Processing device for thermal insulation sleeve of inorganic fiber material equipment

By using a cloth roll, heating coil and steam treatment in the inorganic fiber material cutting device, the burr and dust problems during the cutting process are solved, and the flatness and cutting accuracy of the fabric cut are improved.

CN120250326AInactive Publication Date: 2025-07-04HEBEI KEHAOTE TECH CO LTD
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Patent Information

Application Number
CN202510489538.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-18
Publication Date
2025-07-04
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the process of processing inorganic fiber materials into thermal insulation sleeves, burrs are easily generated during the cutting process, which damages the flatness of the fabric cut, and the fibers may tear, resulting in dust pollution and affecting the processing quality.

Method used

The cutting device is equipped with a cloth roller and a heating coil. The cutting area of the cloth is pressed through the cloth roller, the burrs are ironed at high temperature by using the heating coil. At the same time, the cloth is heated, softened and smoothed using a steam generator box, and the expansion rollers are used to tension the cloth.

Benefits of technology

It reduces the generation of burrs and dust, improves the flatness and processing quality of fabric cuts, reduces the possibility of fiber tear, and improves the cutting accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a processing device for an inorganic fiber material equipment heat preservation sleeve, and relates to the technical field of textile processing, the processing device comprises a cutting table and a cutting device, the cutting device is installed on the surface of the cutting table, a cutting moving part is installed on the surface of the cutting device, the lower end of the cutting moving part is fixedly connected with a cutting tool bit, and the cutting tool bit is fixedly connected with the cutting table. The cutting mechanism is arranged at the lower end of the cutting moving part, the cutting mechanism comprises hanging rods fixedly connected with the lower end of the cutting moving part, the surfaces of the two hanging rods are slidably sleeved with a connecting frame, and transverse connecting columns are inserted into the lower ends of the two longitudinal arm ends of the connecting frame; cloth pressing rollers are fixedly connected to the ends, close to each other, of the two transverse connecting columns, first springs are fixedly connected to the lower ends of the suspension rods, and the upper ends of the first springs are fixedly connected with the surface of the connecting frame, so that the problems that in the cutting process, burrs are likely to be generated, and the flatness of a cloth notch is damaged are solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of textile processing, and more specifically, to a processing device for an insulating sleeve of an inorganic fiber material equipment. Background Art

[0002] Due to the good heat insulation and heat preservation performance of inorganic fiber materials, they can effectively reduce the heat loss of equipment, improve energy utilization efficiency, and at the same time, they also have the advantages of high temperature resistance, corrosion resistance, light weight, easy forming, etc., so they are often used in the production of equipment insulating sleeves.

[0003] In the process of processing inorganic fiber materials into insulating sleeves, it is necessary to cut the fabric made of inorganic fiber materials according to the specific size of the insulating sleeve, so a processing device is needed to cut the fabric. During the cutting process, the fabric is prone to deformation under pressure. Under the action of unidirectional tension, the fabric fibers may be stretched or torn, resulting in burrs or skewing. The ductility of the fabric will also cause deformation during the cutting process, affecting the cutting accuracy of the fabric. Moreover, burrs are generated during the tearing process of the fabric fibers. These burrs not only damage the flatness of the fabric cut, but also easily generate dust during the processing, affecting the processing quality of the fabric. Summary of the Invention

[0004] Aiming at the problems existing in the prior art, the purpose of the present invention is to provide a processing device for an insulating sleeve of an inorganic fiber material equipment to solve the problem of easy generation of burrs during the cutting process and damage to the flatness of the fabric cut.

[0005] To solve the above problems, the present invention adopts the following technical solutions.

[0006] A processing device for an insulating sleeve of an inorganic fiber material equipment includes a cutting table and a cutting device. The cutting device is installed on the surface of the cutting table. A cutting moving part is installed on the surface of the cutting device. A cutting tool head is fixedly connected to the lower end of the cutting moving part. A cutting mechanism is provided at the lower end of the cutting moving part. The cutting mechanism includes a suspension rod fixedly connected to the lower end of the cutting moving part. A connecting frame is slidably sleeved on the surface of the two suspension rods. Transverse connecting columns are inserted into the lower ends of the two longitudinal arm ends of the connecting frame. Pressing rollers are fixedly connected to the ends of the two transverse connecting columns close to each other. A first spring is fixedly connected to the lower end of the suspension rod. The upper end of the first spring is fixedly connected to the surface of the connecting frame.

[0007] Furthermore, rotating rings are rotatably connected to the ends of the two pressing rollers away from each other. Second springs are fixedly connected between the rotating rings and the longitudinal arm ends of the connecting frame. Spherical balls are arranged inside the ends of the two pressing rollers close to each other.

[0008] Further, a trimming burr treatment mechanism is provided. The trimming burr treatment mechanism is disposed at the lower end of the cutting moving part. The trimming burr treatment mechanism includes a suspension bracket fixedly connected to the lower end of the cutting moving part. A cutting edge treatment part housing is fixedly connected to the lower end of the suspension bracket. Two first heating coils are fixedly connected inside the cutting edge treatment part housing.

[0009] Further, a first heat-conducting copper block is fixedly connected inside the cutting edge treatment part housing. Two grooves are formed on the upper surface of the first heat-conducting copper block. The two first heating coils are respectively located inside the grooves on the two first heat-conducting copper blocks.

[0010] Further, the cross-sectional shape of the first heat-conducting copper block is "T" shaped. A distribution block is fixedly connected to the front end of the longitudinal end of the first heat-conducting copper block.

[0011] Further, two-side burr treatment mechanisms are provided. The two-side burr treatment mechanisms are disposed on both sides of the upper surface of the cutting table. The two-side burr treatment mechanisms include two side treatment part housings fixedly connected to both sides of the upper surface of the cutting table. Two second heating coils are fixedly connected inside the side treatment part housings. A second heat-conducting copper block is fixedly connected inside the side treatment part housings.

[0012] Further, the cross-sectional shape of the second heat-conducting copper block is "L" shaped. Grooves are formed on the surfaces of both arm ends of the second heat-conducting copper block. The two second heating coils are respectively located inside the two grooves on the second heat-conducting copper block. Two guide plates are fixedly connected to the rear end of the side treatment part housing.

[0013] Further, a material flattening mechanism is provided. The material flattening mechanism is disposed on the upper surface of the cutting table. The material flattening mechanism includes a steam generating box fixedly connected to the upper surface of the cutting table. A water tank is fixedly connected to the upper surface of the steam generating box. A heating plate is fixedly connected to the bottom of the water tank. Steam delivery pipes are fixedly inserted on both sides of the water tank.

[0014] Further, drain pipes are fixedly inserted on both sides of the water tank. The diameter of the drain pipes is larger than the diameter of the steam delivery pipes. The two longitudinal ends of the steam delivery pipes respectively penetrate and are fixedly inserted into the longitudinal sections of the two drain pipes. Two upturned parts are fixedly connected to the bottom of the steam generating box. A plurality of air blowers are installed on the upper surface of the water tank.

[0015] Further, high support columns and low support columns are fixedly connected to both sides of the upper surface of the rear end of the cutting table. Expansion rollers are rotatably connected between the two high support columns and the two low support columns.

[0016] Compared with the prior art, the beneficial effects of the present invention are:

[0017] (1) During the cutting process of the cutting tool head, the cloth pressing roller presses the cloth cutting area, which can restrain the unexpected deformation of the cloth under pressure, reduce the fiber tearing phenomenon caused by excessive stretching, reduce the generation of frayed edges, thereby improving the flatness of the cut, reducing the dust pollution caused by fiber fragmentation, and improving the processing quality of the cloth.

[0018] (2) In this solution, the first heating coil heats the first copper heat-conducting block to increase the temperature of the first copper heat-conducting block. When the first copper heat-conducting block moves to the cutting position of the cloth, it can thermally iron the frayed edges generated during the cloth cutting process, thereby reducing the generation of frayed edges, improving the flatness of the cloth cut, reducing the dust generated during the processing, and improving the processing quality of the cloth.

[0019] (3) In this solution, the second heating coil heats the second copper heat-conducting block to increase the temperature of the second copper heat-conducting block. The second copper heat-conducting block can thermally iron the frayed edges on the side of the cloth, thereby reducing the frayed edges, further improving the flatness of the cloth cut, reducing the dust generated during the processing, and improving the processing quality of the cloth.

[0020] (4) When the cloth passes through the gap between the spreading rollers in this solution, the radial protrusion in the middle of the spreading roller generates a radial tension force on the cloth, and at the same time, the thinner areas at both ends form a progressive guiding transition, so that the cloth bears a bi-axial tensile load during the conveying process, reducing the fiber accumulation and creases in the wrinkled area, and avoiding the problem of reduced cutting accuracy caused by the appearance of creases, further improving the processing quality of the cloth.

[0021] (5) In this solution, the cloth can be heated and softened by high-temperature steam, and the lower end of the steam generating box is used to press the cloth, so that the residual creases on the cloth surface can be smoothed. After the cloth surface cools, the cloth is re-hardened and shaped, thereby realizing the elimination of the creases on the cloth surface, avoiding the problem of reduced cutting accuracy caused by the appearance of creases, and further improving the processing quality of the cloth. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 is a schematic structural diagram of the present invention;

[0023] Figure 2 is a schematic structural diagram of the cutting table part of the present invention;

[0024] Figure 3 is a schematic structural diagram of the cutting tool part of the present invention;

[0025] Figure 4 is the present invention Figure 3 enlarged view at A in;

[0026] Figure 5 is a schematic structural diagram of the cloth pressing roller part of the present invention;

[0027] Figure 6 This is a schematic diagram of the internal structure of the housing of the incision processing part of the present invention;

[0028] Figure 7 This is a schematic diagram of the internal structure of the housing of the side processing part of the present invention;

[0029] Figure 8 This is a schematic diagram of the structure of the steam generation box part of the present invention;

[0030] Figure 9 This is a schematic diagram of the structure of the steam delivery pipe of the present invention;

[0031] Figure 10 This is a schematic diagram of the structure of the unwinding roller part of the present invention.

[0032] Explanation of the reference numerals in the figure:

[0033] 1. Cutting table; 2. Cutting device;

[0034] 301. Cutting moving part; 302. Spherical ball; 303. Cutting tool head; 304. Horizontal connecting column; 305. Connecting frame; 306. Cloth pressing roller; 307. Suspension rod; 308. First spring; 309. Second spring; 310. Rotating ring;

[0035] 401. Side processing part housing; 402. Incision processing part housing; 403. Suspension bracket; 404. First heating coil; 405. First copper heat conduction block; 406. Division block; 407. Guide plate; 408. Second copper heat conduction block; 409. Second heating coil;

[0036] 501. Water tank; 502. Unwinding roller; 503. High support column; 504. Steam generation box; 505. Fan; 506. Drain pipe; 507. Steam delivery pipe; 508. Heating plate; 509. Warping part; 510. Low support column. Detailed implementation manners

[0037] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0038] Please refer to Figures 1 - 5, a processing device for the thermal insulation sleeve of an inorganic fiber material equipment, including a cutting table 1 and a cutting device 2. The cutting device 2 is installed on the surface of the cutting table 1. A cutting moving part 301 is installed on the surface of the cutting device 2. A cutting knife head 303 is fixedly connected to the lower end of the cutting moving part 301, and a cutting mechanism. The cutting mechanism is arranged at the lower end of the cutting moving part 301. The cutting mechanism includes a suspension rod 307 fixedly connected to the lower end of the cutting moving part 301. A connecting frame 305 is slidably sleeved on the surface of the two suspension rods 307. Transverse connecting columns 304 are inserted at the lower ends of the two longitudinal arm ends of the connecting frame 305. Pressing rollers 306 are fixedly connected to the ends of the two transverse connecting columns 304 close to each other. By pressing the cutting part of the fabric with the pressing rollers 306, the deformation of the fabric caused by pressure can be reduced.

[0039] Among them, a first spring 308 is fixedly connected to the lower end of the suspension rod 307. The elastic pulling force generated by the first spring 308 can apply a downward pulling force to the connecting frame 305, so that the pressing roller 306 can be pressed on the fabric. The upper end of the first spring 308 is fixedly connected to the surface of the connecting frame 305. Rotating rings 310 are rotatably connected to the ends of the two pressing rollers 306 away from each other. A second spring 309 is fixedly connected between the rotating ring 310 and the longitudinal arm end of the connecting frame 305. By the second spring 309, the ball 302 on the pressing roller 306 can be pushed against the side of the cutting knife head 303 to adapt to cutting knife heads 303 of different thicknesses. Balls 302 are arranged inside the ends of the two pressing rollers 306 close to each other. By the balls 302, the frictional resistance when the cutting knife head 303 and the pressing roller 306 come into contact can be prevented, and the situation where the pressing roller 306 cannot roll on the fabric surface due to the frictional resistance can be reduced.

[0040] By adopting the above technical solution, when cutting the fabric made of inorganic fiber materials, the cutting moving part 301 is driven to move by the cutting device 2, so that the cutting knife head 303 on the cutting moving part 301 cuts across the fabric to achieve the cutting of the fabric. This is a common method in the prior art and will not be elaborated here. During the process of cutting the fabric, the elastic pulling force generated by the first spring 308 can apply a downward pulling force to the connecting frame 305, so that the pressing roller 306 can be pressed on the fabric. Since the cutting knife head 303 is located between the two pressing rollers 306 and the two pressing rollers 306 are pressed against both sides of the cutting knife head 303, during the process of the cutting knife head 303 cutting the fabric, by pressing the cutting part of the fabric with the pressing rollers 306, the deformation of the fabric caused by pressure can be reduced, the situation of excessive frayed edges due to stretching and tearing of the fabric can be reduced, and the flatness of the fabric cut is improved.

[0041] Due to the material properties of the inorganic fiber material, it is necessary to replace the cutting tool head 303 with different sizes and thicknesses to cut the fabric. Therefore, when using the cutting tool head 303 with different sizes to cut the fabric, the second spring 309 can push the ball 302 on the fabric pressing roller 306 against the side of the cutting tool head 303 to adapt to the cutting tool head 303 with different thicknesses. And through the ball 302, it is possible to prevent the friction resistance when the cutting tool head 303 and the fabric pressing roller 306 come into contact, reducing the situation where the fabric pressing roller 306 cannot roll on the fabric surface due to the friction resistance, and further preventing the fabric from being pushed to form wrinkles, improving the flatness of the fabric cut and the processing quality of the fabric.

[0042] As Figure 6 and Figure 7 shown, the cutting edge trimming mechanism is provided at the lower end of the cutting moving part 301. The cutting edge trimming mechanism includes a suspension bracket 403 fixedly connected to the lower end of the cutting moving part 301. The lower end of the suspension bracket 403 is fixedly connected with a cutting edge processing part housing 402. Two first heating coils 404 are fixedly connected inside the cutting edge processing part housing 402. The first heating coils 404 can heat the first heat-conducting copper block 405. The first heat-conducting copper block 405 is fixedly connected inside the cutting edge processing part housing 402. The first heat-conducting copper block 405 can high-temperature iron the burrs generated during the fabric cutting process to reduce the generation of burrs. Two grooves are formed on the upper surface of the first heat-conducting copper block 405, and the two first heating coils 404 are respectively located inside the grooves on the two first heat-conducting copper blocks 405. The cross-sectional shape of the first heat-conducting copper block 405 is "T" shaped. The front end of the longitudinal end of the first heat-conducting copper block 405 is fixedly connected with a distribution block 406, which can separate the cut fabric for ironing operation.

[0043] Among them, there are edge trimming mechanisms on both sides. The edge trimming mechanisms on both sides are arranged on both sides of the upper surface of the cutting table 1. The edge trimming mechanisms on both sides include two side processing part housings 401 fixedly connected to both sides of the upper surface of the cutting table 1. Two second heating coils 409 are fixedly connected inside the side processing part housing 401. The second heat-conducting copper block 408 can be heated through the second heating coil 409. The second heat-conducting copper block 408 is fixedly connected inside the side processing part housing 401. The frayed edges of the fabric sides can be ironed flat at high temperature through the high-temperature second heat-conducting copper block 408, so as to reduce the frayed edges. The cross-sectional shape of the second heat-conducting copper block 408 is "L" shaped. Grooves are formed on the surfaces of both arm ends of the second heat-conducting copper block 408. The two second heating coils 409 are respectively located inside the two grooves on the second heat-conducting copper block 408. Two guide plates 407 are fixedly connected to the rear end of the side processing part housing 401. When the fabric moves under the side processing part housing 401, the guide plates 407 play a guiding role, reducing the probability that the fabric is stuck due to the right angle of the side processing part housing 401.

[0044] By adopting the above technical solution, when cutting the fabric, the first heat-conducting copper block 405 can be heated through the first heating coil 404, so that the heat generated by the first heating coil 404 is transferred to the first heat-conducting copper block 405, increasing the temperature of the first heat-conducting copper block 405. Then, when the first heat-conducting copper block 405 moves to the cutting position of the fabric, the longitudinal end of the high-temperature first heat-conducting copper block 405 can iron the frayed edges generated during the fabric cutting process at high temperature, so as to reduce the generation of frayed edges, improve the flatness of the fabric cut, reduce the dust generated during the processing, and improve the processing quality of the fabric.

[0045] When moving the fabric, the second heat-conducting copper block 408 can be heated through the second heating coil 409, so that the heat generated by the second heating coil 409 is transferred to the second heat-conducting copper block 408, increasing the temperature of the second heat-conducting copper block 408. Then, when the second heat-conducting copper block 408 moves to the cutting position of the fabric, the frayed edges of the fabric sides can be ironed flat at high temperature through the high-temperature second heat-conducting copper block 408, so as to reduce the frayed edges, further improve the flatness of the fabric cut, reduce the dust generated during the processing, and improve the processing quality of the fabric.

[0046] Such as Figures 8 - 10As shown in the figure, there is a material flattening mechanism. The material flattening mechanism is arranged on the upper surface of the cutting table 1. The material flattening mechanism includes a steam generating box 504 fixedly connected to the upper surface of the cutting table 1. The upper surface of the steam generating box 504 is fixedly connected with a water tank 501. The bottom of the water tank 501 is fixedly connected with a heating plate 508. The heating plate 508 is used to heat the water in the water tank 501, so as to evaporate the water to generate water vapor. The two sides of the water tank 501 are fixedly inserted with steam delivery pipes 507. The two sides of the water tank 501 are fixedly inserted with drain pipes 506. The diameter of the drain pipe 506 is larger than that of the steam delivery pipe 507. The drain pipe 506 is connected to an external pipe, and the height of the drain pipe 506 is slightly lower than that of the steam delivery pipe 507. Therefore, when there is too much water in the water tank 501, the water can be discharged from the drain pipe 506 and will not flow into the steam delivery pipe 507, which can prevent the water from overflowing and soaking the fabric. The two longitudinal ends of the steam delivery pipe 507 respectively penetrate and are fixedly inserted into the longitudinal sections of the two drain pipes 506.

[0047] Among them, two upturned parts 509 are fixedly connected to the bottom of the steam generating box 504. The upturned parts 509 can prevent the fabric from getting stuck when moving under the steam generating box 504. A plurality of air blowers 505 are installed on the upper surface of the water tank 501. The air blowers 505 are used to fill air into the water tank 501, so as to discharge the water vapor inside the water tank 501. On both sides of the upper surface of the rear end of the cutting table 1, a high support column 503 and a low support column 510 are fixedly connected respectively. An unfolding roller 502 is rotatably connected between the two high support columns 503 and the two low support columns 510. The flatness of the fabric can be improved by the two unfolding rollers 502.

[0048] By adopting the above technical solution, during the fabric unfolding process, since the unfolding roller 502 has a structure that is thick in the middle and thin at both ends, when the unfolding roller 502 spreads and moves the fabric, the two unfolding rollers 502 can stretch the fabric to both sides, so as to stretch the folded part and crease of the fabric and improve the flatness of the fabric.

[0049] During the process of cutting the fabric, it is necessary to lay the fabric on the cutting table 1. As the fabric moves after being cut, the fabric moves under the lower surface of the steam generating box 504. Therefore, when the fabric moves, the water in the water tank 501 can be heated by the heating plate 508 to evaporate the water to generate water vapor. Then, the air is filled into the water tank 501 through the blower 505, so that the water vapor inside the water tank 501 is discharged through the air outlet at the lower end of the steam delivery pipe 507, and the water vapor contacts the fabric. Thus, the fabric can be heated and softened by the high-temperature water vapor, and the fabric can be pressed by the lower end of the steam generating box 504 to smooth the remaining creases on the fabric surface. After the fabric surface cools, the fabric is re-hardened and shaped, so as to eliminate the creases on the fabric surface.

[0050] The above is only the preferred specific embodiment of the present invention; however, the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its improved concept, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.

Claims

1. A processing device for an inorganic fiber material equipment heat preservation sleeve, comprising a cutting table (1) and a cutting device (2), the cutting device (2) is installed on the surface of the cutting table (1), a cutting moving part (301) is installed on the surface of the cutting device (2), and a cutting tool head (303) is fixedly connected to the lower end of the cutting moving part (301), characterized in that: Cutting mechanism, the cutting mechanism is arranged at the lower end of the cutting moving part (301), the cutting mechanism includes a suspension rod (307) fixedly connected to the lower end of the cutting moving part (301), and a connecting frame (305) is slidably sleeved on the surface of the two suspension rods (307). Transverse connecting columns (304) are inserted at the lower ends of the two longitudinal arm ends of the connecting frame (305). Pressing rollers (306) are fixedly connected to one ends of the two transverse connecting columns (304) close to each other. A first spring (308) is fixedly connected to the lower end of the suspension rod (307), and the upper end of the first spring (308) is fixedly connected to the surface of the connecting frame (305).

2. The processing device of an inorganic fiber material equipment heat preservation sleeve according to claim 1, characterized in that: Rotating rings (310) are rotatably connected to one ends of the two pressing rollers (306) away from each other. A second spring (309) is fixedly connected between the rotating ring (310) and the longitudinal arm end of the connecting frame (305). Spherical balls (302) are arranged inside one ends of the two pressing rollers (306) close to each other.

3. The processing device of an inorganic fiber material equipment heat preservation sleeve according to claim 1, characterized in that: Cutting burr treatment mechanism, the cutting burr treatment mechanism is arranged at the lower end of the cutting moving part (301), the cutting burr treatment mechanism includes a suspension bracket (403) fixedly connected to the lower end of the cutting moving part (301), and a cutting edge treatment part housing (402) is fixedly connected to the lower end of the suspension bracket (403). Two first heating coils (404) are fixedly connected inside the cutting edge treatment part housing (402).

4. The processing device of an inorganic fiber material equipment heat preservation sleeve according to claim 3, characterized in that: A first heat-conducting copper block (405) is fixedly connected inside the cutting edge treatment part housing (402). Two grooves are formed on the upper surface of the first heat-conducting copper block (405). The two first heating coils (404) are respectively located inside the two grooves on the first heat-conducting copper block (405).

5. The processing device of an inorganic fiber material equipment heat preservation sleeve according to claim 4, characterized in that: The cross-sectional shape of the first heat-conducting copper block (405) is "T" shaped, and a dividing block (406) is fixedly connected to the front end of the longitudinal end of the first heat-conducting copper block (405).

6. The processing device of the thermal insulation sleeve for an inorganic fiber material device according to claim 1, characterized in that: Both-side burr treatment mechanism, the both-side burr treatment mechanism is arranged on both sides of the upper surface of the cutting table (1). The both-side burr treatment mechanism includes two side treatment part housings (401) fixedly connected to both sides of the upper surface of the cutting table (1). Two second heating coils (409) are fixedly connected inside the side treatment part housing (401). A second heat-conducting copper block (408) is fixedly connected inside the side treatment part housing (401).

7. The processing device of the inorganic fiber material equipment heat preservation sleeve according to claim 6, characterized in that: The cross-sectional shape of the second heat-conducting copper block (408) is "L" shaped. Grooves are formed on the surfaces of the two arm ends of the second heat-conducting copper block (408). The two second heating coils (409) are respectively located inside the two grooves on the second heat-conducting copper block (408). Two guide plates (407) are fixedly connected to the rear end of the side treatment part housing (401).

8. The processing device of an inorganic fiber material equipment heat preservation sleeve according to claim 1, characterized in that: Material flattening mechanism, the material flattening mechanism is arranged on the upper surface of the cutting table (1), the material flattening mechanism includes a steam generating box (504) fixedly connected to the upper surface of the cutting table (1), a water tank (501) is fixedly connected to the upper surface of the steam generating box (504), a heating plate (508) is fixedly connected to the bottom of the water tank (501), and steam delivery pipes (507) are fixedly inserted on both sides of the water tank (501).

9. The processing device of an inorganic fiber material equipment heat preservation sleeve according to claim 8, characterized in that: Drain pipes (506) are fixedly inserted on both sides of the water tank (501), the diameter of the drain pipes (506) is larger than the diameter of the steam delivery pipes (507), the two longitudinal ends of the steam delivery pipes (507) respectively penetrate through and are fixedly inserted into the longitudinal sections of the two drain pipes (506), two upturned parts (509) are fixedly connected to the bottom of the steam generating box (504), and a plurality of air blowers (505) are installed on the upper surface of the water tank (501).

10. The processing device of an inorganic fiber material equipment heat preservation sleeve according to claim 8, characterized in that: High support columns (503) and low support columns (510) are fixedly connected to both sides of the upper surface of the rear end of the cutting table (1), and unfolding rollers (502) are rotatably connected between the two high support columns (503) and the two low support columns (510).