T-shaped cutter for machining golf ball head pipe handle

By designing T-shaped tools with multiple cutting edges and cutting parts, the problems of low machining efficiency and difficult to control the slot spacing distance are solved, and the effect of efficiently machining multiple slots at the same time and ensuring the consistency of slot spacing is achieved.

CN222856815UActive Publication Date: 2025-05-13ZHONGSHAN XINBOYAS PRECISION CUTTING TOOL CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421771412.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-25
Publication Date
2025-05-13
Estimated Expiration
2034-07-25

AI Technical Summary

Technical Problem

During the processing of golf ball head shank, traditional T-shaped tools need to be cut in multiple times, resulting in low processing efficiency and difficult to accurately control the slot spacing distance, which requires precise adjustment of the machine and takes a long time.

Method used

A T-shaped tool for processing golf ball head shank is designed. A plurality of cutting edges distributed in the circumferential direction are provided on the cutting edge, and a plurality of cutting parts along the length direction are provided on each cutting edge, chip drains are provided between adjacent cutting edges, and each cutting part is arranged correspondingly along the same rotation axis.

Benefits of technology

The tool can process multiple connecting grooves at the same time, significantly improving machining efficiency, and ensuring the consistency of groove spacing distances through the cutting part set on the same rotating shaft, without the need for precise machine adjustment, shortening machining time.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222856815U_ABST
    Figure CN222856815U_ABST
Patent Text Reader

Abstract

The utility model belongs to the technical field of metal cutting tools, and particularly relates to a T-shaped tool for machining a golf ball head pipe handle. Comprising a cutter handle and a cutter head arranged at one end of the cutter handle, the cutter head comprises a plurality of cutting edges distributed in the circumferential direction, a plurality of cutting parts arranged in the length direction of the cutting edges are arranged on the cutting edges, chip grooves are formed between the adjacent cutting edges, and the cutting parts on the cutting edges are correspondingly arranged along the same rotating shaft. The multiple cutting edges distributed in the circumferential direction are arranged on the tool bit, and each cutting edge is provided with the multiple cutting parts arranged in the length direction of the cutting edge, so that when the tool is used for machining the golf ball head pipe handle, multiple connecting grooves can be machined at the same time, and the machining efficiency is remarkably improved. And the production efficiency is improved, the production cost is reduced, and the practical application value is obvious.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0002] The present application belongs to the technical field of metal cutting tools, and in particular relates to a T-shaped tool for machining a golf head shaft. [Background technology]

[0004] In the processing of golf head tube handles, a T-shaped tool is used to machine connecting grooves for golf club assembly in the inner hole of the tube handle. When multiple connecting grooves need to be machined, ordinary T-shaped tools can only machine one groove at a time, and the machine is required to accurately adjust the displacement of the T-shaped tool to ensure that the spacing between the grooves meets the requirements. This method not only has low processing efficiency, but also long processing time. [Contents of the utility model]

[0006] In order to solve the problem in the prior art that when multiple grooves need to be machined on a workpiece, traditional T-shaped tools need to cut multiple times, resulting in low machining efficiency, the present application provides a T-shaped tool for machining a golf head shaft.

[0007] This application is implemented through the following technical solutions:

[0008] A T-shaped tool for processing a golf head shaft comprises a tool handle and a tool head arranged at one end of the tool handle, wherein the tool head comprises a plurality of cutting edges distributed along a circumferential direction, the cutting edges are provided with a plurality of cutting portions arranged along their length direction, a chip groove is provided between adjacent cutting edges, and the cutting portions on each cutting edge are correspondingly arranged along the same rotation axis.

[0009] In the T-shaped tool for processing a golf head shaft as described above, the spacing distances between adjacent cutting portions are equal.

[0010] In the T-shaped tool for processing a golf head shaft as described above, the height of each cutting portion is H and is equal.

[0011] In the T-shaped tool for processing a golf head shaft as described above, the tool shaft and the tool head are connected via a frustum, the diameter of the tool head is D, and the diameter of the tool shaft is S, wherein D<S.

[0012] In the T-shaped tool for machining a golf head shaft as described above, the chip removal groove extends along the length direction of the tool head to the tool shaft.

[0013] In the T-shaped tool for machining a golf head shaft as described above, the rear side of the chip groove is a chip guide opening extending rearward and gradually narrowing.

[0014] As described above, the T-shaped tool for processing a golf head shaft, the tool shaft and the tool head are made of tungsten steel.

[0015] In the T-shaped tool for machining a golf head shaft as described above, the tool shaft and the tool head are an integrated structure.

[0016] As described above, in a T-shaped tool for processing a golf head shaft, each cutting edge is sequentially connected to the side bottom of the previous adjacent cutting edge along the rotation direction of the tool head to form a windmill shape.

[0017] Compared with the prior art, this application has the following advantages:

[0018] The present application discloses a T-shaped tool for processing a golf head tube handle. By providing a plurality of cutting edges distributed along the circumferential direction on the tool head, and each cutting edge is provided with a plurality of cutting portions arranged along its length direction, the tool can simultaneously process a plurality of connecting grooves when processing the golf head tube handle, thereby significantly improving the processing efficiency. In addition, since the cutting portions on each cutting edge are arranged correspondingly along the same rotation axis, it can be ensured that the spacing distance between the processed grooves meets the requirements, and there is no need for precise adjustment of the machine, further shortening the processing time. This design not only improves production efficiency, but also reduces production costs, and has obvious practical application value.

Brief Description of the Drawings

[0020] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings required for use in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0021] Figure 1 It is a three-dimensional stereogram in the embodiment of the present application;

[0022] Figure 2 yes Figure 1 main view. [Specific implementation method]

[0024] In order to make the technical problems, technical solutions and beneficial effects solved by the present application more clearly understood, the present application is further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.

[0025] See also Figure 1 to Figure 2A T-shaped tool for processing a golf head shaft comprises a handle 1 and a cutter head 2 arranged at one end of the handle 1, wherein the cutter head 2 comprises a plurality of cutting edges 3 distributed along a circumferential direction, wherein the cutting edges 3 are provided with a plurality of cutting portions 4 arranged along their length direction, and a chip groove 5 is arranged between adjacent cutting edges 3, and the cutting portions 4 on each cutting edge 3 are arranged correspondingly along the same rotation axis.

[0026] The present application discloses a T-shaped tool for processing a golf head tube handle. By providing a plurality of cutting edges distributed along the circumferential direction on the tool head, and each cutting edge is provided with a plurality of cutting portions arranged along its length direction, the tool can simultaneously process a plurality of connecting grooves when processing the golf head tube handle, thereby significantly improving the processing efficiency. In addition, since the cutting portions on each cutting edge are arranged correspondingly along the same rotation axis, it can be ensured that the spacing distance between the processed grooves meets the requirements, and there is no need for precise adjustment of the machine, further shortening the processing time. This design not only improves production efficiency, but also reduces production costs, and has obvious practical application value.

[0027] Furthermore, as a preferred implementation manner of the present solution but not limiting, the spacing distances between adjacent cutting portions 4 are equal.

[0028] In this embodiment, it can be ensured that the spacing between the various connecting grooves remains consistent when processing the golf head tube handle, thereby improving the processing accuracy and consistency of the product. In addition, this design also helps to maintain the stability and balance of the tool during the processing, reduce vibration and offset, and thus improve the processing efficiency and the service life of the tool. The shape, angle and size of the cutting part 4 can be adjusted according to the actual processing requirements and material properties to obtain better processing effects and tool performance. The corresponding tool parameters and structures can be designed according to the model and specifications of the golf head tube handle to meet diverse processing requirements. Each cutting part 4 can participate in the cutting process simultaneously and evenly, reducing the dependence on a single cutting part, thereby extending the service life of the tool.

[0029] Further, as a preferred implementation manner of the present solution but not limiting, the height of each cutting portion 4 is H and is equal.

[0030] In this embodiment, it can be ensured that the depth of each connecting groove remains consistent when processing the golf head tube handle, thereby improving the processing accuracy and quality of the product. This design can avoid the difference in groove depth caused by inconsistent cutting part height, which in turn affects the assembly and use performance of the golf club. In addition, setting the height of the cutting part 4 to be equal also helps to maintain the stability and balance of the tool during the processing. When the tool is rotating and feeding at high speed, if the height of the cutting part is inconsistent, it may cause uneven force on the tool, causing vibration and offset, thereby affecting the stability and surface quality of the processing. Therefore, by setting the height of the cutting part 4 to be equal, the vibration and offset during the processing can be reduced, and the processing efficiency and the service life of the tool can be improved.

[0031] Furthermore, as a preferred implementation of the present solution but not a limitation, the tool handle 1 and the tool head 2 are connected via a frustum 6, the diameter of the tool head 2 is D, and the diameter of the tool handle 1 is S, wherein D<S.

[0032] In this embodiment, by providing a truncated cone 6 between the tool handle 1 and the tool head 2, the overall rigidity of the tool can be improved, because a larger tool handle diameter can provide more stable support, while a smaller tool head diameter can reduce the weight of the tool, improve its flexibility and operating accuracy. Secondly, the transition structure of the truncated cone 6 can smoothly connect the tool handle and the tool head, reduce stress concentration, and extend the service life of the tool. In addition, a smaller tool head diameter helps to reduce cutting resistance during processing, thereby reducing energy consumption and improving cutting efficiency.

[0033] Furthermore, as a preferred implementation of the present solution but not a limitation, the chip groove 5 extends along the length direction of the tool head 2 to the tool handle 1 .

[0034] In this embodiment, the chips generated during the machining process can be effectively discharged from the cutter head 2, and the chips are prevented from accumulating inside the cutter head 2, thereby reducing the wear and clogging of the cutter, and improving the service life and machining efficiency of the cutter. When the cutter rotates and feeds at high speed, the chips will be thrown out of the cutter head 2 along the chip discharge groove 5, and will not interfere with the cutting performance of the cutter.

[0035] Further, as a preferred implementation manner of the present solution but not limiting, the rear side of the chip removal groove 5 is a chip guide opening 7 extending rearward and gradually narrowing.

[0036] In this embodiment, the chips can be effectively guided to be discharged from the chip flute 5, and the chips can be prevented from accumulating or rebounding at the rear side of the chip flute 5, thereby improving the smoothness and efficiency of chip removal. When the tool is rotating and feeding at high speed, the chips will be affected by the centrifugal force and move to the rear side of the chip flute 5. The design of the chip guide port 7 can utilize the kinetic energy and centrifugal force of the chips themselves to smoothly discharge them from the tool, reducing interference with the tool's cutting performance. Secondly, the gradually narrowing design of the chip guide port 7 can produce a certain squeezing effect on the chips, so that the chips are compressed and accelerated during the discharge process, thereby improving the speed and effect of chip removal.

[0037] Furthermore, as a preferred implementation of the present solution but not a limitation, the tool handle 1 and the tool head 2 are made of tungsten steel.

[0038] In this embodiment, tungsten steel is known for its high hardness, wear resistance and excellent thermal stability, which enable the tool to maintain shape and size stability under high-speed cutting or high cutting force conditions, thereby extending the service life of the tool and reducing the frequency of replacement. In addition, the high wear resistance of tungsten steel reduces the processing error caused by tool wear, improves the processing accuracy, and ensures the processing quality of the workpiece. The high thermal stability of tungsten steel also means that the tool is not prone to thermal deformation under long-term processing or high cutting temperature, maintaining the consistency and predictability of the processing process.

[0039] Furthermore, as a preferred implementation of the present solution but not a limitation, the knife handle 1 and the knife head 2 are an integrated structure.

[0040] In this embodiment, the overall rigidity and stability of the tool can be improved, and the vibration and deviation caused by looseness or deformation of the connection between the tool handle and the tool head during the processing can be reduced, thereby improving the processing accuracy and surface quality. Secondly, the integrated structure can simplify the manufacturing and assembly process of the tool, reduce the number of parts and the complexity of the connection, improve production efficiency and reduce manufacturing costs.

[0041] Further, as a preferred implementation of the present solution but not a limitation, each cutting edge 3 is sequentially connected to the side bottom of the previous adjacent cutting edge 3 along the rotation direction of the cutter head 2 to form a windmill shape.

[0042] In this embodiment, the windmill-shaped cutting edge 3 design can increase the rigidity and stability of the tool and reduce vibration and deformation during processing. Since the cutting edges 3 are connected through the side bottom to form an integral structure, the cutting force can be effectively transmitted and dispersed to avoid vibration or deformation of the tool during high-speed rotation and feeding, thereby improving the stability and accuracy of processing.

[0043] The working principle of this embodiment is as follows:

[0044] The present application discloses a tool for processing the end face of a golf head shaft. By setting an avoidance position for the shaft to extend into at the position of the tool head, multiple cutting bottom edges rotating at high speed in the circumferential direction of the avoidance position directly cut the outer circle of the shaft during processing, and the processing is formed in one step. Compared with the method of processing around the outer circle of the shaft by traditional tools, the forming time is shortened, and the processing efficiency and processing accuracy are improved.

[0045] The above are implementation methods provided in combination with specific contents, and it is not intended that the specific implementation of this application is limited to these descriptions. Any method structure similar to the present application, or a number of technical deductions or replacements based on the concept of the present application, should be considered as the protection scope of this application.

Claims

1. A T-shaped tool for processing a golf head shaft, characterized in that: The invention comprises a tool handle (1) and a tool head (2) arranged at one end of the tool handle (1), wherein the tool head (2) comprises a plurality of cutting edges (3) distributed along a circumferential direction, the cutting edges (3) are provided with a plurality of cutting portions (4) arranged along the length direction thereof, a chip removal groove (5) is provided between adjacent cutting edges (3), and the cutting portions (4) on the respective cutting edges (3) are arranged correspondingly along the same rotation axis.

2. A T-shaped tool for machining a golf head shaft according to claim 1, characterized in that: The spacing distances between adjacent cutting portions (4) are equal.

3. A T-shaped tool for machining a golf head shaft according to claim 1, characterized in that: The height of each cutting portion (4) is H and is equal.

4. A T-shaped tool for machining a golf head shaft according to claim 1, characterized in that: The tool handle (1) and the tool head (2) are connected via a truncated cone (6); the diameter of the tool head (2) is D, and the diameter of the tool handle (1) is S, wherein D<S.

5. A T-shaped tool for machining a golf head shaft according to claim 1, characterized in that: The chip removal groove (5) extends along the length direction of the tool head (2) to the tool handle (1).

6. A T-shaped tool for machining a golf head shaft according to claim 1, characterized in that: The rear side of the chip removal groove (5) is a chip guide opening (7) that extends rearward and gradually shrinks.

7. A T-shaped tool for machining a golf head shaft according to claim 1, characterized in that: The knife handle (1) and the knife head (2) are made of tungsten steel.

8. The T-shaped tool for machining a golf head shaft according to claim 1, characterized in that: The knife handle (1) and the knife head (2) are an integrated structure.

9. The T-shaped tool for processing a golf head shaft according to claim 1, characterized in that: Each cutting edge (3) is sequentially connected to the bottom of the side surface of the previous adjacent cutting edge (3) along the rotation direction of the cutter head (2) to form a windmill shape.