Forming die special for continuous stamping and used for shaver accessory production
By introducing a ball seat connection between the balancing disc and the support column and adjusting the magnetic repulsion force of the permanent magnet in the mold, combined with automated control of hydraulic and electromagnetic drives, the problems of dimensional deviation and irregular shape caused by mold tilt are solved, achieving efficient and stable stamping of the mold and improving product quality.
Patent Information
- Application Number
- CN202511094410.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-06
- Publication Date
- 2025-09-23
AI Technical Summary
The existing continuous stamping special forming dies used for the production of razor accessories cannot adaptively adjust the tilt angle during the stamping process, resulting in dimensional deviations and irregular shapes in the stamped accessories, affecting product quality and production efficiency.
The balancing plate is connected to the ball seat of the support column, combined with the magnetic repulsion adjustment of the upper and lower permanent magnets. The automatic horizontal adjustment of the mold is achieved through the adjustment mechanism, and the magnetic repulsion is precisely controlled by hydraulic transmission and electromagnetic drive. The trigger system of the touch ball and touch sheet is combined to accurately position and correct the tilt angle.
It significantly improves the stability and precision of the mold during the stamping process, reduces mold wear, improves product qualification rate and production efficiency, and reduces production costs.
Smart Images

Figure CN120679902A_ABST
Abstract
Description
Technical Field
[0001] The invention particularly relates to a continuous stamping special forming die for producing razor accessories, belonging to the technical field. Background Art
[0002] In the manufacturing process of razor accessories, continuous stamping die sets are core equipment, playing a key role in product efficiency and quality. Continuous stamping enables efficient mass production of accessories, meeting the high demand for razor accessories in the market.
[0003] However, existing continuous stamping dies for razor accessories have significant drawbacks. During the actual stamping process, the die inevitably tilts at a certain angle as the stamping continues. However, existing dies generally lack the ability to adaptively adjust the tilt angle. This results in the die tilt not being corrected in a timely manner during the stamping process, making the stamped accessories prone to quality issues such as dimensional deviations and irregular shapes. These quality issues not only reduce the product qualification rate and increase production costs, but also affect the overall assembly quality and performance of the razors, causing economic losses and reputational damage to the company. Summary of the Invention
[0004] The purpose of the present invention is to address the deficiencies of the prior art and provide a continuous stamping special forming die for the production of razor accessories.
[0005] A continuous stamping die for producing razor accessories comprises a die body, a mounting seat mounted at the bottom of the die body, a mounting cavity defined within the mounting seat, a balancing disc connected to the bottom wall of the mounting cavity via a first ball seat, a plurality of second ball seats arranged in a circumferential array on the top surface of the balancing disc, support posts connected to the second ball seats, the top ends of the support posts connected to the bottom surface of the die body via a third ball seat, a plurality of lower permanent magnets arranged in a circumferential array on the top surface of the balancing disc, the lower permanent magnets corresponding horizontally to the support posts, upper permanent magnets mounted on the inner top wall of the mounting cavity corresponding one to each of the lower permanent magnets, the upper and lower permanent magnets magnetically repelling each other, the balancing disc maintaining a horizontal state when the magnetic repulsion between the corresponding upper and lower permanent magnets is the same, and an adjustment mechanism for adjusting the upper permanent magnets to move closer to the lower permanent magnets to adjust the magnetic repulsion between the two adjacent permanent magnets is further disposed within the mounting cavity. When the balancing disc tilts, the adjustment mechanism adjusts the magnetic repulsion to keep the balancing disc horizontal.
[0006] Furthermore, the adjustment mechanism includes a sealing groove provided on the inner wall of the mounting seat, a piston column is slidably installed inside the sealing groove, the top of the piston column is connected to a reset spring, the upper permanent magnet is connected to the bottom end of the piston column, and a liquid storage chamber is provided inside the support column, the liquid storage chamber is connected to the sealing groove through a flow channel, and a piston plate is sealingly and slidably connected inside the liquid storage chamber, and when the piston plate slides along the liquid storage chamber, the liquid inside the liquid storage chamber is transported to the sealing groove through the flow channel.
[0007] Furthermore, it also includes a driving member arranged inside the liquid storage chamber to push the piston plate to slide along the inner wall of the liquid storage chamber. The driving member includes an electromagnet connected to the bottom wall of the liquid storage chamber and an adjusting magnetic plate connected to the bottom surface of the piston plate. When the electromagnet is energized, it generates a magnetic repulsive force with the adjusting magnetic plate. Under the action of the magnetic repulsive force, the adjusting magnetic plate moves away from the electromagnet.
[0008] Furthermore, the flow channel includes a drainage hole opened on the side wall of the support column, the drainage hole is connected to the liquid storage chamber, a hose is connected to the outer wall of the support column, and a liquid flow channel connected to the sealing groove is also opened on the inner wall of the mounting seat, one end of the hose is connected to the drainage hole, and the other end is connected to the liquid flow channel.
[0009] Furthermore, the top end of the return spring is connected to the inner top wall of the sealing groove. The initial elastic force of the return spring pulls the piston column to slide into the sealing groove so that the upper permanent magnet piece fits with the inner top wall of the installation cavity.
[0010] Furthermore, it also includes a control component arranged on the balancing disk to control the opening and closing of the electromagnet, the control component includes an annular groove opened on the balancing disk, and a plurality of touch pieces are installed on the inner wall of the annular groove. The plurality of touch pieces correspond to the electromagnets distributed at different positions respectively. A touch ball is also provided inside the annular groove. When the balancing disk is tilted, the touch ball rolls along the inner wall of the annular groove. When the touch ball contacts the corresponding touch piece during the rolling process, the electromagnet is turned on.
[0011] Furthermore, an embedding groove is provided on the top surface of the balancing disk, and the lower permanent magnet piece is embedded in the embedding groove.
[0012] Furthermore, the mold body includes a base plate connected to the top surface of the mounting seat, the top surface of the base plate is symmetrically installed with side plates, the top surface of the side plate is connected to a lower template, a lower mold is installed on the lower template, a mold cavity is opened on the lower mold, an upper template is provided on the lower mold, an upper mold is connected to the bottom surface of the upper template, and a module that cooperates with the mold cavity is installed on the bottom surface of the upper mold.
[0013] Furthermore, the bottom surface of the base plate is connected to a cylinder, the telescopic end of the cylinder extends above the base plate and is connected to a connecting plate, the top surface of the connecting plate is connected to a push rod, and the lower template is provided with a push groove connected to the mold cavity, and the push rod is slidably connected to the inside of the push groove.
[0014] Beneficial effects:
[0015] 1. The present invention connects the first ball seat, the second ball seat, and the third ball seat through the ball seat of the balance plate and the support column, and cooperates with the magnetic repulsion adjustment of the upper permanent magnet sheet and the lower permanent magnet sheet to form a multi-point floating support structure. This structure can automatically adjust the force of each support point according to the tilt state of the mold, ensuring that the mold always remains level during the stamping process, significantly improving the molding accuracy of the accessories, and at the same time reducing the local wear of the mold caused by unbalanced load, thereby extending the service life.
[0016] 2. In the present invention, an electromagnet drives a piston plate to squeeze hydraulic oil, and the position of the upper permanent magnet is precisely controlled through a hose and a liquid flow channel, thereby achieving stepless adjustment of the magnetic repulsion force. Combined with the trigger system of the touch ball and touch sheet, precise positioning and correction of the tilt angle can be achieved, allowing the mold to maintain a stable posture under high-frequency stamping, greatly improving production efficiency and product consistency. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a left-side structural schematic diagram of the present invention;
[0018] Figure 2 It is a right side structural schematic diagram of the present invention;
[0019] Figure 3 It is a front view structural schematic diagram of the present invention;
[0020] Figure 4 It is a schematic diagram of the cross-sectional structure of the present invention;
[0021] Figure 5 for Figure 4 A magnified view of the structure at point A;
[0022] Figure 6 for Figure 4 A magnified view of the structure at B in the middle;
[0023] Figure 7 It is a structural schematic diagram of the balancing disk in the present invention.
[0024] In the figure: 1. Lower template; 2. Lower mold; 3. Upper template; 4. Upper mold; 5. Mold cavity; 6. Module; 7. Push groove; 8. Push rod; 9. Connecting plate; 10. Side plate; 11. Bottom plate; 12. Mounting seat; 13. Mounting cavity; 14. First ball seat; 15. Balance plate; 16. Second ball seat; 17. Support column; 18. Third ball seat; 19. Annular groove; 20. Touch ball; 21. Touch panel; 22. Electromagnet; 23. Drain hole; 24. Hose; 25. Liquid flow channel; 26. Sealing groove; 27. Piston column; 28. Upper permanent magnet; 29. Return spring; 30. Lower permanent magnet; 31. Piston plate; 32. Adjusting magnet; 33. Cylinder. DETAILED DESCRIPTION
[0025] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0026] See also Figure 1-7 As shown, a continuous stamping special forming mold for the production of razor accessories includes a mold body, a mounting seat 12 is installed at the bottom of the mold body, and a mounting cavity 13 is formed inside the mounting seat 12. A balancing disc 15 is connected to the bottom wall of the mounting cavity 13 through a first ball seat 14. A plurality of second ball seats 16 are arranged in a circumferential array on the top surface of the balancing disc 15. The second ball seats 16 are connected to a support column 17. The top of the support column 17 is connected to the bottom surface of the mold body through a third ball seat 18. A plurality of lower permanent magnets 30 are arranged in a circumferential array on the top surface of the balancing disc 15. The lower permanent magnet piece 30 corresponds horizontally to the support column 17, and the inner top wall of the installation cavity 13 is installed with an upper permanent magnet piece 28 corresponding to the lower permanent magnet piece 30. The upper permanent magnet piece 28 and the lower permanent magnet piece 30 magnetically repel each other. When the magnetic repulsion between the corresponding upper permanent magnet piece 28 and the lower permanent magnet piece 30 is the same, the balance disk 15 remains in a horizontal state. The interior of the installation cavity 13 is also provided with an adjustment mechanism for adjusting the upper permanent magnet piece 28 to approach the lower permanent magnet piece 30 to adjust the two adjacent magnetic repulsions. When the balance disk 15 is tilted, the adjustment mechanism is used to adjust the magnetic repulsion to make the balance disk 15 horizontal.
[0027] Specifically, when the mold body tilts during the stamping process, the balancing plate 15 tilts accordingly, causing the magnetic repulsion between the upper and lower permanent magnets 28 and 30, which were originally evenly distributed in a horizontal state, to change. At this point, the adjustment mechanism adjusts the upper permanent magnets 28 to move closer to the lower permanent magnets 30 based on the tilt, changing the magnitude of the magnetic repulsion and restoring the balancing plate 15 to a horizontal position, thereby ensuring the stamping accuracy of the mold body. This adaptive adjustment of the magnetic repulsion can promptly correct mold tilt during the stamping process, effectively avoiding dimensional deviations and irregular shapes of accessories caused by mold tilt, significantly improving product qualification and quality stability, and reducing production costs.
[0028] As a technical optimization solution of the present invention, the adjustment mechanism includes a sealing groove 26 opened on the inner wall of the mounting seat 12, and a piston column 27 is slidably installed inside the sealing groove 26. The top of the piston column 27 is connected to a reset spring 29, and the upper permanent magnet 28 is connected to the bottom end of the piston column 27. The support column 17 has a liquid storage chamber inside, and the liquid storage chamber is connected to the sealing groove 26 through a flow channel. A piston plate 31 is sealingly and slidably connected inside the liquid storage chamber. When the piston plate 31 slides along the liquid storage chamber, the liquid inside the liquid storage chamber is transported to the sealing groove 26 through the flow channel.
[0029] Specifically, when the balancing disc 15 tilts, the piston plate 31 inside the support column 17 will slide under the action of the driving member, and the liquid in the liquid storage chamber will be transported to the sealing groove 26 through the flow channel, pushing the piston column 27 to move downward, so that the upper permanent magnet piece 28 is close to the lower permanent magnet piece 30, increasing the magnetic repulsion force, and thus adjusting the angle of the balancing disc 15. The magnetic repulsion force is adjusted by using the hydraulic transmission principle. The structure is simple and reliable, the response speed is fast, and it can be accurately adjusted according to the inclination of the mold, thereby improving the adaptive adjustment ability of the mold.
[0030] As a technical optimization solution of the present invention, it also includes a driving member arranged inside the liquid storage chamber to push the piston plate 31 to slide along the inner wall of the liquid storage chamber. The driving member includes an electromagnet 22 connected to the bottom wall of the liquid storage chamber and an adjusting magnetic piece 32 connected to the bottom surface of the piston plate 31. When the electromagnet 22 is energized, it generates a magnetic repulsive force with the adjusting magnetic piece 32. Under the action of the magnetic repulsive force, the adjusting magnetic piece 32 moves away from the electromagnet 22.
[0031] Specifically, when the magnetic repulsion needs to be adjusted, the electromagnet 22 is energized to generate a magnetic repulsion with the adjusting magnetic sheet 32, pushing the piston plate 31 to slide along the inner wall of the liquid storage chamber, squeezing out the liquid, and adjusting the position of the upper permanent magnet sheet 28. The electromagnetic drive method is adopted, which is flexible and convenient to control. The size of the magnetic repulsion can be accurately adjusted according to actual needs, and stepless adjustment can be achieved by controlling the current size, further improving the adjustment accuracy of the mold.
[0032] As a technical optimization solution of the present invention, the flow channel includes a drainage hole 23 opened on the side wall of the support column 17, the drainage hole 23 is connected to the liquid storage chamber, a hose 24 is connected to the outer wall of the support column 17, and a liquid flow channel 25 connected to the sealing groove 26 is also opened on the inner wall of the mounting seat 12. One end of the hose 24 is connected to the drainage hole 23, and the other end is connected to the liquid flow channel 25.
[0033] Specifically, the liquid in the liquid storage chamber enters the hose 24 through the drainage hole 23, and is then transported to the sealing groove 26 through the liquid flow channel 25, forming a complete liquid flow path to ensure smooth hydraulic transmission. This flow channel design has a compact structure and reliable connection, which can effectively avoid liquid leakage, ensure the stability and reliability of the hydraulic system, and also facilitate the installation and maintenance of the mold.
[0034] As a technical optimization solution of the present invention, the top end of the reset spring 29 is connected to the inner top wall of the sealing groove 26. The initial elastic force of the reset spring 29 pulls the piston column 27 to slide inside the sealing groove 26 so that the upper permanent magnet piece 28 fits with the inner top wall of the installation cavity 13.
[0035] Specifically, in the initial state, the elastic force of return spring 29 causes piston rod 27 to slide upward, and upper permanent magnet 28 to contact the top wall of mounting cavity 13, resulting in a relatively low magnetic repulsion. When adjustment is required, the hydraulic pressure overcomes the elastic force of return spring 29, pushing piston rod 27 downward and increasing the magnetic repulsion. The provision of return spring 29 ensures that upper permanent magnet 28 is in its initial position when the mold is not in operation or when adjustment is not required, avoiding unnecessary interference from magnetic repulsion and providing reliable protection for resetting the hydraulic system.
[0036] As a technical optimization solution of the present invention, it also includes a control component arranged on the balancing disk 15 to control the opening and closing of the electromagnet 22. The control component includes an annular groove 19 opened on the balancing disk 15. A plurality of touch panels 21 are installed on the inner wall of the annular groove 19. The plurality of touch panels 21 correspond to electromagnets 22 distributed at different positions. A touch ball 20 is also provided inside the annular groove 19. When the balancing disk 15 tilts, the touch ball 20 rolls along the inner wall of the annular groove 19. When the touch ball 20 contacts the corresponding touch panel 21 during the rolling process, the electromagnet 22 is turned on.
[0037] Specifically, when the balancing disc 15 tilts, the touch ball 20 rolls in the annular groove 19 and contacts the corresponding touch piece 21, triggering the electromagnet 22 at the corresponding position to energize, thereby controlling the magnetic repulsion force adjustment at that position and achieving precise adjustment of the tilt angle of the balancing disc 15. This control component has a simple structure and low cost, can detect the tilt of the balancing disc 15 in real time and respond in a timely manner, realizing automated tilt adjustment control and improving the intelligence level of the mold.
[0038] As a technical optimization solution of the present invention, an embedding groove is provided on the top surface of the balancing disk 15 , and the lower permanent magnet piece 30 is embedded and installed inside the embedding groove.
[0039] Specifically, the lower permanent magnet piece 30 is embedded in the embedding groove on the top surface of the balance disk 15, which ensures the installation stability of the lower permanent magnet piece 30, prevents it from displacement or shaking during operation, improves the installation accuracy and stability of the permanent magnet piece, ensures the uniform distribution and stabilization of the magnetic repulsion force, and thus ensures the accuracy and reliability of the mold tilt adjustment.
[0040] As a technical optimization solution of the present invention, the mold body includes a base plate 11 connected to the top surface of the mounting seat 12, the top surface of the base plate 11 is symmetrically installed with side panels 10, the top surface of the side panel 10 is connected to the lower template 1, the lower template 1 is installed with a lower mold 2, the lower mold 2 is provided with a mold cavity 5, the lower mold 2 is provided with an upper template 3, the bottom surface of the upper template 3 is connected to the upper mold 4, and the bottom surface of the upper mold 4 is installed with a module 6 that cooperates with the mold cavity 5.
[0041] Specifically, the mold body is composed of a complete stamping system through structures such as the bottom plate 11, the side plate 10, the lower template 1, and the upper template 3. The upper mold 4 and the lower mold 2 cooperate to complete the stamping process of the razor accessories. This structural design is reasonable, the components are firmly connected, and it can withstand a large stamping pressure, ensuring the service life and stamping accuracy of the mold. At the same time, it is also convenient for disassembly and replacement of parts of the mold.
[0042] As a technical optimization solution of the present invention, the bottom surface of the base plate 11 is connected to the cylinder 33, the telescopic end of the cylinder 33 extends to the top of the base plate 11 and is connected to the connecting plate 9, the top surface of the connecting plate 9 is connected to the push rod 8, and the lower template 1 is provided with a push groove 7 connected to the mold cavity 5, and the push rod 8 is slidably connected to the inside of the push groove 7.
[0043] Specifically, when the stamping is completed, the cylinder 33 pushes the connecting plate 9 and the ejector rod 8 to move upward, and the ejector rod 8 slides in the ejector groove 7 to eject the formed accessories from the mold cavity 5, which is convenient for the removal and subsequent processing of the accessories, realizes the automatic ejection function of the accessories, improves production efficiency, reduces manual operation, reduces labor intensity, and also avoids damage to the accessories that may be caused by manual removal.
[0044] Working principle: When the mold body tilts during the stamping process, the balancing plate 15 tilts synchronously with the mold through the first ball seat 14. When the balancing plate 15 tilts, the touch ball 20 in the annular groove 19 rolls along the groove wall and contacts the touch piece 21 at the corresponding position, triggering the electromagnet 22 in the area to be energized. The energized electromagnet 22 and the regulating magnetic piece 32 generate a magnetic repulsive force, pushing the piston plate 31 to slide in the liquid storage chamber in the direction away from the electromagnet 22. The sliding of the piston plate 31 transports the liquid in the liquid storage chamber through the drainage hole 23, the hose 24 and the liquid flow channel 25 to the sealing groove 26. After the liquid enters the sealing groove 26, it pushes the piston column 27 to slide downward, driving the upper permanent magnet 22 to slide downward. The magnetic sheet 28 is close to the lower permanent magnet sheet 30, and the magnetic repulsion between the two is enhanced. The magnetic repulsion between the upper permanent magnet sheet 28 and the lower permanent magnet sheet 30 on the inclined side increases, pushing the balance plate 15 to deflect in the opposite direction until the magnetic repulsion in all directions is equal, and the balance plate 15 returns to the horizontal state. When the tilting state is eliminated, the reset spring 29 pulls the piston column 27 upward, and the upper permanent magnet sheet 28 is reset. The hydraulic oil flows back to the liquid storage chamber through the flow channel, and the system returns to the initial state. The lower mold 2 of the mold body cooperates with the upper mold 4 to complete the stamping of the razor accessories through the mold cavity 5 and the module 6. The cylinder 33 drives the connecting plate 9 and the push rod 8 to eject the molded accessories from the mold cavity 5 through the push groove 7 to achieve continuous production.
[0045] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.
[0046] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.
Claims
1. A continuous stamping die for the production of razor accessories, comprising a die body, characterized in that: A mounting seat (12) is installed at the bottom of the mold body, and a mounting cavity (13) is provided inside the mounting seat (12). A balancing disc (15) is connected to the bottom wall of the mounting cavity (13) through a first ball seat (14). A plurality of second ball seats (16) are arranged in a circumferential array on the top surface of the balancing disc (15). A support column (17) is connected to the second ball seat (16). The top of the support column (17) is connected to the bottom surface of the mold body through a third ball seat (18). A plurality of lower permanent magnets (30) are arranged in a circumferential array on the top surface of the balancing disc (15). The lower permanent magnets (30) and the support columns (17) are connected to the support columns (17). The mounting cavity (13) is horizontally corresponding, and an upper permanent magnet piece (28) corresponding to a lower permanent magnet piece (30) is installed on the inner top wall of the mounting cavity (13). The upper permanent magnet piece (28) and the lower permanent magnet piece (30) are magnetically repelled from each other. When the magnetic repulsion between the upper permanent magnet piece (28) and the lower permanent magnet piece (30) corresponding to each other is the same, the balancing disk (15) maintains a horizontal state. The mounting cavity (13) is further provided with an adjustment mechanism for adjusting the upper permanent magnet piece (28) to approach the lower permanent magnet piece (30) to adjust the magnetic repulsion between the two adjacent pieces. When the balancing disk (15) is tilted, the adjustment mechanism is used to adjust the magnetic repulsion to make the balancing disk (15) horizontal.
2. The continuous stamping die for producing razor accessories according to claim 1, characterized in that: The adjustment mechanism includes a sealing groove (26) provided on the inner wall of the mounting seat (12), a piston column (27) is slidably installed inside the sealing groove (26), the top end of the piston column (27) is connected to a return spring (29), the upper permanent magnet (28) is connected to the bottom end of the piston column (27), a liquid storage cavity is provided inside the support column (17), the liquid storage cavity is communicated with the sealing groove (26) through a flow channel, a piston plate (31) is sealingly slidably connected inside the liquid storage cavity, and when the piston plate (31) slides along the liquid storage cavity, the liquid inside the liquid storage cavity is transported to the sealing groove (26) through the flow channel.
3. The continuous stamping die for producing razor accessories according to claim 2, characterized in that: The invention also includes a driving member arranged inside the liquid storage chamber to push the piston plate (31) to slide along the inner wall of the liquid storage chamber, wherein the driving member includes an electromagnet (22) connected to the bottom wall of the liquid storage chamber and an adjusting magnetic plate (32) connected to the bottom surface of the piston plate (31). When the electromagnet (22) is energized, a magnetic repulsive force is generated with the adjusting magnetic plate (32). Under the action of the magnetic repulsive force, the adjusting magnetic plate (32) moves away from the electromagnet (22).
4. The continuous stamping die for producing razor accessories according to claim 2, wherein: The flow channel includes a drainage hole (23) formed on the side wall of the support column (17), the drainage hole (23) being connected to the liquid storage chamber, a hose (24) being connected to the outer wall of the support column (17), and a liquid flow channel (25) being connected to the sealing groove (26) being formed on the inner wall of the mounting seat (12), one end of the hose (24) being connected to the drainage hole (23), and the other end being connected to the liquid flow channel (25).
5. The continuous stamping die for producing razor accessories according to claim 2, characterized in that: The top end of the return spring (29) is connected to the inner top wall of the sealing groove (26), and the initial elastic force of the return spring (29) pulls the piston column (27) to slide inside the sealing groove (26) so that the upper permanent magnet (28) fits the inner top wall of the installation cavity (13).
6. The continuous stamping die for producing razor accessories according to claim 1, characterized in that: The invention also includes a control component arranged on the balancing disk (15) to control the opening and closing of the electromagnet (22), wherein the control component includes an annular groove (19) provided on the balancing disk (15), a plurality of touch panels (21) are installed on the inner wall of the annular groove (19), and the plurality of touch panels (21) correspond to the electromagnets (22) distributed at different positions. A touch ball (20) is also arranged inside the annular groove (19), and when the balancing disk (15) is tilted, the touch ball (20) rolls along the inner wall of the annular groove (19), and when the touch ball (20) contacts the corresponding touch panel (21) during the rolling process, the electromagnet (22) is turned on.
7. The continuous stamping die for producing razor accessories according to claim 1, wherein: An embedding groove is provided on the top surface of the balancing disk (15), and the lower permanent magnet piece (30) is embedded in the embedding groove.
8. The continuous stamping die for producing razor accessories according to claim 1, wherein: The mold body includes a bottom plate (11) connected to the top surface of a mounting seat (12), the top surface of the bottom plate (11) is symmetrically mounted with side plates (10), the top surface of the side plates (10) is connected to a lower template (1), a lower mold (2) is mounted on the lower template (1), a mold cavity (5) is provided on the lower mold (2), an upper template (3) is provided on the lower mold (2), an upper mold (4) is connected to the bottom surface of the upper template (3), and a module (6) that cooperates with the mold cavity (5) is mounted on the bottom surface of the upper mold (4).
9. The continuous stamping die for producing razor accessories according to claim 8, characterized in that: The bottom surface of the base plate (11) is connected to a cylinder (33), the telescopic end of the cylinder (33) extends to the top of the base plate (11) and is connected to a connecting plate (9), the top surface of the connecting plate (9) is connected to a push rod (8), the lower template (1) is provided with a push groove (7) connected to the mold cavity (5), and the push rod (8) is slidably connected inside the push groove (7).