Carbon-fiber-reinforced polyamide composition
By designing a carbon fiber tube winding device, and using an auxiliary force roller to apply pressure to the carbon fiber layer covering the surface of the steel mold core, the problem of limited golf club models in existing technologies has been solved, enabling rapid processing of different golf club models and equipment versatility.
Patent Information
- Application Number
- CN202411891867.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-20
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2044-12-20
AI Technical Summary
Existing tube rolling machines can only process a single model of golf club, and setting up separate devices for different models of golf clubs is costly.
A carbon fiber tube winding device was designed, including a device base, a tube winding motor, a steel mold core fixing seat, a carbon fiber layer unwinding mechanism, a waste material winding mechanism, and an auxiliary force roller. The auxiliary force roller applies pressure to the surface of the steel mold core covered with a carbon fiber layer, and supports quick replacement of the auxiliary force roller to adapt to the processing of different models of golf clubs.
It improves the tightness and molding effect of the carbon fiber layer, enhances the versatility of the equipment, enables rapid processing of different models of golf clubs, and reduces equipment replacement costs.
Smart Images

Figure CN119369758B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of carbon fiber golf club processing, specifically to carbon tube winding equipment and the carbon fiber golf clubs produced therefrom. Background Technology
[0002] Golf clubs are the basic equipment in the sport of golf, consisting of a clubhead, shaft, and grip. Depending on their purpose, golf clubs are designed with different clubhead shapes and shaft lengths, thus golf clubs can be broadly categorized into woods, irons, wedges, and putters. Carbon fiber clubs require processing using a tube winding machine during production.
[0003] A Chinese patent document with publication number CN217144979U discloses a coiling machine for fishing rod production. The solution includes a workbench, an L-shaped column fixedly connected to the upper end of the workbench, a first I-shaped groove opened in the middle of the L-shaped column, a first telescopic tube slidably connected to the inner surface of the first I-shaped groove, a pressure plate rotatably connected to the lower end of the first telescopic tube, an I-shaped slide rail opened on the outer surface of the L-shaped column, a moving plate slidably connected to the inner surface of the I-shaped slide rail, a cylinder provided between the moving plate and the pressure plate, and the pressure plate corresponding to the workbench.
[0004] However, it can only roll tubes for a single model of club, while golf clubs come in many models. Setting up separate processing devices for different models of golf clubs is costly. Therefore, this invention proposes a carbon tube rolling device and the carbon fiber golf clubs it produces to solve the above problems. Summary of the Invention
[0005] The purpose of this invention is to provide a carbon fiber tube winding device and the carbon fiber golf clubs prepared therefrom, so as to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a carbon tube winding device, comprising:
[0007] The equipment base has a first track and a second track fixedly installed on it, and a primary support and a secondary support are fixedly installed on the front and rear sides of the equipment base, respectively.
[0008] A tube reel motor, which is fixed to the equipment base by a motor bracket;
[0009] A steel mold core fixing seat is fixedly installed on the output shaft of the tube rolling motor, and the steel mold core to be positioned is positioned by the steel mold core fixing seat;
[0010] A carbon fiber layer unwinding mechanism is installed on a first track via a primary track trolley and is used to unwind the carbon fiber layer.
[0011] The waste rolling mechanism is installed on the second track through the second track trolley, and the waste of the carbon fiber layer package film is rolled through the waste rolling mechanism;
[0012] The auxiliary stress roller is rotatably installed between the primary support and the secondary support, and a plurality of the auxiliary stress rollers are symmetrically arranged, and the steel mold core is assisted by the auxiliary stress roller.
[0013] Preferably, the diameter of the rear end of the steel mold core is smaller than the diameter of the front end of the steel mold core, and the diameter of the front end of the auxiliary stress roller is smaller than the diameter of the rear end of the auxiliary stress roller, and the overlapping area of the steel mold core and the auxiliary stress roller is arranged in close contact.
[0014] Preferably, the primary adapter is fixedly installed on the primary support, the sealed bearing is fixedly installed in the inner cavity of the primary adapter, the ball bearing is fixedly installed on the secondary support, the fixed shaft is integrally formed on the front end of the auxiliary stress roller, the fixed shaft is inserted into the bearing inner ring of the sealed bearing, the movable groove is formed on the rear end of the auxiliary stress roller, the movable shaft is movably connected in the movable groove through the supporting spring, the movable shaft is inserted into the bearing inner ring of the ball bearing, and the fixed shaft and the movable shaft are separated from the sealed bearing and the ball bearing, respectively, when the movable shaft is pushed in.
[0015] Preferably, the first limiting groove is formed on the side wall of the bearing inner ring of the sealed bearing, the limiting block is integrally formed on the side wall of the fixed shaft, the limiting block is embedded into the first limiting groove, the guide groove is formed on the side wall of the movable groove, the guide block is integrally formed on the side wall of the movable shaft, the guide block is movably arranged in the guide groove, and the second limiting groove is formed on the side wall of the bearing inner ring of the ball bearing, and the outer end of the guide block is embedded into the second limiting groove.
[0016] Preferably, the second positioning rod groove is formed on the groove bottom of the movable groove, the second insertion groove, the first turning groove, the first clamping groove, the second turning groove and the second clamping groove are formed on the side wall of the second positioning rod groove, the first positioning rod groove is formed through the movable shaft, the first insertion groove is formed on the side wall of the first positioning rod groove, the first insertion groove and the second insertion groove are arranged in alignment, and the first insertion groove, the second insertion groove, the first clamping groove and the second clamping groove are symmetrically arranged in groups, the first clamping groove is communicatively arranged with the second insertion groove through the first turning groove, the second clamping groove is communicatively arranged with the second insertion groove through the second turning groove, and the cross-sectional dimensions of the first insertion groove, the second insertion groove, the first clamping groove and the second clamping groove are matched.
[0017] Preferably, the primary positioning rod slot and the secondary positioning rod slot are movably inserted with a positioning rod, the inner side end wall of the positioning rod is integrally formed with a clamping protrusion, the outer side end of the positioning rod is fixedly welded with a limiting cap, a group of clamping protrusions are symmetrically arranged, the size of the clamping protrusion is matched with the size of the primary clamping slot and the secondary clamping slot, when the clamping protrusion is embedded into the primary clamping slot, the fixed rotating shaft and the movable rotating shaft are respectively inserted into the sealing bearing and the ball bearing, when the clamping protrusion is embedded into the secondary clamping slot, the fixed rotating shaft and the movable rotating shaft are respectively withdrawn from the sealing bearing and the ball bearing, the limiting cap is provided with an internal hexagonal wrench slot and a positioning slot, and the positioning slot is arranged in the same direction as the clamping protrusion.
[0018] Preferably, the auxiliary stress roller shaft is provided with an air cavity, the fixed rotating shaft is a hollow pipe structure, the air cavity is communicated with the primary adapter seat through the fixed rotating shaft, the port of the primary adapter seat is connected with the air pump through an air pipe, the auxiliary stress roller shaft is provided with a wind vibration mechanism in the air cavity, and the rear side end side wall of the auxiliary stress roller shaft is provided with an air channel which is communicated with the rear side end of the air cavity.
[0019] Preferably, the auxiliary stress roller shaft is composed of two semicircular rollers which are welded, the side wall of the air cavity is provided with a positioning plate slot, a group of positioning plate slots are symmetrically arranged, the welding surface of the auxiliary stress roller shaft is the common symmetry surface of the two positioning plate slots, the side wall of the positioning plate slot is provided with a clamping plate slot, a positioning plate is embedded and installed in the positioning plate slot, the side edge of the positioning plate is integrally formed with a clamping plate, the clamping plate is embedded into the clamping plate slot during actual installation of the positioning plate, the two ends of the wind vibration mechanism are respectively connected with the two positioning plates, and the wind vibration mechanisms are equidistantly arranged in a row, the side wall of the fixed rotating shaft is provided with a sealing groove, and a rubber sealing washer is embedded and arranged in the sealing groove.
[0020] Preferably, the wind vibration mechanism is composed of a connecting spring, a middle plate, a wind receiving plate, an elastic sheet and a striking ball, the two sides of the middle plate are fixedly welded with a connecting spring, the outer side end of the connecting spring is fixedly connected with the corresponding positioning plate, the wind receiving plate is fixedly welded on the middle plate, the airflow direction in the air cavity is perpendicular to the wind receiving plate, the outer side edge of the wind receiving plate is connected with the elastic sheet and the striking ball, when the connecting spring and the elastic sheet are in a reset state, the striking ball does not contact the side wall of the air cavity, when the air pump operates, airflow is generated in the air cavity, and at this time, the wind receiving plate is moved by wind to make the striking ball strike the side wall of the air cavity.
[0021] A carbon fiber ball rod is manufactured by the above-mentioned carbon winding pipe equipment, and the carbon fiber ball rod is formed by a carbon fiber layer winding pipe.
[0022] Compared with the prior art, the application has the beneficial effects that:
[0023] 1. By setting up the carbon pipe winding device composed of the device base, the pipe winding motor, the steel mold core fixing seat, the carbon fiber layer unwinding mechanism, the waste winding mechanism and the auxiliary stress roller shaft combination, the auxiliary stress roller shaft forms a certain pressure effect on the carbon fiber layer coated on the surface of the steel mold core, thereby effectively improving the coating tightness of the carbon fiber layer, thereby effectively improving the forming effect of the carbon fiber layer, and the auxiliary stress roller shaft is replaced through the quick release structure, so that when different models of golf clubs are processed, the auxiliary stress roller shaft can be quickly replaced, thereby effectively improving the universality of the device.
[0024] 2. The bottom of the groove of the movable groove on the auxiliary stress roller shaft is provided with a two-stage positioning rod groove, and the sidewall of the two-stage positioning rod groove is provided with a two-stage insertion groove, a first-stage turning groove, a first-stage clamping groove, a two-stage turning groove and a two-stage clamping groove, and a first-stage positioning rod groove and a first-stage insertion groove are formed in the movable rotating shaft, so that the movable rotating shaft is conveniently stored, thereby further improving the installation convenience of the auxiliary stress roller shaft. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 It is a structural schematic diagram of the application;
[0026] Figure 2 It is Figure 1 the enlarged schematic diagram of the structure in A;
[0027] Figure 3 It is Figure 1 the enlarged schematic diagram of the structure in B;
[0028] Figure 4 It is a connection diagram of the auxiliary stress roller shaft of the application;
[0029] Figure 5 It is Figure 4 the enlarged schematic diagram of the structure in C;
[0030] Figure 6 It is Figure 5 the enlarged schematic diagram of the structure in D;
[0031] Figure 7 It is Figure 4 the enlarged schematic diagram of the structure in E;
[0032] Figure 8 It is Figure 7 the enlarged schematic diagram of the structure in F;
[0033] Figure 9 It is a half-sectional view of the auxiliary stress roller shaft of the application;
[0034] Figure 10 It is Figure 9Structure enlarged schematic view at G;
[0035] Figure 11 For Figure 10 Structure enlarged schematic view at H;
[0036] Figure 12 For Figure 10 Structure enlarged schematic view at I;
[0037] Figure 13 For the wind vibration mechanism schematic diagram of the application;
[0038] Figure 14 For Figure 13 Structure enlarged schematic view at J;
[0039] Figure 15 For Figure 14 Structure enlarged schematic view at K;
[0040] Figure 16 For the movable rotating shaft structure schematic diagram of the application;
[0041] Figure 17 For Figure 16 Structure enlarged schematic view at L;
[0042] Figure 18 For the positioning rod structure schematic diagram of the application;
[0043] Figure 19 For Figure 18 Structure enlarged schematic view at M.
[0044] In the figure: device base 1, pipe winding motor 2, steel mold core fixing seat 3, carbon fiber layer unwinding mechanism 4, waste winding mechanism 5, steel mold core 6, first track 7, second track 8, first support 9, first adapter seat 10, sealing bearing 11, second support 12, ball bearing 13, auxiliary stress roller shaft 14, fixed rotating shaft 15, movable rotating shaft 16, movable groove 17, supporting spring 18, limiting block 19, guide block 20, guide groove 21, second positioning rod groove 22, second insertion groove 23, first steering groove 24, first clamping groove 25, second steering groove 26, second clamping groove 27, first positioning rod groove 28, first insertion groove 29, positioning rod 30, limiting cap 31, inner hex wrench groove 32, alignment groove 33, air cavity 34, air duct 35, positioning plate groove 36, clamping plate groove 37, positioning plate 38, clamping plate 39, wind vibration mechanism 40, connecting spring 41, mid plate 42, wind receiving plate 43, elastic sheet 44, impact ball 45, rubber sealing washer 46, clamping protrusion 50. DETAILED DESCRIPTION
[0045] In order to make the purpose, technical scheme of the present application, and the advantages more clearly, the embodiments of the present application are further described in detail below with reference to the drawings. It should be understood that the specific embodiments described herein are part of the embodiments of the present application, rather than all the embodiments, and are used to explain the embodiments of the present application, and are not used to limit the embodiments of the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the present application.
[0046] Please refer to Figures 1-19 The present application provides the following three preferred embodiments:
[0047] Embodiment one, carbon winding pipe equipment, including equipment base 1, winding pipe motor 2, steel mold core fixing seat 3, carbon fiber layer unwinding mechanism 4, waste winding mechanism 5 and auxiliary stress roller 14, the first track 7 and the second track 8 are fixedly installed on the equipment base 1, the first level support 9 and the second level support 12 are fixedly installed on the front and rear sides of the equipment base 1 respectively, the winding pipe motor 2 is fixed on the equipment base 1 through the motor support, the steel mold core fixing seat 3 is fixedly installed on the output shaft of the winding pipe motor 2, and the steel mold core 6 to be positioned is positioned through the steel mold core fixing seat 3, the carbon fiber layer unwinding mechanism 4 is installed on the first track 7 through the first track trolley, and the carbon fiber layer unwinding mechanism 4 is used for unwinding the carbon fiber layer, the waste winding mechanism 5 is installed on the second track 8 through the second track trolley, and the coating film waste of the carbon fiber layer is wound through the waste winding mechanism 5, the auxiliary stress roller 14 is rotatably installed between the first level support 9 and the second level support 12, and the auxiliary stress roller 14 is symmetrically provided with a group, the steel mold core 6 is assisted and supported through the auxiliary stress roller 14, the rear end diameter value of the steel mold core 6 is less than the front end diameter value of the steel mold core 6, and the front end diameter value of the auxiliary stress roller 14 is less than the rear end diameter of the auxiliary stress roller 14, and the overlapping area of the steel mold core 6 and the auxiliary stress roller 14 is arranged in close contact.
[0048] The first level support 9 is fixedly installed with a first level adapter seat 10, the inner cavity of the first level adapter seat 10 is fixedly installed with a sealed bearing 11, the second level support 12 is fixedly installed with a ball bearing 13, the front side end of the auxiliary stress roller shaft 14 is integrally formed with a fixed rotating shaft 15, the fixed rotating shaft 15 is inserted into the bearing inner ring of the sealed bearing 11, the rear side end of the auxiliary stress roller shaft 14 is provided with a movable groove 17, the movable groove 17 is movably connected with a movable rotating shaft 16 through a supporting spring 18, the movable rotating shaft 16 is inserted into the bearing inner ring of the ball bearing 13, when the movable rotating shaft 16 is pushed in, the fixed rotating shaft 15 and the movable rotating shaft 16 are separated from the sealed bearing 11 and the ball bearing 13 respectively, the carbon pipe winding device is composed of the device base 1, the pipe winding motor 2, the steel mold core fixing seat 3, the carbon fiber layer unwinding mechanism 4, the waste material winding mechanism 5 and the auxiliary stress roller shaft 14, the carbon fiber layer on the surface of the steel mold core 6 is formed under a certain pressure effect through the auxiliary stress roller shaft 14, so that the winding tightness of the carbon fiber layer is effectively improved, the forming effect of the carbon fiber layer is effectively improved, and the auxiliary stress roller shaft 14 is replaced through the quick release structure, so that when different types of golf clubs are processed, the auxiliary stress roller shaft 14 can be quickly replaced, so that the universality of the device is effectively improved.
[0049] A first level limiting groove is formed in the side wall of the bearing inner ring of the sealed bearing 11, a limiting block 19 is integrally formed in the side wall of the fixed rotating shaft 15, the limiting block 19 is embedded into the first level limiting groove, a guide groove 21 is formed in the side wall of the movable groove 17, a guide block 20 is integrally formed in the side wall of the movable rotating shaft 16, the guide block 20 is movably arranged in the guide groove 21, a second level limiting groove is formed in the side wall of the bearing inner ring of the ball bearing 13, the outer side end of the guide block 20 is embedded into the second level limiting groove, the abutting stability between the structures is improved through the limiting block 19 and the guide block 20.
[0050] In the embodiment two, on the basis of the embodiment one, a second level positioning rod groove 22 is formed in the groove bottom of the movable groove 17, a second level insertion groove 23, a first level turning groove 24, a first level clamping groove 25, a second level turning groove 26 and a second level clamping groove 27 are formed in the side wall of the second level positioning rod groove 22, a first level positioning rod groove 28 is formed in the movable rotating shaft 16, a first level insertion groove 29 is formed in the side wall of the first level positioning rod groove 28, the first level insertion groove 29 and the second level insertion groove 23 are arranged in alignment, and the first level insertion groove 29, the second level insertion groove 23, the first level clamping groove 25 and the second level clamping groove 27 are symmetrically arranged in a group, the first level clamping groove 25 is communicatively arranged with the second level insertion groove 23 through the first level turning groove 24, the second level clamping groove 27 is communicatively arranged with the second level insertion groove 23 through the second level turning groove 26, and the cross-sectional dimensions of the first level insertion groove 29, the second level insertion groove 23, the first level clamping groove 25 and the second level clamping groove 27 are consistent.
[0051] The positioning rod 30 is movably inserted into the primary positioning rod slot 28 and the secondary positioning rod slot 22, the inner side end side wall of the positioning rod 30 is integrally formed with a set of clamping protrusions 50, the outer side end of the positioning rod 30 is fixedly welded with a limiting cap 31, the clamping protrusions 50 are symmetrically arranged, the size of the clamping protrusions 50 is matched with the size of the primary clamping slot 25 and the secondary clamping slot 27, when the clamping protrusions 50 are embedded into the primary clamping slot 25, the fixed rotating shaft 15 and the movable rotating shaft 16 are respectively inserted into the sealing bearing 11 and the ball bearing 13, when the clamping protrusions 50 are embedded into the secondary clamping slot 27, the fixed rotating shaft 15 and the movable rotating shaft 16 are respectively withdrawn from the sealing bearing 11 and the ball bearing 13, the limiting cap 31 is provided with an internal hexagonal wrench slot 32 and a positioning slot 33, the positioning slot 33 is arranged in the same direction as the clamping protrusions 50, the secondary positioning rod slot 22 is arranged on the bottom of the auxiliary force roller shaft 14, the secondary insertion slot 23, the primary turning slot 24, the primary clamping slot 25, the secondary turning slot 26 and the secondary clamping slot 27 are arranged on the side wall of the secondary positioning rod slot 22, and the primary positioning rod slot 28 and the primary insertion slot 29 are arranged on the movable rotating shaft 16, so that the movable rotating shaft 16 is conveniently stored, and the installation convenience of the auxiliary force roller shaft 14 is further improved.
[0052] In example three, on the basis of example two, the auxiliary force roller shaft 14 is provided with an air cavity 34, the fixed rotating shaft 15 is a hollow pipe structure, the air cavity 34 is communicated with the primary adapter 10 through the fixed rotating shaft 15, the port of the primary adapter 10 is connected with a gas pump through a gas pipe, the air cavity 34 is provided with a wind vibration receiving mechanism 40, the rear side end side wall of the auxiliary force roller shaft 14 is provided with an air channel 35, the air channel 35 is communicated with the rear side end of the air cavity 34, the auxiliary force roller shaft 14 is composed of two semicircular rollers, the side wall of the air cavity 34 is provided with a set of positioning plate slots 36, the welding surface of the auxiliary force roller shaft 14 is the common symmetry surface of the two positioning plate slots 36, the side wall of the positioning plate slot 36 is provided with a clamping plate slot 37, the positioning plate 38 is embedded and installed in the positioning plate slot 36, the side edge of the positioning plate 38 is integrally formed with a clamping plate 39, the clamping plate 39 is embedded into the clamping plate slot 37 during actual installation, the two ends of the wind vibration receiving mechanism 40 are respectively connected with the two positioning plates 38, the wind vibration receiving mechanism 40 is arranged at equal intervals, the side wall of the fixed rotating shaft 15 is provided with a sealing groove, and the rubber sealing ring 46 is embedded in the sealing groove.
[0053] The wind vibration mechanism 40 is composed of the connecting spring 41, the median plate 42, the wind receiving plate 43, the elastic sheet 44 and the impact ball 45, the connecting spring 41 is fixedly welded on both sides of the median plate 42, the outer end of the connecting spring 41 is fixedly connected with the positioning plate 38 on the corresponding side, the wind receiving plate 43 is fixedly welded on the median plate 42, the airflow direction in the air cavity 34 is perpendicular to the wind receiving plate 43, the outer side of the wind receiving plate 43 is connected through the elastic sheet 44 and the impact ball 45, the connecting spring 41 and the elastic sheet 44 are in the reset state, the impact ball 45 does not contact the side wall of the air cavity 34, the airflow is generated in the air cavity 34 when the air pump is running, at this time, the wind receiving plate 43 is moved by the wind to make the impact ball 45 form the impact action on the side wall of the air cavity 34, the wind vibration mechanism 40 composed of the connecting spring 41, the median plate 42, the wind receiving plate 43, the elastic sheet 44 and the impact ball 45 is arranged, so that the airflow in the air cavity 34 drives the wind receiving plate 43 to move, so that the impact ball 45 forms the continuous impact action on the air cavity 34, so as to further improve the forming effect of the carbon fiber layer.
[0054] A carbon fiber ball rod is manufactured by the carbon fiber pipe winding device, and is formed by a carbon fiber layer pipe winding.
[0055] Although the above describes the specific embodiments of the present application in order to enable those skilled in the art to understand the present application, the present application is not limited to the scope of the specific embodiments, and all the application creations using the concept of the present application are protected as long as various changes are within the spirit and scope of the present application defined and determined by the appended claims.
Claims
1. A carbon fiber tube coiling equipment, characterized in that: include: Equipment base (1), on which a first track (7) and a second track (8) are fixedly installed, and a primary support (9) and a secondary support (12) are fixedly installed on the front and rear sides of the equipment base (1), respectively. The tube reel motor (2) is fixed to the equipment base (1) by a motor bracket; A steel mold core fixing seat (3) is fixedly installed on the output shaft of the tube rolling motor (2), and the steel mold core (6) to be positioned is positioned by the steel mold core fixing seat (3); The carbon fiber layer unwinding mechanism (4) is installed on the first track (7) by a first-level track trolley and is used to unwind the carbon fiber layer. Waste winding mechanism (5) is installed on the second track (8) by a secondary track trolley, and the waste film covering the carbon fiber layer is wound up by the waste winding mechanism (5); An auxiliary force-bearing roller shaft (14) is rotatably installed between the primary support (9) and the secondary support (12), and a set of auxiliary force-bearing roller shafts (14) are symmetrically arranged. The steel mold core (6) is supported by the auxiliary force-bearing roller shafts (14). The diameter of the rear end of the steel mold core (6) is smaller than the diameter of the front end of the steel mold core (6), and the diameter of the front end of the auxiliary force roller shaft (14) is smaller than the diameter of the rear end of the auxiliary force roller shaft (14), and the overlapping areas of the steel mold core (6) and the auxiliary force roller shaft (14) are both set to be close together. A primary adapter (10) is fixedly installed on the primary support (9). A sealed bearing (11) is fixedly installed in the inner cavity of the primary adapter (10). A ball bearing (13) is fixedly installed on the secondary support (12). A fixed rotating shaft (15) is integrally formed on the front end of the auxiliary force roller (14). The fixed rotating shaft (15) is inserted into the inner ring of the sealed bearing (11). A movable groove (17) is opened on the rear end of the auxiliary force roller (14). A movable rotating shaft (16) is movably connected in the movable groove (17) through a support spring (18). The movable rotating shaft (16) is inserted into the inner ring of the ball bearing (13). When the movable rotating shaft (16) is pushed inward, the fixed rotating shaft (15) and the movable rotating shaft (16) are respectively disengaged from the sealed bearing (11) and the ball bearing (13). The inner ring sidewall of the sealed bearing (11) is provided with a first-level limiting groove. The sidewall of the fixed rotating shaft (15) is integrally formed with a limiting block (19), which is embedded in the first-level limiting groove. The sidewall of the movable groove (17) is provided with a guide groove (21). The sidewall of the movable rotating shaft (16) is integrally formed with a guide block (20), which is movably disposed in the guide groove (21). The inner ring sidewall of the ball bearing (13) is provided with a second-level limiting groove, and the outer end of the guide block (20) is embedded in the second-level limiting groove. The bottom of the movable groove (17) is provided with a secondary positioning rod groove (22). The side wall of the secondary positioning rod groove (22) is provided with a secondary insertion groove (23), a primary steering groove (24), a primary engagement groove (25), a secondary steering groove (26), and a secondary engagement groove (27). The movable rotating shaft (16) is provided with a primary positioning rod groove (28). The side wall of the primary positioning rod groove (28) is provided with a primary insertion groove (29). The primary insertion groove (29) and the secondary insertion groove (23) are aligned with each other. The first-level insertion slot (29), the second-level insertion slot (23), the first-level engagement slot (25), and the second-level engagement slot (27) are symmetrically arranged in a set. The first-level engagement slot (25) is connected to the second-level insertion slot (23) through the first-level turning slot (24), and the second-level engagement slot (27) is connected to the second-level insertion slot (23) through the second-level turning slot (26). The cross-sectional dimensions of the first-level insertion slot (29), the second-level insertion slot (23), the first-level engagement slot (25), and the second-level engagement slot (27) are consistent. Positioning rods (30) are movably inserted into the primary positioning rod groove (28) and the secondary positioning rod groove (22). A locking protrusion (50) is integrally formed on the inner side wall of the positioning rod (30). A limit cap (31) is fixedly welded to the outer side of the positioning rod (30). A set of locking protrusions (50) are symmetrically arranged, and the size of the locking protrusions (50) matches the size of the primary locking groove (25) and the secondary locking groove (27). When the locking protrusion (50) is embedded in the primary locking groove (25), the fixed rotating shaft (15) and the movable rotating shaft (16) are respectively inserted into the sealed bearing (11) and the ball bearing (13). When the locking protrusion (50) is embedded in the secondary locking groove (27), the fixed rotating shaft (15) and the movable rotating shaft (16) are respectively withdrawn from the sealed bearing (11) and the ball bearing (13).
2. The carbon tube winding equipment according to claim 1, characterized in that: The limiting cap (31) is provided with an internal hex wrench groove (32) and a positioning groove (33), and the positioning groove (33) is arranged in the same direction as the engaging protrusion (50).
3. The carbon tube winding equipment according to claim 2, characterized in that: An air chamber (34) is provided on the auxiliary force roller (14). The fixed rotating shaft (15) is a hollow tube structure. The air chamber (34) is connected to the first-stage adapter (10) through the fixed rotating shaft (15). The port of the first-stage adapter (10) is connected to the air pump through an air pipe. A wind-driven vibration mechanism (40) is provided in the air chamber (34). An air passage (35) is provided on the rear side wall of the auxiliary force roller (14). The air passage (35) is connected to the rear end of the air chamber (34).
4. The carbon tube winding equipment according to claim 3, characterized in that: The auxiliary force roller shaft (14) is formed by welding two semi-circular rollers, and a positioning plate groove (36) is provided on the side wall of the air cavity (34). A set of positioning plate grooves (36) are symmetrically arranged, and the welding surface of the auxiliary force roller shaft (14) is the common symmetrical surface of the two positioning plate grooves (36). A locking plate groove (37) is provided on the side wall of the positioning plate groove (36). A positioning plate (38) is embedded in the positioning plate groove (36). A locking plate (39) is integrally formed on the side of the positioning plate (38). When the positioning plate (38) is actually installed, the locking plate (39) is embedded in the locking plate groove (37). The two ends of the wind-receiving vibration mechanism (40) are respectively connected to the positioning plates (38) on both sides, and a row of wind-receiving vibration mechanisms (40) is arranged at equal intervals. A sealing groove is provided on the side wall of the fixed rotating shaft (15), and a rubber sealing gasket (46) is embedded in the sealing groove.
5. The carbon tube winding equipment according to claim 4, characterized in that: The wind-receiving vibration mechanism (40) is composed of a connecting spring (41), a center plate (42), a wind-receiving plate (43), an elastic sheet (44), and an impact ball (45). The center plate (42) is fixedly welded to both sides with connecting springs (41), and the outer ends of the connecting springs (41) are fixedly connected to the corresponding positioning plates (38). The wind-receiving plate (43) is fixedly welded to the center plate (42), and the airflow direction in the air chamber (34) is the same as that of the wind-receiving plate (45). 3) Vertically, the outer side of the wind receiving plate (43) is connected to the impact ball (45) through the elastic sheet (44). When the connecting spring (41) and the elastic sheet (44) are in the reset state, the impact ball (45) does not contact the side wall of the air chamber (34). When the air pump is running, airflow is generated in the air chamber (34), and at this time, the wind receiving plate (43) is moved by the wind, so that the impact ball (45) impacts the side wall of the air chamber (34).
6. A carbon fiber golf club, characterized in that: The carbon fiber golf club is manufactured using any one of the carbon winding devices described in claims 1-5, and the carbon fiber golf club is formed by winding carbon fiber layers into a tube.
Citation Information
Patent Citations
Pipe coiling machine for fishing rod production
CN217144979U
Dust removal equipment of grinding machine
CN218361228U
Winding device for carbon fiber composite material roller
CN222136012U