A flexible fireproof glass fiber cloth processing equipment and use method for preventing spontaneous combustion of new energy vehicles
Through the flexible fire-resistant glass fiber cloth processing equipment, the combination of softening layer and silicone layer is used to solve the problem of poor adaptability of traditional fire-resistant materials in new energy vehicles, and the flexibility and wear resistance are improved, reducing the risk of damage and production costs.
Patent Information
- Application Number
- CN202411279246.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-12
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2044-09-12
AI Technical Summary
Traditional fireproof materials are difficult to adapt to complex curved surfaces and folding angles inside new energy vehicles, and are too rigid and easily damaged, which may cause harm to operators.
The flexible fire-resistant glass fiber cloth processing equipment is used to make a flexible glass fiber cloth through a system composed of a liquid immersion tank and a winder, using a combination of a softening layer and a silicone layer, combined with a hot air fan and a hot pressing component, to enhance its flexibility and wear resistance.
The made flexible glass fiber cloth can adapt to the complex curved surfaces and folding angles of new energy vehicles, reduce the risk of damage, improve operational safety, and reduce production costs.
Smart Images

Figure CN119141980B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of glass fiber cloth, and in particular to a flexible fireproof glass fiber cloth processing device for preventing spontaneous combustion of new energy vehicles and a use method thereof. Background Art
[0002] Fiberglass cloth, also known as glass fiber cloth, is a fabric made of extremely fine glass fiber filaments. It is primarily a composite of glass fiber and staple needle-punched non-woven fabric. It is an inorganic, non-metallic material with excellent performance. It possesses numerous excellent properties, including high strength, high modulus, and excellent heat resistance. It maintains stable performance in high-temperature environments and is not easily deformed or melted, making it suitable for a variety of high-temperature work scenarios.
[0003] In the production and application scenarios of new energy vehicles, traditional fireproof materials are often very rigid and difficult to adapt to the complex curves and corners inside new energy vehicles. Their excessive rigidity makes them easily damaged, and damaged fibers can easily cause harm to operators. Therefore, to address the above problems, a flexible fireproof glass fiber cloth processing equipment and its use method are proposed to prevent new energy vehicles from spontaneous combustion. Summary of the Invention
[0004] The purpose of the present invention is to provide a flexible fireproof glass fiber cloth processing equipment and its use method for preventing new energy vehicles from spontaneous combustion, so as to solve the problem raised in the above background technology that it is difficult to adapt to the complex curves and corners inside new energy vehicles, its excessive rigidity makes it easy to be damaged, and the damaged fibers can easily cause harm to operators.
[0005] To achieve the above object, the present invention provides the following technical solutions:
[0006] A flexible fireproof glass fiber cloth processing equipment for preventing new energy vehicles from spontaneous combustion, comprising an immersion tank and a winder, the winding roller of the winder is wound with a flexible glass fiber cloth body, a processing table is fixedly provided between the immersion tank and the winder, the surface of the processing table is fixedly provided with a hot pressing component for laminating the flexible glass fiber cloth body, the flexible glass fiber cloth body comprises a fiber cloth base layer, a softening layer and a silicone layer, the outside of the fiber cloth base layer is wrapped with a softening layer, the surface of the fiber cloth base layer is bonded with a silicone layer, the softening layer is made by mixing a flexible agent material and a polyurethane material, the silicone layer is made of a silicone material, the interior of the immersion tank is provided with a There is a covering component for processing the softening layer, and the covering component includes a connecting platform, which is fixedly arranged at the bottom end of one side of the immersion tank, and a hot air blower is fixedly provided on the upper surface of the connecting platform, and the air outlet end of the hot air blower is provided with a connecting pipe, and the bottom end of the connecting pipe is provided with an air storage box for heating the softening layer through an air inlet pipe, and a plurality of evenly spaced air outlet pipes are fixedly provided on the upper surface of the air storage box, and a nozzle for accelerating the mixing of the softening layer is fixedly provided at the top end of the air outlet pipe, and a one-way valve is fixedly provided in the middle part of the air outlet pipe, and a supporting component is provided on the outside of the connecting platform, and a preheating component for pretreating the silicone layer is fixedly provided on the top end of the immersion tank.
[0007] As further optimized content of the present invention, the preheating assembly includes a bracket, a heat conduction plate is provided inside the bracket, a number of evenly spaced heat conduction tubes are provided inside the heat conduction plate, a gas injection box is fixedly provided at one end of the heat conduction tube, one side of the gas injection box is fixedly connected to the top of the connecting tube, a gas outlet box is fixedly provided at the other end of the heat conduction tube, an exhaust pipe is fixedly provided at one side of the gas outlet box, an exhaust valve is fixedly provided in the middle of the exhaust pipe, a regulating valve for regulating the flow is fixedly provided on the top of the connecting tube, and a conveying mechanism is provided on the surface of the bracket.
[0008] As a further optimization of the present invention, the conveying mechanism includes two auxiliary rollers, which are rotatably arranged on both sides of the top of the bracket, and two placement racks are fixedly provided on one side of the bracket. The tops of the two placement racks are rotatably matched with placement rollers for placing the silicone layer.
[0009] As further optimized content of the present invention, the hot pressing assembly includes a support frame, a first connecting roller is rotatably provided at the top of the inner wall of the support frame, an annular heating tube is fixedly provided inside the first connecting roller, a second connecting roller is rotatably provided at the bottom of the inner wall of the support frame, the first connecting roller and the second connecting roller correspond to each other up and down, one end of the first connecting roller and one end of the second connecting roller are fixedly connected with gears, the two gears are meshed with each other, a conductive slip ring is fixedly provided on one side of the support frame, the transmission shaft of the conductive slip ring is fixedly connected to the other end of the first connecting roller, and a power assembly is fixedly provided at the top of the support frame.
[0010] As a further optimized content of the present invention, the power component includes a small motor, the transmission shaft of the small motor is fixedly provided with a pulley 1, a pulley 2 is fixedly provided between the first connecting roller and the corresponding gear, and the pulley 1 and the pulley 2 are connected by a belt drive.
[0011] As a further optimization of the present invention, the support assembly includes two fixed plates, which are respectively fixed at both ends of the air storage box, two fixing rods 1 are fixedly arranged on the top of one of the fixed plates, and a guide rod 1 is fixedly arranged between the two fixing rods 1, and two fixing rods 2 are fixedly arranged on the top of the other fixed plate, and a guide rod 2 is provided between the two fixing rods 2.
[0012] As a further optimization of the present invention, wherein: one of the fixing rods 1 located at the bottom is at the same height as the guide rod 2.
[0013] As a further optimization of the present invention, two placement racks 2 are fixedly provided at one end of the immersion tank, the top ends of the two placement racks 2 are rotatably matched with placement rollers 2, and the surfaces of the placement rollers 2 are wrapped with a fiber cloth base layer.
[0014] As a further optimized content of the present invention, wherein: a blanking rod is fixedly provided on the top of one side of the two placement racks 2, and the blanking rod corresponds to the guide rod 1 up and down.
[0015] As a further optimized content of the present invention, wherein: S1: before processing, the fiber cloth base layer to be processed is installed and positioned, the fiber cloth base layer is placed on the surface of the second roller, passes above the discharge rod, and then passes from the bottom of the second guide rod, and then passes around the top of the second top guide rod, and then passes between the first connecting roller and the second connecting roller, and one end of the fiber cloth base layer is connected to the winding roller of the winding machine;
[0016] S2: Wrap the outer surface of the fiber cloth base with a softening layer. Before processing, add an appropriate amount of softening agent material and polyurethane material to the inside of the immersion tank. The air after heat treatment by the hot air blower is transported to the air storage box through a part of the connecting pipe. The air storage box is made of corrosion-resistant metal material and can heat the softening agent material and polyurethane material. The gas is discharged through several nozzles. This process can accelerate the flow of liquid and make the softening agent material and polyurethane material fully blend. When the fiber cloth base passes through the inside of the immersion tank, the outer wrapping softening layer fully wraps the fiber cloth base;
[0017] S3: Pre-treat the silicone layer of the flexible glass fiber cloth body. The silicone layer passes under two auxiliary rollers so that it can fully contact the heat conduction plate during transportation. The other part of the air after heat treatment by the hot air blower is transported to the air injection box through the connecting pipe and then to several heat conduction pipes. The heat conduction plate is made of metal material with good thermal conductivity, which can achieve heating and softening treatment of the silicone layer.
[0018] S4: The fiber cloth base layer and the silicone layer are subjected to heat pressing treatment to form a flexible glass fiber cloth body. The fiber cloth base layer and the silicone layer wrapped with the softening layer are overlapped between the first connecting roller and the second connecting roller. A small motor provides power for the conveying process, which drives the pulley 1 to rotate, and drives the pulley 2 to rotate with the cooperation of the belt to realize the rotation of the first connecting roller. The meshing connection between the two gears makes the second connecting roller rotate in the opposite direction to the first connecting roller. The annular heating tube fully heats the first connecting roller so that the silicone layer covers the surface of the fiber cloth base layer to form protection. A plastic protective film is provided on the upper surface of the silicone layer to prevent the silicone layer from adhering to the surface of the first connecting roller. It should be torn off before use.
[0019] Compared with the prior art, the present invention has the following beneficial effects:
[0020] 1. In the present invention, the softening layer and the flexibilizer in the softening layer can reduce the hardness of the fiber cloth base layer, increase its flexibility and bendability. While improving its flexibility, the polyurethane material also improves the wear resistance of the fiber cloth base layer. After heat treatment in the immersion tank and the first connecting roller, the fiber cloth base layer can soften the fibers and improve its flexibility, allowing it to adapt to the complex curves and corners inside new energy vehicles and be less susceptible to damage. The silicone layer can improve the insulation and corrosion resistance of the fiber cloth base layer. At the same time, the silicone layer prevents operators from direct contact with the fiber cloth base layer, providing good protection.
[0021] 2. In the present invention, a portion of the air after heat treatment by the hot air blower is transported to the air storage box through the connecting pipe, which can heat the flexible agent material and the polyurethane material, soften the fiber and improve its flexibility. The gas is discharged through a number of nozzles. This process can accelerate the flow of the liquid, fully integrate the flexible agent material and the polyurethane material, and fully wrap the fiber cloth base. The other part of the air is transported to the gas injection box through the connecting pipe and then to a number of heat-conducting pipes. The heat-conducting plate has good thermal conductivity, which realizes the heating and softening treatment of the silicone layer. This process improves the utilization rate of the equipment, can process the softened layer and the silicone layer at the same time, and reduces the production cost.
[0022] 3. In the present invention, the fiber cloth base layer and the silicone layer are subjected to hot pressing treatment by the provided hot pressing assembly to form a flexible glass fiber cloth body, which not only retains the properties of high strength, heat resistance and fire resistance but also has the characteristics of good flexibility, good wear resistance and high corrosion resistance. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0024] Figure 2 This is one of the side structural diagrams of the present invention;
[0025] Figure 3 This is the second schematic side structural diagram of the present invention;
[0026] Figure 4 It is a structural schematic diagram of the immersion tank of the present invention;
[0027] Figure 5 Schematic diagram of the cross-sectional structure of the immersion tank of the present invention;
[0028] Figure 6 It is a structural schematic diagram of the air storage box of the present invention;
[0029] Figure 7 This is a schematic diagram of the explosion structure of the preheating assembly of the present invention;
[0030] Figure 8 It is a structural schematic diagram of the hot pressing assembly of the present invention.
[0031] In the figure: 1. Immersion tank; 111. Placement rack 2; 112. Placement roller 2; 113. Unloading rod; 2. Winding machine; 3. Flexible glass fiber cloth body; 301. Fiber cloth base layer; 302. Softening layer; 303. Silicone layer; 4. Processing table; 5. Hot pressing assembly; 51. Support frame; 52. First connecting roller; 53. Annular heating tube; 54. Second connecting roller; 55. Gear; 56. Conductive slip ring; 57. Power assembly; 571. Small motor; 572. Pulley 1; 573. Pulley 2; 6. Cover assembly; 61. Connecting table; 62. Hot pressing assembly Fan; 63. Connecting pipe; 64. Air storage box; 641. Air inlet pipe; 65. Air outlet pipe; 651. Nozzle; 652. One-way valve; 66. Support assembly; 661. Fixing plate; 662. Fixing rod one; 663. Guide rod one; 664. Fixing rod two; 665. Guide rod two; 67. Preheating assembly; 671. Bracket; 672. Heat conducting plate; 673. Heat conducting pipe; 674. Gas injection box; 675. Air outlet box; 676. Exhaust pipe; 677. Conveying mechanism; 6771. Auxiliary roller; 6772. Placement rack one; 6773. Placement roller one. DETAILED DESCRIPTION
[0032] See also Figure 1-8, the present invention provides a technical solution: as a technical solution further implemented by this solution,
[0033] A flexible fireproof glass fiber cloth processing equipment for preventing new energy vehicles from spontaneous combustion, including an immersion tank 1 and a winder 2, the winding roller of the winder 2 is wound with a flexible glass fiber cloth body 3, a processing table 4 is fixedly provided between the immersion tank 1 and the winder 2, and a hot pressing component 5 for pressing the flexible glass fiber cloth body 3 is fixedly provided on the surface of the processing table 4. The flexible glass fiber cloth body 3 includes a fiber cloth base layer 301, a softening layer 302 and a silicone layer 303. The outside of the fiber cloth base layer 301 is wrapped with a softening layer 302, and the surface of the fiber cloth base layer 301 is bonded with a silicone layer 303. The softening layer 302 is made by mixing a flexible agent material and a polyurethane material, and the silicone layer 303 is made of a silicone material. The interior of the immersion tank 1 is provided with a softening layer 302. The processed covering component 6 includes a connecting platform 61, which is fixedly arranged at the bottom end of one side of the immersion tank 1. A hot air blower 62 is fixedly provided on the upper surface of the connecting platform 61. The air outlet end of the hot air blower 62 is provided with a connecting pipe 63. The bottom end of the connecting pipe 63 is provided with an air storage box 64 for heating the softening layer 302 through an air inlet pipe 641. A plurality of evenly spaced air outlet pipes 65 are fixedly provided on the upper surface of the air storage box 64. A nozzle 651 for accelerating the mixing of the softening layer 302 is fixedly provided at the top of the air outlet pipe 65. A one-way valve 652 is fixedly provided in the middle of the air outlet pipe 65. A supporting component 66 is provided on the outside of the connecting platform 61. A preheating component 67 for pretreating the silicone layer 303 is fixedly provided on the top of the immersion tank 1.
[0034] As a technical solution for further implementation of this scheme, the preheating assembly 67 includes a bracket 671, a heat conducting plate 672 is fixed inside the bracket 671, a number of evenly spaced heat conducting tubes 673 are provided inside the heat conducting plate 672, a gas injection box 674 is fixedly provided at one end of the heat conducting tube 673, one side of the gas injection box 674 is fixedly connected to the top of the connecting tube 63, a gas outlet box 675 is fixedly provided at the other end of the heat conducting tube 673, an exhaust pipe 676 is fixedly provided at one side of the gas outlet box 675, an exhaust valve is fixedly provided in the middle of the exhaust pipe 676, a regulating valve for regulating the flow is fixedly provided on the top of the connecting tube 63, and a conveying mechanism 677 is provided on the surface of the bracket 671.
[0035] As a technical solution for further implementing this scheme, the conveying mechanism 677 includes two auxiliary rollers 6771, and the two auxiliary rollers 6771 are rotatably arranged on both sides of the top of the bracket 671. Two placement racks 6772 are fixed on one side of the bracket 671, and the tops of the two placement racks 6772 are rotatably matched with placement rollers 6773 for placing the silicone layer 303.
[0036] As a technical solution for further implementation of this scheme, the hot pressing assembly 5 includes a support frame 51, a first connecting roller 52 is rotatably provided at the top of the inner wall of the support frame 51, a ring-shaped heating tube 53 is fixed inside the first connecting roller 52, and a second connecting roller 54 is rotatably provided at the bottom of the inner wall of the support frame 51. The first connecting roller 52 and the second connecting roller 54 correspond to each other up and down, and one end of the first connecting roller 52 and one end of the second connecting roller 54 are fixedly connected with a gear 55, and the two gears 55 are meshed with each other. A conductive slip ring 56 is fixedly provided on one side of the support frame 51, and the transmission shaft of the conductive slip ring 56 is fixedly connected to the other end of the first connecting roller 52. A power assembly 57 is fixed at the top of the support frame 51.
[0037] As a technical solution for further implementation of this scheme, the power component 57 includes a small motor 571, and the transmission shaft of the small motor 571 is fixedly provided with a pulley 1 572. A pulley 2 573 is fixedly provided between the first connecting roller 52 and the corresponding gear 55, and the pulley 1 572 and the pulley 2 573 are connected by a belt drive.
[0038] As a technical solution for further implementing this scheme, the support assembly 66 includes two fixed plates 661, which are respectively fixedly arranged at both ends of the air storage box 64. Two fixed rods 1 662 are fixedly arranged on the top of one of the fixed plates 661, and a guide rod 1 663 is fixedly arranged between the two fixed rods 1 662. Two fixed rods 2 664 are fixedly arranged on the top of the other fixed plate 661, and a guide rod 2 665 is provided between the two fixed rods 2 664.
[0039] As a further technical solution for implementing this solution, one of the fixing rods 662 at the bottom is at the same height as the guide rod 2 665 .
[0040] As a technical solution for further implementation of this scheme, two placement racks 111 are fixedly provided at one end of the immersion tank 1. The top ends of the two placement racks 111 are rotatably matched with placement rollers 112. The surface of the placement rollers 112 is wrapped with a fiber cloth base layer 301.
[0041] As a technical solution for further implementing this solution, a discharge rod 113 is fixedly provided on the top of one side of the two placement racks 111, and the discharge rod 113 corresponds to the guide rod 1 663 up and down.
[0042] S1: Before processing, the fiber cloth base layer 301 to be processed is installed in place. The fiber cloth base layer 301 is placed on the surface of the second roller 112, passes above the discharge rod 113, and then passes under the second guide rod 665. It then passes over the top of the second top guide rod 665 and passes between the first connecting roller 52 and the second connecting roller 54. One end of the fiber cloth base layer 301 is connected to the winding roller of the winding machine 2.
[0043] S2: The outer surface of the fiber cloth base layer 301 is wrapped with a softening layer 302. Before processing, an appropriate amount of softening agent material and polyurethane material are added to the interior of the immersion tank 1. The air after heat treatment by the hot air blower 62 is transported to the air storage box 64 through a portion of the connecting pipe 63. The air storage box 64 is made of corrosion-resistant metal material and can heat the softening agent material and polyurethane material. The gas is discharged through a number of nozzles 651. This process can accelerate the flow of liquid and fully integrate the softening agent material and the polyurethane material. When the fiber cloth base layer 301 passes through the interior of the immersion tank 1, the outer wrapping softening layer 302 fully wraps the fiber cloth base layer 301;
[0044] S3: Pre-treating the silicone layer 303 of the flexible glass fiber cloth body 3. The silicone layer 303 passes under two auxiliary rollers 6771 so that the silicone layer 303 can fully contact the heat conduction plate 672 during transportation. The remaining air after heat treatment by the hot air blower 62 is transported to the air injection box 674 through the connecting pipe 63 and then to the plurality of heat conduction pipes 673. The heat conduction plate 672 is made of metal material with good thermal conductivity, thereby achieving heating and softening treatment of the silicone layer 303.
[0045] S4: The fiber cloth base layer 301 and the silicone layer 303 are subjected to heat pressing treatment to form a flexible glass fiber cloth body 3. The fiber cloth base layer 301 and the silicone layer 303 wrapped with the softening layer 302 are overlapped between the first connecting roller 52 and the second connecting roller 54. The small motor 571 provides power for the conveying process, driving the pulley 1 572 to rotate, and driving the pulley 2 573 to rotate with the cooperation of the belt, thereby realizing the rotation of the first connecting roller 52. The two gears 55 are engaged and connected, so that the second connecting roller 54 rotates in the opposite direction to the first connecting roller 52. The annular heating tube 53 fully heats the first connecting roller 52, so that the silicone layer 303 covers the surface of the fiber cloth base layer 301 to form a protection. A plastic protective film is provided on the upper surface of the silicone layer 303 to prevent the silicone layer 303 from adhering to the surface of the first connecting roller 52. It can be torn off before use without affecting subsequent use.
[0046] This article uses specific examples to illustrate the principles and implementation methods of the present invention. The above examples are only used to help understand the method of the present invention and its core ideas. The above is only a preferred implementation method of the present invention. It should be pointed out that due to the limitations of textual expression, there are objectively infinite specific structures. For ordinary technicians in this technical field, without departing from the principles of the present invention, they can make several improvements, modifications or changes, and can also combine the above technical features in an appropriate manner; these improvements, modifications, changes or combinations, or the direct application of the inventive concept and technical solution to other occasions without improvement, should be regarded as the scope of protection of the present invention.
Claims
1. A flexible fireproof glass fiber cloth processing equipment for preventing new energy vehicles from spontaneous combustion, comprising a dipping tank (1) and a winder (2), characterized in that: The winding roller of the winding machine (2) is wound with a flexible glass fiber cloth body (3), a processing table (4) is fixedly provided between the immersion tank (1) and the winding machine (2), and a hot pressing component (5) for pressing the flexible glass fiber cloth body (3) is fixedly provided on the surface of the processing table (4); The flexible glass fiber cloth body (3) comprises a fiber cloth base layer (301), a softening layer (302) and a silicone layer (303); the fiber cloth base layer (301) is wrapped with the softening layer (302) on the outside; the silicone layer (303) is bonded to the surface of the fiber cloth base layer (301); the softening layer (302) is made by mixing a softening agent material and a polyurethane material; the silicone layer (303) is made of a silicone material; and a covering component (6) for processing the softening layer (302) is provided inside the immersion tank (1); The covering assembly (6) includes a connecting platform (61), the connecting platform (61) is fixedly arranged at the bottom end of one side of the immersion tank (1), a hot air blower (62) is fixedly provided on the upper surface of the connecting platform (61), a connecting pipe (63) is provided at the air outlet end of the hot air blower (62), an air storage box (64) for heating the softening layer (302) is provided at the bottom end of the connecting pipe (63) through an air inlet pipe (641), a plurality of evenly spaced air outlet pipes (65) are fixedly provided on the upper surface of the air storage box (64), and a nozzle for accelerating the mixing of the softening layer (302) is fixedly provided at the top end of the air outlet pipe (65). (651), a one-way valve (652) is fixedly provided in the middle of the air outlet pipe (65), a support assembly (66) is provided on the outside of the connecting platform (61), a preheating assembly (67) for pre-treating the silica gel layer (303) is fixedly provided on the top of the immersion tank (1), the preheating assembly (67) includes a bracket (671), a heat conducting plate (672) is provided inside the bracket (671), a plurality of evenly spaced heat conducting pipes (673) are provided inside the heat conducting plate (672), a gas injection box (674) is fixedly provided at one end of the heat conducting pipe (673), and the gas injection box (674) One side of the heat pipe (673) is fixedly connected to the top of the connecting pipe (63), the other end of the heat pipe (673) is fixedly provided with an air outlet box (675), one side of the air outlet box (675) is fixedly provided with an exhaust pipe (676), the middle part of the exhaust pipe (676) is fixedly provided with an exhaust valve, the top of the connecting pipe (63) is fixedly provided with a regulating valve for regulating the flow, the surface of the bracket (671) is provided with a conveying mechanism (677), the hot pressing assembly (5) includes a support frame (51), the top of the inner wall of the support frame (51) is rotatably provided with a first connecting roller (52), the inner part of the first connecting roller (52) is fixed An annular heating tube (53) is fixedly provided, and a second connecting roller (54) is rotatably provided at the bottom of the inner wall of the support frame (51), and the first connecting roller (52) corresponds to the second connecting roller (54) in upper and lower positions. One end of the first connecting roller (52) and one end of the second connecting roller (54) are fixedly connected to a gear (55), and the two gears (55) are meshedly connected. A conductive slip ring (56) is fixedly provided on one side of the support frame (51), and a transmission shaft of the conductive slip ring (56) is fixedly connected to the other end of the first connecting roller (52). A power assembly (57) is fixedly provided on the top of the support frame (51).
2. The flexible fireproof glass fiber cloth processing equipment for preventing spontaneous combustion of new energy vehicles according to claim 1 is characterized in that: The conveying mechanism (677) includes two auxiliary rollers (6771), and the two auxiliary rollers (6771) are rotatably arranged on both sides of the top of the bracket (671). Two placement racks (6772) are fixedly provided on one side of the bracket (671), and the tops of the two placement racks (6772) are rotatably matched with placement rollers (6773) for placing the silicone layer (303).
3. The flexible fireproof glass fiber cloth processing equipment for preventing spontaneous combustion of new energy vehicles according to claim 2 is characterized in that: The power assembly (57) includes a small motor (571), a drive shaft of the small motor (571) is fixedly provided with a pulley 1 (572), a pulley 2 (573) is fixedly provided between the first connecting roller (52) and the corresponding gear (55), and the pulley 1 (572) and the pulley 2 (573) are connected via a belt transmission.
4. The flexible fireproof glass fiber cloth processing equipment for preventing spontaneous combustion of new energy vehicles according to claim 3 is characterized in that: The support assembly (66) includes two fixing plates (661), and the two fixing plates (661) are fixedly arranged at both ends of the air storage box (64), respectively. Two fixing rods (662) are fixedly arranged on the top of one of the fixing plates (661), and a guide rod (663) is fixedly arranged between the two fixing rods (662). Two fixing rods (664) are fixedly arranged on the top of the other fixing plate (661), and a guide rod (665) is fixedly arranged between the two fixing rods (664).
5. The flexible fireproof glass fiber cloth processing equipment for preventing spontaneous combustion of new energy vehicles according to claim 4 is characterized in that: One of the fixing rods (662) at the bottom is at the same height as the guide rod (665).
6. The flexible fireproof glass fiber cloth processing equipment for preventing spontaneous combustion of new energy vehicles according to claim 5 is characterized in that: Two placement racks (111) are fixedly provided at one end of the immersion tank (1), and the top ends of the two placement racks (111) are rotatably coupled with placement rollers (112), and the surfaces of the placement rollers (112) are wound with a fiber cloth base layer (301).
7. The flexible fireproof glass fiber cloth processing equipment for preventing spontaneous combustion of new energy vehicles according to claim 6 is characterized in that: A feeding rod (113) is fixedly provided on the top of one side of the two placement racks (111), and the feeding rod (113) corresponds to the guide rod (663) in the upper and lower parts.
8. A method for using a flexible fireproof glass fiber cloth processing equipment for preventing spontaneous combustion of new energy vehicles according to claim 7, characterized in that: The following steps are included: S1: Before processing, the fiber cloth base layer (301) to be processed is installed and positioned, and the fiber cloth base layer (301) is placed on the surface of the second roller (112), passes above the discharge rod (113), and then passes from the bottom of the second guide rod (665), and passes around the top of the second top guide rod (665), and then passes between the first connecting roller (52) and the second connecting roller (54), and one end of the fiber cloth base layer (301) is connected to the winding roller of the winding machine (2); S2: The outer surface of the fiber cloth base layer (301) is wrapped with a softening layer (302). Before processing, an appropriate amount of a softening agent material and a polyurethane material are added to the interior of the immersion tank (1). The air after heat treatment by the hot air blower (62) is transported to the air storage box (64) through a portion of the connecting pipe (63). The air storage box (64) is made of a corrosion-resistant metal material and can heat the softening agent material and the polyurethane material. The gas is discharged through a plurality of nozzles (651). This process can accelerate the flow of the liquid and fully integrate the softening agent material and the polyurethane material. When the fiber cloth base layer (301) passes through the interior of the immersion tank (1), the outer wrapping softening layer (302) fully wraps the fiber cloth base layer (301); S3: Pre-treating the silicone layer (303) of the flexible glass fiber cloth body (3). The silicone layer (303) passes under two auxiliary rollers (6771) so that the silicone layer (303) can fully contact the heat conduction plate (672) during the transportation process. The other part of the air after heat treatment by the hot air blower (62) is transported to the air injection box (674) through the connecting pipe (63) and then transported to several heat conduction pipes (673). The heat conduction plate (672) is made of metal material and has good thermal conductivity, so as to achieve heating and softening treatment of the silicone layer (303); S4: The fiber cloth base layer (301) and the silicone layer (303) are subjected to heat pressing to form a flexible glass fiber cloth body (3). The fiber cloth base layer (301) and the silicone layer (303) wrapped with the softening layer (302) are overlapped between the first connecting roller (52) and the second connecting roller (54). The small motor (571) provides power for the conveying process, and drives the pulley 1 (572) to rotate, and drives the pulley 2 (573) to rotate with the cooperation of the belt, so as to realize the first connecting roller. The rotation of the second connecting roller (54) is connected by meshing between the two gears (55), so that the rotation direction of the second connecting roller (54) is opposite to that of the first connecting roller (52). The annular heating tube (53) fully heats the first connecting roller (52) so that the silicone layer (303) covers the surface of the fiber cloth base layer (301) to form a protection. A plastic protective film is provided on the upper surface of the silicone layer (303) so that the silicone layer (303) does not adhere to the surface of the first connecting roller (52). It is torn off before use.
Citation Information
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