Solid silica gel product processing device

By introducing tungsten alloy nozzles with compensation springs and telescopic rods into the solid-state silicone product processing device, combined with the use of air pumps and vacuum pumps, the material rebound and debris adhesion problems caused by traditional plasma cutting devices are solved, and high-precision cutting and waste recycling are achieved, supporting zero waste production.

CN120502830APending Publication Date: 2025-08-19BIDIAN BIOMEDICAL TECH (NANTONG) CO LTD
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Patent Information

Application Number
CN202510822685.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-19
Publication Date
2025-08-19

AI Technical Summary

Technical Problem

When cutting solid silicone products, traditional plasma cutting devices can easily cause material to rebound and deformation, the cutting surface will undulate, and the silicone debris produced by cutting are easily attached to the surface of the equipment or workpiece, affecting the cleanliness and cutting efficiency of the product.

Method used

A solid silicone product processing device is adopted. By setting up a tungsten alloy nozzle of a compensation spring and a telescopic rod, a linear motor can achieve dynamic matching of plasma arc energy and material deformation, and an air film isolation is formed through an air pump. The adsorption and cutting of solid silicone is performed using a vacuum pump and an adsorption tank, and debris recovery is performed in combination with a rotating motor and a high-voltage electrostatic grid.

Benefits of technology

It effectively avoids rebound deformation of solid silicone products and wavy undulations on cutting surfaces, improves cutting accuracy and cleanliness, and realizes high purity recycling of silicone waste, supporting zero-waste closed-loop production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a solid silica gel product processing device, and relates to the field of solid silica gel product processing, the solid silica gel product processing device comprises a device body, the top of the device body is provided with a plasma cutting device, the bottom of a compensation spring is provided with a tungsten alloy nozzle, the top of a workbench is provided with a pneumatic clamping jaw, and the top of the workbench is provided with an adsorption groove; a recycling assembly is arranged at the bottom of the workbench, a vacuum pump is installed on the side edge of the device body, a pre-pressing plate is movably connected to the left side of the top of the device body, and a pump body is installed at the other end of the heat conduction pipe. According to the solid silica gel product machining device, by arranging the telescopic rod and the compensation spring, the floating effect can be achieved when a tungsten alloy nozzle conducts plasma cutting, dynamic matching of plasma arc energy and material deformation can be achieved when plasma cutting is conducted on a solid silica gel product, and the machining precision of the solid silica gel product is improved. And rebound deformation of the solid silica gel product caused by high temperature during cutting can be avoided.
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Description

Technical Field

[0001] The present invention relates to the field of processing solid silicone products, and in particular to a solid silicone product processing device. Background Art

[0002] Solid silica gel, also known as business card silica gel, is industrially produced from water glass, which is hydrolyzed in an acidic medium to form a gel. This gel is then aged, washed, and dried to form a translucent or white solid, depending on its water content. Commercially available silica gels come in irregular granular, spherical, and microspherical forms. The latter, with its superior wear resistance, is often used as a catalyst carrier in fluidized bed operations.

[0003] When traditional plasma cutting devices are used to cut solid silicone products, the high temperature will cause the material to rebound and deform, and the cut surface will easily produce wavy fluctuations. At the same time, the silicone debris produced by cutting is easy to adhere to the surface of the equipment or workpiece, affecting the cleanliness of the product, and the overall cutting efficiency and accuracy will be affected.

[0004] Therefore, it is necessary to propose a solid silicone product processing device to solve the above problems. Summary of the Invention

[0005] The main purpose of the present invention is to provide a solid silicone product processing device that can effectively solve the problems in the background technology.

[0006] To achieve the above object, the technical solution adopted by the present invention is: A solid silicone product processing device, comprising a device body, a plasma cutting device disposed on the top of the device body, a base plate mounted on the bottom of the plasma cutting device, compensation springs symmetrically mounted around the bottom of the base plate, a tungsten alloy nozzle mounted on the bottom of the compensation spring, a ceramic insulating sleeve mounted in the inner cavity of the tungsten alloy nozzle, an annular tube mounted on the top of the tungsten alloy nozzle, and an air pump mounted on the side of the annular tube; The top of the device body is rotatably connected to a workbench, the top of the workbench is equipped with a pneumatic clamp, the top of the workbench is provided with an adsorption groove, the bottom of the workbench is provided with a recovery component, and the side of the device body is equipped with a vacuum pump; A pre-compression plate is movably connected to the left side of the top of the device body, and the two ends of the pre-compression plate are symmetrically rotatably connected to drive rods. A heat pipe is installed at the bottom of the drive rod, a busbar is installed on the side of the plasma cutting device, and a pump body is installed at the other end of the heat pipe.

[0007] Preferably, the two ends of the outer wall of the device body are symmetrically and movably connected with a first driving arm, the outer wall of the device body is installed with a first linear motor, the first driving arm is connected to the first linear motor, the top of the two opposite sides of the first driving arms are movably connected with a second driving arm, the first driving arm is installed with a second linear motor, the second driving arm is connected to the second linear motor, a third linear motor is installed in the inner cavity of the second driving arm, and the bottom of the plasma cutting device is connected to the third linear motor.

[0008] Preferably, a connecting cable is installed on the outer wall of the plasma cutting device, the other end of the connecting cable is connected to the tungsten alloy nozzle, a limiting column is installed on the top of the tungsten alloy nozzle, and the limiting column is movably connected to the bottom of the inner cavity of the substrate. Telescopic rods are symmetrically installed around the top of the tungsten alloy nozzle, the compensation spring is wrapped around the outer wall of the telescopic rod, and the compensation spring and the top of the telescopic rod are both installed at the bottom of the substrate.

[0009] Preferably, a gap is provided between the tungsten alloy nozzle and the ceramic insulating sleeve, the gap is communicated with the inner cavity of the annular tube, the annular tube injects compressed air into the gap through an air pump, and the bottom of the gap is communicated with the outside of the bottom of the tungsten alloy nozzle.

[0010] Preferably, a gear ring is installed at the bottom of the workbench, and the gear ring is a cavity structure with the top and bottom communicating with the outside world. The side of the gear ring is engaged with gears, and a rotating motor is installed at the device body, and the rotating motor is connected to the gear through a first rotating shaft.

[0011] Preferably, a corrugated material guide pipe is installed in the center of the top of the recovery component, and the top of the corrugated material guide pipe is rotatably connected to the center of the bottom of the workbench. The recovery component is communicated with the inner cavity of the adsorption tank through the corrugated material guide pipe. A high-voltage electrostatic net is installed in the inner cavity of the recovery component. A first bellows is installed on the side of the vacuum pump, and the other side of the first bellows is installed on the side of the recovery component.

[0012] Preferably, a vibration motor is installed on the outer wall of the recovery component, movable blocks are symmetrically installed around the outer wall of the recovery component, a spring is installed on the bottom of the movable block, a limiting rod is installed in the inner cavity of the device body, the movable block is sleeved on the outer wall of the limiting rod, the spring is wrapped around the outer wall of the limiting rod, the bottom of the spring is installed in the inner cavity of the device body, and a quick-release plate is installed on the outer wall of the recovery component.

[0013] Preferably, a counterweight groove is opened on the top of the pre-load plate, and the counterweight groove is used for installing a counterweight block. A servo motor is installed on the outer wall of the device body, and the servo motor is installed with a second rotating shaft through a coupling. The other side of the drive rod is installed on the outer wall of the second rotating shaft.

[0014] Preferably, the heat pipe is a retractable pipe, one end of the heat pipe is movably connected in the inner cavity of the device body, and the other end of the heat pipe is movably connected to the side of the device body. The outer wall of the tungsten alloy nozzle is installed with a ring heat pipe, and the outer wall of the ring heat pipe is installed with a heat pipe. The heat pipe 18 is a hose, and the other end of the heat pipe is connected to the busbar.

[0015] Preferably, second bellows are symmetrically installed at both ends of the busbar, the other end of the second bellows is connected to the pump body, an electric heating plate is installed at the bottom of the pre-compression plate, the inner cavity of the pre-compression plate, the heat-conducting pipe, the second bellows and the busbar are all filled with heat-conducting oil, there are two pump bodies, the pump bodies are installed on the outer wall of the second driving arm, the pump body on one side is a liquid extraction pump, and the pump body on the other side is an infusion pump.

[0016] Compared with the prior art, the present invention provides a solid silicone product processing device with the following beneficial effects: 1. This solid silicone product processing device uses a first linear motor, a second linear motor, and a third linear motor to drive the plasma cutting device to move along the X, Y, and Z axes. This plasma cutting process can accommodate solid silicone products of various sizes and shapes.

[0017] 2. The solid silicone product processing device, through the provision of a telescopic rod and a compensation spring, enables the tungsten alloy nozzle to have a floating effect during plasma cutting. The first linear motor, the second linear motor, and the third linear motor can drive the tungsten alloy nozzle to move freely. When performing plasma cutting of solid silicone products, dynamic matching of plasma arc energy and material deformation can be achieved, which can avoid rebound deformation of the solid silicone products due to high temperature during cutting, thereby avoiding wavy fluctuations on the cut surface of the solid silicone products.

[0018] 3. The solid silicone product processing device can inject compressed air into the gap through the annular tube by starting the set air pump, thereby forming an air film isolation, which can further reduce the heat conduction during plasma cutting and avoid carbonization or shrinkage of solid silicone products due to local overheating. Based on this, the problem of dimensional deviation of the cutting surface caused by the rebound of solid silicone products can be solved.

[0019] 4. The solid silicone product processing device can adsorb the solid silicone product that needs to be cut through the provided vacuum pump and the adsorption tank. At the same time, the pneumatic clamp can synchronously lock the solid silicone product with the adsorption tank, thereby eliminating the deformation of the solid silicone product. By starting the provided rotary motor, the gear ring can be driven to rotate through the gear, and the solid silicone product can be driven to rotate at this time. Therefore, the cutting range and accuracy of the tungsten alloy nozzle can be further improved, so that it can cut various special-shaped solid silicone products. In addition, through the provided adsorption tank, the silicone debris generated during the cutting of the solid silicone product can be adsorbed into the inner cavity of the recovery component, thereby ensuring the cleanliness of the solid silicone product.

[0020] 5. The solid silicone product processing device can adsorb the ultra-fine silicone particles produced by cutting through the high-voltage electrostatic net. At the same time, the vibration motor is started to drive the recovery component to vibrate. Based on this, the adsorbed waste and air can be separated, thereby improving the recovery purity of the silicone waste. The recycled silicone waste can be reshaped into raw materials through granulation, realizing zero-waste closed-loop production.

[0021] 6. The solid silicone product processing device can start the set servo motor and drive the pre-pressing plate to rotate through the driving rod. Before cutting, the solid silicone product can be hot-pressed by the pre-pressing plate. Based on this, the cutting resistance of the solid silicone product can be reduced and the cutting efficiency of the tungsten alloy nozzle can be improved.

[0022] 7. The solid silicone product processing device can absorb the heat generated by the tungsten alloy nozzle during operation and heat the heat transfer oil through the heat pipe, busbar, heat pipe and second bellows. When the pre-pressing plate is subsequently hot-pressed, the subsequent heating energy consumption of the pre-pressing plate can be effectively reduced, and the heat energy conversion rate generated during cutting can be improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic structural diagram of the present invention as a whole; Figure 2 It is a structural schematic diagram of the plasma cutting device of the present invention; Figure 3 This invention Figure 2 Enlarged view of point A in the middle; Figure 4 Schematic diagram of the structure of the tungsten alloy nozzle of the present invention; Figure 5 It is a structural schematic diagram of the workbench of the present invention; Figure 6 Is a schematic structural diagram of the present invention recovery component; Figure 7 It is a structural schematic diagram of the pre-pressing plate of the present invention.

[0024] In the figure: 1. Device body; 2. First linear motor; 3. First drive arm; 4. Second linear motor; 5. Second drive arm; 6. Plasma cutting device; 7. Third linear motor; 8. Base plate; 9. Pump body; 10. Limit column; 11. Telescopic rod; 12. Compensation spring; 13. Annular tube; 14. Air pump; 15. Tungsten alloy nozzle; 16. Ceramic insulating sleeve; 17. Gap; 18. Heat pipe; 19. Busbar; 20. Connecting cable; 21. Workbench ; 22. Pneumatic gripper; 23. Adsorption groove; 24. Gear ring; 25. Gear; 26. Rotating motor; 27. Recovery component; 28. Vacuum pump; 29. First bellows; 30. Vibration motor; 31. Movable block; 32. Spring; 33. Corrugated material guide pipe; 34. High-voltage electrostatic net; 35. Quick release plate; 36. Pre-load plate; 37. Counterweight groove; 38. Drive rod; 39. Servo motor; 40. Heat pipe; 41. Limit rod; 42. Second bellows. DETAILED DESCRIPTION

[0025] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods. Example 1

[0026] like Figure 1-Figure 4As shown, a solid silicone product processing device includes a device body 1, a plasma cutting device 6 is provided on the top of the device body 1, a base plate 8 is installed on the bottom of the plasma cutting device 6, compensation springs 12 are symmetrically installed around the bottom of the base plate 8, a tungsten alloy nozzle 15 is installed at the bottom of the compensation spring 12, a ceramic insulating sleeve 16 is installed in the inner cavity of the tungsten alloy nozzle 15, an annular tube 13 is installed on the top of the tungsten alloy nozzle 15, an air pump 14 is installed on the side of the annular tube 13, first driving arms 3 are symmetrically connected to the two ends of the outer wall of the device body 1, a first linear motor 2 is installed on the outer wall of the device body 1, the first driving arm 3 is connected to the first linear motor 2, a second driving arm 5 is movably connected to the top of the opposite side of the two first driving arms 3, a second linear motor 4 is installed at the first driving arm 3, and the second driving arm 5 is connected to the second linear motor 4 A third linear motor 7 is installed in the inner cavity of the second driving arm 5, the bottom of the plasma cutting device 6 is connected to the third linear motor 7, and a connecting cable 20 is installed on the outer wall of the plasma cutting device 6. The other end of the connecting cable 20 is connected to the tungsten alloy nozzle 15, and a limiting column 10 is installed on the top of the tungsten alloy nozzle 15. The limiting column 10 is movably connected to the bottom of the inner cavity of the substrate 8. Telescopic rods 11 are symmetrically installed around the top of the tungsten alloy nozzle 15, and a compensation spring 12 is wound around the outer wall of the telescopic rod 11. The top of the compensation spring 12 and the telescopic rod 11 are both installed at the bottom of the substrate 8. A gap 17 is provided between the tungsten alloy nozzle 15 and the ceramic insulating sleeve 16. The gap 17 is communicated with the inner cavity of the annular tube 13. The annular tube 13 injects compressed air into the gap 17 through the air pump 14, and the bottom of the gap 17 is communicated with the outside of the bottom of the tungsten alloy nozzle 15. The first, second, and third linear motors are configured to drive the plasma cutting device to move along the X, Y, and Z axes. When plasma cutting solid silicone products, it can be adapted to cutting solid silicone products of various sizes and shapes. The telescopic rod and compensation spring provide a floating effect for the tungsten alloy nozzle during plasma cutting. The first, second, and third linear motors drive the tungsten alloy nozzle to move freely. This allows for dynamic matching of plasma arc energy and material deformation during plasma cutting of solid silicone products, preventing rebound deformation of the solid silicone product due to high temperatures during cutting. This also prevents wavy cut surfaces on the solid silicone product. By starting the set air pump, compressed air can be injected into the gap through the annular tube, thus forming an air film isolation, which can further reduce the heat conduction during plasma cutting and prevent the solid silicone product from carbonizing or shrinking due to local overheating. Based on this, the dimensional deviation problem caused by the rebound of the solid silicone product on the cutting surface can be solved; By setting up a vacuum pump and cooperating with an adsorption tank, the solid silicone product that needs to be cut can be adsorbed. At the same time, the pneumatic clamp can synchronously lock the solid silicone product with the adsorption tank, based on which the deformation of the solid silicone product can be eliminated. By starting the set rotary motor, the gear ring can be driven to rotate through the gear, and the solid silicone product can be driven to rotate at this time. Therefore, the cutting range and accuracy of the tungsten alloy nozzle can be further improved, so that it can cut various special-shaped solid silicone products. In addition, through the adsorption tank, the silicone debris generated during the cutting of the solid silicone product can be adsorbed into the inner cavity of the recovery component, which can ensure the cleanliness of the solid silicone product. Example 2

[0027] like Figure 1 、 Figure 5 、 Figure 6 As shown, a solid silicone product processing device, the top of the device body 1 is rotatably connected to a workbench 21, the top of the workbench 21 is installed with a pneumatic clamp 22, the top of the workbench 21 is provided with an adsorption groove 23, the bottom of the workbench 21 is provided with a recovery component 27, the side of the device body 1 is installed with a vacuum pump 28, the bottom of the workbench 21 is installed with a gear ring 24, the gear ring 24 is a cavity structure with the top and bottom communicating with the outside world, the side of the gear ring 24 is meshed with a gear 25, a rotating motor 26 is installed at the device body 1, the rotating motor 26 is connected to the gear 25 through a first rotating shaft, a corrugated material guide pipe 33 is installed in the center of the top of the recovery component 27, the top of the corrugated material guide pipe 33 is rotatably connected to the center of the bottom of the workbench 21, the recovery component 2 7 is connected to the inner cavity of the adsorption tank 23 through the corrugated material guide pipe 33. A high-voltage electrostatic net 34 is installed in the inner cavity of the recovery component 27. A first bellows 29 is installed on the side of the vacuum pump 28. The other side of the first bellows 29 is installed on the side of the recovery component 27. A vibration motor 30 is installed on the outer wall of the recovery component 27. Movable blocks 31 are symmetrically installed around the outer wall of the recovery component 27. A spring 32 is installed at the bottom of the movable block 31. A limit rod 41 is installed in the inner cavity of the device body 1. The movable block 31 is sleeved on the outer wall of the limit rod 41. The spring 32 is wound around the outer wall of the limit rod 41. The bottom of the spring 32 is installed in the inner cavity of the device body 1. A quick-release plate 35 is installed on the outer wall of the recovery component 27. A filter is installed at the bottom of the inner cavity of the recovery component 27. The high-voltage electrostatic net is set up to adsorb the ultra-fine silicone particles produced by cutting. At the same time, the vibration motor is started to drive the recycling component to vibrate. Based on this, the adsorbed waste and air can be separated, thereby improving the recycling purity of the silicone waste. The recycled silicone waste can be reshaped into raw materials through granulation, realizing zero-waste closed-loop production. Example 3

[0028] like Figure 1 、 Figure 2 、 Figure 4 、 Figure 7 As shown, a solid silicone product processing device, a pre-load plate 36 is movably connected to the left side of the top of the device body 1, and the two ends of the pre-load plate 36 are symmetrically connected to the drive rod 38, and a heat pipe 40 is installed at the bottom of the drive rod 38. A busbar 19 is installed on the side of the plasma cutting device 6, and a pump body 9 is installed at the other end of the heat pipe 40. A counterweight groove 37 is opened on the top of the pre-load plate 36, and the counterweight groove 37 is used for installing a counterweight block. A servo motor 39 is installed on the outer wall of the device body 1, and the servo motor 39 is installed with a second rotating shaft through a coupling. The other side of the drive rod 38 is installed on the outer wall of the second rotating shaft. The heat pipe 40 is a telescopic tube, and one end of the heat pipe 40 is movably connected to It is connected to the inner cavity of the device body 1, and the other end of the heat pipe 40 is movably connected to the side of the device body 1. The outer wall of the tungsten alloy nozzle 15 is installed with an annular heat pipe, and the outer wall of the annular heat pipe is installed with a heat pipe 18. The other end of the heat pipe 18 is connected to the busbar 19. The two ends of the busbar 19 are symmetrically installed with a second bellows 42, and the other end of the second bellows 42 is connected to the pump body 9. An electric heating plate is installed at the bottom of the pre-pressing plate 36. The inner cavity of the pre-pressing plate 36, the heat pipe 40, the second bellows 42 and the busbar 19 are all filled with heat-conducting oil. There are two pump bodies 9, which are installed on the outer wall of the second driving arm 5. The pump body 9 on one side is a liquid extraction pump, and the pump body 9 on the other side is an infusion pump; By starting the set servo motor, the pre-pressing plate can be driven to rotate through the driving rod. Before cutting, the solid silicone product can be hot-pressed by the pre-pressing plate. Based on this, the cutting resistance of the solid silicone product can be reduced and the cutting efficiency of the tungsten alloy nozzle can be improved. The set heat pipe, busbar, heat pipe and second bellows can absorb the heat generated when the tungsten alloy nozzle is working, and the heat transfer oil can be heated. When the pre-pressing plate is subsequently hot-pressed, the subsequent heating energy consumption of the pre-pressing plate can be effectively reduced, and the heat energy conversion rate generated during cutting can be improved. Example 4

[0029] The tungsten alloy nozzle 15 has a built-in pressure sensor for real-time monitoring of the pressure of contact with the solid silicone product during cutting, which facilitates the subsequent position adjustment of the tungsten alloy nozzle 15 by the first linear motor 2, the second linear motor 4 and the third linear motor 7. The plasma cutting device 6 is driven by a high-frequency power supply to achieve adaptive adjustment of the arc energy with the cutting speed. The tungsten alloy nozzle 15 includes two cutting modes, including: high-frequency pulse mode: cutting silicone with a thickness of ≤5mm, arc frequency 10kHz; continuous DC mode: cutting silicone with a thickness of 5-30mm, used to improve arc stability. The mode switching mechanism adopts a rotary electrode switcher. The high-frequency pulse mode achieves non-destructive cutting of solid silicone products through a short-time high-energy arc, and the continuous DC mode enhances arc stability to penetrate thick materials. The two are quickly switched by rotating electrodes, so that the device body 1 can process solid silicone products of a full thickness range from flexible sealing rings to industrial gaskets.

[0030] It should be noted that the present invention is a solid silicone product processing device. When in use, the solid silicone product is placed on the workbench 21, the pneumatic clamp 22 is started to preliminarily position and align the solid silicone product, and the vacuum pump 28 is started to evacuate the workbench 21 through the first bellows 29, the recovery component 27 and the bellows guide pipe 33, so that the adsorption tank 23 can adsorb the solid silicone product. The pre-pressing plate 36 is preheated. After the preheating is completed, the servo motor 39 is started, and the pre-pressing plate 36 is driven to rotate through the driving rod 38, so that the pre-pressing plate 36 can be moved to the top of the solid silicone product for hot pressing. After the hot pressing is completed, the pre-pressing plate 36 is reset. Start the first linear motor 2, the second linear motor 4, and the third linear motor 7 to move the tungsten alloy nozzle 15 to a suitable position. Simultaneously, start the rotary motor 26 to drive the gear 25 to engage with the gear ring 24, so that the workbench 21 can drive the solid silicone product to rotate. At this time, the tungsten alloy nozzle 15 can perform plasma cutting on the solid silicone product. While cutting, the air pump 14 is started to inject compressed air into the gap 17 through the annular tube 13. When the tungsten alloy nozzle 15 is cutting, the rebound of the solid silicone product is matched by the telescopic rod 11, the compensation spring 12 and the limit column 10; The waste generated during cutting is synchronously sucked into the inner cavity of the recovery component 27 through the adsorption groove 23. The vibration motor 30 is started to drive the recovery component 27 to vibrate. While the recovery component 27 is vibrating, it drives the movable block 31 to move on the outer wall of the limit rod 41, and at the same time squeezes the spring 32. The high-voltage electrostatic net 34 is activated to absorb and recover the waste after cutting. After the quick-release plate 35 is removed, the waste can be taken out for use. When the tungsten alloy nozzle 15 is working, it will heat the heat transfer oil through the heat pipe 18, start the pump body 9 on one side, and input the heat transfer oil into the inner cavity of the pre-pressing plate 36, so that the pre-pressing plate 36 can directly perform hot pressing on the fixed silicone product. After the subsequent hot pressing is completed, start the pump body 9 set on the other side to re-pump the heat transfer oil into the inner cavity of the manifold 19 to facilitate subsequent heating.

[0031] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.

Claims

1. A solid silicone product processing device, comprising a device body (1), characterized in that: A plasma cutting device (6) is provided on the top of the device body (1), a base plate (8) is installed on the bottom of the plasma cutting device (6), compensation springs (12) are symmetrically installed around the bottom of the base plate (8), a tungsten alloy nozzle (15) is installed on the bottom of the compensation spring (12), a ceramic insulating sleeve (16) is installed in the inner cavity of the tungsten alloy nozzle (15), an annular tube (13) is installed on the top of the tungsten alloy nozzle (15), and an air pump (14) is installed on the side of the annular tube (13); The top of the device body (1) is rotatably connected to a workbench (21), a pneumatic clamp (22) is installed on the top of the workbench (21), an adsorption groove (23) is provided on the top of the workbench (21), a recovery component (27) is provided at the bottom of the workbench (21), and a vacuum pump (28) is installed on the side of the device body (1); The left side of the top of the device body (1) is movably connected to a pre-pressing plate (36), and the two ends of the pre-pressing plate (36) are symmetrically rotatably connected to a driving rod (38), and a heat pipe (40) is installed at the bottom of the driving rod (38). A busbar (19) is installed on the side of the plasma cutting device (6), and a pump body (9) is installed at the other end of the heat pipe (40).

2. A solid silicone product processing device according to claim 1, characterized in that: The two ends of the outer wall of the device body (1) are symmetrically and movably connected with first driving arms (3), the outer wall of the device body (1) is installed with a first linear motor (2), the first driving arm (3) is connected to the first linear motor (2), the tops of the two opposite sides of the first driving arms (3) are movably connected with second driving arms (5), the first driving arms (3) are installed with a second linear motor (4), the second driving arms (5) are connected to the second linear motor (4), a third linear motor (7) is installed in the inner cavity of the second driving arm (5), and the bottom of the plasma cutting device (6) is connected to the third linear motor (7).

3. The solid silicone product processing device according to claim 1, characterized in that: A connecting cable (20) is installed on the outer wall of the plasma cutting device (6), and the other end of the connecting cable (20) is connected to the tungsten alloy nozzle (15). A limiting column (10) is installed on the top of the tungsten alloy nozzle (15), and the limiting column (10) is movably connected to the bottom of the inner cavity of the substrate (8). Telescopic rods (11) are symmetrically installed around the top of the tungsten alloy nozzle (15), and the compensation spring (12) is wound around the outer wall of the telescopic rod (11). The top of the compensation spring (12) and the telescopic rod (11) are both installed at the bottom of the substrate (8).

4. The solid silicone product processing device according to claim 1, characterized in that: A gap (17) is provided between the tungsten alloy nozzle (15) and the ceramic insulating sleeve (16), the gap (17) being communicated with the inner cavity of the annular tube (13), the annular tube (13) injects compressed air into the gap (17) through an air pump (14), and the bottom of the gap (17) is communicated with the outside of the bottom of the tungsten alloy nozzle (15).

5. The solid silicone product processing device according to claim 1, characterized in that: A gear ring (24) is installed at the bottom of the workbench (21). The gear ring (24) is a cavity structure with the top and bottom communicating with the outside world. A gear (25) is meshed on the side of the gear ring (24). A rotating motor (26) is installed at the device body (1). The rotating motor (26) is connected to the gear (25) via a first rotating shaft.

6. The solid silicone product processing device according to claim 1, characterized in that: A corrugated material guide pipe (33) is installed in the center of the top of the recovery component (27), and the top of the corrugated material guide pipe (33) is rotatably connected to the center of the bottom of the workbench (21). The recovery component (27) is connected to the inner cavity of the adsorption tank (23) through the corrugated material guide pipe (33). A high-voltage electrostatic net (34) is installed in the inner cavity of the recovery component (27). A first corrugated pipe (29) is installed on the side of the vacuum pump (28), and the other side of the first corrugated pipe (29) is installed on the side of the recovery component (27).

7. The solid silicone product processing device according to claim 1, characterized in that: A vibration motor (30) is installed on the outer wall of the recovery component (27), and movable blocks (31) are symmetrically installed around the outer wall of the recovery component (27). A spring (32) is installed at the bottom of the movable block (31). A limit rod (41) is installed in the inner cavity of the device body (1), and the movable block (31) is sleeved on the outer wall of the limit rod (41). The spring (32) is wound around the outer wall of the limit rod (41), and the bottom of the spring (32) is installed in the inner cavity of the device body (1). A quick-release plate (35) is installed on the outer wall of the recovery component (27).

8. The solid silicone product processing device according to claim 1, characterized in that: A counterweight groove (37) is provided on the top of the pre-pressing plate (36), and the counterweight groove (37) is used for installing a counterweight block. A servo motor (39) is installed on the outer wall of the device body (1), and the servo motor (39) is installed with a second rotating shaft through a coupling. The other side of the driving rod (38) is installed on the outer wall of the second rotating shaft.

9. The solid silicone product processing device according to claim 1, characterized in that: The heat pipe (40) is a retractable pipe, one end of the heat pipe (40) is movably connected to the inner cavity of the device body (1), and the other end of the heat pipe (40) is movably connected to the side of the device body (1). The outer wall of the tungsten alloy nozzle (15) is equipped with an annular heat pipe, and the outer wall of the annular heat pipe is equipped with a heat pipe (18), the heat pipe (18) is a hose, and the other end of the heat pipe (18) is connected to the busbar (19).

10. The solid silicone product processing device according to claim 9, characterized in that: The second bellows (42) are symmetrically installed at both ends of the confluence seat (19), and the other end of the second bellows (42) is connected to the pump body (9). The bottom of the pre-pressing plate (36) is installed with an electric heating plate. The inner cavities of the pre-pressing plate (36), the heat conducting pipe (40), the second bellows (42) and the confluence seat (19) are all filled with heat conducting oil. There are two pump bodies (9), and the pump bodies (9) are installed on the outer wall of the second driving arm (5). The pump body (9) on one side is a liquid extraction pump, and the pump body (9) on the other side is an infusion pump.