Angle adjusting device for golf club head
By designing a golf club head angle adjustment device, which utilizes the combined motion of a motor, cylinder, and hydraulic chuck, the angle of the golf club head is automatically adjusted, solving the problems of low efficiency and high labor intensity in existing technologies, and achieving efficient and stable angle adjustment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2026-03-24
AI Technical Summary
The base angle, loft angle, and offset angle of existing golf balls have large errors in production and processing, resulting in low efficiency and a large amount of labor required for manual adjustment.
Design a golf club head angle adjustment device, including a base, a strong clamp, a bracket, a first rotating frame, a second rotating frame, and a hydraulic claw disk, to achieve automated angle adjustment through the combined movement of a motor, a cylinder, and a hydraulic claw disk.
This reduces the workload for workers, improves the efficiency and consistency of angle adjustment, and ensures product stability.
Smart Images

Figure CN224027462U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a golf club head production device, and more particularly to a golf club head angle adjustment device. Background Technology
[0002] Golf heads have three important angles: base angle (LIE), loft angle (LOFT), and azimuth angle (FA). During casting and production, errors in manufacturing and processing result in significant deviations between these three angles and the designed angles in the finished product. Therefore, adjustments are necessary to meet actual usage requirements. The current adjustment method involves manually inserting a hollow cylindrical rod into the long shaft of the golf head (the part that connects to the club) and forcibly bending it. Specifically, a standard golf head is fixed in place using a clamp. The cylindrical rod is then inserted into the long shaft of the golf head, and a laser beam at the end of the rod projects onto a wall (or calibration plate) to form a standard point. When the standard golf head is replaced with the finished product, the laser beam on the wall does not coincide with the standard point. The cylindrical rod is then bent until the two points coincide, thus adjusting the three angles of the product (an error of 1-3° is permissible). This method is labor-intensive and inefficient. Summary of the Invention
[0003] In order to overcome the shortcomings of the existing technology, this utility model provides a golf club head angle adjustment device.
[0004] The technical solution adopted by this utility model to solve its technical problem is:
[0005] A golf club head angle adjustment device includes a base, on which a strong clamp for fixing the club head is mounted, a bracket is mounted on the base, and a first rotating frame that can be adjusted in the left-right direction is rotatably mounted on the bracket. A second rotating frame that can be adjusted in the front-back direction relative to the first rotating frame is rotatably mounted inside the first rotating frame, and a hydraulic claw plate that can be adjusted in the left-right direction relative to the second rotating frame is rotatably mounted inside the second rotating frame.
[0006] The support has a third motor mount and a third cylinder mount on its left and right sides, respectively. A third motor is slidably mounted on the third motor mount, and a third cylinder is fixedly mounted on the third cylinder mount. A third rotating rod and a third moving rod are respectively provided on the left and right sides of the first rotating frame. The third rotating rod is connected to the rotating shaft of the third motor, and the third moving rod is connected to the telescopic shaft of the third cylinder.
[0007] The first rotating frame has a first motor base and a first cylinder base respectively on its front and rear sides. A first motor is slidably mounted on the first motor base, and a first cylinder is fixedly mounted on the first cylinder base. The second rotating frame has a first rotating rod and a first moving rod respectively on its front and rear sides. The first rotating rod is connected to the rotation shaft of the first motor, and the first moving rod is connected to the extension shaft of the first cylinder.
[0008] The second rotating frame has a second motor base and a second cylinder base on its left and right sides, respectively. The second motor is slidably mounted on the second motor base, and the second cylinder is fixedly mounted on the second cylinder base. The hydraulic claw plate has a second rotating rod and a second moving rod on its left and right sides, respectively. The second rotating rod is connected to the rotating shaft of the second motor, and the second moving rod is connected to the telescopic shaft of the second cylinder.
[0009] A connector is installed on the telescopic shaft of the second cylinder. The connector has a U-shaped notch. Each moving rod has an annular groove corresponding to the U-shaped notch. The U-shaped notch is engaged in the annular groove.
[0010] Each motor mount is equipped with a slide rail, and each motor is slidably mounted on the slide rail via a slider.
[0011] The slide rail has concave structures on both sides, and the slider has convex structures on both sides corresponding to the concave structures, with the convex structures fitting into the concave structures.
[0012] The beneficial effects of this utility model are as follows: A golf club head angle adjustment device includes a base, a strong clamp for fixing the club head is installed on the base, a bracket is installed on the base, a first rotating frame that can be adjusted in the left and right direction is rotatably installed on the bracket, a second rotating frame that can be adjusted in the front and back direction relative to the first rotating frame is rotatably installed in the first rotating frame, and a hydraulic claw plate that can be adjusted in the left and right direction relative to the second rotating frame is rotatably installed in the second rotating frame. Through the three linear movements and three rotational movements of the first rotating frame, the second rotating frame and the hydraulic claw plate, the axis of the hydraulic claw plate is adjusted to coincide with the axis of the long shaft of the standard club head fixed on the strong clamp. The club head to be adjusted is fixed on the strong clamp, and its long shaft is inserted into the hydraulic claw plate. As the jaws of the hydraulic claw plate continuously retract towards the center, the axis of the long shaft coincides with the axis of the hydraulic claw plate, thus completing the angle adjustment. This reduces the workload of workers, improves efficiency, and provides high consistency in angle adjustment and high product stability. Attached Figure Description
[0013] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0014] Figure 1This is a structural diagram of the present invention;
[0015] Figure 2 This is a partial structural diagram of the present invention;
[0016] Figure 3 This is an exploded view of the connection between the cylinder and the moving rod;
[0017] Figure 4 This is an exploded view of the slider and the guide rail. Detailed Implementation
[0018] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be noted that, unless otherwise specified, the embodiments and features of the present utility model can be combined with each other.
[0019] It should be understood that these descriptions are merely exemplary and not intended to limit the scope of this invention.
[0020] The following describes some embodiments of the present invention with reference to the accompanying drawings.
[0021] Reference Figure 1-4 A golf club head angle adjustment device includes a base 1, on which a strong clamp 2 for fixing the club head is mounted. A bracket 3 is mounted on the base 1, and a first rotating frame 4, adjustable in the left-right direction, is rotatably mounted on the bracket 3. A second rotating frame 5, adjustable in the front-back direction relative to the first rotating frame 4, is rotatably mounted within the first rotating frame 4. A hydraulic claw disc 6, adjustable in the left-right direction relative to the second rotating frame 5, is rotatably mounted within the second rotating frame 5. (The hydraulic claw disc 6 uses an existing structural device.) Through three linear movements and three rotational movements of the first rotating frame 4, the second rotating frame 5, and the hydraulic claw disc 6 (in three-dimensional space, adjusting an object to any position requires three linear movements and three rotational movements), the device adjusts the club head angle. (A rotational motion, belonging to existing theory), adjusts the axis of the hydraulic claw disk 6 to coincide with the axis of the long rod of the standard ball head fixed on the strong clamp 2. The ball head to be adjusted is fixed on the strong clamp 2, and its long rod is inserted into the hydraulic claw disk 6. As the jaws of the hydraulic claw disk 6 continuously retract towards the center, the axis of the long rod coincides with the axis of the hydraulic claw disk, thus completing the angle adjustment. This reduces the workload of workers, improves efficiency, and ensures high consistency in angle adjustment and high product stability.
[0022] The support 3 has a third motor base 7 and a third cylinder base 8 on its left and right sides, respectively. A third motor 9 is slidably mounted on the third motor base 7, and a third cylinder 10 is fixedly mounted on the third cylinder base 8. A third rotating rod 11 and a third moving rod 12 are respectively provided on the left and right sides of the first rotating frame 4. The third rotating rod 11 is connected to the rotation shaft of the third motor 9, and the third moving rod 12 is connected to the telescopic shaft of the third cylinder 10.
[0023] The first rotating frame 4 has a first motor base 13 and a first cylinder base 14 respectively on its front and rear sides. A first motor 15 is slidably mounted on the first motor base 13, and a first cylinder 16 is fixedly mounted on the first cylinder base 14. The second rotating frame 5 has a first rotating rod 17 and a first moving rod 18 respectively on its front and rear sides. The first rotating rod 17 is connected to the rotation shaft of the first motor 15, and the first moving rod 18 is connected to the telescopic shaft of the first cylinder 16.
[0024] The second rotating frame 5 is provided with a second motor base 19 and a second cylinder base 20 on its left and right sides, respectively. A second motor 21 is slidably mounted on the second motor base 19, and a second cylinder 22 is fixedly mounted on the second cylinder base 20. A second rotating rod 23 and a second moving rod 24 are provided on the left and right sides of the hydraulic claw plate 6, respectively. The second rotating rod 23 is connected to the rotation shaft of the second motor 21, and the second moving rod 24 is connected to the telescopic shaft of the second cylinder 22.
[0025] Furthermore, a connector 25 is installed on the telescopic shaft of the second cylinder 22. The connector 25 is provided with a "U"-shaped notch 26. Each moving rod is provided with an annular groove 27 corresponding to the "U"-shaped notch 26. The "U"-shaped notch 26 is engaged in the annular groove 27. When the motor rotates, it will drive the corresponding rotating frame or the hydraulic claw disk 6 to rotate. The corresponding moving rod will rotate synchronously. The annular groove 27 and the "U"-shaped notch 26 will rotate relative to each other, thus preventing the cylinder from being driven to rotate.
[0026] In this embodiment, each cylinder is connected to the control board via a solenoid valve. The control board is electrically connected to each motor. Through the control board, corresponding signals are generated to control the start and stop of the cylinders and motors, thereby achieving the effect of adjusting the position and angle of the hydraulic claw plate 6. The adjustment can be performed automatically by inputting the corresponding parameters through the operation panel display screen.
[0027] The process of using this product:
[0028] The product's drawing parameters are input into the operation panel display screen. The program controls the hydraulic jaw disc 6 to move to the corresponding position, where the jaws of the hydraulic jaw disc 6 extend inwards, adjusting the final position and angle between the ball head rod and the ball head body. At this point, the program again controls the hydraulic jaw disc 6 to move along the axis, moving it away from the strong clamp 2 to provide sufficient space for inserting the ball head. Simultaneously, the jaws of the hydraulic jaw disc 6 retract outwards to their limit. After fixing the ball head, the program again controls the hydraulic jaw disc 6 to move along the axis, bringing it closer to the strong clamp 2, until the ball head rod penetrates the center of the hydraulic jaw disc 6 (due to the ball head...). After casting, the inherent error is generally small, within the range of 2°-10°. Therefore, the moving distance of the hydraulic claw disk 6 can be preset, and there will be no situation where the error angle is too large, causing the hydraulic claw disk 6 to be unable to insert the ball head after moving, or the claws of the hydraulic claw disk 6 to extend inward and fail to hold the long rod. When the hydraulic claw disk 6 is activated, the claws extend inward. When one of the claws contacts the long rod, it will push the long rod to swing until all the claws are in contact with the long rod. At this time, the axis of the long rod coincides with the hydraulic claw disk 6, and an adjustment is completed. Finally, the hydraulic claw disk 6 is pushed out again, the ball head is removed and the next ball head is replaced to realize the cycle production.
[0029] In this application, in addition to inputting drawing parameters, drawings can also be directly imported. The various control programs and how to achieve the recognition effect after importing drawings are all existing technologies and are not the focus of this application, so they will not be described in detail. The focus of this application is the specific implementation structure of adjusting the hydraulic claw disk 6 to any position in space.
[0030] In this application, when the hydraulic claw disk 6 is working, when one of the claws abuts against the long rod, the claw applies a pushing force to the long rod to move it. The long rod will generate a reaction force on the claw, and this reaction force will pass through various components and finally act on various motors and cylinders, causing them to rotate or move. If the motor or cylinder rotates or moves, the position of the hydraulic claw disk 6 will change, thus affecting the final angle adjustment effect. Therefore, this application needs to use motors and cylinders with higher power to ensure that the reaction force does not affect the motors and cylinders.
[0031] In addition, a corresponding reduction gearbox can be provided to increase the torque, thereby ensuring that the position of the hydraulic claw disk 6 does not change. Furthermore, the cylinder can use a rotating motor in conjunction with a gear, rack, or lead screw structure to achieve linear motion. This structure can also use a corresponding reduction gearbox to increase the torque (reduction gearboxes are commonly used in transmission processes and belong to existing technology; they only need to be adjusted according to the actual structure).
[0032] Each motor mount is equipped with a slide rail 28, and each motor is slidably mounted on the slide rail 28 via a slider 29. The slide rail 28 has concave structures 30 on both sides, and the slider 29 has convex structures 31 on both sides corresponding to the concave structures 30. The convex structures 31 fit into the concave structures 30, and the convex structures 31 and the concave structures 30 serve to limit the movement, preventing the reaction force from acting on the slider 29 and causing relative rotation between the slider 29 and the slide rail 28, thus ensuring that the slider 29 can only slide normally on the slide rail 28.
[0033] In this invention, the term "multiple" refers to two or more items unless otherwise expressly defined. The term "and / or" as used herein includes any and all combinations of one or more of the related listed items. The terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; "linking" can be a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0034] It should be noted that when a component is referred to as being "assembled on," "mounted on," "fixed to," or "set on" another component, it can be directly on the other component or there may be an intermediate component. When a component is considered to be "connected to" another component, it can be directly connected to the other component or there may be an intermediate component present. The terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.
[0035] In the description of this specification, the terms "one embodiment," "some embodiments," "specific embodiment," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0036] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A golf club head angle adjustment device comprising a base (1) on which a strong clamp (2) for fixing a club head is mounted, characterized in that The base (1) is provided with a support (3), the support (3) is rotatably provided with a first rotating frame (4) which can be adjusted in left and right directions, the first rotating frame (4) is rotatably provided with a second rotating frame (5) which can be adjusted in front and back directions relative to the first rotating frame (4), and the second rotating frame (5) is rotatably provided with a hydraulic claw disc (6) which can be adjusted in left and right directions relative to the second rotating frame (5).
2. A golf club head angle adjustment device according to claim 1, wherein The left and right sides of the support (3) are respectively provided with a third motor seat (7) and a third cylinder seat (8), the third motor seat (7) is slidably provided with a third motor (9), the third cylinder seat (8) is fixedly provided with a third cylinder (10), and the left and right sides of the first rotating frame (4) are respectively provided with a third rotating rod (11) and a third moving rod (12), the third rotating rod (11) is connected with the rotating shaft of the third motor (9), and the third moving rod (12) is connected with the telescopic shaft of the third cylinder (10).
3. A golf club head angle adjustment device as defined in claim 1, wherein The front and back sides of the first rotating frame (4) are respectively provided with a first motor seat (13) and a first cylinder seat (14), the first motor seat (13) is slidably provided with a first motor (15), the first cylinder seat (14) is fixedly provided with a first cylinder (16), and the front and back sides of the second rotating frame (5) are respectively provided with a first rotating rod (17) and a first moving rod (18), the first rotating rod (17) is connected with the rotating shaft of the first motor (15), and the first moving rod (18) is connected with the telescopic shaft of the first cylinder (16).
4. The golf club head angle adjustment device of claim 1, wherein The left and right sides of the second rotating frame (5) are respectively provided with a second motor seat (19) and a second cylinder seat (20), the second motor seat (19) is slidably provided with a second motor (21), the second cylinder seat (20) is fixedly provided with a second cylinder (22), and the left and right sides of the hydraulic claw disc (6) are respectively provided with a second rotating rod (23) and a second moving rod (24), the second rotating rod (23) is connected with the rotating shaft of the second motor (21), and the second moving rod (24) is connected with the telescopic shaft of the second cylinder (22).
5. A golf club head angle adjustment device as defined in claim 4, wherein The telescopic shaft of the second cylinder (22) is provided with a connecting piece (25), the connecting piece (25) is provided with a "U" shaped notch (26), each moving rod is provided with an annular groove (27) corresponding to the "U" shaped notch (26), and the "U" shaped notch (26) is clamped in the annular groove (27).
6. A golf club head angle adjustment device according to any one of claims 2-4, wherein Each motor seat is provided with a sliding rail (28), and each motor is slidably provided with a sliding block (29) on the sliding rail (28).
7. A golf club head angle adjustment device as defined in claim 6, wherein The two sides of the sliding rail (28) are provided with an inner recess structure (30), the two sides of the sliding block (29) are provided with an outer convex structure (31) corresponding to the inner recess structure (30), and the outer convex structure (31) is attached to the inner recess structure (30).