Environment-friendly and emission-reducing combined machining equipment
By collecting exhaust gas in the composite processing equipment and using the pushing mechanism and jitter device, the problem of failure to effectively utilize the exhaust gas is solved, and energy consumption is reduced and production efficiency is improved.
Patent Information
- Application Number
- CN202510432656.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-08
- Publication Date
- 2025-05-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The exhaust gas generated by existing composite fabric processing equipment during the composite process cannot be effectively utilized, resulting in increased energy consumption and the fixing process of the traction cloth is cumbersome and time-consuming.
An environmentally friendly emission reduction composite processing equipment is designed to collect waste gas through the gas collection device, and the exhaust gas is used to push the clamping block and shake the composite fabric by using the pushing mechanism and shaking device to realize the recycling of waste gas.
It effectively reduces energy consumption, simplifies the traction process of grey fabrics, improves production efficiency, and reduces environmental pollution through exhaust gas treatment equipment.
Smart Images

Figure CN120039018A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of composite fabrics, and more specifically, it relates to an environmentally friendly emission reduction composite processing device. Background Art
[0002] A fabric laminating machine is a machine used for laminating fabrics and linings, which bonds the surface and lining layers together by hot pressing. This machine plays an important role in garment processing enterprises and is one of the key devices for improving product added value and economic benefits.
[0003] The working principle of the fabric laminating machine is mainly based on hot pressing technology. During the lamination process, the fabric enters the hot pressing device through the coiling device. Through the hot pressing effect of high temperature and high pressure, the fibers between the fabrics are melted and combined together. After hot pressing, the laminated fabric is cooled down, and then the continuous laminated fabric is wound up by the winding device to form a continuous composite body of a certain length. Energy consumption occurs during both the hot pressing and cooling processes. The hot pressing temperature needs to reach the set value to ensure the stability of the connection between the film and the fabric. Cooling is also for the sake of the lamination quality to avoid the problem that the film and the base fabric are still in a high temperature state when the composite body is wound up, resulting in adhesion after winding and affecting the quality. When the film and chemical fiber fabric are hot pressed, the high temperature environment causes chemical substances in the film and chemical fiber fabric to change and generate some organic waste gases. In the prior art, the waste gases are filtered and cleaned before being discharged. Although it will reduce the environmental pollution caused by the waste gases, the direct discharge of the waste gases increases energy consumption. At the same time, when the laminating machine laminates the fabric, a traction cloth needs to be fixed in front of the fabric to be processed to connect the fabric to the winding roller. The process of connecting the traction cloth is cumbersome, time-consuming and laborious. Therefore, a structure is needed to achieve the purpose of efficiently utilizing waste gases.
[0004] Therefore, a new solution needs to be proposed to solve this problem. Summary of the Invention
[0005] Aiming at the deficiencies existing in the prior art, the purpose of the present invention is to provide an environmentally friendly emission reduction composite processing device.
[0006] The above technical object of the present invention is achieved through the following technical solutions: An environmentally friendly emission reduction composite processing device, including a composite frame. On the composite frame, a greige cloth roller, a film roller, a pressure roller, and a winding roller are successively arranged in a rotationally connected manner along the fabric conveying direction. A gas collecting device is fixedly connected to the composite frame. Symmetrically arranged sliding tracks are fixedly connected to both sides of the composite frame. The cross-sectional shape of the sliding track is set to an irregular wave shape. One end of the sliding track corresponds to the axis of the greige cloth roller, and the other end corresponds to the axis of the winding roller. A clamping block for clamping the movable end of the greige cloth is slidably connected to the sliding track. A pushing mechanism is arranged at one end of the sliding track close to the greige cloth roller. The output end of the gas collecting device is internally connected to the pushing mechanism. When waste gas fills the pushing mechanism, the pushing mechanism pushes the clamping block to slide along the sliding track. A shaking device is arranged at one end of the sliding track close to the winding roller. The pushing mechanism and the shaking device are connected through an air duct. The output end of the shaking device slides up and down with the change of the gas content inside it. An exhaust gas transmission pipeline is connected to the shaking device. The other end of the exhaust gas transmission pipeline is connected to an exhaust gas treatment device.
[0007] The present invention is further arranged as follows: The sliding track includes a first sliding section and a second sliding section. The first sliding section is arranged on the side close to the greige cloth roller. The distance between the two ends of the first sliding section is equal to the distance between the two ends of the second sliding section. The height of the first sliding section is twice the height of the second sliding section.
[0008] The present invention is further arranged as follows: The pushing mechanism includes a receiving box and a pushing rod. The pushing rod is slidably connected in the receiving box and one end of the pushing rod passes out of the receiving box. The end of the pushing rod located inside the receiving box divides the receiving box into a deformation area and a release area. A spring that abuts against the side wall of the pushing rod is arranged in the deformation area. A through groove one for inserting the output end of the gas collecting device is opened on the top surface of the release area. A through groove two with a diameter smaller than that of the through groove one is opened on the side wall of the release area. The air duct is fixedly connected to the inner wall of the through groove two.
[0009] The present invention is further arranged as follows: A shielding plate is rotatably connected to the outer side wall of the receiving box. A torsion spring is arranged at the rotational connection of the shielding plate and the receiving box. The elastic force of the torsion spring is greater than the elastic force of the spring.
[0010] The present invention is further configured as follows: The jitter device includes a temporary storage chamber and a sliding chamber. The gas transmission pipe is communicated with the temporary storage chamber. One side of the temporary storage chamber close to the sliding chamber is provided with a first circulation hole, a second circulation hole, and an exhaust hole located between the first circulation hole and the second circulation hole. A communication box is slidably connected in the temporary storage chamber. The communication box alternately connects the first circulation hole and the exhaust hole in series, and the second circulation hole and the exhaust hole in series. A connecting rod is fixedly connected to the top surface of the communication box. A first driving rod and a second driving rod are rotatably connected to the side wall of the connecting rod close to the sliding chamber. A sliding rod that alternately and intermittently abuts against the first driving rod and the second driving rod is slidably connected in the sliding chamber. The sliding direction of the sliding rod is controlled by the gas volume at both ends in the sliding chamber. One end of the waste gas transmission pipe far from the waste gas treatment device is fixedly connected to the side wall of the exhaust hole.
[0011] The present invention is further configured as follows: The sliding chamber is divided into a first gas chamber and a second gas chamber by a partition plate. The first circulation hole is communicated with the first gas chamber through a first connecting pipe. The second circulation hole is communicated with the second gas chamber through a second connecting pipe. The sliding rod is fixedly connected to the partition plate. One end of the sliding chamber close to the first gas chamber is provided with a sliding groove for slidably connecting the sliding rod. A linkage rod that alternately and intermittently abuts against the first driving rod and the second driving rod is fixedly connected to the side wall of the sliding rod.
[0012] The present invention is further configured as follows: A fixing block is fixedly connected to one end of the sliding rod far from the sliding chamber. The cross-sectional shape of the fixing block is C-shaped, and the parts of the top surface and the bottom surface of the fixing block close to the connection area are arched. A plurality of symmetrically arranged rollers are rotatably connected to the side wall of the fixing block far from the connection area.
[0013] The present invention is further configured as follows: The clamping block is made of a metal material. A clamping groove is provided on the side wall of the winding roller close to the end. A magnetic attraction sheet is fixedly connected in the clamping groove. When the clamping block is fixed in the clamping groove, the side wall of the clamping block coincides with the side wall of the winding roller close to the end.
[0014] In summary, the present invention has the following beneficial effects: The waste gas generated during the composite process is transmitted to the pushing mechanism. The pushing mechanism applies a thrust to the clamping block that clamps the base fabric, causing it to slide along the sliding track. The sliding track set in an irregular wavy shape ensures that the clamping block can slide along the sliding track after receiving an initial acting force, completing the traction process of the base fabric. At the same time, the excess waste gas is also transmitted to the jitter device. The output end of the jitter device clamps the side edge of the composite fabric. As the output end of the jitter device slides up and down, it drives the composite fabric to deform and jitter, accelerating the diffusion speed of the heat on the composite fabric. When the composite fabric is wound up, it is within the normal temperature range. The waste gas used by the jitter device is then transmitted to the waste gas treatment device for treatment, realizing the recycling of waste gas and reducing energy consumption. Description of the Drawings
[0015] Figure 1 is a schematic structural diagram of the present invention; Figure 2 is a schematic structural diagram of the pushing mechanism in the present invention; Figure 3 is a cross-section of the pushing mechanism in the present invention Figure 1 ; Figure 4 is a cross-section of the pushing mechanism in the present invention Figure 2 ; Figure 5 is a schematic structural diagram of the jitter device in the present invention; Figure 6 is a cross-section of the jitter device in the present invention Figure 1 ; Figure 7 is Figure 6 an enlarged schematic diagram at position A in; Figure 8 is Figure 6 an enlarged schematic diagram at position B in; Figure 9 is Figure 6 an enlarged schematic diagram at position C in; Figure 10 is a cross-section of the jitter device in the present invention Figure 2 .
[0016] In the figure: 1. Composite frame; 2. Blank fabric roller; 3. Film roller; 4. Pressure roller; 5. Winding roller; 6. Gas collecting device; 7. Sliding track; 8. Pushing mechanism; 9. Jitter device; 10. Air delivery pipe; 11. Exhaust gas transmission pipeline; 12. Exhaust gas treatment equipment; 13. Accommodating box; 14. Pushing rod; 15. Deformation area; 16. Release area; 17. Spring; 18. Through groove one; 19. Through groove two; 20. Torsion spring; 21. Temporary storage room; 22. Sliding room; 23. Circulation hole one; 24. Circulation hole two; 25. Exhaust hole; 26. Connecting box; 27. Connecting rod; 28. Driving rod one; 29. Driving rod two; 30. Sliding rod; 31. Air chamber one; 32. Air chamber two; 33. Partition board; 34. Linking rod; 35. Fixed block; 36. Roller. Specific embodiments
[0017] The present invention will be described in detail below with reference to the drawings and embodiments.
[0018] An environmentally friendly emission reduction composite processing device, as Figure 1As shown in the figure, a composite fabric is formed by processing with this processing equipment. The composite fabric includes a base layer and a composite layer. A number of breathable holes are integrally woven on the base layer by means of a porous weave. The composite layer is set as a waterproof and breathable membrane, which has a breathable effect while achieving a waterproof effect. The breathable holes on the base layer also have a breathable effect, making the manufactured clothes more comfortable to wear, and its waterproof effect is more in line with the outdoor use scenario. This processing equipment has low energy consumption and low production cost, but can also ensure its composite effect. And a shaking device 9 is arranged at a position close to the winding roller 5 of the composite processing equipment to accelerate the heat dissipation speed of the composite fabric, so that the wound composite fabric is in a state of lower temperature, preventing the adhesion of the composite fabric due to excessive temperature.
[0019] As Figure 1 shown, it includes a composite frame 1. A base fabric roller 2, a film roller 3, a pressure roller 4 and a winding roller 5 are successively arranged on the composite frame 1 in a rotatable connection along the fabric conveying direction. The processed base fabric is wound and collected on the base fabric roller 2. The film roller 3 is used to wind the film to be composite. The pressure roller 4 performs secondary reinforcement on the base fabric and the film for hot pressing and composite, improving the stability of the connection between the base fabric and the film. The winding roller 5 performs composite processing on the composite completed base fabric and film.
[0020] As Figure 1 shown, an air collecting device 6 is fixedly connected to the composite frame 1. Symmetrically arranged sliding tracks 7 are fixed on both sides of the composite machine by bolts. The cross-sectional shape of the sliding track 7 is set as an irregular wave shape. The sliding track 7 includes a first sliding section and a second sliding section. The first sliding section is arranged on the side close to the base fabric roller 2. The distance between the two ends of the first sliding section is equal to the distance between the two ends of the second sliding section. A clamping block for clamping the movable end of the base fabric is slidably connected to the sliding track 7. The height of the first sliding section is twice that of the second sliding section. The slope of the first sliding section is relatively small and the height is relatively high, applying an initial thrust to the clamping block slidably connected to the sliding track 7. The thrust pushes the clamping block to slide to the highest point of the first sliding section and then slides down along the downhill of the first sliding section under the action of gravity. An acceleration will also be continuously generated during the sliding process of the clamping block, giving a thrust to the clamping block to slide to the highest point of the second sliding section. Since the height of the second sliding section is only half of the height of the first sliding section, the force required to slide to the highest point of the second sliding section is less than the force required to slide to the highest point of the first sliding section, ensuring that it can slide to the highest point of the second sliding section in addition to the friction during the sliding process of the clamping block along the sliding track 7. After passing over the highest point of the second sliding section, the acting force generated by gravity and acceleration enables it to slide stably to the winding roller 5, completing the traction process of the movable end of the base fabric on the base fabric roller 2.
[0021] As Figure 1As shown in the figure, one end of the sliding track 7 corresponds to the axis of the blank fabric roller 2, and the other end corresponds to the axis of the winding roller 5. The highest point of the first sliding section is correspondingly arranged with the hot pressing mechanism of the composite processing equipment, and the highest point of the second sliding section is correspondingly arranged with the upper top surface of the pressure roller 4. The movable end of the film on the film roller 3 is located directly below the hot pressing mechanism in the initial state. When the clamping block pulls the movable end of the blank fabric to slide to the highest point of the first sliding section, the hot pressing mechanism presses down to composite the film and the blank fabric together. Subsequently, the clamping block continues to pull the composite blank fabric and film to slide along the sliding track 7. It is defined that the height of the second sliding section is higher than that of the pressure roller 4, so that the clamping block pulls the composite fabric to slide above the pressure roller 4. Finally, the composite fabric is pulled to slide in the direction of the winding roller 5. Subsequently, the composite work is carried out normally with the rotation of the winding roller 5. By replacing the traction cloth with the clamping block, only by clamping and fixing both sides of the blank fabric in the clamping block, the blank fabric can be pulled to displace along the sliding track 7, thus improving the production efficiency.
[0022] As Figure 1 shown, the clamping block is made of metal. A clamping groove is provided on the side wall of the winding roller 5 near the end. A magnetic attraction sheet is fixedly connected in the clamping groove. When the clamping block is fixed in the clamping groove, the side wall of the clamping block coincides with the side wall of the winding roller 5 near the end. The clamping block includes two metal sheets with deformability fixed at one end, and rolling blocks are welded on the fixed sections of the two metal sheets. The cross-sectional shape of the rolling block is a cylinder. The setting of the cylinder reduces the friction between the clamping block and the sliding track 7 and reduces the energy loss. The magnetic attraction sheet in the clamping groove can, on the one hand, fix the clamping block so that the composite fabric can be stably fixed on the winding roller 5, and on the other hand, the magnetic attraction sheet can apply a magnetic attraction force to the metal clamping block. When the clamping block slides close to the winding roller 5, there may be a situation where the energy loss ends and it stops. In this state, the magnetic attraction force of the magnetic attraction sheet pulls the clamping block to continue sliding until it is clamped in the winding roller 5, completing the traction process of the blank fabric.
[0023] As Figures 1 - 4 shown, a pushing mechanism 8 is arranged at one end of the sliding track 7 close to the blank fabric roller 2. The output end of the gas collecting device 6 is communicated with the inside of the pushing mechanism 8. The gas collecting device 6 includes a gas collecting hood and a connecting pipe. The length of the gas collecting hood is equal to the width of the composite processing equipment, collecting waste gas in as large a range as possible. The connecting pipe is communicated with the release area 16 of the accommodating box 13. When the waste gas fills the pushing mechanism 8, the pushing mechanism 8 pushes the clamping block to slide along the sliding track 7. The collected waste gas is converted into kinetic energy applied to the clamping block through the pushing mechanism 8, realizing the reuse of the waste gas.
[0024] As Figures 1 - 4As shown, the pushing mechanism 8 includes a receiving box 13 and a pushing rod 14. The cross-sectional shape of the pushing rod 14 is T-shaped. The pushing rod 14 is slidably connected inside the receiving box 13 and one end of the pushing rod 14 passes out of the receiving box 13. The end of the pushing rod 14 inside the receiving box 13 divides the receiving box 13 into a deformation area 15 and a release area 16. A spring 17 that abuts against the side wall of the pushing rod 14 is arranged in the deformation area 15. A through groove one 18 for inserting the output end of the gas collecting device 6 is provided on the top surface of the release area 16. A through groove two 19 with a diameter smaller than that of the through groove one 18 is provided on the side wall of the release area 16. The air delivery pipe 10 is fixedly connected to the inner wall of the through groove two 19. A baffle is rotatably connected to the outer side wall of the receiving box 13. A torsion spring 20 is arranged at the rotational connection between the baffle and the receiving box 13. The elastic force of the torsion spring 20 is greater than that of the spring 17.
[0025] As Figures 1 - 4 shown, the connecting pipe of the gas collecting device 6 is inserted into the release area 16. As the waste gas continues to be input, it preferentially drives the pushing rod 14 to slide in the direction of the deformation area 15, squeezing the spring 17 to undergo compressive deformation. When the spring 17 is compressed to the deformation limit, the waste gas in the release area 16 pushes the baffle to rotate around the rotation axis, and the torsion spring 20 undergoes torsional deformation, so that the excess waste gas is discharged along the through groove two 19. When the machine stops, the closing piece at the pipe of the gas collecting device 6 is blocked inside the pipe, and the air in the release area 16 is in a relatively sealed state. At this time, the spring 17 is always in a compressed state. When the machine is started, at the moment when the closing piece on the gas collecting device 6 loses its blocking effect on the connecting pipe, the air in the release area 16 is released into the connecting pipe. After the acting force exerted on the spring 17 by the air in the release area 16 is lost, the pushing rod 14 slides under the restoring force of the spring 17 and passes out of the release area 16, applying an initial thrust to the clamping block to make it slide along the sliding track 7, ensuring the stable sliding of the clamping block to pull the blank fabric to slide to the winding roller 5.
[0026] As Figure 1 、 Figures 5 - 10 shown, a jitter device 9 is provided at one end of the sliding track 7 close to the winding roller 5. The pushing mechanism 8 is communicated with the jitter device 9 through the air delivery pipe 10. The output end of the jitter device 9 slides up and down with the change of the gas content inside it. The jitter device 9 is located between the pressure roller 4 and the winding roller 5. The side walls of the composite fabric are respectively arranged in two opposite jitter devices 9. As the output end of the jitter device 9 slides up and down, it drives the jitter of the composite fabric, increasing the contact area between the composite fabric and the air and accelerating the flow rate of the gas around the composite fabric after jitter. The heat in the composite fabric exchanges heat with the air, accelerating the cooling rate of the composite heat.
[0027] As Figure 1 、 Figures 5 - 10As shown, the jitter device 9 includes a temporary storage chamber 21 and a sliding chamber 22. The air delivery pipe 10 is communicated with the temporary storage chamber 21. A first circulation hole 23, a second circulation hole 24 and an exhaust hole 25 located between the first circulation hole 23 and the second circulation hole 24 are provided on one side of the temporary storage chamber 21 close to the sliding chamber 22. A communication box 26 is slidably connected in the temporary storage chamber 21. The communication box 26 alternately connects the first circulation hole 23 and the exhaust hole 25 in series, and the second circulation hole 24 and the exhaust hole 25 in series. A connecting rod 27 is welded to the top surface of the communication box 26. A first driving rod 28 and a second driving rod 29 are rotatably connected to the side wall of the connecting rod 27 close to the sliding chamber 22. A sliding rod 30 that alternately and intermittently abuts against the first driving rod 28 and the second driving rod 29 is slidably connected in the sliding chamber 22. The sliding direction of the sliding rod 30 is controlled by the gas volume at both ends in the sliding chamber 22. One end of the waste gas transmission pipe 11 far from the waste gas treatment device 12 is fixedly connected to the side wall of the exhaust hole 25. The sliding chamber 22 is separated into a first gas chamber 31 and a second gas chamber 32 by a partition plate 33. The first circulation hole 23 is communicated with the first gas chamber 31 through a first connecting pipe. The second circulation hole 24 is communicated with the second gas chamber 32 through a second connecting pipe. The sliding rod 30 is fixedly connected to the partition plate 33. A sliding groove for slidably connecting the sliding rod 30 is provided at one end of the sliding chamber 22 close to the first gas chamber 31. A linkage rod 34 that alternately and intermittently abuts against the first driving rod 28 and the second driving rod 29 is fixedly connected to the side wall of the sliding rod 30.
[0028] As Figure 1 , Figures 5 - 10As shown, the gas pipeline 10 conveys the redundant gas in the accommodation box 13 to the temporary storage chamber 21. When the communication box 26 slides in the temporary storage chamber 21, it will alternately block the first through hole 23 and the exhaust hole 25, the second through hole 24 and the exhaust hole 25. When the communication box 26 slides to block the first through hole 23 and the exhaust hole 25, the gas in the temporary storage chamber 21 will be conveyed into the second gas chamber 32. With the continuous injection of gas into the second gas chamber 32, the gas in the second gas chamber 32 pushes the partition plate 33 to slide upward in the sliding chamber 22. Thus, the partition plate 33 drives the sliding rod 30 to slide upward, and further drives the clamped composite fabric to deform upward. With the continuous sliding of the sliding rod 30, the driving rod 1 28 away from the connecting rod 27 is pushed to rotate away from the communication box 26 through the linkage rod 34. Therefore, the end of the driving rod 1 28 close to the connecting rod 27 is driven to rotate toward the communication box 26. The driving rod 1 28 pushes the communication box 26 to slide downward through the connecting rod 27, so that the first through hole 23 is gradually communicated with the temporary storage chamber 21. At the same time, the communication chamber gradually blocks the second through hole and the exhaust hole 25. The gas in the temporary storage chamber 21 is all conveyed into the first gas chamber 31 through the first through hole 23. The gas in the first gas chamber 31 pushes the partition plate 33 to slide downward, so as to drive the clamped composite fabric to slide downward through the sliding rod 30. The composite fabric shakes during the upward and downward deformations, achieving the purpose of cooling. When the partition plate 33 slides, it squeezes the gas in the second gas chamber 32 to flow into the communication box 26 and be discharged along the exhaust hole 25. The linkage rod 34 on the sliding rod 30 slides downward to abut against the end of the driving rod 2 29 away from the connecting rod 27, and continuously pushes the end of the driving rod 2 29 away from the connecting rod 27 to rotate downward. The end of the driving rod 2 29 close to the connecting rod 27 rotates upward to drive the communication box 26 to slide upward to block the first through hole and the exhaust hole 25. The gas in the temporary storage chamber 21 will repeat to enter the second gas chamber 32 along the second through hole 24, realizing the up and down sliding of the partition plate 33 and the sliding rod 30. During the frequent sliding of the sliding rod 30, the continuous shaking of the composite fabric is driven, further enhancing the utilization rate of waste gas.
[0029] As Figure 1 、 Figures 5 - 10 As shown, a fixing block 35 is fixedly connected to the end of the sliding rod 30 away from the sliding chamber 22. The cross-sectional shape of the fixing block 35 is C-shaped, and the top and bottom of the fixing block 35 near the connection area are arched. A plurality of symmetrically arranged rollers 36 are rotatably connected to the side wall of the fixing block 35 away from the connection area. The C-shaped better clamps the edge of the composite fabric, and the arched part allows the clamping block to pass through. The clamping block drives the composite fabric into the fixing block 35, making the process of clamping the composite fabric by the fixing block 35 more convenient. At the same time, the setting of the rollers 36 changes the sliding friction between the composite fabric and the fixing block 35 into rolling friction. The side wall of the roller 36 abuts against the cross-section of the composite fabric, reducing the wear of the composite fabric when sliding in the fixing block 35 and ensuring the integrity and durability of the composite fabric.
[0030] As Figure 1 , Figures 5 - 10 shown, an exhaust gas transmission pipeline 11 is connected to the jitter device 9. The other end of the exhaust gas transmission pipeline 11 communicates with the exhaust gas treatment device 12. The exhaust gas transmission pipeline 11 communicates with the exhaust hole 25. The exhaust gas discharged from the exhaust hole 25 enters the exhaust gas treatment device 12 through the exhaust gas transmission pipeline 11. The exhaust gas treatment device 12 uses a commonly used existing exhaust gas treatment machine, and the treated exhaust gas is then discharged into the air to reduce environmental pollution.
[0031] The above are only the preferred embodiments of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the idea of the present invention belong to the protection scope of the present invention. It should be noted that for those of ordinary skill in the art, several improvements and refinements made without departing from the principle of the present invention should also be regarded as within the protection scope of the present invention.
Claims
1. An environmentally friendly and emission-reducing composite processing equipment, comprising a composite frame (1), wherein a grey cloth roller (2), a film roller (3), a pressure roller (4) and a winding roller (5) are sequentially arranged on the composite frame (1) along the fabric conveying direction and are rotatably connected, characterized in that: The composite frame (1) is fixedly connected with an air collecting device (6), and symmetrically arranged sliding rails (7) are fixedly connected to both sides of the composite frame (1). The cross-sectional shape of the sliding rails (7) is arranged to be an irregular wave shape. One end of the sliding rails (7) corresponds to the axis of the grey cloth roller (2), and the other end corresponds to the axis of the winding roller (5). A clamping block for clamping the movable end of the grey cloth is slidably connected to the sliding rails (7). A pushing mechanism (8) is arranged at one end of the sliding rails (7) close to the grey cloth roller (2). The output end of the air collecting device (6) is connected to the pushing mechanism. (8) is internally connected. When the waste gas is filled into the pushing mechanism (8), the pushing mechanism (8) pushes the clamping block to slide along the sliding track (7). The sliding track (7) is provided with a shaking device (9) at one end close to the winding roller (5). The pushing mechanism (8) and the shaking device (9) are connected through an air pipe (10). The output end of the shaking device (9) slides up and down as the internal gas content thereof changes. The shaking device (9) is connected with a waste gas transmission pipe (11). The other end of the waste gas transmission pipe (11) is connected to the waste gas treatment equipment (12).
2. The environmental protection and emission reduction composite processing equipment according to claim 1, characterized in that: The sliding track (7) comprises a first sliding section and a second sliding section, the first sliding section is arranged on a side close to the grey cloth roller (2), the distance between the two ends of the first sliding section is equal to the distance between the two ends of the second sliding section, and the height of the first sliding section is twice the height of the second sliding section.
3. The environmental protection and emission reduction composite processing equipment according to claim 2 is characterized by: The pushing mechanism (8) comprises a containing box (13) and a pushing rod (14), wherein the pushing rod (14) is slidably connected in the containing box (13) and one end of the pushing rod (14) passes through the containing box (13), and the end of the pushing rod (14) located in the containing box (13) divides the containing box (13) into a deformation zone (15) and a release zone (16), wherein a spring (17) is arranged in the deformation zone (15) and abuts against the side wall of the pushing rod (14), and a through groove (18) is provided on the top surface of the release zone (16) for inserting the output end of the gas collecting device (6), and a through groove (2) (19) having a diameter smaller than that of the through groove (18) is provided on the side wall of the release zone (16), and the gas supply pipe (10) is fixedly connected to the inner wall of the through groove (2) (19).
4. The environmental protection and emission reduction composite processing equipment according to claim 3 is characterized by: A shielding plate is rotatably connected to the outer wall of the containing box (13), and a torsion spring (20) is provided at the rotatable connection between the shielding plate and the containing box (13), wherein the elastic force of the torsion spring (20) is greater than the elastic force of the spring (17).
5. The environmental protection and emission reduction composite processing equipment according to claim 3 is characterized by: The shaking device (9) comprises a temporary storage chamber (21) and a sliding chamber (22), the gas delivery pipe (10) is connected to the temporary storage chamber (21), a side of the temporary storage chamber (21) close to the sliding chamber (22) is provided with a flow hole 1 (23), a flow hole 2 (24) and an exhaust hole (25) located between the flow hole 1 (23) and the flow hole 2 (24), a connecting box (26) is slidably connected in the temporary storage chamber (21), and the connecting box (26) alternately connects the flow hole 1 (23) and the exhaust hole (25), the flow hole 2 (24) and the exhaust hole (25) in series, and the A connecting rod (27) is fixedly connected to the top surface of the connecting box (26), and a driving rod 1 (28) and a driving rod 2 (29) are rotatably connected to the connecting rod (27) on the side wall close to the sliding chamber (22). A sliding rod (30) is slidably connected in the sliding chamber (22) and alternately and intermittently abuts against the driving rod 1 (28) and the driving rod 2 (29). The sliding direction of the sliding rod (30) is controlled by the amount of gas at both ends of the sliding chamber (22). One end of the exhaust gas transmission pipe (11) away from the exhaust gas treatment device (12) is fixedly connected to the side wall of the exhaust hole (25).
6. The environmental protection and emission reduction composite processing equipment according to claim 5, characterized in that: The sliding chamber (22) is divided into an air chamber 1 (31) and an air chamber 2 (32) by a partition plate (33); the flow hole 1 (23) is connected to the air chamber 1 (31) by a connecting pipe 1; the flow hole 2 (24) is connected to the air chamber 2 (32) by a connecting pipe 2; the sliding rod (30) is fixedly connected to the partition plate (33); a sliding groove slidably connected to the sliding rod (30) is provided at one end of the sliding chamber (22) close to the air chamber 1 (31); and a link rod (34) is fixedly connected to the side wall of the sliding rod (30) and is alternately and intermittently abutted against the driving rod 1 (28) and the driving rod 2 (29).
7. The environmental protection and emission reduction composite processing equipment according to claim 5, characterized in that: One end of the sliding rod (30) away from the sliding chamber (22) is fixedly connected to a fixed block (35); the cross-sectional shape of the fixed block (35) is C-shaped, and the top and bottom surfaces of the fixed block (35) near the connection area are arched; the side wall of the fixed block (35) away from the connection area is rotatably connected to a plurality of symmetrically arranged rollers (36).
8. The environmental protection and emission reduction composite processing equipment according to claim 1, characterized in that: The clamping block is made of metal, and a clamping groove is provided on the side wall of the winding roller (5) near the end, and a magnetic attraction sheet is fixedly connected in the clamping groove. When the clamping block is fixed in the clamping groove, the side wall of the clamping block overlaps with the side wall of the winding roller (5) near the end.