A cutting device for long strips of microporous foam ceramic new material

By working in tandem with the cutting, heat dissipation, and drying components, the problem of coolant residue is solved, ensuring cutting accuracy and surface dryness, reducing dust pollution, and achieving efficient cutting of microporous foam ceramic strips.

CN122425797APending Publication Date: 2026-07-21JIANGSU HIGH TECHNO THERMAL EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
JIANGSU HIGH TECHNO THERMAL EQUIP CO LTD
Filing Date
2026-05-18
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing microporous foam ceramic strip cutting devices suffer from residual coolant during the cutting process, resulting in the material surface not drying properly, which affects cutting accuracy and surface smoothness. At the same time, dust spreads and pollutes the working environment.

Method used

The device employs a cutting component, a heat dissipation component, and a drying component that work together. A servo motor drives the metal wire to cut and spray coolant. A water collection box collects and recycles the coolant, a wiping block wipes away any residual liquid, and a heating hood dries the metal wire. A pressing component flexibly presses the material, and a dust collection component handles the dust.

Benefits of technology

It achieves low-temperature drying of metal wires during the cutting process, improving cutting accuracy and surface smoothness, while reducing dust diffusion and maintaining a clean working environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to a kind of microcellular foam ceramic new material long strip cutting device, including processing table, the processing table one end is equipped with support frame, the support frame one side is equipped with cutting mechanism, the present application is provided with cutting assembly, heat dissipation assembly and drying assembly, cutting is carried out by servo motor in cutting assembly with high speed reciprocating motion of metal wire, in combination with the spray head in heat dissipation assembly, cooling liquid is sprayed to heat dissipation to metal wire, effectively reduce the deformation of metal wire due to high temperature, in combination with the first electric push rod in drying assembly, wipe block is driven to move down and stick to the surface of foam ceramic new material body, the cooling liquid remaining on the surface of metal wire is wiped, cooperate with the second electric push rod drive heating cover and dry metal wire, so that metal wire keeps low temperature, dry state in cutting process, improve cutting precision and surface smoothness.
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Description

Technical Field

[0001] This invention relates to the field of foam ceramic processing technology, and in particular to a long strip cutting device for a new microporous foam ceramic material. Background Technology

[0002] Microporous foam ceramic materials, with their high porosity, high temperature resistance, and good chemical stability, are widely used in various fields such as filtration, heat insulation, and catalyst carriers. In actual production, large blocks of microporous foam ceramic preforms need to be cut into strips of specified sizes to meet the application requirements of different scenarios.

[0003] Some existing long strip cutting devices for microporous foam ceramic materials have certain shortcomings in use. For example, when cutting foam ceramic materials, it is necessary to spray coolant at both ends of the cutting metal wire to cool it down. If the cutting metal wire is not dried during operation, coolant residue will remain on the surface of the foam ceramic material and at the cutting end during the cutting process, and the foam ceramic body cannot be kept dry and clean. Summary of the Invention

[0004] To address the problems mentioned in the background art, the present invention provides a long strip cutting device for a new microporous foam ceramic material.

[0005] The present invention provides a long strip cutting device for a new microporous foam ceramic material, which adopts the following technical solution:

[0006] A long strip cutting device for a new microporous foam ceramic material includes a processing table, a support frame mounted at one end of the processing table, and a cutting mechanism mounted on one side of the support frame. The cutting mechanism includes a first fixed frame and a second fixed frame mounted on one side of the support frame. A cutting assembly is provided in the cutting mechanism. The cutting assembly includes a transmission wheel mounted inside the first and second fixed frames. A metal wire is sleeved on the transmission wheel. A servo motor is fixedly mounted on the back of the first fixed frame. The output shaft of the servo motor passes through the interior of the first fixed frame and is connected to one of the transmission wheels. The other transmission wheel is fixedly mounted on one end of a bearing mounted on a bearing seat on the inner wall of the second fixed frame. Fixed plates are respectively mounted on the bottom of the first and second fixed frames. A protrusion is provided at one end of the fixed plate at both edges. A transmission shaft is rotatably mounted in a shaft hole opened on the protrusion. An auxiliary wheel is mounted on one end of the transmission shaft.

[0007] Preferably, a heat dissipation assembly is also installed on one side of the first fixed frame. The heat dissipation assembly includes a connector installed on one side of the first fixed frame, a nozzle adapted to be installed on the connector, a water inlet hose installed at the connection port on the outer wall of the connector, the other end of the water inlet hose being connected to the top of the water tank installed at the bottom of the support frame, the spray port of the nozzle being aligned above the metal wire, a water receiving box installed at the bottom of the nozzle, a connecting plate installed on one side of the water receiving box, one end of the connecting plate being connected to one end of the fixed plate installed at the bottom of the first fixed frame, a slot being opened on the water receiving box, the metal wire passing through the slot being opened on the water receiving box, a water outlet hose being connected to the bottom of the water receiving box, and the other end of the water outlet hose being connected to the water tank.

[0008] Preferably, a connecting frame is further connected between the first fixed frame and the second fixed frame. The metal wire passes through the connecting frame. A drying assembly for drying the metal wire is installed on the connecting frame. The drying assembly includes an L-shaped support plate installed at the edge of a first opening at the top of the connecting frame. A first electric push rod is installed on the top of the L-shaped support plate. A mounting block is fixedly connected to the telescopic end of the first electric push rod. A wiping block is fitted into a T-shaped groove at the bottom of the mounting block. A U-shaped groove is opened at the bottom of the wiping block, and the U-shaped groove fits against the metal wire. A symmetrical heating cover is also installed inside the connecting frame at a second opening at the top. A symmetrical guide rod is installed on the side wall of the heating cover. The guide rod extends out of the connecting frame. A symmetrical second electric push rod is also installed on both sides of the connecting frame. The telescopic end of the second electric push rod enters the connecting frame and is connected to the side wall of the heating cover.

[0009] Preferably, symmetrical clamping structures are also installed on both sides of the connecting frame. The clamping structures are equipped with dust collection components. The clamping structures include fixed frames installed at the middle positions on both sides of the connecting frame. Fixed rods are installed in symmetrical through holes opened on the bottom plate of the fixed frames. One end of the fixed rod is fixedly connected to a pressure plate. A spring is also installed at the connection between the fixed rod and the pressure plate. The other end of the spring is connected to the bottom surface of the bottom plate of the fixed frame. A pulley system is installed at the bottom of the pressure plate.

[0010] Preferably, the dust collection assembly includes symmetrical connecting rods installed on one side of the pressure plate. One end of each connecting rod is fixedly connected to a first dust collection hood and a second dust collection hood. One end of each first dust collection hood and the second dust collection hood is connected to a dust collection hose. The other end of each dust collection hose is connected to a dust collection box installed at the bottom of the support frame.

[0011] Preferably, the support frame is equipped with an adjustment mechanism that drives the cutting mechanism to move up and down. The adjustment mechanism includes a first drive motor installed on the top of the left column of the support frame. The output end of the first drive motor passes through a through groove opened inside the left column of the support frame and is connected to one end of a first lead screw installed inside the through groove. The other end of the first lead screw is connected to a bearing seat installed on the bottom surface of the through groove. A first movable seat is adapted to be installed on the first lead screw. The first movable seat slides in the through groove, and a first connecting block installed on the side wall slides along a sliding groove opened on the side wall of the left column of the support frame. The other end of the first connecting block is connected to the back of the first fixed frame. The right column of the support frame has the same through groove. A sliding rod is installed inside the through groove. A second movable seat is slidably installed on the sliding rod. The second movable seat slides in the through groove, and a second connecting block installed on the side wall slides along a sliding groove opened on the side wall of the right column of the support frame. The other end of the second connecting block is connected to the back of the second fixed frame.

[0012] Preferably, the driving mechanism on the processing table includes a mounting frame fixedly installed on the processing table. A second lead screw is installed in a groove on the mounting frame. One end of the second lead screw is adapted to be installed with a bearing seat on the inner wall of the groove. The other end of the second lead screw passes through the groove and is connected to the output end of a second drive motor fixedly installed at one end of the mounting frame. A movable seat is adapted to be installed on the second lead screw. A movable stage is installed on the top of the movable seat. The foam ceramic new material body is placed on the top of the movable stage.

[0013] In summary, the present invention has the following beneficial technical effects:

[0014] 1. This invention comprises a cutting component, a heat dissipation component, and a drying component. These components work together. The cutting component uses a servo motor to drive a metal wire in high-speed reciprocating motion for cutting. Combined with the nozzle in the heat dissipation component, coolant is sprayed out to dissipate heat from the metal wire. Simultaneously, the water collection box in the heat dissipation component collects the coolant and guides it to a recycling bin for reuse. Then, the drying component uses a first electric push rod to drive a wiping block to move downwards and adhere to the surface of the foam ceramic material to wipe away any residual coolant on the metal wire. The second electric push rod drives a heating cover to dry the metal wire, keeping it at a low temperature and dry during the cutting process. This improves cutting accuracy and surface smoothness while keeping the foam ceramic material dry and clean.

[0015] 2. This invention is equipped with a pressing component and a dust collection component. The pressing plate drives the pulley group to fit against the surface of the foam ceramic new material body under the action of the spring force, so as to achieve flexible pressing and reduce the problem of deviation during the cutting process. Combined with the first dust collection hood and the second dust collection hood in the dust collection component, the dust generated during the cutting is guided into the dust collection box through the dust collection hose for centralized treatment, reducing the dust diffusion and pollution of the working environment. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the structure of a long strip cutting device for a new microporous foam ceramic material according to an embodiment of the present invention;

[0017] Figure 2 This is a schematic diagram of the side structure of the support frame in an embodiment of the present invention;

[0018] Figure 3 This is a schematic diagram of the cutting component structure in an embodiment of the present invention;

[0019] Figure 4 This is a schematic diagram of the heat dissipation component structure in an embodiment of the present invention;

[0020] Figure 5 This is an embodiment of the present invention. Figure 3 Enlarged view of the structure at point A in the middle;

[0021] Figure 6 This is a schematic diagram of the clamping structure in an embodiment of the present invention;

[0022] Figure 7 This is a sectional view of the side structure of the support frame in an embodiment of the present invention;

[0023] Figure 8 This is a schematic diagram of the top structure of the processing table in an embodiment of the present invention.

[0024] Explanation of reference numerals in the attached drawings: 1. Processing table; 2. Support frame; 3. First fixed frame; 4. Second fixed frame; 5. Transmission wheel; 6. Metal wire; 7. Servo motor; 8. Fixing plate; 9. Auxiliary wheel; 10. Connecting frame; 11. Connector; 12. Nozzle; 13. Water inlet hose; 14. Connecting plate; 15. Water receiving box; 16. Groove; 17. Water outlet hose; 18. L-shaped support plate; 19. First electric push rod; 20. Mounting block; 21. Wiping block; 22. 23. Second electric push rod; 24. Heating cover; 25. Fixing frame; 26. Fixing rod; 27. Pressure plate; 28. Spring; 29. ​​Pulley block; 30. Connecting rod; 31. First dust suction cover; 32. Second dust suction cover; 33. First drive motor; 34. First lead screw; 35. First movable seat; 36. Slide rod; 37. Second movable seat; 38. Mounting frame; 39. Second lead screw; 40. Moving table; 41. Foam ceramic new material body. Detailed Implementation

[0025] The following is in conjunction with the appendix Figure 1 —8. The present invention will be described in further detail.

[0026] This invention discloses a long strip cutting device for a new microporous foam ceramic material, comprising a processing table 1, a support frame 2 mounted at one end of the processing table 1, and a cutting mechanism mounted on one side of the support frame 2. The cutting mechanism includes a first fixed frame 3 and a second fixed frame 4 mounted on one side of the support frame 2. The cutting mechanism includes a cutting component, which includes a transmission wheel 5 mounted inside the first fixed frame 3 and the second fixed frame 4. A metal wire 6 is sleeved on the transmission wheel 5. A servo motor 7 is fixedly mounted on the back of the first fixed frame 3. The output shaft of the servo motor 7 passes through the first fixed frame 3 and is connected to one of the transmission wheels 5. The other transmission wheel 5 is fixedly mounted on the second fixed frame 4. One end of the bearing is installed on the bearing seat on the inner wall of the fixed frame 4. The bottom of the first fixed frame 3 and the second fixed frame 4 are respectively installed with fixed plates 8. One end of the fixed plate 8 is provided with protrusions at both sides. A drive shaft is rotatably installed in the shaft hole opened on the protrusion. An auxiliary wheel 9 is installed at one end of the drive shaft. More specifically, the drive servo motor 7 drives the drive wheel 5 to rotate, so that the metal wire 6 reciprocates at high speed, thereby cutting the foam ceramic new material body 41. At the same time, the auxiliary wheel 9 abuts against the outer wall of the metal wire 6 to form a dynamic tension structure, ensuring that the metal wire 6 is in a tensioned state during the cutting process, preventing cutting deviation, thereby improving the cutting accuracy and surface smoothness.

[0027] refer to Figure 4 A heat dissipation assembly is also installed on one side of the first fixed frame 3. The heat dissipation assembly includes a connector 11 installed on one side of the first fixed frame 3, a nozzle 12 adapted to be installed on the connector 11, and a water inlet hose 13 installed at the connection port on the outer wall of the connector 11. The other end of the water inlet hose 13 is connected to the top of the water tank installed at the bottom of the support frame 2. The spray port of the nozzle 12 is aligned above the metal wire 6. A water receiving box 15 is installed at the bottom of the nozzle 12. A connecting plate 14 is installed on one side of the water receiving box 15. One end of the connecting plate 14 is connected to one end of the fixing plate 8 installed at the bottom of the first fixed frame 3. The water receiving box 15 has a slot 16, through which the metal wire 6 passes. The bottom of the water receiving box 15 is connected to a water outlet hose 17, and the other end of the water outlet hose 17 is connected to a water tank. More specifically, the coolant is delivered to the nozzle 12 through the water tank and the water inlet hose 13. The nozzle 12 continuously sprays coolant onto the metal wire 6 to reduce the heat generated after cutting and reduce the thermal deformation of the metal wire 6. At the same time, the coolant after heat dissipation is collected through the water receiving box 15 and guided back to the water tank through the water outlet hose 17, thereby realizing the recycling of coolant.

[0028] refer to Figure 3 and Figure 5A connecting frame 10 is also connected between the first fixed frame 3 and the second fixed frame 4. The metal wire 6 passes through the connecting frame 10. A drying assembly for drying the metal wire 6 is installed on the connecting frame 10. The drying assembly includes an L-shaped support plate 18 installed at the edge of the first opening at the top of the connecting frame 10. A first electric push rod 19 is installed on the top of the L-shaped support plate 18. A mounting block 20 is fixedly connected to the telescopic end of the first electric push rod 19. A wiping block 21 is fitted into the T-shaped groove at the bottom of the mounting block 20. A U-shaped groove is opened at the bottom of the wiping block 21, and the U-shaped groove fits against the metal wire 6. Symmetrical heating covers are also installed inside the connecting frame 10 at the second opening at the top. 23. Symmetrical guide rods are installed on the side wall of the heating cover 23. The guide rods extend out of the connecting frame 10. Symmetrical second electric push rods 22 are also installed on both sides of the connecting frame 10. The telescopic end of the second electric push rod 22 extends into the connecting frame 10 and is connected to the side wall of the heating cover 23. More specifically, the first electric push rod 19 drives the mounting block 20 to move down, so that the U-shaped groove of the wiping block 21 tightly covers the metal wire 6 and wipes the coolant residue on the surface of the metal wire 6. Then, the second electric push rod 22 simultaneously pushes the heating cover 23 to gather towards the metal wire 6 and wrap the metal wire 6. After the heating cover 23 is powered on, it generates constant temperature hot air to quickly and efficiently dry the surface of the metal wire 6.

[0029] refer to Figure 6 The connecting frame 10 is equipped with symmetrical clamping structures on both sides, each containing a dust collection component. The clamping structures include fixed frames 24 installed at the midpoint on both sides of the connecting frame 10. Fixed rods 25 are installed in symmetrical through holes on the base plate of the fixed frames 24. One end of each fixed rod 25 is fixedly connected to a pressure plate 26. A spring 27 is installed at the connection between the fixed rod 25 and the pressure plate 26. The other end of the spring 27 is connected to the bottom surface of the base plate of the fixed frame 24. A pulley system 28 is installed at the bottom of the pressure plate 26. The dust collection component includes symmetrical connecting rods 29 installed on one side of the pressure plate 26. One end of each connecting rod 29 is fixedly connected to a first dust collection hood. The first dust hood 30 and the second dust hood 31 are connected at one end to a suction hose, and at the other end to a dust collection box installed at the bottom of the support frame 2. More specifically, when cutting the foam ceramic new material body 41, the pressure plate 26 drives the pulley group 28 to fit against the surface of the foam ceramic new material body 41 under the elastic force of the spring 27, so as to achieve flexible pressing, reduce the damage to the material, and reduce the problem of displacement during the cutting process. At the same time, the first dust hood 30 and the second dust hood 31 work to guide the dust generated during cutting into the dust collection box through the suction hose for centralized treatment, reducing the dust diffusion and pollution of the working environment.

[0030] refer to Figure 2 and Figure 7The support frame 2 is equipped with an adjustment mechanism that drives the cutting mechanism to move up and down. The adjustment mechanism includes a first drive motor 32 installed on the top of the left column of the support frame 2. The output end of the first drive motor 32 passes through a through groove opened inside the left column of the support frame 2 and is connected to one end of a first lead screw 33 installed inside the through groove. The other end of the first lead screw 33 is connected to a bearing seat installed on the bottom surface of the through groove. A first movable seat 34 is adapted to be installed on the first lead screw 33. The first movable seat 34 slides in the through groove, and a first connecting block installed on the side wall slides along a sliding groove opened on the side wall of the left column of the support frame 2. The other end of the first connecting block is connected to the back of the first fixed frame 3. The right column of the support frame 2 has... There is a through groove with a slide rod 35 installed inside. A second movable seat 36 is slidably installed on the slide rod 35. The second movable seat 36 slides along the through groove, and the second connecting block installed on the side wall slides along the groove opened on the right column side wall of the support frame 2. The other end of the second connecting block is connected to the back of the second fixed frame 4. More specifically, the first drive motor 32 drives the first lead screw 33 to rotate, so that the first movable seat 34 rises and falls vertically along the through groove. The first connecting block drives the first fixed frame 3 to rise and fall. The slide rod 35 provides guide support for the second movable seat 36, so that the second fixed frame 4 rises and falls synchronously, thereby driving the cutting mechanism to rise and fall to cut the foam ceramic new material body 41 into long strips.

[0031] refer to Figure 8 The driving mechanism on the processing table 1 includes a mounting frame 37 fixedly installed on the processing table 1. A second lead screw 38 is installed in a groove on the mounting frame 37. One end of the second lead screw 38 is fitted with a bearing seat on the inner wall of the groove, and the other end of the second lead screw 38 extends out of the groove and is connected to the output end of a second drive motor 39 fixedly installed on one end of the mounting frame 37. A movable seat is fitted on the second lead screw 38, and a movable table 40 is installed on the top of the movable seat. A foam ceramic new material body 41 is placed on the top of the movable table 40. More specifically, the second lead screw 38 is driven to rotate by the second drive motor 39, which drives the movable seat to move smoothly laterally along the groove, thereby pushing the movable table 40 and the foam ceramic new material body 41 on it to move synchronously, so that the foam ceramic new material body 41 moves to the cutting position.

[0032] The implementation principle of a long strip cutting device for microporous foam ceramic new materials according to an embodiment of the present invention is as follows: When cutting the foam ceramic new material body 41 into a long strip, the second drive motor 39 first drives the second lead screw 38 to rotate, causing the movable seat to move smoothly laterally along the groove, thereby pushing the movable table 40 and the foam ceramic new material body 41 on it to move synchronously, so that the foam ceramic new material body 41 moves to the cutting position. Then, the first drive motor 32 drives the first lead screw 33 to rotate, causing the first movable seat 34 to descend vertically along the through groove, and the first fixed frame 3 to descend through the first connecting block. The slide rod 35 provides guide support for the second movable seat 36, so that the second fixed frame 4 descends synchronously, and the metal wire 6 moves to the surface of the foam ceramic new material body 41. At the same time, the pressure plate 26 drives the pulley group 28 to fit against the surface of the foam ceramic new material body 41 under the elastic force of the spring 27, so as to achieve flexible pressing and reduce the problem of deviation during the cutting process. Then, the drive servo motor 7 drives the transmission wheel 5 to rotate, so that the metal wire 6 reciprocates at high speed, so as to realize the cutting of the foam ceramic new material body 41. The cutting of the ceramic new material body 41, combined with the auxiliary wheel 9 abutting against the outer wall of the metal wire 6, forms a dynamic tension structure to ensure that the metal wire 6 is in a taut state during the cutting process, preventing cutting deviation. During cutting, coolant is continuously sprayed onto the metal wire 6 through the nozzle 12 to reduce the heat generated after cutting and reduce the thermal deformation of the metal wire 6. The cooled coolant is collected through the water receiving box 15 and guided back to the water tank through the water outlet hose 17, thereby realizing the recycling of coolant. At the same time, the first electric push rod 19 drives the safety device... The mounting block 20 moves down, so that the U-shaped groove of the wiping block 21 tightly covers the metal wire 6, wiping away the residual coolant on the surface of the metal wire 6. Then, the second electric push rod 22 simultaneously pushes the heating cover 23 to gather towards the metal wire 6 and wrap it. After the heating cover 23 is powered on, it generates constant temperature hot air, which quickly and efficiently dries the surface of the metal wire 6. During the cutting process, the first dust suction cover 30 and the second dust suction cover 31 work to guide the dust generated during cutting into the dust collection box through the dust suction hose for centralized treatment, reducing dust diffusion and pollution of the working environment.

[0033] The above are all preferred embodiments of the present invention and are not intended to limit the scope of protection of the present invention. Therefore, all equivalent changes made in accordance with the structure, shape and principle of the present invention should be covered within the scope of protection of the present invention.

Claims

1. A long strip cutting device for a new microporous foam ceramic material, comprising a processing table (1), wherein a support frame (2) is installed at one end of the processing table (1), characterized in that: A cutting mechanism is installed on one side of the support frame (2). The cutting mechanism includes a first fixed frame (3) and a second fixed frame (4) installed on one side of the support frame (2). A cutting component is provided in the cutting mechanism. The cutting component includes a transmission wheel (5) installed inside the first fixed frame (3) and the second fixed frame (4). A metal wire (6) is sleeved on the transmission wheel (5). A servo motor (7) is fixedly installed on the back of the first fixed frame (3). The output shaft of the servo motor (7) passes through the inside of the first fixed frame (3) and is connected to one of the transmission wheels (5). The other transmission wheel (5) is fixedly installed on one end of a bearing seat installed on the inner wall of the second fixed frame (4). A fixing plate (8) is installed at the bottom of the first fixed frame (3) and the second fixed frame (4). A protrusion is provided at one end of the fixing plate (8) at the two side edges. A transmission shaft is rotatably installed in the shaft hole opened on the protrusion. An auxiliary wheel (9) is installed at one end of the transmission shaft.

2. The long strip cutting device for microporous foam ceramic new material according to claim 1, characterized in that: A heat dissipation assembly is also installed on one side of the first fixed frame (3). The heat dissipation assembly includes a connector (11) installed on one side of the first fixed frame (3). A nozzle (12) is adapted to be installed on the connector (11). A water inlet hose (13) is installed at the connection port on the outer wall of the connector (11). The other end of the water inlet hose (13) is connected to the top of the water tank installed at the bottom of the support frame (2). The spray port of the nozzle (12) is aligned above the metal wire (6). A water receiving box (15) is installed at the bottom of the water receiving box (15). A connecting plate (14) is installed on one side of the water receiving box (15). One end of the connecting plate (14) is connected to one end of the fixing plate (8) installed at the bottom of the first fixing frame (3). A slot (16) is opened on the water receiving box (15). The metal wire (6) passes through the slot (16) opened on the water receiving box (15). A water outlet hose (17) is connected to the bottom of the water receiving box (15). The other end of the water outlet hose (17) is connected to the water tank.

3. The long strip cutting device for microporous foam ceramic new materials according to claim 1, characterized in that: A connecting frame (10) is also connected between the first fixed frame (3) and the second fixed frame (4). The metal wire (6) passes through the connecting frame (10). A drying assembly for drying the metal wire (6) is installed on the connecting frame (10). The drying assembly includes an L-shaped support plate (18) installed at the edge of the first opening at the top of the connecting frame (10). A first electric push rod (19) is installed on the top of the L-shaped support plate (18). A mounting block (20) is fixedly connected to the telescopic end of the first electric push rod (19). A T-shaped groove is opened at the bottom of the mounting block (20). The inner frame is fitted with a wiping block (21), and the bottom of the wiping block (21) has a U-shaped groove that fits with the metal wire (6). The inner frame (10) is also fitted with a symmetrical heating cover (23) at the second opening at the top. The side wall of the heating cover (23) is fitted with a symmetrical guide rod, which extends out of the connecting frame (10). The two sides of the connecting frame (10) are also fitted with symmetrical second electric push rods (22). The telescopic end of the second electric push rod (22) extends into the connecting frame (10) and is connected to the side wall of the heating cover (23).

4. The long strip cutting device for microporous foam ceramic new material according to claim 3, characterized in that: The connecting frame (10) is also equipped with symmetrical clamping structures on both sides. The clamping structure is equipped with a dust collection component. The clamping structure includes a fixing frame (24) installed at the middle position on both sides of the connecting frame (10). A fixing rod (25) is installed in the symmetrical through hole opened on the bottom plate of the fixing frame (24). One end of the fixing rod (25) is fixedly connected to a pressure plate (26). A spring (27) is also installed at the connection between the fixing rod (25) and the pressure plate (26). The other end of the spring (27) is connected to the bottom surface of the bottom plate of the fixing frame (24). A pulley group (28) is installed at the bottom of the pressure plate (26).

5. The long strip cutting device for microporous foam ceramic new materials according to claim 4, characterized in that: The vacuuming assembly includes symmetrical connecting rods (29) installed on one side of the pressure plate (26). One end of the connecting rod (29) is fixedly connected to a first vacuum hood (30) and a second vacuum hood (31). One end of the first vacuum hood (30) and the second vacuum hood (31) is connected to a vacuum hose. The other end of the vacuum hose is connected to a vacuum box installed at the bottom of the support frame (2).

6. The long strip cutting device for microporous foam ceramic new material according to claim 1, characterized in that: The support frame (2) is equipped with an adjustment mechanism that drives the cutting mechanism to move up and down. The adjustment mechanism includes a first drive motor (32) installed on the top of the left column of the support frame (2). The output end of the first drive motor (32) passes through a through groove opened inside the left column of the support frame (2) and is connected to one end of a first lead screw (33) installed inside the through groove. The other end of the first lead screw (33) is connected to a bearing seat installed on the bottom surface of the through groove. A first movable seat (34) is adapted to be installed on the first lead screw (33). The first movable seat (34) slides in the through groove. The first connecting block installed on the side wall slides along the groove opened on the side wall of the left column of the support frame (2). The other end of the first connecting block is connected to the back of the first fixed frame (3). The right column of the support frame (2) has the same through groove. A sliding rod (35) is installed inside the through groove. A second movable seat (36) is slidably installed on the sliding rod (35). The second movable seat (36) slides along the through groove. The second connecting block installed on the side wall slides along the groove opened on the side wall of the right column of the support frame (2). The other end of the second connecting block is connected to the back of the second fixed frame (4).

7. The long strip cutting device for microporous foam ceramic new material according to claim 1, characterized in that: The drive mechanism on the processing table (1) includes a mounting frame (37) fixedly installed on the processing table (1). A second lead screw (38) is installed in a groove on the mounting frame (37). One end of the second lead screw (38) is adapted to the bearing seat on the inner wall of the groove. The other end of the second lead screw (38) passes through the groove and is connected to the output end of a second drive motor (39) fixedly installed on one end of the mounting frame (37). A movable seat is adapted to be installed on the second lead screw (38). A movable table (40) is installed on the top of the movable seat. A foam ceramic new material body (41) is placed on the top of the movable table (40).