A small high-frequency forging hammer device

By designing a small high-frequency forging hammer device, the traction members and electromagnetic limit structure are used to solve the problems of energy waste and inefficiency when forging small items, and an efficient and labor-saving hammer forging effect is achieved.

CN117816886BActive Publication Date: 2025-05-23JIANGSU SHENGLAI NEW ENERGY TECH CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202311638053.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-12-02
Publication Date
2025-05-23
Estimated Expiration
2043-12-02

AI Technical Summary

Technical Problem

The prior art has the problem of energy waste when forging small items, and the manual hammering method is time-consuming and labor-intensive, and is inefficient.

Method used

A small high-frequency forging hammer device is designed to achieve high-frequency hammering through the traction member, and the electromagnetic limit structure and telescopic rocker are used to achieve energy accumulation and high-speed release, achieving the effect of boosting hammering.

Benefits of technology

It effectively solves the energy waste problem when large forging tools are processed in small items, and achieves efficient hammering forging, saving time and effort.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN117816886B_ABST
    Figure CN117816886B_ABST
Patent Text Reader

Abstract

The present invention discloses a small-sized high-frequency forging hammer device, including a traction mechanism, a hammer device, a support structure, a workbench and a motor component. The present invention belongs to the field of forging, and specifically refers to a small-sized high-frequency forging hammer device, wherein the traction component is arranged in front of the support structure, the hammer device is located inside the support structure, the workbench is located below the support structure, the motor component is located behind the support, the traction component is connected to the motor component, and the traction device includes a traction turntable and a traction rod component, and the traction rod component is located in front of the traction turntable. The present invention provides a small-sized high-frequency forging hammer device and a method for using the device, which effectively solves the problem of energy waste generated when large-sized forging tools on the current market process small-sized forgings, and achieves high-frequency hammering through the traction component, and can perform efficient hammer forging, so as to achieve the purpose of saving time and labor.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention belongs to the technical field of forging, and in particular relates to a small high-frequency forging hammer device. Background Art

[0002] Forging equipment refers to mechanical equipment used for forming and separation in forging processing. With the development of science and technology industry, the requirements for forging equipment for forging objects are becoming more and more refined. However, for small forging objects, due to their small size and low forging precision requirements, if large forging equipment is used, it will usually cause energy waste. If forging is performed by manual hammering, it will be time-consuming, labor-intensive and inefficient. Summary of the invention

[0003] In view of the above situation, in order to overcome the defects of the prior art, the present invention provides a small high-frequency forging hammer device, which effectively solves the problem of energy waste caused by large forging tools in the current market when processing small forgings, and achieves high-frequency hammering through a traction component, and can perform efficient hammer forging, so as to save time and effort.

[0004] In order to achieve a high-power hammering effect through a relatively low-power driving motor, the present invention is based on the basic idea of ​​energy accumulation and reciprocating explosion, and creatively proposes a small-sized electromagnetic limiting hammering device. When the crank slider structure is in motion, the position of the sliding component is kept fixed by the mutual adsorption of the electromagnet and the armature. In this process, the movement of the crank slider structure is compensated and deformed by the telescopic rocker, thereby allowing the sliding block to remain stationary during the rotation of the eccentric wheel. When the energy is accumulated to a peak value, the electromagnet releases the armature, causing the sliding part to pop out at a high speed to achieve the technical effect of boosted hammering.

[0005] In the absence of position sensing elements and upper control systems, the technical effects of reciprocating energy storage, release, and pressurized hammering are achieved only through ingenious mechanical mechanisms and simple electromagnetic adsorption principles.

[0006] The technical solution adopted by the present invention is as follows: The present invention proposes a small-scale high-frequency forging hammer device, including a traction component, a hammer device, a support structure, a workbench and a motor component, wherein the traction component is arranged in front of the support structure, the hammer device is located inside the support structure, the workbench is located below the support structure, the motor component is located behind the traction component, the traction component is connected to the motor component, the traction component includes a traction turntable and a traction rod component, the traction rod component is located in front of the traction turntable, the hammer device of the present invention is dragged by the traction component to achieve the purpose of repeated hammer forging, and the traction turntable rotates one circle, and the traction rod component touches the disconnect switch to cause power failure, so as to realize the falling of the hammer device and achieve the forging effect.

[0007] Furthermore, the traction turntable includes a turntable protective shell, a turntable, a connecting jack, a power-off switch, a turntable boss, a rotating shaft A and a bevel gear A. The turntable protective shell is wrapped around the outside of the turntable, and the turntable protective shell is adapted to the size of the turntable. The connecting jack and the power-off switch are arranged at both ends of the central axis passing through the center of the disk. When the turntable rotates, it can be ensured that the traction rod can touch and only touch the power-off switch once for every rotation, ensuring that a hammering occurs. The connecting jack and the power-off switch are arranged at both ends of the central axis passing through the center of the disk. The turntable boss is located on the back of the turntable. The bevel gear A is fixedly connected to the turntable boss through the rotating shaft A. The centers of the turntable protective shell, turntable, turntable boss, rotating shaft A and bevel gear A are located on the same horizontal axis.

[0008] Preferably, the traction rod component includes a connecting shaft, a telescopic rod sleeve, a telescopic rod piece, a prestressed tension spring and an anti-skid pad, the connecting shaft is fixedly connected to one side of an upper portion of the telescopic rod sleeve, the telescopic rod sleeve is snap-fitted to the outside of the telescopic rod piece and the prestressed tension spring, the telescopic rod sleeve is adapted to the size of the telescopic rod piece, the end of the telescopic rod piece is fixedly connected to the anti-skid pad, the prestressed tension spring is fixedly connected to the anti-skid pad, the prestressed tension spring is snap-fitted to the telescopic rod piece, the connecting shaft of the traction component is rotatably disposed in the connecting socket of the turntable, and the telescopic rod sleeve and the telescopic rod piece are snap-fitted and slidably connected, so that the traction rod component can be alternately extended and retracted in length, so that the traction rod piece can move more smoothly between the hammer device and the rotating turntable.

[0009] As a further preferred embodiment of the present invention, the hammering device includes an armature, an articulated seat, a helical compression spring and a hammering tool. The helical compression spring is evenly arranged in a ring shape on the top of the hammering tool. Through the elastic potential energy generated by the helical compression spring when being compressed, combined with the gravity potential energy of the hammering device itself, it takes effect at the moment when the traction rod touches the power-off switch, and hammers downward to achieve the purpose of hammer forging. The lower end of the helical compression spring is welded to the hammering tool, the articulated seat is located in the center of the hammering tool and is fixed to the hammering tool, and the telescopic rod of the traction rod component is connected to the articulated seat. When the power is on, the hammering tool is pulled and the hammering tool is lifted under the inertia of the rotation of the turntable, thereby achieving the purpose of assisting the adsorption of the electromagnetic magnet ring and the armature.

[0010] Among them, the support structure includes a support frame, a support frame hole, an electromagnetic magnet ring, a circular truss and a column. The support frame is arranged on the top of the circular truss and is fixedly connected. The upper part of the support frame is provided with a support frame hole. The turntable boss is adapted to the size of the support frame hole. The turntable boss is fixed through the support frame hole. The upper end of the spiral compression spring of the hammer device is fixed to the circular truss, and the lower end of the spiral compression spring of the hammer device is fixed to the hammer tool. The device of the present invention compensates and deforms the movement of the crank slider structure through a telescopic rocker, thereby allowing the sliding block to remain stationary during the rotation of the eccentric wheel. When the energy is accumulated to a peak value, the electromagnet releases the armature, causing the sliding part to pop out at high speed to achieve the technical effect of boosted hammering.

[0011] Preferably, the workbench includes a lifting platform, a lifting bracket and a workbench base. The workbench base is connected to the lifting platform through the lifting bracket, and the height of the lifting platform can be adjusted according to needs to facilitate forging and hammering.

[0012] Furthermore, the motor component includes a bevel gear B, a rotating shaft B, a switch and a motor box, wherein the switch is located on the motor box, the bevel gear B is connected to the motor box via the rotating shaft B, and the bevel gear B is meshed with the bevel gear A of the traction component. By the mutual cooperation of the two gears, the transmission direction of the gears is changed, so that the appearance of the device of the present invention is coordinated and unified.

[0013] Preferably, the electromagnetic magnet ring of the bracket structure is electrically connected to the motor box, the power-off switch of the traction member is electrically connected to the electromagnetic magnet ring, the traction member, the hammer device and the bracket structure are mutually pulled and constrained to perform crank sliding, and the reciprocating motion of the traction member is converted into the rotational motion of the bracket structure. The manufacturing is convenient and easy to implement.

[0014] Among them, when the turntable rotates, the traction rod component connected by the connecting shaft performs crank sliding. When it moves to the EO and GO states, the prestressed tension spring is in a free state, and the electromagnetic magnet ring adsorbs the armature of the hammering device, squeezing the spiral compression spring to accumulate potential energy. When the turntable rotates, the traction rod component connected by the connecting shaft performs crank sliding. When it moves to the FO state, the hammering tool falls under the dual effects of its own gravity and the release of potential energy of the spiral compression spring, thereby achieving the hammering effect.

[0015] As a further preferred embodiment of the present invention, the hammering tool is made of wear-resistant material, which increases the service life of the hammering tool of the device of the present invention and reduces the maintenance cost of the device of the present invention.

[0016] The present invention also proposes a method for using a small high-frequency forging hammer device, which specifically includes the following beneficial effects:

[0017] (1) The device of the present invention drags the hammer device of the present invention through a traction member to achieve the purpose of repeated hammer forging. Every time the traction turntable rotates one circle, the traction rod member touches the disconnect switch to cut off the power, so that the hammer device falls and the forging effect is achieved.

[0018] (2) When the rotating disk in the device of the present invention rotates, it can be ensured that the traction rod can touch and only touch the power-off switch once for each rotation, ensuring that a hammer strike occurs.

[0019] (3) The engaging and sliding connection between the telescopic rod sleeve and the telescopic rod member in the device of the present invention enables the traction rod member to be extended and retracted alternately in length, so that the traction rod member can move more smoothly between the hammer device and the rotating turntable.

[0020] (4) The elastic potential energy generated by the helical compression spring in the device of the present invention when it is compressed, combined with the gravity potential energy of the hammering device itself, takes effect at the moment when the traction rod touches the power-off switch, hammering downward to achieve the purpose of hammer forging.

[0021] (5) When the device of the present invention is powered on, the hammer tool is pulled and the hammer tool is lifted under the inertia of the rotating turntable, thereby achieving the purpose of assisting the adsorption of the electromagnetic magnet ring and the armature.

[0022] (6) The device of the present invention compensates and deforms the movement of the crank slider structure through a telescopic rocker, thereby allowing the sliding block to remain stationary during the rotation of the eccentric wheel. When the energy is accumulated to a peak value, the electromagnet releases the armature, causing the sliding part to pop out at high speed to achieve the technical effect of boosting hammering.

[0023] (7) The hammer gear B of the device of the present invention meshes with the bevel gear A of the traction member. Through the cooperation of the two gears, the transmission direction of the gears is changed, so that the appearance of the device of the present invention is coordinated and unified.

[0024] (8) The traction member, hammer device and support structure of the device of the present invention are mutually pulled and constrained to perform crank sliding, thereby converting the reciprocating motion of the traction member into the rotational motion of the support structure. The device is easy to manufacture and realize.

[0025] (9) The device of the present invention performs crank sliding through the traction rod component connected by the connecting shaft. When it moves to the EO and GO states, the prestressed tension spring is in a free state, and the electromagnetic magnet ring adsorbs the armature of the hammer device, squeezing the spiral compression spring to accumulate potential energy. When the turntable rotates, the traction rod component connected by the connecting shaft performs crank sliding. When it moves to the FO state, the hammer tool falls under the dual effects of its own gravity and the release of potential energy of the spiral compression spring, thereby achieving the hammering effect.

[0026] (10) The hammering tool in the device of the present invention is made of wear-resistant material, which increases the service life of the hammering tool in the device of the present invention and reduces the maintenance cost of the device of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 This is a structural diagram of a small high-frequency forging hammer device proposed by the present invention;

[0028] Figure 2 A front view of a small high-frequency forging hammer device proposed by the present invention;

[0029] Figure 3 This is a right side view of a small high-frequency forging hammer device proposed by the present invention;

[0030] Figure 4 This is a schematic diagram of the structure of a small high-frequency forging hammer device proposed by the present invention;

[0031] Figure 5 A schematic diagram of the structure of the workbench proposed by the present invention;

[0032] Figure 6 This is a schematic diagram of the structure of the hammering device proposed by the present invention;

[0033] Figure 7 A schematic diagram of the support structure proposed by the present invention;

[0034] Figure 8 A schematic diagram of the motor structure proposed by the present invention;

[0035] Fig. 9 This is a schematic diagram of the structure of the traction component proposed by the present invention;

[0036] Fig.10 This is a schematic diagram of the motion nodes of the traction member proposed by the present invention;

[0037] Among them, 1. traction component, 2. hammering device, 3. bracket structure, 4. workbench, 5. motor component, 6. traction turntable, 7. traction rod component, 8. armature, 9. hinged seat, 10. spiral compression spring, 11. hammering tool, 12. support frame, 13. support frame hole, 14. electromagnetic magnet ring, 15. circular truss, 16. column, 17. lifting platform, 18. lifting bracket, 19. workbench base, 20. bevel gear B, 21. rotating shaft B, 22. motor box, 23. switch, 24. turntable protective shell, 25. turntable, 26. connecting jack, 27. power off switch, 28. turntable boss, 29. rotating shaft A, 30. bevel gear A, 31. connecting shaft, 32. telescopic rod sleeve, 33. telescopic rod, 34. prestressed tension spring, 35. anti-slip pad.

[0038] The accompanying drawings are used to provide a further understanding of the present invention and form a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation to the present invention. Detailed Embodiments

[0039] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts belong to the scope of protection of the present invention.

[0040] In the description of the present invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.

[0041] As Figure 1 , Figure 2 , Figure 3 and Figure 4 shown, the present invention provides a small high-frequency forging hammering device, including a traction member 1, a hammering device 2, a support structure 3, a workbench 4 and an electric member 5. The traction member 1 is arranged in front of the support structure 3, the hammering device 2 is located inside the support structure 3, the workbench 4 is located below the support structure 3, the electric member 5 is located behind the traction member 1, the traction member 1 is connected to the electric member 5, the traction member 1 includes a traction turntable 6 and a traction rod member 7, and the traction rod member 7 is located in front of the traction turntable 6.

[0042] As Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 shown, the workbench 4 includes a lifting platform 17, a lifting bracket 18 and a workbench base 19. The workbench base 19 is connected to the lifting platform 17 through the lifting bracket 18, and can adjust the height of the lifting platform 17 according to requirements, facilitating forging hammering.

[0043] As Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 6As shown, the hammering device 2 includes an armature 8, an articulated seat 9, a helical compression spring 10 and a hammering tool 11. The helical compression spring 10 is evenly arranged on the hammering tool 11 in a ring shape. The lower end of the helical compression spring 10 is welded to the hammering tool 11. The articulated seat 9 is located in the center of the hammering tool 11 and is fixedly connected to the hammering tool 11. The telescopic rod 33 of the traction rod member 7 is connected to the articulated seat 9.

[0044] like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 7 As shown, the support structure 3 includes a support frame 12, a support frame hole 13, an electromagnetic magnet ring 14, a circular truss 15 and a column 16. The support frame 12 is arranged on the circular truss 15 and is fixedly connected. The upper part of the support frame 12 is provided with a support frame hole 13. The turntable boss 28 is adapted to the size of the support frame hole 13. The turntable boss 28 is erected and fixed through the support frame hole 13. The upper end of the spiral compression spring 10 of the hammer device 2 is fixedly connected to the circular truss 15, and the lower end of the spiral compression spring 10 of the hammer device 2 is fixedly connected to the hammer tool 11.

[0045] like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 8 As shown, the motor component 5 includes a bevel gear B20, a rotating shaft B21, a switch 23 and a motor box 22, the switch 23 is located above the motor box 22, the bevel gear B20 is connected to the motor box 22 through the rotating shaft B21, and the bevel gear B20 is meshed with the bevel gear A30 of the traction component 1.

[0046] like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Fig. 9 As shown, the traction turntable 6 includes a turntable protective shell 24, a turntable 25, a connecting jack 26, a power-off switch 27, a turntable boss 28, a rotating shaft A29 and a bevel gear A30. The turntable protective shell 24 is wrapped around the outside of the turntable 25, and the turntable protective shell 24 is adapted to the turntable 25 in size. The connecting jack 26 and the power-off switch 27 are arranged at both ends of the central axis passing through the center of the disk. The turntable boss 28 is located on the back of the turntable 25. The bevel gear A30 is fixedly connected to the turntable boss 28 through the rotating shaft A29. The centers of the turntable protective shell 24, the turntable 25, the turntable boss 28, the rotating shaft A29 and the bevel gear A30 are located on the same horizontal axis.

[0047] like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Fig. 9As shown, the traction rod component 7 includes a connecting shaft 31, a telescopic rod sleeve 32, a telescopic rod member 33, a prestressed tension spring 34 and an anti-slip pad 35. The connecting shaft 31 is fixedly connected to one side of the upper portion of the telescopic rod sleeve 32. The telescopic rod sleeve 32 is snap-fitted to the outside of the telescopic rod member 33 and the prestressed tension spring 34. The telescopic rod sleeve 32 is adapted in size to the telescopic rod member 33. The end of the telescopic rod member 33 is fixedly connected to the anti-slip pad 35. The prestressed tension spring 34 is fixedly connected to the anti-slip pad 35. The prestressed tension spring 34 is snap-fitted to the telescopic rod member 33. The connecting shaft 31 of the traction component 1 is rotatably disposed in the connecting socket 26 of the turntable 25.

[0048] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the support structure 3 includes a support frame 12, a support frame hole 13, an electromagnetic magnet ring 14, a circular truss 15 and a column 16. The support frame 12 is arranged on the circular truss 15 and is fixedly connected. The upper part of the support frame 12 is provided with a support frame hole 13. The turntable boss 28 is adapted to the size of the support frame hole 13. The turntable boss 28 is erected and fixed through the support frame hole 13. The upper end of the spiral compression spring 10 of the hammer device 2 is fixedly connected to the circular truss 15, and the lower end of the spiral compression spring 10 of the hammer device 2 is fixedly connected to the hammer tool 11.

[0049] like Fig.10 As shown, when the turntable 25 rotates, the traction rod component 7 connected by the connecting shaft 31 performs crank sliding. When it moves to the EO and GO states, the prestressed tension spring 34 is in a free state, and the electromagnetic magnet ring 14 adsorbs the armature 8 of the hammer device 2, squeezing the helical compression spring 10 to accumulate potential energy. When the turntable 25 rotates, the traction rod component 7 connected by the connecting shaft 31 performs crank sliding. When it moves to the FO state, the hammer tool 11 falls under the dual effects of its own gravity and the release of potential energy of the helical compression spring 10, thereby achieving the hammering effect.

[0050] When in use, the workbench 4 is moved and adjusted according to the actual situation of the forging object, the workbench 4 is placed under the hammering device 2, the lifting bracket 18 of the workbench 4 is adjusted, and the height of the lifting platform 17 is raised to match the hammering tool 11; the turntable 25 is fixed through the turntable boss 28 through the support frame hole 13, the motor box 22 is fixed on the circular truss 15, and the bevel gear A30 behind the turntable 25 is meshed with the bevel gear B20 on the motor box 22;

[0051] Turn on the switch 23 of the motor box 22, the electromagnetic magnet ring 14 electrically connected to the motor box 22 attracts the armature 8 of the hammer device 2, and the spiral compression spring 10 accumulates potential energy by being squeezed with the circular truss 15. When the switch 23 of the motor component 5 is turned on, the bevel gear B20 connected to the rotating shaft B21 starts to rotate, and the rotating disk 25 is driven to rotate through the rotating shaft A29 through the bevel gear A30 meshing with it, and the traction rod component 7 is driven to perform crank sliding through the connecting shaft 31, and the telescopic rod sleeve 32 is engaged and slid with the telescopic rod member 33, and the anti-skid pad 35 fixed to the end of the telescopic rod member 33 can fix the prestressed tension spring 34 while preventing the prestressed tension spring 34 from falling off when it moves to the FO state;

[0052] When the traction rod component 7 moves to the EO and GO states, the prestressed tension spring 34 is in a free state, the electromagnetic magnet ring 14 attracts the armature 8 of the hammer device 2, and the spiral compression spring 10 accumulates potential energy by being squeezed with the circular truss 15. When it moves to the FO state, the prestressed tension spring 34 is deformed under the action of tension and stores potential energy in a stretched state. When the telescopic rod 33 of the traction rod component 7 touches the power-off switch 27, the electromagnetic magnet ring 14 causes an electrical short circuit, resulting in a brief power outage. The hammer tool 11 falls under the dual effects of its own gravity and the release of potential energy of the spiral compression spring 10, thereby achieving the hammering effect.

[0053] The above is the overall workflow of the present invention, and you can repeat this step next time you use it.

[0054] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.

[0055] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

[0056] The present invention and its embodiments are described above, and such description is not restrictive. The drawings show only one embodiment of the present invention, and the actual structure is not limited thereto. In short, if ordinary technicians in the field are inspired by it, without departing from the purpose of the invention, they can design a structure and embodiment similar to the technical solution without creativity, which should belong to the protection scope of the present invention.

Claims

1. A small high-frequency forging hammer tool, Features: The invention comprises a traction member (1), a hammer device (2), a support structure (3), a workbench (4) and a motor member (5), wherein the traction member (1) is arranged in front of the support structure (3), the hammer device (2) is located inside the support structure (3), the workbench (4) is located below the support structure (3), the motor member (5) is located behind the traction member (1), the traction member (1) is connected to the motor member (5), the traction member (1) comprises a traction rotating disk (6) and a traction rod member (7), and the traction rod member (7) is located in front of the traction rotating disk (6); The traction turntable (6) comprises a turntable protective shell (24), a turntable (25), a connecting jack (26), a power off switch (27), a turntable boss (28), a rotating shaft A (29) and a bevel gear A (30), wherein the turntable protective shell (24) is wrapped around the outer side of the turntable (25), the turntable protective shell (24) and the turntable (25) are adapted in size, the connecting jack (26) and the power off switch (27) are arranged at two ends of a central axis passing through the center of the turntable, the turntable boss (28) is located on the back side of the turntable (25), the bevel gear A (30) is fixedly connected to the turntable boss (28) via the rotating shaft A (29), and the centers of the turntable protective shell (24), the turntable (25), the turntable boss (28), the rotating shaft A (29) and the bevel gear A (30) are located on the same horizontal axis; The traction rod component (7) comprises a connecting shaft (31), a telescopic rod sleeve (32), a telescopic rod (33), a prestressed tension spring (34) and an anti-skid pad (35); the connecting shaft (31) is fixedly connected to one side of the upper portion of the telescopic rod sleeve (32); the telescopic rod sleeve (32) is engaged with the outside of the telescopic rod (33) and the prestressed tension spring (34); the telescopic rod sleeve (32) is adapted in size to the telescopic rod (33); the end of the telescopic rod (33) is fixedly connected to the anti-skid pad (35); the prestressed tension spring (34) is fixedly connected to the anti-skid pad (35); the prestressed tension spring (34) is engagedly connected to the telescopic rod (33); and the connecting shaft (31) of the traction component (1) is rotatably disposed in a connecting socket (26) of a rotating disk (25); The hammering device (2) comprises an armature (8), an articulated seat (9), a helical compression spring (10) and a hammering tool (11); the helical compression spring (10) is evenly arranged on the hammering tool (11) in an annular shape; the lower end of the helical compression spring (10) is welded to the hammering tool (11); the articulated seat (9) is located at the center of the hammering tool (11) and is fixedly connected to the hammering tool (11); and the telescopic rod (33) of the traction rod member (7) is connected to the articulated seat (9); The support structure (3) comprises a support frame (12), a support frame hole (13), an electromagnetic magnet ring (14), a circular truss (15) and a column (16); the support frame (12) is arranged on the circular truss (15) and is fixedly connected; the support frame (12) is provided with a support frame hole (13) on the upper part; the turntable boss (28) is adapted in size to the support frame hole (13); the turntable boss (28) passes through the support frame hole (13) and is erected and fixed; the upper end of the spiral compression spring (10) of the hammer device (2) is fixedly connected to the circular truss (15); and the lower end of the spiral compression spring (10) of the hammer device (2) is fixedly connected to the hammer tool (11).

2. A small high-frequency forging hammer tool according to claim 1, Features: The workbench (4) comprises a lifting platform (17), a lifting bracket (18) and a workbench base (19); the workbench base (19) is connected to the lifting platform (17) via the lifting bracket (18); the height of the lifting platform (17) can be adjusted according to demand, thereby facilitating forging and hammering.

3. A small high-frequency forging hammer tool according to claim 2, Features: The motor component (5) comprises a bevel gear B (20), a rotating shaft B (21), a switch (23) and a motor box (22); the switch (23) is located on the motor box (22); the bevel gear B (20) is connected to the motor box (22) via the rotating shaft B (21); and the bevel gear B (20) is meshed with a bevel gear A (30) of the traction component (1).

4. A small high-frequency forging hammer tool according to claim 3, Features: The electromagnetic magnet ring (14) of the support structure (3) is electrically connected to the motor box (22), the power-off switch (27) of the traction member (1) is electrically connected to the electromagnetic magnet ring (14), and the traction member (1), the hammer device (2) and the support structure (3) are mutually pulled and constrained to perform crank sliding.

5. A small high-frequency forging hammer tool according to claim 4, Features: When the rotating disk (25) rotates, the traction rod component (7) connected via the connecting shaft (31) performs crank sliding. When the rotating disk (25) moves to the EO and GO states, the prestressed tension spring (34) is in a free state, and the electromagnetic magnet ring (14) adsorbs the armature (8) of the hammering device (2), compressing the helical compression spring (10) to accumulate potential energy. When the rotating disk (25) rotates, the traction rod component (7) connected via the connecting shaft (31) performs crank sliding. When the rotating disk (25) moves to the FO state, the hammering tool (11) falls under the dual effects of its own gravity and the potential energy released by the helical compression spring (10), thereby achieving the hammering effect.

6. A small high-frequency forging hammer tool according to claim 5, Features: The hammering tool (11) is made of wear-resistant material.

Citation Information

Patent Citations

  • Security door safety performance testing device

    CN112945759A

  • Numerical control press machine based on Internet of Things

    CN113665163A