A machining device for hardware housings
By designing a processing device that includes an electric suction cup and an automatic cleaning mechanism, the problem that existing edge trimming machines cannot automatically remove the door lock shell and clean up waste wire is solved, realizing automated processing of the shell and convenient cleaning of waste wire.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHENZHEN NANXU PRECISION HARDWARE PROD CO LTD
- Filing Date
- 2024-08-07
- Publication Date
- 2026-05-12
AI Technical Summary
Existing edge-cutting machines cannot automatically remove the door lock housing, and cleaning up waste wire is quite troublesome.
A processing device was designed, which includes components such as a working machine, a rotary table, a support mold, a cutter, a limiting component, an electric suction cup, and a shearing blade. The outer shell is automatically removed by the electric suction cup, and waste filaments are automatically cleaned by the extrusion component and the adhesive component.
实现了外壳的自动取下和废丝料的便捷清理,减少了人工操作,提高了加工效率。
Smart Images

Figure CN118875752B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of mechanical equipment technology, and in particular to a processing apparatus for the housing of hardware parts. Background Technology
[0002] Hardware housings include door lock housings. When manufacturing door lock housings, the bottom edge of the door lock housing is usually uneven, so it is necessary to trim the bottom edge of the door lock housing. In the existing technology, trimming the bottom edge of the door lock housing requires the use of a trimming machine.
[0003] Existing edge trimming machines consist of a working machine, a rotary table, a support mold, a cutter, and a limiting component. First, the door lock shell is manually placed on the support mold. Then, the limiting component is used to fix the top of the door lock shell. Next, the cutter moves forward to meet the bottom edge of the door lock shell. The rotary table rotates the support mold, which in turn rotates the door lock shell, allowing the cutter to trim the bottom edge of the door lock shell. During the cutting process, the cutter slowly moves the cutting blade upwards, cutting off several loops of waste wire from the bottom of the door lock shell. After the bottom edge is trimmed, the limiting component is used to release the door lock shell. The door lock shell then needs to be manually removed from the top, and the waste wire needs to be removed again, which is very cumbersome. Therefore, a processing device for hardware shells that can automatically remove the door lock shell and easily clean up the waste wire is needed. Summary of the Invention
[0004] This invention provides a processing device for hardware housings that can automatically remove the door lock housing and easily clean up waste wire, overcoming the shortcomings of existing edge cutting machines that cannot automatically remove the door lock housing and that cleaning up waste wire is relatively troublesome.
[0005] The technical embodiment of the present invention is as follows: a processing device for the housing of hardware parts, comprising a working machine and a rotary table, wherein the rotary table is rotatably connected to the top of the working machine, a support mold is provided on the top of the rotary table, a cylinder is provided on the side of the working machine, the telescopic rod of the cylinder is connected to a movable support, a cutter is provided on the movable support, the cutter consists of a drive motor and a cutting blade, and a limiting component is provided on the working machine. The device is characterized by further comprising a movable frame, which is slidably connected to the working machine, a lifting block is slidably connected to the movable frame, a return spring is connected between the lifting block and the movable frame, and a telescopic component is rotatably connected to the lifting block. The top of the telescopic component and the lifting block... Torsion springs connect the blocks. An electric suction cup is installed on the side of the telescopic component away from the moving frame. A wedge rod is installed on the working machine. The wedge rod and the lifting block are in a pressing fit. An opening button is connected to the moving frame. The opening button and the electric suction cup are electrically connected through a control module. The lifting block and the opening button are in a pressing fit. A closing button is connected to the side of the working machine near the moving frame. The closing button and the moving frame are in a pressing fit. The closing button and the electric suction cup are electrically connected through a control module. The closing button and the working machine are equipped with a drive assembly for moving the moving frame. A sliding component is slidably connected to one side of the working machine. A shearing blade is installed on the side of the sliding component near the rotary table.
[0006] Furthermore, the limiting assembly consists of an electric push rod and a pressure block. The electric push rod is connected to the working machine, and the extension rod of the electric push rod is equipped with a pressure block.
[0007] Furthermore, the drive assembly includes fixed blocks symmetrically arranged along the longitudinal direction of the working machine. The fixed blocks are located on the side of the working machine near the movable frame. A second lead screw is rotatably connected to the fixed block near the movable support. A first lead screw is rotatably connected to the fixed block away from the second lead screw. The first lead screw and the second lead screw are connected. A transmission rod is connected to the side of the movable support near the second lead screw. The transmission rod and the second lead screw are threadedly connected.
[0008] Furthermore, it also includes a cleaning mechanism, which is located on the side of the movable support.
[0009] Furthermore, the cleaning mechanism includes an extrusion component located on the side of the movable support. The extrusion component and the sliding component are in a pressing fit. A return spring connects the sliding component and the working machine. The shearing blade is slidably connected to a slide rod. A connecting spring connects the slide rod and the shearing blade. An adhesive component is provided on the side of the slide rod away from the connecting spring. The anti-cut plate and the adhesive component are in a pressing fit. A storage frame is provided on the side of the working machine near the slide rod.
[0010] Furthermore, it also includes a cut-resistant plate, which is set on one side of the support mold and is pressed together with the shearing blade.
[0011] Furthermore, it also includes a storage mechanism for storing the outer casing. The storage mechanism includes a connecting seat, which is located on the top of the machine. A storage box is connected to the connecting seat. A buffer plate is slidably connected inside the storage box. Several support springs are connected between the buffer plate and the bottom of the storage box.
[0012] Furthermore, it also includes a cushioning pad, which is attached to the top of the cushioning plate.
[0013] Furthermore, it also includes a feeding mechanism for feeding waste filaments, which is mounted on the storage frame.
[0014] Furthermore, it includes symmetrically arranged support bases connected to the top of the storage frame. A friction frame is rotatably connected to the support base, and a connecting gear is connected to the friction frame. A fixed rod is connected to the side of the sliding member near the sliding rod, and a connecting rack is connected to the side of the fixed rod away from the sliding member. The connecting rack and the connecting gear mesh.
[0015] Furthermore, the extrusion assembly includes wedges, several of which are disposed on the side of the shearing blade near the cutting frame. A connecting post is connected to the side of the cutting frame near the wedges, and the connecting post and the wedges are extruded together.
[0016] The beneficial effects of the present invention are as follows: 1. When the movable support moves backward, the present invention will drive the second lead screw to rotate through the transmission rod, thereby causing the movable frame to drive the telescopic component and the electric suction cup to move backward. Under the action of the wedge rod, the electric suction cup can move down to adsorb the shell, and then the shell can be automatically removed by the electric suction cup.
[0017] 2. In this invention, the pressing component moves backward, which pushes the sliding component and the shearing blade to the left. The shearing blade moves to the left to cut the waste filaments, and the adhesive component moves to the left to absorb the waste filaments. Then, when the sliding component drives the shearing blade and the adhesive component to move to the right to reset, the waste filaments can be pulled out for cleaning.
[0018] 3. In this invention, the connecting rack moves left and right, driving the connecting gear to rotate. The connecting gear then drives the friction frame to rotate, pulling off the waste wire material, which is more convenient. Attached Figure Description
[0019] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0020] Figure 2 This is a three-dimensional structural diagram of the working machine, rotary table, and support mold of the present invention.
[0021] Figure 3 This is a three-dimensional structural diagram of the components such as the fixed block, the movable frame, and the sliding frame of the present invention.
[0022] Figure 4 This is a three-dimensional structural diagram of the first lead screw, the second lead screw, and the wedge rod of the present invention.
[0023] Figure 5 This is a three-dimensional structural diagram of the components of the present invention, such as the movable frame, sliding frame, and electronic suction cup.
[0024] Figure 6 This is a three-dimensional structural diagram of the cleaning mechanism of the present invention.
[0025] Figure 7 This is a three-dimensional structural diagram of the sliding member, shearing blade, and telescopic member of the present invention.
[0026] Figure 8 This is a three-dimensional structural diagram of the rotary table, support mold, and cut-resistant plate of the present invention.
[0027] Figure 9 This is a three-dimensional structural diagram of the storage mechanism of the present invention.
[0028] Figure 10 This is a three-dimensional structural diagram of the storage box, connecting seat, and buffer plate of the present invention.
[0029] Figure 11 This is a three-dimensional structural diagram of the feeding mechanism of the present invention.
[0030] Figure 12 This is a three-dimensional structural diagram of the support base, fixing rod, and connecting rack of the present invention.
[0031] Figure 13 This is a schematic diagram of the limiting support, connecting gear, and friction frame structure of the present invention.
[0032] Reference numerals: 1_Working machine, 11_Rotating table, 12_Support mold, 13_Cutter, 14_Moving support, 15_Cylinder, 16_Limit assembly, 17_Fixing block, 18_Moving frame, 19_Telescopic component, 110_Electric suction cup, 111_First lead screw, 112_Second lead screw, 113_Wedge rod, 114_Transmission rod, 115_Reset spring, 116_Torsion spring, 117_Start button, 11 8_Lifting block, 119_Close button, 2_Extrusion part, 21_Sliding part, 22_Shearing blade, 23_Slide rod, 24_Anti-cut plate, 25_Storage box, 26_Return spring, 27_Connecting spring, 28_Adhesive part, 3_Storage box, 31_Connecting seat, 32_Buffer plate, 33_Support spring, 35_Buffer pad, 4_Support seat, 41_Fixing rod, 42_Connecting rack, 43_Connecting gear, 44_Friction frame. Detailed Implementation
[0033] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0034] Example 1: A processing apparatus for the housing of hardware parts, such as Figures 1-6As shown, the device includes a working machine 1, a rotary table 11, a support mold 12, a cutter 13, a movable support 14, a cylinder 15, a limit assembly 16, a moving frame 18, a telescopic component 19, an electric suction cup 110, a wedge rod 113, a return spring 115, a torsion spring 116, an open button 117, a lifting block 118, an close button 119, a drive assembly, a sliding component 21, and a shearing blade 22. The rotary table 11 is rotatably connected to the top center of the working machine 1. The support mold 12 for placing the outer casing is bolted to the top center of the rotary table 11. A cylinder 15 is connected to the rear of the working machine 1 via a fixed base. The telescopic rod of component 5 is connected to a movable support 14 at its front. A cutter 13 is bolted to the front of the movable support 14. The cutter 13 consists of a drive motor and a cutting blade. After the cutter 13 is started, the drive motor can control the rotation of the cutting blade and also control the up-and-down movement of the drive motor. A limit assembly 16 is installed in the middle of the upper part of the working machine 1. The limit assembly 16 consists of an electric push rod and a pressure block. The electric push rod is bolted to the middle of the upper part of the working machine 1. A pressure block is connected to the bottom of the telescopic rod of the electric push rod. When using the limit assembly 16 to limit the top of the outer casing, the pressure block can be moved downwards by controlling the electric push rod to limit the top of the outer casing. The pressure block can be moved upwards and reset to release the outer shell by controlling the electric push rod. A movable frame 18 is slidably connected to the upper left of the working machine 1. A lifting block 118 is slidably connected to the upper part of the movable frame 18. A reset spring 115 is connected between the bottom of the lifting block 118 and the movable frame 18. A telescopic component 19 is rotatably connected to the bottom of the lifting block 118. A torsion spring 116 is connected between the top of the telescopic component 19 and the lifting block 118. An electric suction cup 110 is connected to the lower right of the telescopic component 19. The electric suction cup 110 can be used to adsorb and fix the outer shell. A wedge-shaped rod 113 is welded to the middle of the upper left of the working machine 1. The wedge rod 113 and the lifting block 118 are connected to the lifting block 118. The lifting block 118 is pressed together. An opening button 117 is connected to the right side of the moving frame 18. The opening button 117 and the electric suction cup 110 are electrically connected through the control module. The lifting block 118 and the opening button 117 are pressed together. A closing button 119 is connected to the front left of the working machine 1. The closing button 119 and the moving frame 18 are pressed together. The closing button 119 and the electric suction cup 110 are electrically connected through the control module. The closing button 119 and the upper left of the working machine 1 are provided with a drive component for driving the moving frame 18 to move backward. A sliding component 21 is slidably connected to the right side of the working machine 1. A shearing blade 22 is welded to the left side of the sliding component 21.The drive assembly includes a fixed block 17, a first lead screw 111, a second lead screw 112, and a transmission rod 114. Fixed blocks 17 are welded to both the front and rear sides of the upper left part of the working machine 1. The second lead screw 112 is rotatably connected to the front side of the rear fixed block 17, and the first lead screw 111 is rotatably connected to the rear side of the front fixed block 17. The threads of the second lead screw 112 are denser than those of the first lead screw 111. The rear end of the first lead screw 111 is fixedly connected to the second lead screw 112. The transmission rod 114 is welded to the left side of the movable support 14, and the left side of the transmission rod 114 is threadedly connected to the second lead screw 112.
[0035] like Figures 6-7 As shown, it also includes a cleaning mechanism, which includes a pressing component 2, a storage frame 25, a return spring 26, a connecting spring 27, and an adhesive component 28. The pressing component 2 is welded to the right side of the movable support 14. The pressing component 2 consists of a connecting rod and a wedge block. The connecting rod is connected to the movable support 14, and the wedge block is connected to the front of the connecting rod. The wedge block and the right side of the sliding component 21 are pressed together. The left side of the sliding component 21 is connected to the working machine 1 by a return spring 26. The front of the shearing blade 22 is slidably connected to a sliding rod 23. The right side of the sliding rod 23 is connected to the shearing blade 22 by a connecting spring 27. The left side of the sliding rod 23 is provided with an adhesive component 28, which can be used to adhere waste filaments so as to clean them off. The adhesive component 28 is a magnetic block, which can attract waste filaments. The upper right side of the working machine 1 is provided with a storage frame 25 for collecting waste filaments. The storage frame 25 is located below the adhesive component 28.
[0036] like Figure 8 As shown, it also includes a cut-resistant plate 24, which is located on the right side of the support mold 12. The cut-resistant plate 24 and the left side of the shearing blade 22 are pressed together. When the shearing blade 22 moves to the left and approaches the support mold 12, the cut-resistant plate 24 can prevent the shearing blade 22 from scraping the support mold 12. The cut-resistant plate 24 and the adhesive part 28 are pressed together.
[0037] When using the processing device for hardware housings to trim the bottom edge of the housing, the housing is first placed on the support mold 12. Then, the limiting component 16 is controlled to limit the top of the housing. Subsequently, the telescopic rod of the control cylinder 15 extends, driving the moving support 14 and the cutter 13 to move forward. The front of the cutter 13 contacts the lower rear of the housing, and then the cutter 13 is turned on. The cutter 13 works for 5 seconds and then automatically stops. The cutter 13 controls the cutting blade to rotate while slowly moving upward. The rotary table 11 is controlled by the working machine 1 to rotate for 5 seconds and then automatically stops. The rotary table 11 drives the support mold 12 and the housing to rotate, and the cutter 13 can automatically trim the edge of the housing. The cut waste wire remains in the support mold 12. After the outer edge is cut, the limiting component 16 can be controlled to release the outer shell, and the telescopic rod of the cylinder 15 can be shortened, causing the movable support 14 and the cutter 13 to move backward. After the movable support 14 moves to the initial position, the telescopic rod of the cylinder 15 continues to drive the movable support 14 to move backward. The backward movement of the movable support 14 will drive the transmission rod 114 to move backward. The backward movement of the transmission rod 114 will drive the second lead screw 112 to rotate. The rotation of the second lead screw 112 will drive the first lead screw 111 to rotate. The rotation of the first lead screw 111 will drive the movable frame 18, the lifting block 118, the telescopic component 19, and the electric suction cup 110 to move backward. When the lifting block 118 contacts the wedge rod 113, the wedge rod 113 will push the lifting... As the lifting block 118 moves downward, the return spring 115 is compressed. The lifting block 118 then moves the telescopic component 19 and the electric suction cup 110 downward. After the electric suction cup 110 moves downward and contacts the top of the outer casing, the lifting block 118 contacts the opening button 117. The electric suction cup 110 then opens and suctions the top of the outer casing. Subsequently, the telescopic rod of the control cylinder 15 extends, causing the movable support 14 to move forward to reset. The movable support 14 then moves the transmission rod 114 forward to reset. The transmission rod 114 drives the second lead screw 112 to reverse, which in turn drives the first lead screw 111 to reverse. The first lead screw 111 then moves the movable frame 18 forward, which in turn moves the lifting block 118 forward. At this point, the... Since the outer casing is still placed on the support mold 12, it cannot be pulled forward directly. It needs to be lifted before it can be pulled forward. Therefore, the forward movement of the lifting block 118 will cause the telescopic component 19 to rotate and adapt to the telescopic movement. The torsion spring 116 is twisted. When the lifting block 118 and the wedge rod 113 slowly separate, the return spring 115 causes the lifting block 118 to move upward and reset. The lifting block 118 then causes the telescopic component 19 and the electric suction cup 110 to move upward and reset. After the electric suction cup 110 lifts the outer casing, the torsion spring 116 causes the telescopic component 19 to rotate and reset. When the moving frame 18 moves forward and contacts the closing button 119...The electric suction cup 110 is then deactivated, releasing the outer casing, which automatically removes the casing without manual intervention.
[0038] When the movable support 14 moves backward, it drives the extruder 2 to move backward. The backward movement of the extruder 2 pushes the sliding member 21 to the left through the wedge block, stretching the return spring 26. The leftward movement of the sliding member 21 drives the shearing blade 22 to move to the left. The leftward movement of the shearing blade 22 drives the adhesive member 28 and the slide bar 23 to move to the left. The adhesive member 28 will first contact the anti-cut plate 24 and stop. At this time, the adhesive member 28 can adsorb the right side of the waste wire. The shearing blade 22 continues to move to the left. At this time, the connecting spring 27 is stretched. After the shearing blade 22 continues to move to the left and contacts the anti-cut plate 24, the shearing blade 22 can remove the waste wire. When the wire is cut, the moving support 14 moves forward and resets, which in turn moves the pressing member 2 forward and resets. The pressing member 2 moves forward and releases the sliding member 21. The return spring 26 moves the sliding member 21 to the right and resets. The sliding member 21 moves to the right and moves the cutting blade 22 and the adhesive member 28 to the right and resets. The connecting spring 27 moves the sliding rod 23 and the adhesive member 28 to reset. The adhesive member 28 pulls the waste wire to the right and then moves the waste wire to the top of the storage frame 25. People can then use tools to push the waste wire down onto the storage frame 25 for collection, which makes it easy to clean up the waste wire.
[0039] Example 2: Based on Example 1, such as Figures 9-10 As shown, it also includes a storage mechanism for storing the outer shell. The storage mechanism includes a storage box 3, a connecting seat 31, a buffer plate 32, and a support spring 33. The connecting seat 31 is connected to the upper front part of the working machine 1. The storage box 3 for storing the outer shell is welded to the left side of the connecting seat 31. The buffer plate 32 is slidably connected inside the storage box 3. The support spring 33 is connected between the bottom left and right sides of the buffer plate 32 and the bottom of the storage box 3.
[0040] like Figure 10 As shown, it also includes a cushioning pad 35, which is attached to the top of the cushioning plate 32.
[0041] After the outer shell is moved forward to the top of the storage box 3, the electric suction cup 110 releases the outer shell, and the outer shell falls into the storage box 3 for collection. The outer shell will fall onto the buffer pad 35, and the support spring 33 will play a buffering role.
[0042] like Figures 11-13As shown, it also includes a feeding mechanism for feeding waste filaments. The feeding mechanism includes a support base 4, a fixed rod 41, a connecting rack 42, a connecting gear 43, and a friction frame 44. Two support bases 4 are connected to the top rear side of the storage frame 25. Each support base 4 is rotatably connected to a friction frame 44 for pulling down the waste filaments. A connecting gear 43 is welded to the rear of each friction frame 44. A fixed rod 41 is welded to the left rear of the sliding member 21. A connecting rack 42 is welded to the left side of the fixed rod 41. The connecting rack 42 and the connecting gear 43 mesh.
[0043] When the sliding member 21 moves left and right, it will drive the fixed rod 41 to move left and right. The left and right movement of the fixed rod 41 will drive the connecting rack 42 to move left and right. The left and right movement of the connecting rack 42 will drive the connecting gear 43 to rotate. The rotation of the connecting gear 43 will drive the friction frame 44 to rotate. After the adhesive member 28 brings out the waste filament, the friction frame 44 can pull the waste filament on the adhesive member 28 downward, so that people do not need to use tools to pull the waste filament down.
[0044] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit the scope of protection of the present invention. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the essence and scope of the technical solutions of the present invention.
Claims
1. A processing device for the housing of hardware parts, comprising a working machine (1) and a rotary table (11), wherein the rotary table (11) is rotatably connected to the top of the working machine (1), a supporting mold (12) is provided on the top of the rotary table (11), a cylinder (15) is provided on the side of the working machine (1), a movable support (14) is connected to the telescopic rod of the cylinder (15), a cutter (13) is provided on the movable support (14), the cutter (13) is composed of a drive motor and a cutting blade, and a limiting component (16) is provided on the working machine (1), characterized in that: It also includes a movable frame (18), which is slidably connected to the working machine (1). A lifting block (118) is slidably connected to the movable frame (18). A return spring (115) is connected between the lifting block (118) and the movable frame (18). A telescopic component (19) is rotatably connected to the lifting block (118). A torsion spring (116) is connected between the top of the telescopic component (19) and the lifting block (118). An electric suction cup (110) is provided on the side of the telescopic component (19) away from the movable frame (18). A wedge rod (113) is provided on the working machine (1). The wedge rod (113) and the lifting block (118) are pressed together. An opening button is connected to the movable frame (18). (117), the start button (117) and the electric suction cup (110) are electrically connected through the control module. The lifting block (118) and the start button (117) are pressed together. The working machine (1) is connected to the side of the moving frame (18) with a stop button (119). The stop button (119) and the moving frame (18) are pressed together. The stop button (119) and the electric suction cup (110) are electrically connected through the control module. The stop button (119) and the working machine (1) are provided with a drive component for driving the moving frame (18) to move. The working machine (1) is slidably connected to a slider (21). The slider (21) is provided with a shearing blade (22) on the side of the rotating table (11).
2. A processing apparatus for hardware housings according to claim 1, characterized in that: The limiting component (16) consists of an electric push rod and a pressure block. The electric push rod is connected to the working machine (1), and the extension rod of the electric push rod is equipped with a pressure block.
3. A processing apparatus for hardware housings according to claim 2, characterized in that: The drive assembly includes fixed blocks (17) symmetrically arranged along the longitudinal direction of the working machine (1). The fixed blocks (17) are located on the side of the working machine (1) near the moving frame (18). The fixed blocks (17) near the moving support (14) are rotatably connected to a second lead screw (112). The fixed blocks (17) away from the second lead screw (112) are rotatably connected to a first lead screw (111). The first lead screw (111) is connected to the second lead screw (112). The moving support (14) is connected to a transmission rod (114) near the second lead screw (112). The transmission rod (114) and the second lead screw (112) are threadedly connected.
4. A processing apparatus for hardware housings according to claim 3, characterized in that: It also includes a cleaning mechanism, which is located on the side of the movable support (14).
5. A processing apparatus for hardware housings according to claim 4, characterized in that: The cleaning mechanism includes an extrusion component (2), which is located on the side of the movable support (14). The extrusion component (2) and the sliding component (21) are in a pressing fit. A return spring (26) is connected between the sliding component (21) and the working machine (1). The shearing blade (22) is slidably connected to a slide rod (23). A connecting spring (27) is connected between the slide rod (23) and the shearing blade (22). An adhesive component (28) is provided on the side of the slide rod (23) away from the connecting spring (27). The anti-cut plate (24) and the adhesive component (28) are in a pressing fit. A storage frame (25) is provided on the side of the working machine (1) near the slide rod (23).
6. A processing apparatus for hardware housings according to claim 5, characterized in that: It also includes a cut-resistant plate (24), which is set on one side of the support mold (12), and the cut-resistant plate (24) and the shearing blade (22) are pressed together.
7. A processing apparatus for hardware housings according to claim 6, characterized in that: It also includes a storage mechanism for storing the outer shell. The storage mechanism includes a connecting seat (31), which is located on the top of the working machine (1). A storage box (3) is connected to the connecting seat (31). A buffer plate (32) is slidably connected inside the storage box (3). Several support springs (33) are connected between the buffer plate (32) and the bottom of the storage box (3).
8. A processing apparatus for hardware housings according to claim 7, characterized in that: It also includes a cushioning pad (35), which is attached to the top of the cushioning plate (32).
9. A processing apparatus for hardware housings according to claim 8, characterized in that: It also includes a feeding mechanism for feeding waste filaments, which is set on the storage frame (25).
10. A processing apparatus for hardware housings according to claim 9, characterized in that: It includes a symmetrically arranged support base (4), which is connected to the top of the storage frame (25). A friction frame (44) is rotatably connected to the support base (4), and a connecting gear (43) is connected to the friction frame (44). A fixed rod (41) is connected to the side of the sliding member (21) near the sliding rod (23), and a connecting rack (42) is connected to the side of the fixed rod (41) away from the sliding member (21). The connecting rack (42) and the connecting gear (43) mesh.