Wear-resistant metal stamping die
By designing an automated propulsion and reciprocating mechanism, the problem of low manual loading efficiency of wear-resistant metal stamping molds is solved, automatic loading and fixing is realized, stamping efficiency and accuracy are improved, and artificial damage and resource waste are avoided.
Patent Information
- Application Number
- CN202421463080.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-25
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-06-25
AI Technical Summary
Existing wear-resistant metal stamping molds require low manual loading efficiency, waste of manpower and material resources, and irregular operation may lead to injury to staff and inaccurate stamping positions, resulting in waste of resources.
An wear-resistant metal stamping mold including a propulsion mechanism and a reciprocating mechanism is designed to automatically drive the wear-resistant metal to be under the stamping block, fix the metal through a fixing member, avoid manual loading, and prevent metal position deviation through reciprocating movement.
Automatic loading is realized, stamping efficiency is improved, artificial damage and inaccurate position problems are avoided, resources are saved, and stamping accuracy is improved.
Smart Images

Figure CN223083668U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of wear-resistant metal stamping, and particularly relates to a wear-resistant metal stamping die. Background Technique
[0002] Wear-resistant metal is an alloy developed to improve the wear resistance of mechanical equipment and some typical metals with the most common friction. It is widely used, including various tool steels, bearing steels, high manganese steel used in rock drilling and crushing machinery, and various wear-resistant cast irons. During use, wear-resistant metal needs to be stamped to be applicable in various aspects.
[0003] When the existing wear-resistant metal stamping die is in use, manual feeding is required, which is not only inefficient but also wastes a large amount of manpower and material resources. During the operation process, workers may also be injured due to non-standard operation by the staff, and manual fixation may cause inaccurate stamping positions, resulting in the stamped parts being unsuitable for use and causing waste of resources. Content of the Utility Model
[0004] The purpose of the utility model is to provide a wear-resistant metal stamping die to solve the problems raised in the above background technique.
[0005] To achieve the above purpose, the utility model provides the following technical solution: A wear-resistant metal stamping die, including a workbench and a fixing piece installed on its surface, further including:
[0006] A support frame fixed above the workbench, a hydraulic rod is fixed below the middle part of the support frame, a stamping block is installed below the hydraulic rod, and a card slot is opened inside the workbench;
[0007] Support plates fixed on both sides of the card slot, a fixed shaft is fixed on one side of the support plate, a sliding sleeve is slidably connected to the surface of the fixed shaft, a stepping motor is installed inside the card slot, an output shaft is installed on one side of the stepping motor, and a propulsion mechanism is arranged on one side of the output shaft;
[0008] A driving motor installed inside the workbench, a reciprocating mechanism is installed on one side of the driving motor, square slots are opened on both sides of the surface of the reciprocating mechanism, and fixing plates are slidably connected inside the square slots,
[0009] Sliding blocks fixed on both sides of the fixing plate, the surface of the sliding block is slidably connected to a chute, and a strip-shaped slot is opened on the surface of the workbench. Preferably, the...
[0010] Preferably, the propulsion mechanism includes a first rotating block, a rotating shaft is slidably connected inside the first rotating block, a second rotating block is fixed to one side of the rotating shaft, a return spring is fixed to one side of the first rotating block, the other side of the return spring is fixed to the second rotating block, a fixed block is rotatably connected to one side of the second rotating block, a support shaft is slidably connected inside the fixed block, and a fork rod is fixed above one side of the fixed block.
[0011] Preferably, the reciprocating mechanism includes a worm, a worm gear is engaged with one side of the worm, a spur gear is installed above the worm gear, a half gear is fixed above the spur gear, a toothed bar is engaged with one side of the half gear, and a fixing plate is fixed above the toothed bar.
[0012] Preferably, the slider is designed in a T shape, and the shape of the inner wall of the sliding groove is the same as that of the slider.
[0013] Preferably, the fixing member is designed in a cylindrical shape and is rotatably connected to the workbench.
[0014] Preferably, the strip-shaped groove is located in the middle of the fixing member, and the fork rod passes through the inside of the strip-shaped groove during operation.
[0015] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0016] Through the cooperation of the propulsion mechanism and the fixing member, the present utility model can automatically drive the wear-resistant metal under the stamping block, eliminating the need for manual feeding by workers, saving a large amount of manpower and material resources, and improving the stamping efficiency. Through the cooperation of the reciprocating mechanism and the fixing plate, the wear-resistant metal can be fixed, avoiding the situation where workers are injured, the stamping position is inaccurate, the stamped parts are not suitable for use, and resources are wasted. Brief Description of the Drawings
[0017] Figure 1 It is a three-dimensional structural schematic diagram of the present utility model;
[0018] Figure 2 It is a three-dimensional sectional structural schematic diagram of the workbench in the present utility model;
[0019] Figure 3 It is a three-dimensional sectional structural schematic diagram of the workbench in the present utility model;
[0020] Figure 4 It is a three-dimensional structural schematic diagram of the propulsion mechanism in the present utility model;
[0021] Figure 5 It is a three-dimensional structural schematic diagram of the reciprocating mechanism in the present utility model.
[0022] In the figure: 1, workbench; 2, fixing piece; 3, support frame; 4, hydraulic rod; 5, stamping block; 6, card slot; 7, support plate; 8, fixed shaft; 9, stepper motor; 10, output shaft; 11, propulsion mechanism; 111, first rotating block; 112, rotating shaft; 113, second rotating block; 114, return spring; 115, fixed block; 116, fork rod; 117, support shaft; 12, sliding sleeve; 13, drive motor; 14, reciprocating mechanism; 141, worm; 142, worm gear; 143, spur gear; 144, half gear; 145, toothed bar; 15, square groove; 16, fixing plate; 17, slider; 18, chute; 19, strip groove. Detailed implementation manner
[0023] 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 the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0024] Please refer to Figures 1-5 As shown, a wear-resistant metal stamping die includes a workbench 1. A fixing piece 2 is installed on the surface of the workbench 1 to fix the wear-resistant metal under this action and prevent it from falling off during the movement. A support frame 3 is fixed above the workbench 1. A hydraulic rod 4 is fixed below the middle part of the support frame 3. A stamping block 5 is installed below the hydraulic rod 4 to stamp the wear-resistant metal under this action. A card slot 6 is opened inside the workbench 1. Support plates 7 are fixed on both sides of the card slot 6. A fixed shaft 8 is fixed on one side of the support plate 7. A sliding sleeve 12 is slidably connected to the surface of the fixed shaft 8. A stepper motor 9 is installed inside the card slot 6. An output shaft 10 is installed on one side of the stepper motor 9. A propulsion mechanism 11 is arranged on one side of the output shaft 10. A drive motor 13 is installed inside the workbench 1. A reciprocating mechanism 14 is installed on one side of the drive motor 13. Square grooves 15 are opened on both sides of the surface of the reciprocating mechanism 14. A fixing plate 16 is slidably connected inside the square groove 15. Sliders 17 are fixed on both sides of the fixing plate 16. The surface of the slider 17 is slidably connected to a chute 18 to limit the fixing plate 16 under this action and prevent the position of the fixing plate 16 from deviating greatly during the movement. A strip groove 19 is opened on the surface of the workbench 1, and the strip groove 19 is located in the middle of the fixing piece 2.
[0025] The propulsion mechanism 11 includes a first rotating block 111. A rotating shaft 112 is slidably connected inside the first rotating block 111. A second rotating block 113 is fixed to one side of the rotating shaft 112. A return spring 114 is fixed to one side of the first rotating block 111. The other side of the return spring 114 is fixed to the second rotating block 113. A fixed block 115 is rotatably connected to one side of the second rotating block 113. A support shaft 117 is slidably connected inside the fixed block 115. A fork rod 116 is fixed above one side of the fixed block 115. Under this action, the stepper motor 9 is started. Under the action of the stepper motor 9, the output shaft 10 is driven to rotate. Under the action of the output shaft 10, the rotating block 111 is driven to rotate. Under the action of the rotating block 111, the rotating shaft 112 is driven to rotate. Under the action of the rotating shaft 112, the rotating block 113 is driven to rotate. Under the action of the rotating block 113, the rotating block 111 is reset. Under the action of the rotating block 113, the fixed block 115 is driven to move. Under the action of the fixed block 115, the fork rod 116 is driven to move. Under the action of the fixed block 115, the support shaft 117 is driven to move. The fixed block 115 moves up and down along the support shaft 117. Under this action, the sliding sleeve 12 is driven to move back and forth along the fixed shaft 8. Under this action, the fork rod 116 drives the wear-resistant metal to move forward under the stamping block 5, eliminating the need for manual filling and saving labor and materials.
[0026] The reciprocating mechanism 14 includes a worm 141. A worm gear 142 is meshed with one side of the worm 141. A spur gear 143 is installed above the worm gear 142. A half gear 144 is fixed above the spur gear 143. A toothed bar 145 is meshed with one side of the half gear 144. A fixing plate 16 is fixed above the toothed bar 145. Under this action, the drive motor 13 is started. Under the action of the drive motor 13, the worm 141 is driven to rotate. Under the action of the worm 141, the worm gear 142 is driven to rotate. Under the action of the worm gear 142, the spur gear 143 is driven to rotate. Under the driving action of the spur gear 143, the half gear 144 is driven to rotate. Under the action of the half gear 144, the toothed bar 145 is driven to reciprocate. Under the action of the toothed bar 145, the fixing plate 16 is driven to reciprocate. Under this action, the wear-resistant metal is fixed to prevent the position of the wear-resistant metal from shifting during the grinding process, resulting in stamping errors and waste of resources.
[0027] Working principle: When it is necessary to stamp the wear-resistant metal, place the wear-resistant metal in the middle part of the fixing member 2, start the stepping motor 9. Under the action of the stepping motor 9, the output shaft 10 is driven to rotate. Under the action of the output shaft 10, the rotating block 111 is driven to rotate. Under the action of the rotating block 111, the rotating shaft 112 is driven to rotate. Under the action of the rotating shaft 112, the rotating block 113 is driven to rotate. Under the action of the rotating block 113, the rotating block 111 is reset. Under the action of the rotating block 113, the fixing block 115 is driven to move. Under the action of the fixing block 115, the fork rod 116 is driven to move. Under the action of the fixing block 115, the support shaft 117 is driven to move. The fixing block 115 moves up and down along the support shaft 117. Under this action, the sliding sleeve 12 is driven to move back and forth along the fixed shaft 8. Under this action, the fork rod 116 drives the wear-resistant metal to move forward along the strip groove 19 to the lower part of the stamping block 5. Start the driving motor 13. Under the action of the driving motor 13, the worm 141 is driven to rotate. Under the action of the worm 141, the worm wheel 142 is driven to rotate. Under the action of the worm wheel 142, the spur gear 143 is driven to rotate. Under the driving action of the spur gear 143, the half gear 144 is driven to rotate. Under the action of the half gear 144, the toothed plate strip 145 is driven to reciprocate. Under the action of the toothed plate strip 145, the fixing plate 16 is driven to reciprocate. Under this action, the wear-resistant metal is fixed.
[0028] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "including a..." does not exclude the existence of additional identical elements in the process, method, article or device including the said element.
[0029] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A wear-resistant metal stamping die, comprising a workbench (1) and a fixing member (2) installed on its surface, characterized in that, It further includes: A support frame (3) fixed above the workbench (1). Below the middle part of the support frame (3), a hydraulic rod (4) is fixed. Below the hydraulic rod (4), a stamping block (5) is installed. A clamping groove (6) is formed inside the workbench (1); Support plates (7) fixed on both sides of the clamping groove (6). On one side of the support plates (7), a fixed shaft (8) is fixed. The surface of the fixed shaft (8) is slidably connected with a sliding sleeve (12). A stepping motor (9) is installed inside the clamping groove (6). On one side of the stepping motor (9), an output shaft (10) is installed. On one side of the output shaft (10), a propulsion mechanism (11) is provided; A driving motor (13) installed inside the workbench (1). On one side of the driving motor (13), a reciprocating mechanism (14) is installed. Square grooves (15) are formed on both sides of the surface of the reciprocating mechanism (14). Inside the square grooves (15), a fixing plate (16) is slidably connected; Sliders (17) fixed on both sides of the fixing plate (16). The surface of the sliders (17) is slidably connected with a sliding groove (18). A strip-shaped groove (19) is formed on the surface of the workbench (1).
2. The wear-resistant metal stamping die according to claim 1, wherein: The propulsion mechanism (11) includes a first rotating block (111). Inside the first rotating block (111), a rotating shaft (112) is slidably connected. On one side of the rotating shaft (112), a second rotating block (113) is fixed. On one side of the first rotating block (111), a return spring (114) is fixed. The other side of the return spring (114) is fixed to the second rotating block (113). On one side of the second rotating block (113), a fixed block (115) is rotatably connected. Inside the fixed block (115), a support shaft (117) is slidably connected. Above one side of the fixed block (115), a fork rod (116) is fixed.
3. A wear-resistant metal stamping die according to claim 1, characterized in that: The reciprocating mechanism (14) includes a worm (141). On one side of the worm (141), a worm gear (142) is engaged. Above the worm gear (142), a spur gear (143) is installed. Above the spur gear (143), a semi-gear (144) is fixed. On one side of the semi-gear (144), a toothed bar (145) is engaged. Above the toothed bar (145), a fixing plate (16) is fixed.
4. A wear-resistant metal stamping die according to claim 1, characterized in that: The sliders (17) are designed in a T shape, and the shape of the inner wall of the sliding groove (18) is the same as that of the sliders (17).
5. A wear-resistant metal stamping die according to claim 1, characterized in that: The fixing member (2) is designed in a cylindrical shape and is rotatably connected to the workbench (1).
6. The wear-resistant metal stamping die according to claim 2, wherein: The strip-shaped groove (19) is located in the middle of the fixing member (2). The fork rod (116) passes through the inside of the strip-shaped groove (19) during operation.