Cloth processing waste gas treatment device
Through the combination of amplification, protection and installation devices, the problems of uneven mixing of waste gas and water mist in the exhaust gas treatment device, the spray head blockage and fluff wrapping fan are solved, and efficient waste gas treatment and device stability are achieved.
Patent Information
- Application Number
- CN202510981568.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-16
- Publication Date
- 2025-08-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the existing fabric processing waste gas treatment device, it is difficult to mix quickly with water mist, resulting in low processing efficiency, easy blockage of the spray head, easy sticky particles to affect suction, and easy wool to wrap the fan, leading to failure.
The amplification device is used to drive the wind wheel to rotate by driving the motor, generating a negative pressure zone to promote the mixing of waste gas and water mist, and scrape particles on the wind wheel blades through the scraper; the protective device separates particles through the intermittent spray head, and uses static absorption of fluff; the installation device conveniently replaces the groove plate with magnets.
The rapid mixing of exhaust gas and water mist is achieved, which avoids the spray head blockage and sticky particles of the wind wheel blades, prevents the fluff from wrapping the fan, and improves the processing efficiency and device stability.
Smart Images

Figure CN120479112A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cloth processing waste gas treatment devices, and in particular to a cloth processing waste gas treatment device. Background Art
[0002] The dyes used in the dyeing and printing processes of fabrics (such as reactive dyes and vat dyes) mostly exist in the form of particles or powder. Although most dyes will dissolve or fix on the fibers, there are still some dye particles that are not completely reacted or not firmly attached. They evaporate with water vapor during high-temperature steps such as drying and heat setting, forming solid particles suspended in the exhaust gas.
[0003] Patent announcement number CN214809498U is a waste gas treatment device for polyester fabric processing, which includes a treatment cylinder, wherein the treatment cylinder includes a cylinder body, an air inlet pipe is provided at the middle position of the left end of the cylinder body, the air inlet pipe is connected to the interior of the cylinder body, an air outlet pipe is provided at the upper right end of the cylinder body, the air outlet pipe is connected to the interior of the cylinder body, a connecting part is provided at the upper inner side of the cylinder body, the connecting part is provided below the air outlet pipe, four groups of adsorption mechanisms are detachably connected to the connecting part, and the adsorption mechanisms are evenly distributed along the circumference. When in use, water mist is first sprayed upward and then falls downward under the action of gravity, forming an upward and downward two-layer process of adsorbing large particles of impurities. Compared with the single-layer downward adsorption structure of the traditional rotary tower, it can more completely adsorb large particles of impurities in the exhaust gas, the adsorption is more comprehensive, and the treatment effect of large particles of impurities in the wastewater is better, effectively enhancing the practicality of the device.
[0004] However, in the above-mentioned fabric processing waste gas treatment device, the waste gas entering from the air inlet pipe does not immediately diffuse to the surrounding areas inside the treatment tube after entering the treatment tube, and the spray device provided in the equipment is dispersed around the tube wall along the treatment tube. Therefore, after entering the treatment tube, the waste gas is difficult to quickly mix with the water mist sprayed by the spray device, resulting in too little contact between the waste gas in the treatment tube and the water mist, and the treatment efficiency is slow. Summary of the Invention
[0005] In view of the shortcomings of the prior art, the present invention provides a cloth processing waste gas treatment device, which solves the problems raised in the above background technology.
[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: a fabric processing waste gas treatment device, comprising a treatment cylinder, an air inlet pipe is fixed to the side wall of the treatment cylinder, the air inlet pipe is communicated with the treatment cylinder, an exhaust pipe is fixed to the side wall of the treatment cylinder, the exhaust pipe is communicated with the treatment cylinder, a drain port is provided on the bottom surface of the treatment cylinder, an isolation layer is fixed to the inner wall of the treatment cylinder, an adsorption mechanism is passed through the isolation layer, and the penetration is threadedly connected, an active motor is fixed to the inner wall of the air inlet pipe, the output end of the active motor is fixedly connected to the fan through a bearing, an amplification device is provided inside the treatment cylinder for conveniently gathering the exhaust gas upward, a protective device is provided inside the treatment cylinder to prevent fluff from entering, a mounting device for convenient loading and unloading of the protective device is provided inside the air inlet pipe, a filter plate is passed through the treatment cylinder, and the penetration is slidably connected; Among them, the amplification device includes a drive motor, a rotating shaft, a wind wheel, a sleeve, a sliding sleeve, a sliding rod, a scraper and a reset spring. A support platform is fixed to the outer wall of the processing cylinder. The drive motor is fixedly connected to the upper surface of the support platform. The rotating shaft is fixedly connected to the output end of the drive motor. When the drive motor is started, it drives the rotating shaft to rotate.
[0007] According to the above technical solution, the wind wheel is fixedly connected to the end of the rotating shaft away from the driving motor through a bearing, the rotating shaft passes through the sleeve, and the penetration point is slidingly connected, the inner wall of the treatment cylinder is fixed with a connecting cylinder, the sleeve passes through the connecting cylinder, and the penetration point is fit, and when the rotating shaft rotates, it drives the wind wheel to rotate, so that the water mist and exhaust gas are accelerated to merge.
[0008] According to the above technical solution, the sleeve passes through the sliding sleeve and is fixedly connected at the penetration point, the sliding rod is fixedly connected to the side wall of the sliding sleeve, the sleeve passes through the back of the wind wheel and is slidably connected at the penetration point, and when the sliding rod rotates, it drives the sleeve to slide on the outer wall of the rotating shaft.
[0009] According to the above technical solution, the scraper is fixedly connected to the end of the sleeve away from the driving motor, the blades of the wind wheel pass through the scraper, and are slidably connected at the penetration point, one end of the reset spring is fixedly connected to the inner wall of the processing cylinder, and the other end of the reset spring is fixedly connected to the inner wall of the end of the sleeve away from the driving motor, and the sliding of the sleeve drives the scraper to scrape at the blades of the wind wheel.
[0010] According to the above technical solution, the protective device includes a spray head, a pressure ring, an extrusion cylinder, an extrusion block, a spring rod and a groove plate. The spray head is hinged to the inner wall of the treatment cylinder. An annular pipe is fixed to the inner wall of the treatment cylinder. The bottom of the spray head is connected to the annular pipe by a water pipe.
[0011] According to the above technical solution, a torsion spring is fixed at the hinge between the spray head and the annular pipe, one end of the torsion spring is fixedly connected to the upper surface of the annular pipe, and the other end of the torsion spring is fixedly connected to the side wall of the spray head. The pressure ring is slidably connected to the inner wall of the treatment cylinder, and the extrusion cylinder passes through the air inlet pipe and is slidably connected at the penetration point. When the pressure ring slides upward, it pushes the extrusion cylinder to slide in a direction away from the treatment cylinder.
[0012] According to the above technical solution, the extrusion block is slidably connected to the inner wall of the intake pipe, one end of the extrusion block away from the extrusion cylinder is fixedly connected to the return spring, the other end of the return spring is fixedly connected to the inner wall of the intake pipe, the spring rod is fixedly connected to the side wall of the extrusion block, the slot plate is slidably connected to the inner wall of the intake pipe, and the spring rod slides on the back of the slot plate to generate static electricity.
[0013] According to the above technical solution, the installation device includes a magnet, a combination block and an extrusion rod. The magnet passes through the upper end of the air intake pipe and is slidably connected at the penetration point. The combination block passes through the upper surface of the air intake pipe and is slidably connected at the penetration point. The extrusion rod is slidably connected to the inner wall of the air intake pipe. When the combination block slides, it pushes the extrusion block to slide away from the treatment cylinder.
[0014] The present invention provides a device for treating waste gas from cloth processing, which has the following beneficial effects: The exhaust gas of the present invention is sucked in by the exhaust fan, and the exhaust gas of the exhaust fan ...
[0015] 2. The present invention is provided with a protective device. When the exhaust gas is processed, the pressure ring is pushed downward by the rotation of the sliding rod, and the torsion spring is used to make the sprinkler head rotate intermittently. The impact force of the sprayed water mist is used to push out the particles that fall into the sprinkler head when the particles in the exhaust gas are separated and processed, thereby preventing the sprinkler head from accumulating too much particles that fall into the interior when the sprinkler head sprays upward for a long time and clogging the sprinkler head, solving the problem that the sprinkler head sprays water mist upward for a long time and is prone to particles falling into the interior and causing blockage; when the pressure ring slides upward, the pressure ring pushes the extrusion cylinder to slide, and the extrusion block and the return spring drive the spring rod to slide repeatedly on the back side of the slot plate, so that the spring rod and the slot plate rub against each other to generate static electricity, so that the slot plate adsorbs the fine fluff that cannot be intercepted on its surface, avoiding the fluff being rolled into the connection between the fan and the active motor by the fan, causing the fluff to be entangled on the fan and affecting its rotation, solving the problem that the fluff generated during cloth production is easily entangled on the fan when it is sucked into the intake pipe along with the exhaust gas, causing the fan to malfunction.
[0016] 3. The present invention is provided with an installation device. When the slot plate needs to be cleaned after long-term use, the combination block is pushed downward to move the magnets on both sides away from each other, and the extrusion rod is used to push the slot plate toward the air inlet of the air inlet pipe, so that the slot plate automatically slides to the air inlet for easy removal, solving the problem that the staff will be blocked by the air inlet pipe when putting their hands into the air inlet pipe to dismantle the slot plate, making it difficult to operate; after the slot plate is cleaned, the slot plate is aligned with the sliding groove on the inner wall of the air inlet pipe and pushed directly in. When the slot plate slides to the magnet, the magnets are pushed away from each other, and the suction force of the magnet itself is used to automatically reset, and the slot plate is limited, so that the slot plate is stably fixed on the inner wall of the air inlet pipe during operation, solving the problem that the slot plate is easily fallen off due to vibration during operation. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the full cross-sectional structure of the present invention; Figure 3 This is a schematic structural diagram of the amplifier device of the present invention; Figure 4 This is a schematic diagram of a half-section structure of an intake pipe according to the present invention; Figure 5 This is a schematic structural diagram of the protective device of the present invention; Figure 6 This is a schematic diagram of the full cross-section structure of the air intake pipe of the present invention; Figure 7 It is a schematic diagram of the structure of the installation device of the present invention.
[0018] In the figure: 1. treatment cylinder; 2. air inlet pipe; 3. exhaust pipe; 4. drain port; 5. active motor; 6. fan; 71. drive motor; 72. rotating shaft; 73. wind wheel; 74. sleeve; 75. sliding sleeve; 76. sliding rod; 77. scraper; 78. return spring; 81. sprinkler head; 82. pressure ring; 83. extrusion cylinder; 84. extrusion block; 85. spring rod; 86. slot plate; 91. magnet; 92. combination block; 93. extrusion rod; 10. filter plate. DETAILED DESCRIPTION
[0019] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0020] See also Figure 1-Figure 7 One embodiment of the present invention is: a fabric processing waste gas treatment device, including a treatment cylinder 1, an air inlet pipe 2 is fixed to the side wall of the treatment cylinder 1, the air inlet pipe 2 is connected to the treatment cylinder 1, an exhaust pipe 3 is fixed to the side wall of the treatment cylinder 1, the exhaust pipe 3 is connected to the treatment cylinder 1, a drain port 4 is opened on the bottom surface of the treatment cylinder 1, an isolation layer is fixed to the inner wall of the treatment cylinder 1, an adsorption mechanism is passed through the isolation layer, and the penetration is threaded, an active motor 5 is fixed to the inner wall of the air inlet pipe 2, and the output end of the active motor 5 is fixedly connected to the fan 6 through a bearing Next, the active motor 5 is started, and the fan 6 is driven to rotate through the bearing. The fan 6 rotates to extract air from the fabric processing device, and the exhaust gas generated by the fabric processing is drawn into the treatment tube 1. The interior of the treatment tube 1 is provided with an amplification device for conveniently gathering the exhaust gas upward. The filter plate 10 is penetrated by the treatment tube 1, and the penetration is slidably connected. By spraying clean water upward, the exhaust gas drawn into the treatment tube 1 is separated from the gas and particles by water mist. The water mist falls after rising to a high place, and the exhaust gas in the treatment tube 1 is wet-dust-removed again.
[0021] Among them, the amplification device includes a drive motor 71, a rotating shaft 72, a wind wheel 73, a sleeve 74, a sliding sleeve 75, a sliding rod 76, a scraper 77 and a reset spring 78. The outer wall of the treatment cylinder 1 is fixed with a support platform, the drive motor 71 is fixedly connected to the upper surface of the support platform, and the rotating shaft 72 is fixedly connected to the output end of the drive motor 71. When the drive motor 71 is started, the drive motor 71 drives the rotating shaft 72 to rotate. The wind wheel 73 is fixedly connected to the end of the rotating shaft 72 away from the drive motor 71 through a bearing. The rotation of the rotating shaft 72 drives the wind wheel 73 to rotate as well. The waste gas after the particles are separated is blown upward and discharged from the exhaust pipe 3 through the adsorption mechanism. The water droplets wrapped with the particles fall on the filter plate 10, and the filter plate 10 separates the particles from the water droplets. The droplets converge into a stream of water and flow out from the drain port 4. The rotating shaft 72 passes through the sleeve 74 and is slidably connected at the penetration point. When the rotating shaft 72 rotates, it also drives the sleeve 74 to rotate. The inner wall of the treatment cylinder 1 is fixed with a connecting cylinder. The sleeve 74 passes through the connecting cylinder and fits in the penetration point. The sleeve 74 passes through the sliding sleeve 75 and is fixedly connected at the penetration point. When the sleeve 74 rotates, the sliding sleeve 75 is also rotated. The sliding rod 76 is fixedly connected to the side wall of the sliding sleeve 75. The rotation of the sliding sleeve 75 drives the sliding rod 76 to rotate. When the sliding rod 76 rotates, the end away from the sliding sleeve 75 slides inside the treatment cylinder 1. Since the treatment cylinder 1 is circular, when the sliding rod 76 slides horizontally, the sliding rod 76 gradually moves away from the driving mechanism along the cylinder wall of the treatment cylinder 1. The motor 71 is driven by the sliding sleeve 75, which also slides along the rotating shaft 72 in the direction away from the driving motor 71. The sleeve 74 passes through the back of the wind wheel 73 and is slidably connected at the penetration point. The scraper 77 is fixedly connected to the end of the sleeve 74 away from the driving motor 71. The blades of the wind wheel 73 pass through the scraper 77 and are slidably connected at the penetration point. One end of the return spring 78 is fixedly connected to the inner wall of the treatment cylinder 1, and the other end of the return spring 78 is fixedly connected to the inner wall of the sleeve 74 away from the driving motor 71. The sliding sleeve 75 slides in the direction away from the driving motor 71, driving the return spring 78 to stretch. When the sliding rod 76 slides in the vertical direction, the sliding rod 76 is no longer blocked by the wall of the treatment cylinder 1 and is elastically supported by the return spring 78. The force is reset, and the sliding sleeve 75 slides and drives the scraper 77 to move. The scraper 77 slides relative to the blades of the wind wheel 73 to scrape off the particles stuck on the blades. When the amplifier treats the exhaust gas, the driving motor 71 drives the rotating shaft 72 to rotate, so that the wind wheel 73 rotates. When the wind wheel 73 rotates, a negative pressure area is generated, and the exhaust gas drawn in by the fan 6 is gathered together with the water mist in the wind wheel 73, so that the water mist and the exhaust gas are mixed faster, and the particles in the exhaust gas are wrapped, and the water droplets are formed by adhering to the particles and dripping from the gaps in the blades of the wind wheel 73, thereby better achieving the effect of separating the particles from the exhaust gas, avoiding too little contact between the exhaust gas and the water mist, and solving the problem that the exhaust gas and the water mist are unevenly distributed in the treatment cylinder 1 and difficult to mix;While the exhaust gas is being sucked in, the rotating shaft 72 drives the sleeve 74 to rotate, which in conjunction with the sliding sleeve 75, sliding rod 76, and return spring 78 drives the scraper 77 to slide repeatedly within the wind wheel 73, scraping the blades on the wind wheel 73. This prevents excessive particles in the exhaust gas from sticking to the blades of the wind wheel 73 after long-term operation, which would increase the resistance of the wind wheel 73 and thus reduce the speed of the wind wheel 73 and the suction force. This solves the problem of particles sticking to the blades of the wind wheel 73 after long-term use, which affects the suction force.
[0022] When this embodiment is working: the active motor 5 is started, and the fan 6 is driven to rotate through the bearing. The fan 6 rotates to extract air from the cloth processing device, and the exhaust gas generated by the cloth processing is sucked into the treatment tube 1. Clean water is introduced into the annular pipe through a water pipe. By spraying clean water upward, the exhaust gas sucked into the treatment tube 1 is separated from gas and particles by water mist. The water mist rises to a high place and then falls, and the exhaust gas in the treatment tube 1 is wet-dust-removed again.
[0023] The drive motor 71 is started, and the drive motor 71 drives the rotating shaft 72 to rotate. The rotation of the rotating shaft 72 drives the wind wheel 73 to rotate as well. When the wind wheel 73 rotates, a negative pressure area is generated, and the exhaust gas drawn in by the fan 6 is gathered together with the water mist in the wind wheel 73, so that the water mist and the exhaust gas are mixed faster, and the particles in the exhaust gas are wrapped, and the water droplets are adhered to the particles to form water droplets, which drip from the gaps in the blades of the wind wheel 73. The exhaust gas after the particles are separated is blown upward and discharged from the exhaust pipe 3 through the adsorption mechanism. The water droplets wrapped with the particles fall on the filter plate 10, and the filter plate 10 separates the particles from the water droplets. The water droplets gather into a water flow and flow out from the drain port 4. When the rotating shaft 72 rotates, it also drives the sleeve 74 to rotate. When the sleeve 74 rotates, it drives the sliding sleeve 75 to rotate as well. The sliding sleeve 7 The rotation of the sliding rod 76 drives the sliding rod 76 to rotate. When the sliding rod 76 rotates, the end thereof away from the sliding sleeve 75 slides inside the processing cylinder 1. Since the processing cylinder 1 is circular, when the sliding rod 76 slides in the horizontal direction, the sliding rod 76 gradually moves away from the drive motor 71 along the cylinder wall of the processing cylinder 1, and at the same time drives the sliding sleeve 75 to slide along the rotating shaft 72 in the direction away from the drive motor 71, driving the reset spring 78 to stretch. When the sliding rod 76 slides in the vertical direction, the sliding rod 76 is no longer blocked by the cylinder wall of the processing cylinder 1 and is reset by the elastic force of the reset spring 78. The sliding of the sliding sleeve 75 drives the scraper 77 to move as well. The scraper 77 slides relative to the blades of the wind wheel 73 to scrape off the particles stuck on the blades.
[0024] See also Figure 1-Figure 7On the basis of the above embodiment, in another embodiment of the present invention, a protective device is provided inside the treatment cylinder 1 to prevent fluff from entering. The protective device includes a spray head 81, a pressure ring 82, an extrusion cylinder 83, an extrusion block 84, a spring rod 85 and a groove plate 86. The spray head 81 is hinged to the inner wall of the treatment cylinder 1. An annular pipe is fixed to the inner wall of the treatment cylinder 1. The bottom of the spray head 81 is connected to the annular pipe by a water pipe. The spray head 81 is in a vertical direction and sprays water mist upward to remove dust from the exhaust gas drawn into the treatment cylinder 1. When the spray head 81 is rotated to a horizontal direction, the spray head 81 continues to spray water mist. The impact force of the water mist during the spraying will bring out the particles falling into the spray head 81. A torsion spring is fixed at the hinge between the spray head 81 and the annular pipe. One end of the spring is fixedly connected to the upper surface of the annular pipe, and the other end of the torsion spring is fixedly connected to the side wall of the spray head 81. The pressure ring 82 is slidably connected to the inner wall of the treatment cylinder 1. When the sliding rod 76 rotates downward to the pressure ring 82, the sliding rod 76 will push the pressure ring 82 downward. When the pressure ring 82 slides downward, it pushes the spray head 81 to rotate toward the center of the annular pipe around the hinge between the spray head 81 and the annular pipe, and at the same time compresses the torsion spring. When the spray head 81 is rotated in the direction away from the center of the annular pipe by the elastic force of the torsion spring, it pushes the pressure ring 82 to slide upward, and the extrusion cylinder 83 passes through the air inlet pipe 2, and the penetration is slidably connected. When the pressure ring 82 slides upward to the extrusion cylinder 83, the side of the pressure ring 82 and the inclined surface of the extrusion cylinder 83 slide against each other, pushing The movable extrusion cylinder 83 slides in the direction of the air intake pipe 2, and the extrusion block 84 is slidably connected to the inner wall of the air intake pipe 2. One end of the extrusion block 84 away from the extrusion cylinder 83 is fixedly connected to the return spring, and the other end of the return spring is fixedly connected to the inner wall of the air intake pipe 2. When the extrusion cylinder 83 slides in the direction of the air intake pipe 2 to the extrusion block 84, the side of the extrusion cylinder 83 and the inclined surface of the extrusion block 84 slide with each other, pushing the extrusion block 84 to slide in the direction of the center of the air intake pipe 2 and stretching the return spring at the same time. The spring rod 85 is fixedly connected to the side wall of the extrusion block 84, and a layer of silk is attached to the surface of the spring rod 85. When the extrusion block 84 slides, it drives the spring rod 85 to move up and down, and the slot plate 86 is slidably connected to the inner wall of the air intake pipe 2. The slot plate 86 is made of glass. When the spring rod 85 moves up and down, it further intercepts the fluff and the like that are not intercepted by the slot plate 86. At the same time, the spring rod 85 rubs against the slot plate 86, causing the slot plate 86 to generate static electricity, further adsorbing fine impurities on the surface of the slot plate 86. While processing the exhaust gas, the protective device pushes the pressure ring 82 to slide downward by rotating the sliding rod 76, and cooperates with the torsion spring to make the spray head 81 rotate intermittently. The impact force of the sprayed water mist is used to push out the particles that fall into the spray head 81 when separating the particles in the exhaust gas, thereby preventing the accumulation of excessive particles that fall into the interior of the spray head 81 when the spray head 81 sprays upward for a long time, thereby preventing the spray head 81 from being blocked by particles. This solves the problem that the spray head 81 sprays water mist upward for a long time and is prone to blockage due to particles falling into the interior.As the pressure ring 82 slides upward, it pushes the extrusion cylinder 83 to slide, and in conjunction with the extrusion block 84 and the return spring, it drives the spring rod 85 to slide repeatedly on the back of the slot plate 86. This friction between the spring rod 85 and the slot plate 86 generates static electricity, which causes the slot plate 86 to absorb the fine fluff that it cannot intercept onto its surface. This prevents the fluff from being drawn into the connection between the fan 6 and the active motor 5, causing the fluff to entangle with the fan 6 and affect its rotation. This solves the problem of fluff generated during cloth production being easily entangled with the fan 6 when it is sucked into the intake pipe 2 with the exhaust gas, causing the fan 6 to malfunction.
[0025] The interior of the intake pipe 2 is provided with an installation device for facilitating the installation and removal of the protective device. The installation device includes a magnet 91, a combination block 92 and an extrusion rod 93. The magnet 91 passes through the upper end of the intake pipe 2 and is slidably connected at the penetration point. The combination block 92 passes through the upper surface of the intake pipe 2 and is slidably connected at the penetration point. When too much fluff is adsorbed on the surface of the slot plate 86 and needs to be cleaned, the combination block 92 is pressed downward. When the combination block 92 moves downward, its inclined surface slides with the side of the upper surface of the magnet 91, and the combination block 92 pushes the magnet 91 to slide away from the intake pipe 2. The two groups of magnets 91 move away from each other and no longer limit the slot plate 86. The extrusion rod 93 is slidably connected to the inner wall of the intake pipe 2. When the combination block 92 moves downward to the extrusion rod 93, the extrusion rod 93 The side edges of the assembly block 92 slide with the inclined surface at the lower end of the assembly block 92, and the assembly block 92 pushes the extrusion rod 93 to slide in the direction away from the treatment cylinder 1. When the extrusion rod 93 slides to the slot plate 86, it pushes the slot plate 86 to slide in the direction away from the treatment cylinder 1. When the slot plate 86 slides to the entrance of the air inlet pipe 2, it can be directly removed. After the slot plate 86 has been used for a long time and needs to be cleaned, the assembly block 92 is pushed downward to move the magnets 91 on both sides away from each other, and at the same time, the extrusion rod 93 cooperates to push the slot plate 86 toward the air inlet of the air inlet pipe 2, so that the slot plate 86 automatically slides to the air inlet for easy removal, solving the problem that the staff's hand is blocked by the air inlet pipe 2 when removing the slot plate 86, making it difficult to operate. After the slot plate 86 is cleaned, the slot plate 86 is aligned with the sliding groove on the inner wall of the intake pipe 2 and pushed directly into it. When the slot plate 86 slides to the magnet 91, the magnets 91 are pushed away from each other, and the magnet 91 automatically resets itself with the suction force of the magnet, limiting the slot plate 86 so that the slot plate 86 is stably fixed on the inner wall of the intake pipe 2 during operation, solving the problem that the slot plate 86 is easily fallen off due to vibration during operation.
[0026] When the nozzle 81 is rotated to the vertical direction, the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, and the nozzle 81 is rotated to the vertical direction, When 81 rotates in the direction away from the center of the annular pipe, it pushes the pressure ring 82 to slide upward. When the pressure ring 82 slides upward to the extrusion cylinder 83, the side of the pressure ring 82 and the inclined surface of the extrusion cylinder 83 slide with each other, pushing the extrusion cylinder 83 to slide in the direction of the intake pipe 2. When the extrusion cylinder 83 slides in the direction of the intake pipe 2 to the extrusion block 84, the side of the extrusion cylinder 83 and the inclined surface of the extrusion block 84 slide with each other, pushing the extrusion block 84 to slide in the direction of the center of the intake pipe 2, and at the same time stretching the return spring. When the extrusion block 84 slides, it drives the spring rod 85 to move up and down. When the spring rod 85 moves up and down, it further intercepts the fluff that is not intercepted by the slot plate 86. At the same time, the spring rod 85 rubs on the slot plate 86, causing the slot plate 86 to generate static electricity, further adsorbing fine impurities on the surface of the slot plate 86.
[0027] When there is too much fluff adsorbed on the surface of the slot plate 86 and it needs to be cleaned, the combination block 92 is pressed downward. When the combination block 92 moves downward, its inclined surface slides with the side edge of the upper surface of the magnet 91, and the combination block 92 pushes the magnet 91 to slide away from the intake pipe 2. The two sets of magnets 91 move away from each other and no longer limit the slot plate 86. When the combination block 92 moves downward to the extrusion rod 93, the side edge of the extrusion rod 93 slides with the inclined surface of the lower end of the combination block 92, and the combination block 92 pushes the extrusion rod 93 to slide away from the treatment cylinder 1. When the extrusion rod 93 slides to the slot plate 86, it pushes the slot plate 86 to slide away from the treatment cylinder 1. When the slot plate 86 When it slides to the entrance of the air intake pipe 2, it can be directly removed. When the slot plate 86 is cleaned, push the slot plate 86 directly from the entrance of the air intake pipe 2. When the slot plate 86 slides along the inner wall of the air intake pipe 2 to the extrusion rod 93, push the extrusion rod 93 to slide in the direction of the treatment cylinder 1. When the extrusion rod 93 slides to the combination block 92, push the combination block 92 to move upward. When the slot plate 86 slides to the magnet 91, the side of the slot plate 86 and the inclined surface of the magnet 91 slide with each other, pushing the magnets 91 away from each other. When the slot plate 86 slides to separate from the magnet 91, the magnets 91 on both sides slide toward the center of the air intake pipe 2 under the suction force, limiting the slot plate 86.
[0028] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A cloth processing waste gas treatment device, comprising a treatment cylinder (1), characterized in that: An air inlet pipe (2) is fixed to the side wall of the treatment cylinder (1), and the air inlet pipe (2) is connected to the treatment cylinder (1). An exhaust pipe (3) is fixed to the side wall of the treatment cylinder (1), and the exhaust pipe (3) is connected to the treatment cylinder (1). A drain port (4) is provided on the bottom surface of the treatment cylinder (1). An isolation layer is fixed to the inner wall of the treatment cylinder (1), and an adsorption mechanism is passed through the isolation layer, and the penetration is threadedly connected. An active motor (5) is fixed to the inner wall of the air inlet pipe (2), and the output end of the active motor (5) is fixedly connected to the fan (6) through a bearing. An amplification device for conveniently gathering exhaust gas upward is provided inside the treatment cylinder (1), a protective device for preventing fluff from entering is provided inside the treatment cylinder (1), and a mounting device for convenient loading and unloading of the protective device is provided inside the air inlet pipe (2). A filter plate (10) is passed through the treatment cylinder (1), and the penetration is slidably connected. The amplifying device comprises a driving motor (71), a rotating shaft (72), a wind wheel (73), a sleeve (74), a sliding sleeve (75), a sliding rod (76), a scraper (77) and a reset spring (78); a support platform is fixed to the outer wall of the treatment cylinder (1); the driving motor (71) is fixedly connected to the upper surface of the support platform; and the rotating shaft (72) is fixedly connected to the output end of the driving motor (71).
2. The cloth processing waste gas treatment device according to claim 1, characterized in that: The wind wheel (73) is fixedly connected to the end of the rotating shaft (72) away from the driving motor (71) through a bearing. The rotating shaft (72) passes through the sleeve (74) and is slidably connected at the penetration point. A connecting cylinder is fixed to the inner wall of the processing cylinder (1). The sleeve (74) passes through the connecting cylinder and is in close contact with the penetration point.
3. The cloth processing waste gas treatment device according to claim 2, characterized in that: The sleeve (74) passes through the sliding sleeve (75) and is fixedly connected at the penetration point. The sliding rod (76) is fixedly connected to the side wall of the sliding sleeve (75). The sleeve (74) passes through the back of the wind wheel (73) and is slidably connected at the penetration point.
4. The cloth processing waste gas treatment device according to claim 3, characterized in that: The scraper (77) is fixedly connected to the end of the sleeve (74) away from the drive motor (71), the blades of the wind wheel (73) pass through the scraper (77) and are slidably connected at the penetration point, one end of the return spring (78) is fixedly connected to the inner wall of the treatment cylinder (1), and the other end of the return spring (78) is fixedly connected to the inner wall of the sleeve (74) away from the drive motor (71).
5. The cloth processing waste gas treatment device according to claim 1, characterized in that: The protective device comprises a spray head (81), a pressure ring (82), an extrusion cylinder (83), an extrusion block (84), a spring rod (85) and a slot plate (86); the spray head (81) is hinged to the inner wall of the treatment cylinder (1); an annular pipe is fixed to the inner wall of the treatment cylinder (1); and the bottom of the spray head (81) is connected to the annular pipe by a water pipe.
6. The cloth processing waste gas treatment device according to claim 5, characterized in that: A torsion spring is fixed at the hinge between the spray head (81) and the annular pipe, one end of the torsion spring is fixedly connected to the upper surface of the annular pipe, and the other end of the torsion spring is fixedly connected to the side wall of the spray head (81). The pressure ring (82) is slidably connected to the inner wall of the treatment cylinder (1), and the extrusion cylinder (83) passes through the air inlet pipe (2) and is slidably connected at the penetration point.
7. The cloth processing waste gas treatment device according to claim 6, characterized in that: The extrusion block (84) is slidably connected to the inner wall of the intake pipe (2), one end of the extrusion block (84) away from the extrusion cylinder (83) is fixedly connected to the return spring, the other end of the return spring is fixedly connected to the inner wall of the intake pipe (2), the spring rod (85) is fixedly connected to the side wall of the extrusion block (84), and the groove plate (86) is slidably connected to the inner wall of the intake pipe (2).
8. The cloth processing waste gas treatment device according to claim 7, characterized in that: The mounting device comprises a magnet (91), a combination block (92) and an extrusion rod (93); the magnet (91) penetrates the upper end of the air intake pipe (2) and is slidably connected at the penetration point; the combination block (92) penetrates the upper surface of the air intake pipe (2) and is slidably connected at the penetration point; and the extrusion rod (93) is slidably connected to the inner wall of the air intake pipe (2).
Citation Information
Patent Citations
Waste gas treatment device for polyester fabric processing
CN214809498U