An easily detachable, adjustable, split-type stationary contact production equipment and manufacturing process

By designing a detachable and adjustable split-type stationary contact production equipment, the problems of difficult handling of the existing clamping assembly structure and insufficient position adjustment accuracy have been solved, realizing convenient disassembly and precise clamping of the stationary contact and improving production efficiency.

CN118905676BActive Publication Date: 2026-07-17XINCHANG HONGJIE ELECTRONICS CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
XINCHANG HONGJIE ELECTRONICS CO LTD
Filing Date
2024-07-08
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

The existing clamping assembly is a single piece, which is difficult to transport and the position adjustment accuracy is difficult to control, resulting in deviation of the stationary contact clamping position.

Method used

Design a detachable and adjustable split-type static contact production equipment, including a first outer shell divided into two groups, which can be detached and adjusted in position through a screw connection, spring support, and crossbar lifting structure. The clamping plate is driven by a cylinder to fix and screen the static contacts.

Benefits of technology

It enables convenient disassembly and precise position adjustment of the stationary contact, improves the operating efficiency and clamping accuracy of the production equipment, and simplifies the processing of the stationary contact.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN118905676B_ABST
    Figure CN118905676B_ABST
Patent Text Reader

Abstract

This invention relates to the field of metal processing technology, specifically to an easily detachable, adjustable, split-type static contact production equipment and process, comprising: a first outer shell, with a second outer shell at one end; a fixing plate, with a first support column fixed to the bottom of the fixing plate, a through hole on the surface of the first support column, an adjustment groove on the bottom of the first outer shell, a fixing groove on the bottom of the first outer shell, a second support column fixed to the bottom of the first outer shell, a first slot on the surface of the first outer shell, a second slot on the surface of the second outer shell, a first partition inserted into the first slot, and a second partition inserted into the second slot; and a transverse block disposed in the fixing groove. The advantages are: the first outer shell is divided into two groups, the two groups of first outer shells are detachable, a screw passes through the through hole to fix the fixing plate, the first outer shell can move on the surface of the fixing plate to adjust its position, and the bottom of the first outer shell is supported by a second support column.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of metal processing technology, specifically to an adjustable, split-type static contact production equipment and process that is easy to disassemble. Background Technology

[0002] When processing the stationary contact, the stationary contact is clamped by a clamping assembly, and then the stationary contact is processed. In the prior art, patent CN202322788861.8 provides a preparation device for carbon nanotube-modified aluminum alloys, belonging to the technical field of metal processing equipment. This preparation device includes a melting furnace and an ultrasonic stirring device. The melting furnace is cylindrical, with an internal cavity for holding molten metal materials. The ultrasonic stirring device includes a drive shaft and a stirring rod. The drive shaft is rotatably disposed in the internal cavity and arranged along the axial direction of the melting furnace, while the stirring rod is arranged radially along the drive shaft and connected at one end. An ultrasonic probe is installed inside both the drive shaft and the stirring rod. This preparation device can solve the problem of uneven mixing and distribution of carbon nanotube materials during the preparation of carbon nanotube-modified aluminum alloys in related technologies. However, the existing clamping assembly is a single unit, which makes it difficult to transport as a whole. Furthermore, the precision of fine-tuning the position of the entire clamping assembly is difficult to control, resulting in deviations in the position of the stationary contact. Summary of the Invention

[0003] The purpose of this invention is to provide an adjustable, split-type static contact production equipment and process that is easy to disassemble, so as to solve the problems mentioned in the background art.

[0004] To achieve the above objectives, the present invention provides the following technical solution: an adjustable, split-type stationary contact production device that is easy to disassemble, comprising: A first outer casing, with a second outer casing provided at its end; A fixed plate has a first support column fixed to its bottom. The surface of the first support column has a through hole. The bottom of the first outer shell has an adjustment groove and a fixing groove. A second support column is fixed to the bottom of the first outer shell. The surface of the first outer shell has a first slot, and the surface of the second outer shell has a second slot. A first partition plate is inserted into the first slot, and a second partition plate is inserted into the second slot. The transverse block is located in the fixed groove.

[0005] Preferably, the first partition is capable of rising and falling in the first slot, and a spring is provided inside the first slot, with the spring supporting the end of the first partition; the second partition is capable of rising and falling in the second slot, and a spring is provided inside the second slot, with the spring supporting the end of the second partition.

[0006] Preferably, the inner wall of the second outer shell is provided with a lifting groove, and a crossbar is inserted into the lifting groove. The crossbar can rise and fall in the lifting groove. The crossbar is fixed with multiple sets of arc-shaped rods, which rise and fall with the crossbar. A plug-in rod is fixed on the surface of the second partition, and a plug-in hole is provided on the surface of the second partition. A plug-in rod is fixed on the surface of the first partition, and a plug-in hole is provided on the surface of the first partition. The plug-in rod on the surface of the first partition can be inserted into the plug-in hole on the surface of the second partition, and the plug-in rod on the surface of the second partition can be inserted into the plug-in hole on the surface of the first partition.

[0007] Preferably, the bottom of the second outer shell is provided with a receiving groove, and multiple sets of partition rods are fixed to the bottom of the second outer shell. The partition rods are located at the top of the receiving groove. The surface of the second outer shell is provided with screw holes. A falling rod is fixed to the surface of the second partition. The falling rod rises and falls with the second partition. Multiple sets of spheres are fixed to the surface of the falling rod. After the falling rod descends, it is located between the partition rods. The spheres rise and fall with the falling rod. After the spheres descend, they contact the surface of the partition rods.

[0008] Preferably, the fixing plate is located in the adjustment groove and can move in the adjustment groove. The first support column moves with the fixing plate. A second support column is fixed on the surface of the fixing plate and a second support column is fixed on the bottom of the first housing. A connecting rod is fixed on the surface of the fixing plate and a transverse block is fixed at the end of the connecting rod. A fixing groove is opened at the bottom of the first housing, and the transverse block is inserted into the fixing groove and can move in the fixing groove.

[0009] Preferably, a cylinder is fixed inside the first outer shell, and a clamping plate is provided at the end of the cylinder. The cylinder pushes the clamping plate to move. A transverse groove is opened on the inner wall of the first outer shell, and a force-bearing rod is inserted into the transverse groove. The force-bearing rod can move in the transverse groove. A vertical rod is fixed at the bottom of the force-bearing rod, and a pusher plate is fixed at the bottom of the vertical rod. The pusher plate moves with the force-bearing rod.

[0010] Preferably, a telescopic block is fixed to the end of the transverse block, and the telescopic block moves with the transverse block. A first screw is provided in the fixing groove, and the first screw is screwed into the inside of the first housing. The end of the first screw is screwed into a screw hole on the surface of the second housing.

[0011] Preferably, the surface of the telescopic block has a circular hole, a first screw is inserted into the circular hole, the surface of the first screw has an extrusion groove, an extrusion block is inserted into the extrusion groove, the extrusion block can move in the extrusion groove, a second screw is screwed to the end of the first screw, the end of the second screw abuts against the surface of the extrusion block, and the extrusion block moves with the second screw.

[0012] Preferably, a stationary contact is held between the two sets of clamping plates, and an arc-shaped rod rests on the surface of the force-bearing rod.

[0013] A manufacturing process for an easily detachable, adjustable, split-type stationary contact production equipment includes the following steps: Step 1: Clamping. The first outer shell is divided into two groups, which are detachable. A screw passes through the through hole to fix the fixing plate. The first outer shell can move on the surface of the fixing plate to adjust its position. A second support column is provided at the bottom of the first outer shell for support. A second outer shell is placed between the two groups of first outer shells, clamping the second outer shell together. Tighten the first screw so that it is screwed into the screw hole on the surface of the second outer shell, fixing the two groups of first and second outer shells together. The connecting rod drives the transverse block to move with the fixing plate. The transverse block moves in the fixing groove. Tighten the second screw... The screw and the second screw push the extrusion block, causing the extrusion block to move in the extrusion groove. After the extrusion block moves, it is held in the round hole, causing the telescopic block to extend out from the transverse block. After the telescopic block extends, it is held in the inner wall of the fixed groove, fixing the position of the first outer shell. The first and second partitions are inserted into the first and second slots on the surface of the first and second outer shells respectively. The surfaces of the first and second partitions are provided with insertion rods and insertion holes. The insertion rods are inserted into the insertion holes, fixing the second partition and the first partition together. Pulling down the first and second partitions, the stationary contact is placed between the two sets of clamping plates for clamping. Step Two: Screening. Simultaneously, as the first and second partitions are pulled down, the second partition moves the arc-shaped rod downwards via a horizontal bar. After moving downwards, the arc-shaped rod rests against the surface of the force-bearing rod, causing it to move with the arc-shaped rod. The force-bearing rod then moves the pusher plate via a vertical bar. The pusher plate pushes the debris inside the first shell into the second shell. A partition rod is located at the bottom of the second shell, blocking any falling static contacts for easy removal. Impurities fall into the receiving groove. A falling rod is also located on the surface of the second partition. As the second partition falls, the falling rod is positioned between the partition rods. The spherical surface of the falling rod touches the partition rod, causing it to vibrate and accelerate the falling of debris into the receiving groove.

[0014] Compared with the prior art, the beneficial effects of the present invention are: The first outer shell proposed in this invention is divided into two groups, which are detachable. A screw passes through a through hole to fix a fixing plate. The first outer shell can move on the surface of the fixing plate to adjust its position. A second support column is provided at the bottom of the first outer shell for support. A second outer shell is placed between the two groups of first outer shells, clamping the second outer shell together. Tightening the first screw causes it to screw into a threaded hole on the surface of the second outer shell, thus fixing the two groups of first and second outer shells together. A connecting rod drives a transverse block to move with the fixing plate. The transverse block moves in a fixing groove. Tightening the second screw... The rod and the second screw push the extrusion block, causing the extrusion block to move in the extrusion groove. After the extrusion block moves, it is held in the round hole, causing the telescopic block to extend out from the transverse block. After the telescopic block extends, it is held in the inner wall of the fixed groove, fixing the position of the first outer shell. The first and second partitions are inserted into the first groove on the surface of the first outer shell and the second groove on the surface of the second outer shell. The surfaces of the first and second partitions are provided with insertion rods and insertion holes. The insertion rods are inserted into the insertion holes, fixing the second partition and the first partition together. Pulling down the first and second partitions, the stationary contact is placed between the two sets of clamping plates for clamping. Attached Figure Description

[0015] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0016] Figure 2 This is a schematic diagram of the structure from another perspective of the present invention.

[0017] Figure 3 This is a schematic diagram of the second outer shell structure of the present invention.

[0018] Figure 4 This is a schematic diagram of the second outer shell of the present invention from another perspective.

[0019] Figure 5 for Figure 2 Enlarged schematic diagram of the structure at point A in the middle.

[0020] Figure 6 This is a schematic diagram of the first outer shell structure of the present invention; Figure 7 This is a schematic diagram of the first outer shell of the present invention from another perspective; Figure 8 for Figure 7 Enlarged schematic diagram of the structure at point B; Figure 9 This is a schematic diagram of the first screw structure of the present invention.

[0021] In the diagram: 1. First outer shell; 2. First partition plate; 3. Second partition plate; 4. First slot; 5. Second outer shell; 6. Second slot; 7. Horizontal bar; 8. Arc-shaped bar; 9. Lifting slot; 10. Insertion rod; 11. Insertion hole; 12. Screw hole; 13. Separating rod; 14. Receiving slot; 15. Falling rod; 16. Ball; 17. Fixing plate; 18. First support column; 19. Through hole; 20. Horizontal moving block; 21. Connecting rod; 22. Fixing slot; 23. Second support column; 24. Adjusting slot; 25. Horizontal slot; 26. Pushing plate; 27. Vertical bar; 28. Force-bearing bar; 29. ​​Cylinder; 30. Clamping plate; 31. Telescopic block; 32. First screw; 33. Extrusion block; 34. Extrusion slot; 35. Round hole; 36. Second screw. Detailed Implementation

[0022] To make the objectives, technical solutions, and advantages of the present invention clear and complete, the embodiments of the present invention will be further described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are only some, not all, embodiments of the present invention, and are merely illustrative of the embodiments of the present invention. They are not intended to limit the embodiments of the present invention. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0023] Please see Figures 1 to 9 The present invention provides a technical solution: Example 1: An easily detachable, adjustable, split-type static contact production device, comprising: a first outer shell 1, with a second outer shell 5 disposed at one end of the first outer shell 1; a fixing plate 17, with a first support column 18 fixed to the bottom of the fixing plate 17, a through hole 19 formed on the surface of the first support column 18, an adjustment groove 24 formed on the bottom of the first outer shell 1, a fixing groove 22 formed on the bottom of the first outer shell 1, a second support column 23 fixed to the bottom of the first outer shell 1, a first slot 4 formed on the surface of the first outer shell 1, and a slot 5 formed on the surface of the second outer shell 5. There is a second slot 6, a first partition 2 is inserted into the first slot 4, and a second partition 3 is inserted into the second slot 6; and a transverse block 20 is provided in the fixed slot 22. A telescopic block 31 extends out from the transverse block 20. After the telescopic block 31 extends out, it presses against the inner wall of the fixed slot 22 to fix the position of the first outer shell 1. The first partition 2 and the second partition 3 are inserted into the first slot 4 on the surface of the first outer shell 1 and the second slot 6 on the surface of the second outer shell 5, respectively. The surfaces of the first partition 2 and the second partition 3 are provided with insertion rods 10 and insertion holes 11.

[0024] Example 2: The first partition 2 can move up and down in the first slot 4. A spring is provided inside the first slot 4, and the spring supports the end of the first partition 2. The second partition 3 can move up and down in the second slot 6. A spring is provided inside the second slot 6, and the spring supports the end of the second partition 3. The first partition 2 and the second partition 3 are inserted into the first slot 4 on the surface of the first outer shell 1 and the second slot 6 on the surface of the second outer shell 5. The surfaces of the first partition 2 and the second partition 3 are provided with insertion rods 10 and insertion holes 11. The insertion rods 10 are inserted into the insertion holes 11, so that the second partition 3 and the first partition 2 are fixed together. The inner wall of the second outer shell 5 is provided with a lifting groove 9, and a crossbar 7 is inserted into the lifting groove 9. The crossbar 7 can rise and fall in the lifting groove 9. The crossbar 7 is fixed with multiple sets of arc rods 8, which rise and fall with the crossbar 7. The surface of the second partition 3 is fixed with a plug rod 10, and the surface of the second partition 3 is provided with a plug hole 11. The surface of the first partition 2 is fixed with a plug rod 10, and the surface of the first partition 2 is provided with a plug hole 11. The plug rod 10 on the surface of the first partition 2 can be inserted into the plug hole 11 on the surface of the second partition 3, and the plug rod 10 on the surface of the second partition 3 can be inserted into the plug hole 11 on the surface of the first partition 2. The surfaces of the first partition 2 and the second partition 3 are provided with plug rods 10 and plug holes 11. The plug rod 10 is inserted into the plug hole 11, so that the second partition 3 and the first partition 2 are fixed together. Pull down the first partition 2 and the second partition 3 to place the stationary contact between the two sets of clamping plates 30 for clamping.

[0025] The bottom of the second outer shell 5 is provided with a receiving groove 14. Multiple sets of partition rods 13 are fixed to the bottom of the second outer shell 5. The partition rods 13 are located at the top of the receiving groove 14. The surface of the second outer shell 5 is provided with screw holes 12. The surface of the second partition 3 is fixed with a falling rod 15. The falling rod 15 rises and falls with the second partition 3. Multiple sets of balls 16 are fixed to the surface of the falling rod 15. After the falling rod 15 falls, it is located between the partition rods 13. The balls 16 rise and fall with the falling rod 15. After the balls 16 fall, they contact the surface of the partition rods 13. The bottom of the second outer shell 5 is provided with partition rods 13. The partition rods 13 block the falling static contact head, making it easy to pick up. Impurities fall into the receiving groove 14. The surface of the second partition 3 is provided with a falling rod 15. The falling rod 15 falls with the second partition 3. After the falling rod 15 falls, it is located between the partition rods 13.

[0026] Example 3: The fixing plate 17 is located in the adjustment groove 24 and can move in the adjustment groove 24. The first support column 18 moves with the fixing plate 17. The surface of the fixing plate 17 is fixed with the second support column 23. The bottom of the first outer shell 1 is fixed with the second support column 23. The surface of the fixing plate 17 is fixed with the connecting rod 21. The end of the connecting rod 21 is fixed with the transverse block 20. The bottom of the first outer shell 1 is provided with a fixing groove 22. The transverse block 20 is inserted into the fixing groove 22 and can move in the fixing groove 22.

[0027] A cylinder 29 is fixed inside the first outer shell 1. A clamping plate 30 is provided at the end of the cylinder 29. The cylinder 29 pushes the clamping plate 30 to move. A transverse groove 25 is opened on the inner wall of the first outer shell 1. A force-bearing rod 28 is inserted into the transverse groove 25. The force-bearing rod 28 can move in the transverse groove 25. A vertical rod 27 is fixed at the bottom of the force-bearing rod 28. A pusher plate 26 is fixed at the bottom of the vertical rod 27. The pusher plate 26 moves with the force-bearing rod 28. The second partition 3 drives the arc-shaped rod 8 to move down through the cross rod 7. After the arc-shaped rod 8 moves down, it presses against the surface of the force-bearing rod 28, so that the force-bearing rod 28 moves with the arc-shaped rod 8. The force-bearing rod 28 drives the pusher plate 26 to move through the vertical rod 27. After the pusher plate 26 moves, it pushes the debris located inside the first outer shell 1 into the interior of the second outer shell 5.

[0028] A telescopic block 31 is fixed to the end of the transverse block 20. The telescopic block 31 moves with the transverse block 20. A first screw 32 is provided in the fixing groove 22. The first screw 32 is screwed into the inside of the first outer shell 1. The end of the first screw 32 is screwed into the screw hole 12 on the surface of the second outer shell 5. The two sets of first outer shells 1 clamp the second outer shell 5 together. Tighten the first screw 32 so that the first screw 32 is screwed into the screw hole 12 on the surface of the second outer shell 5, so that the two sets of first outer shells 1 and second outer shell 5 are fixed together.

[0029] Example 4: A circular hole 35 is provided on the surface of the telescopic block 31. A first screw 32 is inserted into the circular hole 35. A pressing groove 34 is provided on the surface of the first screw 32. A pressing block 33 is inserted into the pressing groove 34. The pressing block 33 can move in the pressing groove 34. A second screw 36 is screwed to the end of the first screw 32. The end of the second screw 36 abuts against the surface of the pressing block 33. The pressing block 33 moves with the second screw 36. The second screw 36 pushes the pressing block 33, so that the pressing block 33 moves in the pressing groove 34. After the pressing block 33 moves, it abuts against the circular hole 35, so that the telescopic block 31 extends out from the transverse block 20. A stationary contact is clamped between the two sets of clamping plates 30. The arc-shaped rod 8 abuts against the surface of the force-bearing rod 28.

[0030] The first outer shell 1 is divided into two groups, which are detachable. A screw passes through the through hole 19 to fix the fixing plate 17. The first outer shell 1 can move on the surface of the fixing plate 17 to adjust its position. A second support column 23 is provided at the bottom of the first outer shell 1 for support. A second outer shell 5 is placed between the two groups of first outer shell 1, clamping the second outer shell 5 together. Tightening the first screw 32 causes the first screw 32 to be screwed into the screw hole 12 on the surface of the second outer shell 5, thus fixing the two groups of first outer shell 1 and second outer shell 5 together. The connecting rod 21 drives the transverse block 20 to move along with the fixed plate 17. The transverse block 20 moves in the fixed groove 22. Tightening the second screw 36 pushes the extrusion block 33, causing the extrusion block 33 to move in the extrusion groove 34. After moving, the extrusion block 33 is held in the round hole 35, causing the telescopic block 31 to extend out from the transverse block 20. After extending, the telescopic block 31 is held in the inner wall of the fixed groove 22, fixing the position of the first outer shell 1. The first slot 4 on the surface of the first outer shell 1 and the second slot 6 on the surface of the second outer shell 5 are respectively inserted into the first partition plate 2 and the second partition plate 31. The surfaces of partition 3, first partition 2, and second partition 3 are all provided with insertion rods 10 and insertion holes 11. The insertion rods 10 are inserted into the insertion holes 11, fixing the second partition 3 and the first partition 2 together. Pulling down the first partition 2 and the second partition 3 places the stationary contact between the two sets of clamping plates 30 for clamping. At the same time as pulling down the first partition 2 and the second partition 3, the second partition 3 drives the arc-shaped rod 8 to move down through the crossbar 7. After the arc-shaped rod 8 moves down, it presses against the surface of the force-bearing rod 28, causing the force-bearing rod 28 to move with the arc-shaped rod 8. The force-bearing rod 28 is carried by the vertical rod 27. The pusher plate 26 moves, pushing the debris inside the first housing 1 into the second housing 5. The bottom of the second housing 5 is provided with a partition rod 13, which blocks the falling static contact head, making it easy to pick up. The impurities fall into the receiving groove 14. The surface of the second partition plate 3 is provided with a falling rod 15. The falling rod 15 falls with the second partition plate 3 and is located between the partition rods 13 after falling. The ball 16 on the surface of the falling rod 15 touches the partition rod 13, causing the partition rod 13 to vibrate and accelerate the falling of the debris into the receiving groove 14.

[0031] Although the illustrative specific embodiments of this application have been described above to enable those skilled in the art to understand this application, this application is not limited to the scope of the specific embodiments. For those skilled in the art, all applications utilizing the concept of this application are protected as long as various variations are within the spirit and scope of this application as defined and determined by the appended claims.

Claims

1. An easily detachable, adjustable, split-type static contact production equipment, characterized in that: include: A first outer shell (1) is provided at the end of the first outer shell (1); A fixing plate (17) is fixed to the bottom of the fixing plate (17), a first support column (18) is fixed to the bottom of the fixing plate (17), a through hole (19) is opened on the surface of the first support column (18), an adjustment groove (24) is opened at the bottom of the first outer shell (1), a fixing groove (22) is opened at the bottom of the first outer shell (1), a second support column (23) is fixed to the bottom of the first outer shell (1), a first slot (4) is opened on the surface of the first outer shell (1), a second slot (6) is opened on the surface of the second outer shell (5), a first partition plate (2) is inserted into the first slot (4), and a second partition plate (3) is inserted into the second slot (6); and A transverse block (20) is provided in a fixed groove (22). A lifting groove (9) is provided on the inner wall of the second outer shell (5). A crossbar (7) is inserted into the lifting groove (9). The crossbar (7) can rise and fall in the lifting groove (9). The crossbar (7) is fixed with multiple sets of arc rods (8). The arc rods (8) rise and fall with the crossbar (7). A plug-in rod (10) is fixed on the surface of the second partition (3). A plug-in hole (11) is provided on the surface of the second partition (3). A plug-in rod is fixed on the surface of the first partition (2). (10) The surface of the first partition (2) is provided with a plug hole (11). The plug rod (10) on the surface of the first partition (2) can be inserted into the plug hole (11) on the surface of the second partition (3). The plug rod (10) on the surface of the second partition (3) can be inserted into the plug hole (11) on the surface of the first partition (2). The bottom of the second outer shell (5) is provided with a receiving groove (14). Multiple sets of partition rods (13) are fixed at the bottom of the second outer shell (5). The partition rods (13) are located in the receiving groove (14). At the top, the surface of the second outer shell (5) is provided with screw holes (12), and a drop bar (15) is fixed on the surface of the second partition (3). The drop bar (15) rises and falls with the second partition (3). Multiple sets of spheres (16) are fixed on the surface of the drop bar (15). After the drop bar (15) descends, it is located between the partition bars (13). The spheres (16) rise and fall with the drop bar (15). After the spheres (16) descend, they contact the surface of the partition bars (13). The interior of the first outer shell (1) is fixed. A cylinder (29) is provided, and a clamping plate (30) is provided at the end of the cylinder (29). The cylinder (29) pushes the clamping plate (30) to move. A transverse groove (25) is provided on the inner wall of the first outer shell (1). A force rod (28) is inserted into the transverse groove (25). The force rod (28) can move in the transverse groove (25). A vertical rod (27) is fixed at the bottom of the force rod (28). A pusher plate (26) is fixed at the bottom of the vertical rod (27). The pusher plate (26) moves with the force rod (28).

2. The adjustable, split-type stationary contact production equipment for easy disassembly according to claim 1, characterized in that: The first partition (2) can move up and down in the first slot (4). A spring is provided inside the first slot (4), and the spring supports the end of the first partition (2). The second partition (3) can move up and down in the second slot (6). A spring is provided inside the second slot (6), and the spring supports the end of the second partition (3).

3. The easily detachable adjustable split-type static contact production equipment according to claim 2, characterized in that: The fixing plate (17) is located in the adjustment groove (24). The fixing plate (17) can move in the adjustment groove (24). The first support column (18) moves with the fixing plate (17). The surface of the fixing plate (17) is fixed with the second support column (23). The bottom of the first outer shell (1) is fixed with the second support column (23). The surface of the fixing plate (17) is fixed with the connecting rod (21). The end of the connecting rod (21) is fixed with the transverse block (20). The bottom of the first outer shell (1) is provided with a fixing groove (22). The transverse block (20) is inserted into the fixing groove (22) and can move in the fixing groove (22).

4. The adjustable, split-type stationary contact production equipment for easy disassembly according to claim 3, characterized in that: The end of the transverse block (20) is fixed with a telescopic block (31), which moves with the transverse block (20). A first screw (32) is provided in the fixing groove (22), which is screwed into the inside of the first outer shell (1). The end of the first screw (32) is screwed into the screw hole (12) on the surface of the second outer shell (5).

5. The adjustable, split-type stationary contact production equipment for easy disassembly according to claim 4, characterized in that: The surface of the telescopic block (31) is provided with a circular hole (35), a first screw (32) is inserted into the circular hole (35), the surface of the first screw (32) is provided with a pressing groove (34), a pressing block (33) is inserted into the pressing groove (34), the pressing block (33) can move in the pressing groove (34), a second screw (36) is screwed to the end of the first screw (32), the end of the second screw (36) is held against the surface of the pressing block (33), and the pressing block (33) moves with the second screw (36).

6. The easily detachable adjustable split-type stationary contact production equipment according to claim 5, characterized in that: The stationary contact is held between the two sets of clamping plates (30), and the arc-shaped rod (8) rests on the surface of the force-bearing rod (28).

7. A production process for an easily detachable, adjustable, split-type static contact production equipment as described in claim 6, characterized in that: Includes the following steps: Step 1: Clamping. The first outer shell (1) is divided into two groups. The two groups of first outer shells (1) are detachable. The screw passes through the through hole (19) to fix the fixing plate (17). The first outer shell (1) can move on the surface of the fixing plate (17) to adjust the position of the first outer shell (1). The bottom of the first outer shell (1) is provided with a second support column (23) for support. The second outer shell (5) is placed between the two groups of first outer shells (1). The two groups of first outer shells (1) clamp the second outer shell (5) together. Tighten the first screw (32) so that the first screw (32) is screwed into the screw hole (12) on the surface of the second outer shell (5), so that the two groups of first outer shells (1) and the second outer shell (5) are fixed together. The connecting rod (21) drives the transverse block (20) to move with the fixing plate (17). The transverse block (20) moves in the fixing groove (22). Tighten the second screw (36) so that the second screw... The rod (36) pushes the extrusion block (33), causing the extrusion block (33) to move in the extrusion groove (34). After the extrusion block (33) moves, it is held in the round hole (35), causing the telescopic block (31) to extend out from the transverse block (20). After the telescopic block (31) extends out, it is held in the inner wall of the fixed groove (22), fixing the position of the first outer shell (1). The first slot (4) on the surface of the first outer shell (1) and the second slot (6) on the surface of the second outer shell (5) are respectively inserted into the first partition (2) and the second partition (3). The surfaces of the first partition (2) and the second partition (3) are provided with the insertion rod (10) and the insertion hole (11). The insertion rod (10) is inserted into the insertion hole (11), so that the second partition (3) and the first partition (2) are fixed together. The first partition (2) and the second partition (3) are pulled down, and the stationary contact is placed between the two sets of clamping plates (30) for clamping. Step 2: Screening. While pulling down the first partition (2) and the second partition (3), the second partition (3) moves the arc-shaped rod (8) downwards via the crossbar (7). After the arc-shaped rod (8) moves downwards, it presses against the surface of the force-bearing rod (28), causing the force-bearing rod (28) to move with the arc-shaped rod (8). The force-bearing rod (28) moves the pusher plate (26) via the vertical rod (27). After the pusher plate (26) moves, it pushes the debris inside the first outer shell (1) into the interior of the second outer shell (5). (5) has a partition rod (13) at the bottom. The partition rod (13) blocks the falling static contact head, making it easy to pick up. The impurities fall into the receiving groove (14). The surface of the second partition (3) is provided with a falling rod (15). The falling rod (15) falls with the second partition (3). After falling, the falling rod (15) is located between the partition rods (13). The ball (16) on the surface of the falling rod (15) touches the partition rod (13), causing the partition rod (13) to vibrate and accelerate the falling of the debris into the receiving groove (14).