weigh about the same). Alternatively, the first and second sets of weight portions 120 and 130, respectively, may be different in mass individually or as an entire set. In particular, each of the weight portions of the first set 120 (e.g., shown as 121, 122, 123, and 124) may have relatively less mass than any of the weight portions of the second set 130 (e.g., shown as 131, 132, 133, 134, 135, 136, and 137). For example, the second set of weight portions 130 may account for more than 50% of the total mass from exterior weight portions of the golf club head 100. As a result, the golf club head 100 may be configured to have at least 50% of the total mass from exterior weight portions disposed below the horizontal midplane 1020. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


In one example, the golf club head 100 may have a mass in the range of about 220 grams to about 330 grams based on the type of golf club (e.g., a 4-iron versus a lob wedge). The body portion 110 may have a mass in the range of about 200 grams to about 310 grams with the first and second sets of weight portions 120 and 130, respectively, having a mass of about 20 grams (e.g., a total mass from exterior weight portions). Each of the weight portions of the first set 120 may have a mass of about one gram (1.0 g) whereas each of the weight portions of the second set 130 may have a mass of about 2.4 grams. The sum of the mass of the first set of weight portions 120 may be about 3 grams whereas the sum of the mass of the first set of weight portions 130 may be about 16.8 grams. The total mass of the second set of weight portions 130 may weigh more than five times as much as the total mass of the first set of weight portions 120 (e.g., a total mass of the second set of weight portions 130 of about 16.8 grams versus a total mass of the first set of weight portions 120 of about 3 grams). The golf club head 100 may have a total mass of 19.8 grams from the first and second sets of weight portions 120 and 130, respectively (e.g., sum of 3 grams from the first set of weight portions 120 and 16.8 grams from the second set of weight portions 130). Accordingly, the first set of weight portions 120 may account for about 15% of the total mass from exterior weight portions of the golf club head 100 whereas the second set of weight portions 130 may be account for about 85% of the total mass from exterior weight portions of the golf club head 100. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


By coupling the first and second sets of weight portions 120 and 130, respectively, to the body portion 110 (e.g., securing the first and second sets of weight portions 120 and 130 in the weight ports on the back portion 170), the location of the center of gravity (CG) and the moment of inertia (MOI) of the golf club head 100 may be optimized. In particular, the first and second sets of weight portions 120 and 130, respectively, may lower the location of the CG towards the sole portion 190 and further back away from the face portion 162. Further, the MOI may be higher as measured about a vertical axis extending through the CG (e.g., perpendicular to the ground plane 1010). The MOI may also be higher as measured about a horizontal axis extending through the CG (e.g., extending towards the toe and heel portions 150 and 160, respectively, of the golf club head 100). As a result, the club head 100 may provide a relatively higher launch angle and a relatively lower spin rate than a golf club head without the first and second sets of weight portions 120 and 130, respectively. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


Alternatively, two or more weight portions in the same set may be different in mass. In one example, the weight portion 121 of the first set 120 may have a relatively lower mass than the weight portion 122 of the first set 120. In another example, the weight portion 131 of the second set 130 may have a relatively lower mass than the weight portion 135 of the second set 130. With relatively greater mass at the top-and-toe transition region and/or the sole-and-toe transition region, more weight may be distributed away from the center of gravity (CG) of the golf club head 100 to increase the moment of inertia (MOI) about the vertical axis through the CG.


Although the figures may depict the weight portions as separate and individual parts, each set of the first and second sets of weight portions 120 and 130, respectively, may be a single piece of weight portion. In one example, all of the weight portions of the first set 120 (e.g., shown as 121, 122, 123, and 124) may be combined into a single piece of weight portion (e.g., a first weight portion). In a similar manner, all of the weight portions of the second set 130 (e.g., 131, 132, 133, 134, 135, 136, and 137) may be combined into a single piece of weight portion as well (e.g., a second weight portion). In this example, the golf club head 100 may have only two weight portions. While the figures may depict a particular number of weight portions, the apparatus, methods, and articles of manufacture described herein may include more or less number of weight portions. In one example, the first set of weight portions 120 may include two separate weight portions instead of three separate weight portions as shown in the figures. In another example, the second set of weight portions 130 may include five separate weight portions instead of seven separate weight portions a shown in the figures. Alternatively as mentioned above, the apparatus, methods, and articles of manufacture described herein may not include any separate weight portions (e.g., the body portion 110 may be manufactured to include the mass of the separate weight portions as integral part(s) of the body portion 110). The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


Referring back to FIGS. 7-9, for example, the body portion 110 may be a hollow body including the interior cavity 700 extending between the front portion 160 and the back portion 170. Further, the interior cavity 700 may extend between the top portion 180 and the sole portion 190. The interior cavity 700 may be associated with a cavity height 750 (HC), and the body portion 110 may be associated with a body height 850 (HB). While the cavity height 750 and the body height 850 may vary between the toe and heel portions 140 and 150, the cavity height 750 may be at least 50% of a body height 850 (HC>0.5*HB). For example, the cavity height 750 may vary between 70-85% of the body height 850. With the cavity height 750 of the interior cavity 700 being greater than 50% of the body height 850, the golf club head 100 may produce relatively more consistent feel, sound, and/or result when the golf club head 100 strikes a golf ball via the face portion 162 than a golf club head with a cavity height of less than 50% of the body height. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


In one example, the interior cavity 700 may be unfilled (i.e., empty space). The body portion 110 with the interior cavity 700 may weight about 100 grams less than the body portion 110 without the interior cavity 700. Alternatively, the interior cavity 700 may be partially or entirely filled with an elastic polymer or elastomer material (e.g., a viscoelastic urethane polymer material such as Sorbothane® material manufactured by Sorbothane, Inc., Kent, Ohio, a thermoplastic elastomer material (TPE), or a thermoplastic polyurethane material (TPU)), and/or other suitable types of materials to absorb shock, isolate vibration, and/or dampen noise. For example, at least 50% of the interior cavity 700 may be filled with a TPE material to absorb shock, isolate vibration, and/or dampen noise when the golf club head 100 strikes a golf ball via the face portion 162. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


Turning to FIG. 15, for example, the face portion 162 may include a first thickness 1510 (T1), and a second thickness 1520 (T2). The first thickness 1510 may be a thickness of a section of the face portion 162 adjacent to a groove 168 whereas the second thickness 1520 may be a thickness of a section of the face portion 162 below the groove 168. For example, the first thickness 1510 may be a maximum distance between the front surface 164 and the back surface 166. The second thickness 1520 may be based on the groove 168. In particular, the groove 168 may have a groove depth 1525 (Dgroove). The second thickness 1520 may be a maximum distance between the bottom of the groove 168 and the back surface 166. The sum of the second thickness 1520 and the groove depth 1525 may be substantially equal to the first thickness 1510 (e.g., T2+Dgroove=T1). Accordingly, the second thickness 1520 may be less than the first thickness 1510 (e.g., T2<T1).


To lower and/or move the CG of the golf club head 100 further back, weight from the front portion 160 of the golf club head 100 may be removed by using a relatively thinner face portion 162. For example, the first thickness 1510 may be about 0.075 inch (1.905 millimeters) (e.g., T1=0.075 inch). With the support of the back wall portion 1410 to form the interior cavity 700 and filling at least a portion of the interior cavity 700 with an elastic polymer material, the face portion 162 may be relatively thinner (e.g., T1<0.075 inch) without degrading the structural integrity, sound, and/or feel of the golf club head 100. In one example, the first thickness 1510 may be less than or equal to 0.060 inch (1.524 millimeters) (e.g., T1≤0.060 inch). In another example, the first thickness 1510 may be less than or equal to 0.040 inch (1.016 millimeters) (e.g., T1≤0.040 inch). Based on the type of material(s) used to form the face portion 162 and/or the body portion 110, the face portion 162 may be even thinner with the first thickness 1510 being less than or equal to 0.030 inch (0.762 millimeters) (e.g., T1≤0.030 inch). The groove depth 1525 may be greater than or equal to the second thickness 1520 (e.g., Dgroove≥T2). In one example, the groove depth 1525 may be about 0.020 inch (0.508 millimeters) (e.g., Dgroove=0.020 inch). Accordingly, the second thickness 1520 may be about 0.010 inch (0.254 millimeters) (e.g., T2=0.010 inch). In another example, the groove depth 1525 may be about 0.015 inch (0.381 millimeters), and the second thickness 1520 may be about 0.015 inch (e.g., Dgroove=T2=0.015 inch). Alternatively, the groove depth 1525 may be less than the second thickness 1520 (e.g., Dgroove<T2). Without the support of the back wall portion 1410 and the elastic polymer material to fill in the interior cavity 700, a golf club head may not be able to withstand multiple impacts by a golf ball on a face portion. In contrast to the golf club head 100 as described herein, a golf club head with a relatively thin face portion but without the support of the back wall portion 1410 and the elastic polymer material to fill in the interior cavity 700 (e.g., a cavity-back golf club head) may produce unpleasant sound (e.g., a tinny sound) and/or feel during impact with a golf ball. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


Based on manufacturing processes and methods used to form the golf club head 100, the face portion 162 may include additional material at or proximate to a periphery of the face portion 162. Accordingly, the face portion 162 may also include a third thickness 1530, and a chamfer portion 1540. The third thickness 1530 may be greater than either the first thickness 1510 or the second thickness 1520 (e.g., T3>T1>T2). In particular, the face portion 162 may be coupled to the body portion 110 by a welding process. For example, the first thickness 1510 may be about 0.030 inch (0.762 millimeters), the second thickness 1520 may be about 0.015 inch (0.381 millimeters), and the third thickness 1530 may be about 0.050 inch (1.27 millimeters). Accordingly, the chamfer portion 1540 may accommodate some of the additional material when the face portion 162 is welded to the body portion 110.


As illustrated in FIG. 16, for example, the face portion 162 may include a reinforcement section, generally shown as 1605, below one or more grooves 168. In one example, the face portion 162 may include a reinforcement section 1605 below each groove. Alternatively, face portion 162 may include the reinforcement section 1605 below some grooves (e.g., every other groove) or below only one groove. The face portion 162 may include a first thickness 1610, a second thickness 1620, a third thickness 1630, and a chamfer portion 1640. The groove 168 may have a groove depth 1625. The reinforcement section 1605 may define the second thickness 1620. The first and second thicknesses 1610 and 1620, respectively, may be substantially equal to each other (e.g., T1=T2). In one example, the first and second thicknesses 1610 and 1620, respectively, may be about 0.030 inch (0.762 millimeters) (e.g., T1=T2=0.030 inch). The groove depth 1625 may be about 0.015 inch (0.381 millimeters), and the third thickness 1630 may be about 0.050 inch (1.27 millimeters). The groove 168 may also have a groove width. The width of the reinforcement section 1605 may be greater than or equal to the groove width. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


Alternatively, the face portion 162 may vary in thickness at and/or between the top portion 180 and the sole portion 190. In one example, the face portion 162 may be relatively thicker at or proximate to the top portion 180 than at or proximate to the sole portion 190 (e.g., thickness of the face portion 162 may taper from the top portion 180 towards the sole portion 190). In another example, the face portion 162 may be relatively thicker at or proximate to the sole portion 190 than at or proximate to the top portion 180 (e.g., thickness of the face portion 162 may taper from the sole portion 190 towards the top portion 180). In yet another example, the face portion 162 may be relatively thicker between the top portion 180 and the sole portion 190 than at or proximate to the top portion 180 and the sole portion 190 (e.g., thickness of the face portion 162 may have a bell-shaped contour). The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


Different from other golf club head designs, the interior cavity 700 of the body portion 110 and the location of the first and second sets of weight portions 120 and 130, respectively, along the perimeter of the golf club head 100 may result in a golf ball traveling away from the face portion 162 at a relatively higher ball launch angle and a relatively lower spin rate. As a result, the golf ball may travel farther (i.e., greater total distance, which includes carry and roll distances).



FIG. 17 depicts one manner in which the example golf club head described herein may be manufactured. In the example of FIG. 17, the process 1700 may begin with providing two or more weight portions, generally shown as the first and second sets of weight portions 120 and 130, respectively (block 1710). The first and second sets of weight portions 120 and 130, respectively, may be made of a first material such as a tungsten-based material. In one example, the weight portions of the first and second sets 120 and 130, respectively, may be tungsten-alloy screws.


The process 1700 may provide a body portion 110 having the face portion 162, the interior cavity 700, and the back portion 170 with two or more exterior weight ports, generally shown as 1420 and 1430 (block 1720). The body portion 110 may be made of a second material, which is different than the first material. The body portion 110 may be manufacture using an investment casting process, a billet forging process, a stamping process, a computer numerically controlled (CNC) machining process, a die casting process, any combination thereof, or other suitable manufacturing processes. In one example, the body portion 110 may be made of 17-4 PH stainless steel using a casting process. In another example, the body portion 110 may be made of other suitable type of stainless steel (e.g., Nitronic® 50 stainless steel manufactured by AK Steel Corporation, West Chester, Ohio) using a forging process. By using Nitronic® 50 stainless steel to manufacture the body portion 110, the golf club head 100 may be relatively stronger and/or more resistant to corrosion than golf club heads made from other types of steel. Each weight port of the body portion 110 may include an opening and a port wall. For example, the weight port 1421 may include the opening 720 and the port wall 725 with the opening 720 and the port wall 725 being on opposite ends of each other. The interior cavity 700 may separate the port wall 725 of the weight port 1421 and the back surface 166 of the face portion 162. In a similar manner, the weight port 1835 may include the opening 730 and the port wall 735 with the opening 730 and the port wall 735 being on opposite ends of each other. The interior cavity 700 may separate the port wall 735 of the weight port 1435 and the back surface 166 of the face portion 162.


The process 1700 may couple each of the first and second sets of weight portions 120 and 130 into one of the two or more exterior weight ports (blocks 1730). In one example, the process 1700 may insert and secure the weight portion 121 in the exterior weight port 1421, and the weight portion 135 in the exterior weight portion 1435. The process 1700 may use various manufacturing methods and/or processes to secure the first and second sets of weight portions 120 and 130, respectively, in the exterior weigh ports such as the weight ports 1421 and 1435 (e.g., epoxy, welding, brazing, mechanical lock(s), any combination thereof, etc.).


The process 1700 may partially or entirely fill the interior cavity 700 with an elastic polymer material (e.g., Sorbothane® material) (block 1740). In one example, at least 50% of the interior cavity 700 may be filled with the elastic polymer material. As mentioned above, the elastic polymer material may absorb shock, isolate vibration, and/or dampen noise in response to the golf club head 100 striking a golf ball. In addition or alternatively, the interior cavity 700 may be filled with a thermoplastic elastomer material and/or a thermoplastic polyurethane material. As illustrated in FIG. 18, for example, the golf club head 100 may include one or more weight ports (e.g., one shown as 1431 in FIG. 14) with a first opening 1830 and a second opening 1835. The second opening 1835 may be used to access the interior cavity 700. In one example, the process 1700 (FIG. 17) may fill the interior cavity 700 with an elastic polymer material by injecting the elastic polymer material into the interior cavity 700 from the first opening 1830 via the second opening 1835. The first and second openings 1830 and 1835, respectively, may be same or different in size and/or shape. While the above example may describe and depict a particular weight port with a second opening, any other weight ports of the golf club head 100 may include a second opening (e.g., the weight port 720). The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


Referring back to FIG. 17, the example process 1700 is merely provided and described in conjunction with other figures as an example of one way to manufacture the golf club head 100. While a particular order of actions is illustrated in FIG. 17, these actions may be performed in other temporal sequences. For example, two or more actions depicted in FIG. 17 may be performed sequentially, concurrently, or simultaneously. In one example, blocks 1710, 1720, 1730, and/or 1740 may be performed simultaneously or concurrently. Although FIG. 17 depicts a particular number of blocks, the process may not perform one or more blocks. In one example, the interior cavity 700 may not be filled (i.e., block 1740 may not be performed). The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


The apparatus, methods, and articles of manufacture described herein may be implemented in a variety of embodiments, and the foregoing description of some of these embodiments does not necessarily represent a complete description of all possible embodiments. Instead, the description of the drawings, and the drawings themselves, disclose at least one embodiment, and may disclosure alternative embodiments.


As the rules of golf may change from time to time (e.g., new regulations may be adopted or old rules may be eliminated or modified by golf standard organizations and/or governing bodies such as the United States Golf Association (USGA), the Royal and Ancient Golf Club of St. Andrews (R&A), etc.), golf equipment related to the apparatus, methods, and articles of manufacture described herein may be conforming or non-conforming to the rules of golf at any particular time. Accordingly, golf equipment related to the apparatus, methods, and articles of manufacture described herein may be advertised, offered for sale, and/or sold as conforming or non-conforming golf equipment. The apparatus, methods, and articles of manufacture described herein are not limited in this regard.


Although certain example apparatus, methods, and articles of manufacture have been described herein, the scope of coverage of this disclosure is not limited thereto. On the contrary, this disclosure covers all apparatus, methods, and articles of articles of manufacture fairly falling within the scope of the appended claims either literally or under the doctrine of equivalents.

Claims
  • 1. A golf club head comprising: a body portion having an interior cavity, a toe portion, a heel portion, a top portion, a sole portion, a front portion, and a back portion;a face portion coupled to the front portion to close the interior cavity, the face portion comprising: a front surface including a first groove extending between the toe portion and the heel portion, a second groove extending between the toe portion and the heel portion, and a front center portion between the first groove and the second groove,a back surface opposite of the front surface,a reinforcement section extending into the interior cavity from the back surface, the reinforcement section including a first reinforcement portion extending between the toe portion and the heel portion, a second reinforcement portion extending between the toe portion and the heel portion, anda back center portion between the first reinforcement portion and the second reinforcement portion;a first face portion thickness defined by a distance between the front center portion and the back center portion;a second face portion thickness defined by a distance between a bottom of the first groove and an outermost surface of the first reinforcement portion or a distance between a bottom of the second groove and an outermost surface of the second reinforcement portion;a third face portion thickness at or proximate to a periphery of the face portion, the third face portion thickness being greater than the first face portion thickness and the second face portion thickness; anda first set of ports above a horizontal midplane of the body portion, at least one port of the first set of ports being connected to the interior cavity;a second set of ports below the horizontal midplane, at least one port of the second set of ports being connected to the interior cavity;a first set of weight portions and a second set of weight portions, each port of the first set of ports and each port of the second set of ports configured to receive at least one of the weight portions of the first set of weight portions or the second set of weight portions;a polymer material infected into the interior cavity from the at least one port of the first set of ports that is connected to the interior cavity or the at least one port of the second set of ports that is connected to the interior cavity, the polymer material being coupled to the back center portion and filling a portion of the interior cavity between the first reinforcement portion and the second reinforcement portion,wherein the first face portion thickness is equal or substantially equal to the second face portion thickness, andwherein a distance between the at least one port of the first set of ports and the face portion is less than a distance between the at least one port of the second set of ports and the face portion.
  • 2. A golf club head as defined in claim 1, wherein a distance between the first reinforcement portion and the top portion is less than a distance between the first reinforcement portion and the sole portion.
  • 3. A golf club head as defined in claim 1, wherein a distance between the second reinforcement portion and the sole portion is less than a distance between the second reinforcement portion and the top portion.
  • 4. A golf club head as defined in claim 1, wherein a width of the first groove or a width of the second groove is less than a width of the first reinforcement portion and less than a width of the second reinforcement portion.
  • 5. A golf club head as defined in claim 1, wherein the reinforcement section at least partially surrounds at least a portion of the polymer material.
  • 6. A golf club head as defined in claim 1, wherein a distance between the at least one port of the first set of ports and the toe portion is less than a distance between the at least one port of the first set of ports and the heel portion.
  • 7. A golf club head comprising: a body portion having an interior cavity, a toe portion, a heel portion, a top portion, a sole portion, a front portion, and a back portion;a face portion coupled to the front portion to close the interior cavity, the face portion having a front surface with a plurality of grooves, a back surface opposite of the front surface, and a plurality of reinforcement portions extending into the interior cavity from the back surface;a first set of ports above a horizontal midplane of the body portion, at least one port of the first set of ports being connected to the interior cavity;a second set of ports below the horizontal midplane, at least one port of the second set of ports being connected to the interior cavity;a first set of weight portions and a second set of weight portions, each port of the first set of ports and each port of the second set of ports configured to receive at least one of the weight portions of the first set of weight portions or the second set of weight portions; anda polymer material infected into the interior cavity from the at least one port of the first set of ports that is connected to the interior cavity or the at least one port of the second set of ports that is connected to the interior cavity, the polymer material being coupled to the back surface of the face portion between adjacent reinforcement portions of the plurality of reinforcement portions,wherein a thickness of the face portion is similar or substantially similar between adjacent grooves of the plurality of grooves, between adjacent reinforcement portions of the plurality of reinforcement portions, at each groove of the plurality of grooves, and at each reinforcement portion of the plurality of reinforcement portions,wherein a distance between the at least one port of the first set of ports and the face portion is less than a distance between the at least one port of the second set of ports and the face portion, andwherein a thickness of the face portion at or proximate to a periphery of the face portion is greater than the thickness of the face portion between adjacent grooves of the plurality of grooves, greater than the thickness of the face portion between adjacent reinforcement portions of the plurality of reinforcement portions, greater than the thickness of the face portion at each groove of the plurality of grooves, and greater than the thickness of the face portion at each reinforcement portion of the plurality of reinforcement portions.
  • 8. A golf club head as defined in claim 7, wherein a thickness of the face portion is less than or equal to 0.075 inch (1.9 mm).
  • 9. A golf club head as defined in claim 7, wherein a depth of each groove of the plurality of grooves is similar or substantially similar to a height of each reinforcement portion of the plurality of reinforcement portions.
  • 10. A golf club head as defined in claim 7, wherein each groove of the plurality of grooves is located on the face portion opposite a reinforcement portion of the plurality of reinforcement portions.
  • 11. A golf club head as defined in claim 7, wherein a width of each groove is less than a width of each reinforcement portion of the plurality of reinforcement portions.
  • 12. A golf club head as defined in claim 7, wherein the polymer material surrounds each reinforcement portion of the plurality of reinforcement portions.
  • 13. A golf club head comprising: a body portion having an interior cavity, a toe portion, a heel portion, a top portion, a sole portion, a front portion, and a back portion;a face portion coupled to the front portion to close the interior cavity, the face portion having a front surface with a plurality of grooves, and a back surface opposite of the front surface, the back surface including a plurality of spaced apart reinforcement portions extending into the interior cavity from the back surface;a first set of ports above a horizontal midplane of the body portion, at least one port of the first set of ports being connected to the interior cavity;a second set of ports below the horizontal midplane, at least one port of the second set of ports being connected to the interior cavity;a first set of weight portions and a second set of weight portions, each port of the first set of ports and each port of the second set of ports configured to receive at least one of the weight portions of the first set of weight portions or the second set of weight portions; anda polymer material infected into the interior cavity, the polymer material surrounding the plurality of reinforcement portions,wherein a thickness of the face portion between the front surface of the face portion and the back surface of the face portion is similar or substantially similar between the toe portion and the heel portion and between the top portion and the sole portion, andwherein a thickness of the face portion at or proximate to a periphery of the face portion is greater than the thickness of the face portion between adjacent grooves of the plurality of grooves, greater than the thickness of the face portion between adjacent reinforcement portions of the plurality of reinforcement portions, greater than the thickness of the face portion at each groove of the plurality of grooves, and greater than the thickness of the face portion at each reinforcement portion of the plurality of reinforcement portions.
  • 14. A golf club head as defined in claim 13 plurality of weight portions on the body portion extending from a location proximate to the heel portion to a location at or proximate to the toe portion, wherein the second set of ports includes a first port and a second port, wherein a distance between the first port and the toe portion is less than a distance between the first port and the heel portion, and wherein a distance between the second port and the toe portion is greater than a distance between the second port and the heel portion.
  • 15. A golf club head as defined in claim 13, wherein a width of each groove of the plurality of grooves is less than a width of each reinforcement portion.
  • 16. A golf club head as defined in claim 13 further comprising at least, wherein a distance between the at least one port of the first set of ports and the face portion is less than a distance between the at least one port of the second set of ports and the face portion.
  • 17. A golf club head as defined in claim 13, wherein at least one weight portion of the second set of weight portions is made from a material having a greater density than a material of the body portion.
  • 18. A golf club head as defined in claim 13, wherein the thickness of the face portion is less than or equal to 0.075 inch (1.9 mm).
  • 19. A golf club head as defined in claim 13, wherein at least one weight portion of the first set of weight portions is made from a material having a greater density than a material of the body portion.
  • 20. A golf club head as defined in claim 13, wherein each weight portion of the first set of weight portions and the second set of weight portions is threaded, and wherein each port of the first set of ports and each port of the second set of ports is internally threaded to receive at least one of the weight portions of the first set of weight portions or the second set of weight portions.
CROSS REFERENCE

This application is a continuation of application Ser. No. 15/841,022, filed Dec. 13, 2017, which is a continuation of application Ser. No. 15/701,131, filed Sep. 11, 2017, which is a continuation-in-part of application Ser. No. 15/685,986, filed Aug. 24, 2017, which is a continuation of application Ser. No. 15/628,251, filed Jun. 20, 2017, which is a continuation of application Ser. No. 15/209,364, filed on Jul. 13, 2016, is a continuation of International Application No. PCT/US15/16666, filed Feb. 19, 2015, which claims the benefit of U.S. Provisional Application No. 61/942,515, filed Feb. 20, 2014, U.S. Provisional Application No. 61/945,560, filed Feb. 27, 2014, U.S. Provisional Application No. 61/948,839, filed Mar. 6, 2014, U.S. Provisional Application No. 61/952,470, filed Mar. 13, 2014, U.S. Provisional Application No. 61/992,555, filed May 13, 2014, U.S. Provisional Application No. 62/010,836, filed Jun. 11, 2014, U.S. Provisional Application No. 62/011,859, filed Jun. 13, 2014, and U.S. Provisional Application No. 62/032,770, filed Aug. 4, 2014. This application is a continuation of U.S. application Ser. No. 15/209,364, filed on Jul. 13, 2016, which is a continuation of application Ser. No. 14/618,501, filed Feb. 10, 2015, now U.S. Pat. No. 9,427,634, which is a continuation of application Ser. No. 14/589,277, filed Jan. 5, 2015, now U.S. Pat. No. 9,421,437, which is a continuation of application Ser. No. 14/513,073, filed Oct. 13, 2014, now U.S. Pat. No. 8,961,336, which is a continuation of application Ser. No. 14/498,603, filed Sep. 26, 2014, now U.S. Pat. No. 9,199,143, which claims the benefits of U.S. Provisional Application No. 62/041,538, filed Aug. 25, 2014. The disclosures of the referenced application are incorporated herein by reference.

US Referenced Citations (301)
Number Name Date Kind
1133129 Govan Mar 1915 A
1534600 Mattern Apr 1925 A
1538312 Beat May 1925 A
D138438 Link Aug 1944 S
3020048 Carroll Feb 1962 A
3266805 Bulla Aug 1966 A
D215101 Sabat Sep 1969 S
3466047 Rodia Sep 1969 A
D229431 Baker Nov 1973 S
3845960 Thompson Nov 1974 A
D234609 Raymont Mar 1975 S
D239550 Timbrook Apr 1976 S
D240748 Bock Jul 1976 S
3979122 Belmont Sep 1976 A
3985363 Jepson Oct 1976 A
3995865 Cochran Dec 1976 A
4043563 Churchward Aug 1977 A
4085934 Churchward Apr 1978 A
4145052 Janssen Mar 1979 A
D253778 Madison Dec 1979 S
4313607 Thompson Feb 1982 A
4340230 Churchward Jul 1982 A
4489945 Kobayashi Dec 1984 A
4502687 Kochevar Mar 1985 A
4511145 Schmidt Apr 1985 A
4523759 Igarashi Jun 1985 A
4545580 Tomita Oct 1985 A
4553755 Yamada Nov 1985 A
4607846 Perkins Aug 1986 A
D294617 Perkins Mar 1988 S
4754977 Sahm Jul 1988 A
4803023 Enomoto Feb 1989 A
4824116 Nagamoto Apr 1989 A
4867458 Sumikawa Sep 1989 A
4869507 Sahm Sep 1989 A
4928972 Nakanishi May 1990 A
4962932 Anderson Oct 1990 A
4988104 Shiotani Jan 1991 A
5028049 McKeighen Jul 1991 A
5050879 Sun Sep 1991 A
5158296 Lee Oct 1992 A
5176384 Sata Jan 1993 A
5178392 Santioni Jan 1993 A
5184823 Desboilles Feb 1993 A
5209473 Fisher May 1993 A
5213328 Long May 1993 A
D336672 Gorman Jun 1993 S
5219408 Sun Jun 1993 A
5244211 Lukasiewicz Sep 1993 A
5348302 Sasamoto Sep 1994 A
D351883 Serrano Oct 1994 S
5351958 Helmstetter Oct 1994 A
5385348 Wargo Jan 1995 A
5419559 Melanson May 1995 A
5419560 Bamber May 1995 A
5425535 Gee Jun 1995 A
D361358 Simmons Aug 1995 S
5447311 Viollaz Sep 1995 A
5451056 Manning Sep 1995 A
D362885 Sheeley Oct 1995 S
5485998 Kobayashi Jan 1996 A
5518423 Redman May 1996 A
5533729 Leu Jul 1996 A
5540437 Bamber Jul 1996 A
5582553 Ashcraft Dec 1996 A
D378111 Parente Feb 1997 S
5637045 Igarashi Jun 1997 A
5647808 Hosokawa Jul 1997 A
5649873 Fuller Jul 1997 A
5669830 Bamber Sep 1997 A
5711722 Miyajima Jan 1998 A
5718641 Lin Feb 1998 A
5766091 Humphrey Jun 1998 A
5766092 Mimeur Jun 1998 A
5769735 Hosokawa Jun 1998 A
5772527 Liu Jun 1998 A
5788584 Parente Aug 1998 A
5797807 Moore Aug 1998 A
5827132 Bamber Oct 1998 A
5899821 Hsu May 1999 A
5908357 Hsieh Jun 1999 A
5913735 Kenmi Jun 1999 A
5935016 Antonious Aug 1999 A
6015354 Ahn Jan 2000 A
D421080 Chen Feb 2000 S
D426276 Besnard et al. Jun 2000 S
6077171 Yoneyama Jun 2000 A
6162133 Peterson Dec 2000 A
6165081 Chou Dec 2000 A
6203449 Kenmi Mar 2001 B1
D442659 Solheim May 2001 S
6231458 Cameron May 2001 B1
6238302 Helmstetter May 2001 B1
D445862 Ford Jul 2001 S
6290607 Gilbert Sep 2001 B1
6290609 Takeda Sep 2001 B1
6379262 Boone Apr 2002 B1
6386990 Reyes May 2002 B1
6443857 Chuang Sep 2002 B1
6475427 Deshmukh Nov 2002 B1
D469833 Roberts Feb 2003 S
D475107 Madore May 2003 S
D478140 Burrows Aug 2003 S
6616547 Vincent Sep 2003 B2
6638182 Kosmatka Oct 2003 B2
6695714 Bliss Feb 2004 B1
6702693 Bamber Mar 2004 B2
6780123 Hasebe Aug 2004 B2
6811496 Wahl Nov 2004 B2
6830519 Reed Dec 2004 B2
6855067 Solheim Feb 2005 B2
D502975 Schweigert et al. Mar 2005 S
D503204 Nicolette et al. Mar 2005 S
D508545 Roberts et al. Aug 2005 S
D508969 Hasebe Aug 2005 S
6923733 Chen Aug 2005 B2
6949031 Imamoto Sep 2005 B2
D514183 Schweigert Jan 2006 S
7029403 Rice Apr 2006 B2
7037213 Otoguro May 2006 B2
D523501 Schweigert Jun 2006 S
7121956 Lo Oct 2006 B2
7128663 Bamber Oct 2006 B2
7153222 Gilbert Dec 2006 B2
D534595 Hasebe Jan 2007 S
7156751 Wahl Jan 2007 B2
7169057 Wood Jan 2007 B2
7182698 Tseng Feb 2007 B2
7207900 Nicolette Apr 2007 B2
D543601 Kawami May 2007 S
7281991 Gilbert Oct 2007 B2
D555219 Lin Nov 2007 S
7303485 Tseng Dec 2007 B2
7303486 Imamoto Dec 2007 B2
7309297 Solari Dec 2007 B1
7351164 Schweigert Apr 2008 B2
7396299 Nicolette Jul 2008 B2
7448961 Lin Nov 2008 B2
7559854 Harvell Jul 2009 B2
7575523 Yokota Aug 2009 B2
7582024 Shear Sep 2009 B2
7588502 Nishino Sep 2009 B2
7611424 Nagai Nov 2009 B2
7658686 Soracco Feb 2010 B2
D618293 Foster et al. Jun 2010 S
7744484 Chao Jun 2010 B1
7744486 Hou Jun 2010 B2
7744487 Tavares Jun 2010 B2
7749101 Imamoto Jul 2010 B2
7794333 Wallans Sep 2010 B2
7798917 Nguyen Sep 2010 B2
7803068 Clausen Sep 2010 B2
7815521 Ban Oct 2010 B2
7846040 Ban Dec 2010 B2
7938736 Park May 2011 B2
7938738 Roach May 2011 B2
8062150 Gilbert Nov 2011 B2
8088025 Wahl Jan 2012 B2
8092319 Cackett Jan 2012 B1
8105180 Cackett Jan 2012 B1
8147353 Gilbert Apr 2012 B2
8221262 Cackett Jul 2012 B1
8246487 Cackett Aug 2012 B1
8257196 Abbott Sep 2012 B1
8262495 Stites Sep 2012 B2
8262506 Watson Sep 2012 B2
8328662 Nakamura Dec 2012 B2
8376878 Bennett Feb 2013 B2
8393976 Soracco Mar 2013 B2
D681142 Fossum et al. Apr 2013 S
8414422 Peralta Apr 2013 B2
8449406 Frame May 2013 B1
8506420 Hocknell Aug 2013 B2
8535176 Bazzel Sep 2013 B2
8545343 Boyd Oct 2013 B2
8574094 Nicolette Nov 2013 B2
8657700 Nicolette Feb 2014 B2
8663026 Blowers Mar 2014 B2
8690710 Nicolette Apr 2014 B2
8753230 Stokke Jun 2014 B2
8790196 Solheim Jul 2014 B2
8827832 Breier Sep 2014 B2
8827833 Amano Sep 2014 B2
8845455 Ban Sep 2014 B2
8858362 Leposky Oct 2014 B1
D722351 Parsons et al. Feb 2015 S
D722352 Nicolette et al. Feb 2015 S
D723120 Nicolette Feb 2015 S
8961336 Parsons Feb 2015 B1
D724164 Schweigert et al. Mar 2015 S
D725208 Schweigert Mar 2015 S
D726265 Nicolette Apr 2015 S
D726846 Schweigert Apr 2015 S
9005056 Pegnatori Apr 2015 B2
D729892 Schweigert May 2015 S
D733234 Nicolette Jun 2015 S
9044653 Wahl Jun 2015 B2
9061186 Larson Jun 2015 B2
9079081 Shimazaki Jul 2015 B2
9079082 Hatton Jul 2015 B2
D738449 Schweigert Sep 2015 S
D739487 Schweigert Sep 2015 S
9192830 Parsons Nov 2015 B2
9192832 Parsons Nov 2015 B2
9199143 Parsons Dec 2015 B1
D746927 Parsons Jan 2016 S
D748214 Nicolette et al. Jan 2016 S
D748215 Parsons et al. Jan 2016 S
D748749 Nicolette et al. Feb 2016 S
D753251 Schweigert Apr 2016 S
D753252 Schweigert Apr 2016 S
D755319 Schweigert May 2016 S
D756471 Schweigert May 2016 S
9345938 Parsons May 2016 B2
9346203 Parsons May 2016 B2
9352197 Parsons May 2016 B2
D759178 Nicolette Jun 2016 S
D760334 Schweigert Jun 2016 S
9364727 Parsons Jun 2016 B2
9399158 Parsons Jul 2016 B2
9421437 Parsons Aug 2016 B2
9427634 Parsons Aug 2016 B2
9440124 Parsons Sep 2016 B2
9468821 Parsons Oct 2016 B2
9517393 Cardani Dec 2016 B2
9533201 Parsons Jan 2017 B2
9550096 Parsons Jan 2017 B2
9573027 Nivanh Feb 2017 B2
9610481 Parsons Apr 2017 B2
9630070 Parsons Apr 2017 B2
9636554 Parsons May 2017 B2
9649540 Parsons May 2017 B2
9662547 Parsons May 2017 B2
9662549 Vrska, Jr. May 2017 B2
9764194 Parsons Sep 2017 B2
9782643 Parsons Oct 2017 B2
9795842 Parsons Oct 2017 B1
9795843 Parsons Oct 2017 B2
20020037775 Keelan Mar 2002 A1
20020042307 Deshmukh Apr 2002 A1
20020094884 Hocknell Jul 2002 A1
20020107087 Fagot Aug 2002 A1
20030087709 McCabe May 2003 A1
20030139226 Cheng Jul 2003 A1
20030176231 Hasebe Sep 2003 A1
20030194548 McLeod Oct 2003 A1
20040092331 Best May 2004 A1
20040204263 Fagot Oct 2004 A1
20040266550 Gilbert Dec 2004 A1
20050009632 Schweigert Jan 2005 A1
20050014573 Lee Jan 2005 A1
20050043117 Gilbert Feb 2005 A1
20050119066 Stites Jun 2005 A1
20050197208 Imamoto Sep 2005 A1
20050209023 Tseng Sep 2005 A1
20050239569 Best Oct 2005 A1
20050277485 Hou Dec 2005 A1
20060111200 Poynor May 2006 A1
20060199666 De La Cruz Sep 2006 A1
20060229141 Galloway Oct 2006 A1
20060240909 Breier Oct 2006 A1
20070032308 Fagot Feb 2007 A1
20070225084 Schweigert Sep 2007 A1
20070249431 Lin Oct 2007 A1
20080022502 Tseng Jan 2008 A1
20080058113 Nicolette Mar 2008 A1
20080188322 Anderson Aug 2008 A1
20080300065 Schweigert Dec 2008 A1
20080305888 Tseng Dec 2008 A1
20080318705 Clausen Dec 2008 A1
20080318706 Larson Dec 2008 A1
20090029790 Nicolette Jan 2009 A1
20090042665 Morales Feb 2009 A1
20090075750 Gilbert Mar 2009 A1
20090163295 Tseng Jun 2009 A1
20100130306 Schweigert May 2010 A1
20100178999 Nicolette Jul 2010 A1
20100304887 Bennett Dec 2010 A1
20110070970 Wan Mar 2011 A1
20110111883 Cackett May 2011 A1
20110165963 Cackett Jul 2011 A1
20110269567 Ban Nov 2011 A1
20110294596 Ban Dec 2011 A1
20120071270 Nakano Mar 2012 A1
20130137532 Deshmukh May 2013 A1
20130225319 Kato Aug 2013 A1
20130281226 Ban Oct 2013 A1
20130288823 Hebreo Oct 2013 A1
20130303303 Ban Nov 2013 A1
20130310192 Wahl Nov 2013 A1
20130316842 Demkowski Nov 2013 A1
20130344976 Stites Dec 2013 A1
20140038737 Roach Feb 2014 A1
20140045605 Fujiwara Feb 2014 A1
20140080621 Nicolette Mar 2014 A1
20140128175 Jertson May 2014 A1
20140274441 Greer Sep 2014 A1
20140274442 Honea Sep 2014 A1
20140274451 Knight Sep 2014 A1
20150231454 Parsons Aug 2015 A1
20150231806 Parsons Aug 2015 A1
Foreign Referenced Citations (24)
Number Date Country
1302216 Jul 2001 CN
1572343 Feb 2005 CN
1608696 Apr 2005 CN
101031342 Sep 2007 CN
101754786 Jun 2010 CN
201658798 Dec 2010 CN
102143783 Aug 2011 CN
202087021 Dec 2011 CN
29715997 Feb 1998 DE
2249031 Apr 1992 GB
S51140374 Dec 1976 JP
02084972 Mar 1990 JP
08257181 Oct 1996 JP
H10127832 May 1998 JP
241003 Oct 1998 JP
10277187 Oct 1998 JP
H10277187 Oct 1998 JP
2001346924 Dec 2001 JP
2002143356 May 2002 JP
2004313777 Nov 2004 JP
2005218510 Aug 2005 JP
2010530782 Sep 2010 JP
2013043091 Mar 2013 JP
9215374 Sep 1992 WO
Non-Patent Literature Citations (12)
Entry
Taylor Made Golf Company, Inc., https://taylormadegolf.com/on/demandware.static/-/sites-tmag-library/default/v1459859109590/docs/productspecs/tm_S2013_catalog18.pdf., Published Jan. 2013.
Rocketbladez Press Release, “Golfballed”, http://golfballed.com/index.php?option=com_content&view=article&id=724:taylormade- . . . Oct. 13, 2017, Published Jan. 3, 2013.
International Search Report and Written Opinion Received in Connection With the Corresponding Application No. PCT/US14/71250, dated Mar. 12, 2015 (6 Pages).
U.S. Appl. No. 14/618,501, Parsons et al., “Golf Club Heads and Methods to Manufacture Golf Club Heads,” filed Feb. 10, 2015.
International Search Report and Written Opinion Received in Connection With the Corresponding Application No. PCT/US2015/016666, dated May 14, 2015 (8 Pages).
U.S. Appl. No. 14/589,277, Parsons et al., “Golf Club Heads and Methods to Manufacture Golf Club Heads,” filed Jan. 5, 2015.
U.S. Appl. No. 29/512,313, Nicolette, “Golf Club Head,” filed Dec. 18, 2018.
Kozuchowski, Zak, “Callaway Mack Daddy 2 PM Grind Wedges” (http://golfwrz.com/276203/callaway-mack-daddy-2-PM-grind-wedges/), www.golfwrx.com, GolfWRX Holdings, LLC, Published Jan. 21, 2015.
Wall, Jonathan, “Details: Phil's Prototype Mack Daddy PM-Grind Wedge,” (http://www.pgatour.com/equipmentreport/2015/01/21/callaway-wedge.html), www.pgatour.com, PGA Tour, Inc., Published Jan. 21, 2015.
International Search Report and Written Opinion Received in Connection With Corresponding PCT Application Serial No. PCT/US16/42075 dated Sep. 22, 2016 (13 Pages).
Certified Translation, dated Jan. 25, 2018, of JP 2004-313777 A, titled“Iron Golf Club Head and Manufacturing Method Thereof”, with an applicant named Mizuno Corp. and having a publication date of Nov. 11, 2004.
Translation of JP H10-277187A From “Japanese to English”, 8 Pages, Including Japanese Unexamined Patent; Translated Nov. 21, 2017.
Related Publications (1)
Number Date Country
20190217165 A1 Jul 2019 US
Provisional Applications (9)
Number Date Country
61942515 Feb 2014 US
61945560 Feb 2014 US
61948839 Mar 2014 US
61952470 Mar 2014 US
61992555 May 2014 US
62010836 Jun 2014 US
62011859 Jun 2014 US
62032770 Aug 2014 US
62041538 Aug 2014 US
Continuations (11)
Number Date Country
Parent 15841022 Dec 2017 US
Child 16365343 US
Parent 15701131 Sep 2017 US
Child 15841022 US
Parent 15628251 Jun 2017 US
Child 15685986 US
Parent 15209364 Jul 2016 US
Child 15628251 US
Parent PCT/US2015/016666 Feb 2015 US
Child 15209364 US
Parent 16365343 Mar 2019 US
Child 15209364 US
Parent 15209364 Jul 2016 US
Child 16365343 US
Parent 14618501 Feb 2015 US
Child 15209364 US
Parent 14589277 Jan 2015 US
Child 14618501 US
Parent 14513073 Oct 2014 US
Child 14589277 US
Parent 14498603 Sep 2014 US
Child 14513073 US
Continuation in Parts (1)
Number Date Country
Parent 15685986 Aug 2017 US
Child 15701131 US