High-efficiency setting machine waste gas treatment equipment
By designing the wool remover and filter structure in the exhaust gas treatment equipment of the shaping machine, the problem of inconvenient treatment of wool in wastewater is solved, efficient wastewater filtration and purification is achieved, and treatment efficiency is improved.
Patent Information
- Application Number
- CN202211460489.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-11-17
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2042-11-17
AI Technical Summary
After cleaning the filter screen of the automatic hair removal mechanism of the existing shaping machine, a large amount of wastewater containing hair floss will be discharged, which requires staff to perform secondary filtration treatment, which takes time and reduces purification efficiency.
A high-efficiency shaping machine exhaust gas treatment equipment is designed, including a floe remover and a filter structure. The filter structure includes a support plate, a filter plate and a bearing plate. Through the cooperation of the electric telescopic rod and the driving motor, the vibration of the filter plate and the rotation of the bearing plate are realized, and the wool in the wastewater is effectively filtered.
By setting up a filter structure, the wastewater containing wool can be directly filtered during the cleaning process, avoiding the need for secondary filtration, saving time, and significantly improving the purification efficiency of the wool remover.
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Figure CN115888212B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of waste gas treatment equipment for setting machines, and particularly to high-efficiency waste gas treatment equipment for setting machines. Background Art
[0002] A setting machine is a mechanical device in the textile industry that shapes textiles by means of high temperature to improve the quality of textiles. During the operation of the setting machine, a large amount of waste gas containing impurities such as fluff and oil stains or harmful gases will be generated. In order to avoid environmental pollution caused by the waste gas, waste gas treatment equipment is needed to purify the waste gas generated during the operation of the setting machine.
[0003] Chinese Patent Application CN201811396541.5 discloses a waste gas treatment equipment for a printing and dyeing setting machine, which includes a waste gas pre-treatment device and a purification tower using electrostatic adsorption. The waste gas pre-treatment device and the purification tower are connected. The waste gas pre-treatment device is horizontally arranged for the waste gas to horizontally enter the purification tower; a pneumatic air door for introducing the waste gas is provided at the air inlet end of the waste gas pre-treatment device, and an exhaust port for the clean discharge of the treated waste gas is provided at the end of the purification tower; an online cleaning mechanism is provided on the waste gas pre-treatment device.
[0004] The above-mentioned waste gas treatment equipment for a printing and dyeing setting machine also has the following technical problems: After rinsing the filter screen of the automatic hair removal mechanism with clean water, a large amount of waste water containing fluff will be discharged from the automatic hair removal mechanism, and the staff needs to perform secondary filtration on this waste water, which is very time-consuming, resulting in a decrease in the purification efficiency of the waste gas treatment device. Summary of the Invention
[0005] The purpose of the present invention is to solve the defect that after rinsing the filter screen of the automatic hair removal mechanism with clean water in the prior art, a large amount of waste water containing fluff will be discharged from the automatic hair removal mechanism, and a high-efficiency waste gas treatment equipment for a setting machine is proposed.
[0006] To achieve the above purpose, the present invention adopts the following technical solution: A high-efficiency waste gas treatment equipment for a setting machine includes a fluff remover. A side wall of the fluff remover is communicated with an electrostatic adsorber. A side wall of the fluff remover is communicated with an air inlet pipe. A lower surface of the fluff remover is communicated with a drain pipe. A filtering structure is provided on an inner wall of the drain pipe. The filtering structure includes a support plate, a filter plate for filtering fluff, and a receiving plate for receiving fluff.
[0007] The effects achieved by the above components are as follows: By setting the filtering structure, during the cleaning process of the inside of the fluff remover, the waste water containing fluff can be filtered, so that it is not necessary for the staff to perform secondary filtration on the waste water, saving time, and thus greatly improving the purification efficiency of the fluff remover.
[0008] Preferably, the support plate is fixedly connected to the inner wall of the drain pipe, a slide plate is vertically slidably penetrated in the support plate, the upper end of the slide plate is fixedly connected to a rectangular tube, the side wall of the rectangular tube is fixedly connected to two connecting plates, the two connecting plates are fixedly connected to a rectangular plate on one side away from the rectangular tube, the upper surfaces of the two rectangular plates are fixedly connected to filter plates, the vertical cross-section of the filter plates is "V" shaped, the upper surface of the support plate is fixedly connected to a first electric telescopic rod, the output end of the first electric telescopic rod penetrates the rectangular tube, the output end of the first electric telescopic rod is fixedly connected to a top plate, the top plate is located in the rectangular tube, the inner wall of the drain pipe is rotatably connected to two receiving plates, the receiving plates are slidably connected to the rectangular plate.
[0009] The effects achieved by the above components are: start the first electric telescopic rod, the output end of the first electric telescopic rod begins to extend, at this time the output end of the first electric telescopic rod will pass through the rectangular tube to drive the top plate to move upward, the movement of the top plate will contact the top of the inner wall of the rectangular tube, at this time the rectangular tube will move synchronously with the top plate, the movement of the rectangular tube will drive the connecting plate to move, the movement of the connecting plate will drive the rectangular plate to move, the movement of the rectangular plate will drive the filter plate to move, when the rectangular plate moves to a suitable position, the receiving plate is rotated upward, when the receiving plate is rotated to a suitable position, start the first electric telescopic rod again, the output end of the first electric telescopic rod begins to contract, the top plate will follow the output end of the first electric telescopic rod to move and break contact with the inner wall of the rectangular tube, at this time the filter plate will slide downward due to its own gravity, the sliding of the filter plate will drive the rectangular plate to slide, so that the rectangular plate is in contact with the receiving plate.
[0010] Preferably, baffles are fixedly connected to both sides of the slide plate, the baffles are slidably connected to the support plate, and the baffles are located above the support plate.
[0011] The effect achieved by the above components is that after the baffle plate contacts the upper surface of the support plate, the baffle plate prevents the slide plate from sliding further downward, thereby supporting the filter plate and preventing the rectangular plate from being out of contact with the receiving plate as much as possible.
[0012] Preferably, the lower surface of the support plate is fixedly connected to an L-shaped plate, the upper surface of the short arm of the L-shaped plate is fixedly connected to a drive motor, the output end of the drive motor is fixedly connected to a rotating block, the rotating block is a regular quadrangular prism structure, and the rotating block is slidably connected to the slide plate.
[0013] The effect achieved by the above components is: start the drive motor, the output end of the drive motor starts to rotate and drives the rotating block to rotate. The rotation of the rotating block will squeeze the slide plate. Since the rotating block is a regular quadrangular prism structure, under the influence of the filter plate's own gravity, the rotation of the rotating block will cause the slide plate to reciprocate in the vertical direction, thereby causing the filter plate to vibrate, thereby making it convenient for the fluff attached to the upper surface of the filter plate to slide along the upper surface of the filter plate to the receiving plate.
[0014] Preferably, a traction structure is provided at the position of the drain pipe relative to the two receiving plates. The traction structure includes a fixing plate fixedly connected to the inner wall of the drain pipe. A servo motor is fixedly connected to the upper surface of the fixing plate. The output end of the servo motor is fixedly connected to a cylindrical block. A traction rope is wound around the arc surface of the cylindrical block. One end of the traction rope away from the cylindrical block is fixedly connected to the receiving plate.
[0015] The effect achieved by the above components is that by setting the traction structure, it is convenient for the staff to rotate the receiving plate, thereby facilitating the staff to clean the fluff remaining on the receiving plate.
[0016] Preferably, two anti - detachment plates are fixedly connected to the arc surface of the cylindrical block, and the traction rope is located between the two anti - detachment plates.
[0017] The effect achieved by the above components is that the two anti - detachment plates serve to prevent the traction rope from falling off the surface of the cylindrical block as much as possible.
[0018] Preferably, a limiting component is provided on the lower surface of the fixing plate. The limiting component includes a limiting plate. The vertical cross - section of the limiting plate is in an "L" shape. The short arm of the limiting plate is fixedly connected to the fixing plate. A limiting tube is fixedly connected to the surface of the long arm of the limiting plate. The inner wall of the limiting tube is slidably connected to the traction rope. A limiting ball is fixedly connected to the arc surface of the traction rope, and the limiting ball is slidably connected to the limiting tube. The limiting ball is located below the limiting tube.
[0019] The effect achieved by the above components is that when the traction rope moves, it will drive the limiting ball to move upward. When the limiting ball contacts the limiting tube, the limiting tube prevents the limiting ball from continuing to move, thereby restricting the movement of the traction rope and further restricting the range of upward rotation of the receiving plate.
[0020] Preferably, a positioning component is provided on the lower surface of the fixing plate. The positioning component includes a second electric telescopic rod fixedly connected to the fixing plate. The output end of the second electric telescopic rod is fixedly connected to a positioning plate. The cross - section of the positioning plate is in a "U" shape, and the size of the positioning plate is adapted to the size of the limiting ball.
[0021] The effect achieved by the above components is that when the second electric telescopic rod is started, the output end of the second electric telescopic rod will drive the positioning plate to slide in the direction close to the traction rope. When the positioning plate slides below the limiting ball, the positioning plate serves to limit the position of the limiting ball and thus limit the position of the receiving plate.
[0022] Preferably, two cleaning structures are provided on the inner wall of the drain pipe. The cleaning structure includes two rotating frames, which are rotatably connected to the inner wall of the drain pipe. A round rod is slidably connected to the inner walls of the two rotating frames. A cleaning plate is fixedly connected to the arc surface of the round rod. The cleaning plate is slidably connected to the upper surface of the receiving plate. A support rod is fixedly connected to the lower surface of the rotating frame. The lower end of the support rod is slidably connected to the receiving plate.
[0023] The effect achieved by the above components is that by setting the cleaning structure, the fluff attached to the receiving plate can be scraped off, so as to facilitate the cleaning of the fluff.
[0024] Preferably, a strip-shaped hole is provided on the upper surface of the rotating frame. A guiding plate is slidably connected to the inner wall of the strip-shaped hole on the rotating frame. The guiding plate is fixedly connected to the round rod. The guiding plate is slidably connected to the upper surface of the rotating frame.
[0025] The effect achieved by the above components is that the sliding of the round rod will drive the guiding plate to slide along the inner wall of the strip-shaped hole and the upper surface of the rotating frame. The guiding plate can prevent the round rod from rotating as much as possible, so as to prevent the cleaning plate from disengaging from the contact with the receiving plate as much as possible.
[0026] Compared with the prior art, the advantages and positive effects of the present invention are as follows:
[0027] 1. In the present invention, by providing a filtering structure, when it is necessary to filter the fluff contained in the wastewater, the first electric telescopic rod is first started, and the output end of the first electric telescopic rod begins to extend. At this time, the output end of the first electric telescopic rod will pass through the rectangular tube and drive the top plate to move upward. The movement of the top plate will contact the inner wall top of the rectangular tube. At this time, the rectangular tube will move synchronously with the top plate. The movement of the rectangular tube will drive the connecting plate to move, the movement of the connecting plate will drive the rectangular plate to move, and the movement of the rectangular plate will drive the filter plate to move. When the rectangular plate moves to an appropriate position, the receiving plate is rotated upward. When the receiving plate rotates to an appropriate position, the first electric telescopic rod is started again, and the output end of the first electric telescopic rod begins to contract. The top plate will move with the output end of the first electric telescopic rod and disengage from the inner wall of the rectangular tube. At this time, the filter plate will slide downward under the influence of its own gravity. The sliding of the filter plate will drive the rectangular plate to slide, so that the rectangular plate contacts the receiving plate. The connecting plate will drive the rectangular tube to move synchronously by means of the movement of the rectangular plate, and finally the baffle plate will contact the upper surface of the support plate. At this time, the baffle plate prevents the slide plate from continuing to slide downward, thereby supporting the filter plate and preventing the rectangular plate from disengaging from the receiving plate as much as possible. When the wastewater containing fluff flows through the filter plate, the filter plate will filter the wastewater. At this time, the water will flow through the filter plate and flow out from the drain pipe, while the fluff will remain on the upper surface of the filter plate. Then the drive motor is started, and the output end of the drive motor begins to rotate and drives the rotating block to rotate. The rotation of the rotating block will squeeze the slide plate. Since the rotating block has a regular quadrangular prism structure, under the influence of the gravity of the filter plate itself, the rotation of the rotating block will cause the slide plate to move reciprocally in the vertical direction, thereby causing the filter plate to vibrate, so as to facilitate the fluff attached to the upper surface of the filter plate to slide down along the upper surface of the filter plate onto the receiving plate. During this process, the rectangular plate plays a role in preventing gaps from being generated between the filter plate and the receiving plate as much as possible, resulting in fluff falling. The receiving plate temporarily stores the fluff and prevents the fluff from clogging the filter plate as much as possible. By providing the filtering structure, during the cleaning process of the inside of the fluff remover, the wastewater containing fluff can be filtered, so that it is not necessary for the staff to filter the wastewater twice, saving time, and thus greatly improving the purification efficiency of the fluff remover.
[0028] 2. In the present invention, by providing a traction structure, when it is necessary to discharge the fluffs stored above the receiving plate, first, the rectangular plate is moved upward by means of the first electric telescopic rod to be disengaged from the receiving plate, and then the second electric telescopic rod is started. The output end of the second electric telescopic rod will drive the positioning plate to move away from the traction rope. When the positioning plate moves away from below the limiting ball, the servo motor is started. The output end of the servo motor starts to rotate and drives the cylindrical block to move synchronously. The rotation of the cylindrical block will cause the traction rope to unwind from the arc surface of the cylindrical block. At this time, the traction rope will become loose, and the receiving plate will rotate downward under the influence of its own gravity. At this time, the fluffs stored on the upper surface of the receiving plate will slide off the upper surface of the receiving plate under the influence of their own gravity. After the fluffs have fallen completely, the servo motor is started again. The output end of the servo motor will rotate in the reverse direction. The cylindrical block will wind up the traction rope by means of the rotation of the output end of the servo motor. At this time, the two anti-disengagement plates serve to prevent the traction rope from falling off the surface of the cylindrical block as much as possible. The movement of the traction rope will drive the limiting ball to move upward. When the limiting ball contacts the limiting tube, the limiting tube prevents the limiting ball from continuing to move, thereby restricting the continuous movement of the traction rope and further restricting the upward rotation range of the receiving plate. After that, the second electric telescopic rod is started again. The output end of the second electric telescopic rod will drive the positioning plate to slide towards the traction rope. When the positioning plate slides below the limiting ball, the positioning plate serves to limit the position of the limiting ball and thus limit the position of the receiving plate. By providing the traction structure, it is convenient for the staff to rotate the receiving plate, thereby facilitating the staff to clean the fluffs remaining on the receiving plate.
[0029] 3. In the present invention, by providing a cleaning structure, when the receiving plate rotates downward, the support rod will be disengaged from the receiving plate. At this time, the rotating frame will rotate downward under the influence of its own gravity so that the support rod contacts the receiving plate again. The cleaning plate will slide downward along the surface of the receiving plate under the influence of its own gravity. The sliding of the cleaning plate will drive the round rod to slide along the inner wall of the rotating frame. The sliding of the round rod will drive the guiding plate to slide along the inner wall of the strip-shaped hole and the upper surface of the rotating frame. The guiding plate serves to prevent the round rod from rotating as much as possible, thereby preventing the cleaning plate from being disengaged from the receiving plate as much as possible. During the sliding process of the cleaning plate, the cleaning plate will scrape off the fluffs attached to the receiving plate, thereby facilitating the cleaning of the fluffs. When the receiving plate rotates upward, the receiving plate will drive the support rod to move synchronously. The movement of the support rod will cause the rotating frame to rotate upward. At this time, the cleaning plate will slide in the reverse direction again under the influence of its own gravity, so that the cleaning plate automatically resets, which is convenient for the next use. By providing the cleaning structure, the fluffs attached to the receiving plate are scraped off, thereby facilitating the cleaning of the fluffs. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 is a schematic three-dimensional structure diagram of the high-efficiency setting machine waste gas treatment equipment proposed by the present invention;
[0031] Figure 2Structural schematic diagram of the exhaust gas treatment equipment for an efficient stenter below Figure 1 below
[0032] Figure 3 Structural schematic diagram of the drain pipe of the exhaust gas treatment equipment for an efficient stenter
[0033] Figure 4 Structural schematic diagram of the exhaust gas treatment equipment for an efficient stenter Figure 3 above
[0034] Figure 5 Structural schematic diagram of the exhaust gas treatment equipment for an efficient stenter Figure 4 Partial structural schematic diagram on the left side
[0035] Figure 6 Partial structural schematic diagram of the filtering structure of the exhaust gas treatment equipment for an efficient stenter
[0036] Figure 7 Structural schematic diagram of the exhaust gas treatment equipment for an efficient stenter Figure 6 Partial structural schematic diagram above
[0037] Figure 8 Partial structural schematic diagram at the receiving plate of the exhaust gas treatment equipment for an efficient stenter
[0038] Figure 9 Structural schematic diagram of the exhaust gas treatment equipment for an efficient stenter Figure 8 Enlarged view at A
[0039] Figure 10 Partial structural schematic diagram of the traction structure of the exhaust gas treatment equipment for an efficient stenter
[0040] Figure 11 Structural schematic diagram of the cleaning structure of the exhaust gas treatment equipment for an efficient stenter
[0041] Figure 12 Structural schematic diagram of the exhaust gas treatment equipment for an efficient stenter Figure 11 Enlarged view at B
[0042] Legend: 1. Fuzz remover; 2. Electrostatic adsorber; 3. Intake pipe; 4. Drain pipe; 5. Filter structure; 501. Support plate; 502. Slide plate; 503. Rectangular pipe; 504. Connecting plate; 505. Rectangular plate; 506. First electric telescopic rod; 507. Top plate; 508. Filter plate; 509. Baffle; 510. L-shaped plate; 511. Driving motor; 512. Rotating block; 513. Bearing plate; 6. Traction structure; 61. Fixed plate; 62. Servo motor; 63. Cylindrical block; 64. Traction rope; 65. Anti-disengagement plate; 66. Limit component; 661. Limit plate; 662. Limit pipe; 663. Limit ball; 67. Positioning component; 671. Second electric telescopic rod; 672. Positioning plate; 7. Cleaning structure; 71. Rotating frame; 72. Round rod; 73. Cleaning plate; 74. Support rod; 75. Strip hole; 76. Guide plate. Detailed implementation manners
[0043] In order to more clearly understand the above-mentioned objects, features and advantages of the present invention, the present invention will be further described below with reference to the drawings and embodiments. It should be noted that, without conflict, the embodiments of the present application and the features in the embodiments may be combined with each other.
[0044] In the following description, many specific details are set forth in order to fully understand the present invention. However, the present invention may be implemented in other ways different from those described herein. Therefore, the present invention is not limited by the specific embodiments disclosed in the following specification.
[0045] Embodiment 1, as Figures 1-5 shown, the present invention provides an efficient waste gas treatment device for a sizing machine, including a fuzz remover 1. The side wall of the fuzz remover 1 is communicated with an electrostatic adsorber 2. The side wall of the fuzz remover 1 is communicated with an intake pipe 3. The lower surface of the fuzz remover 1 is communicated with a drain pipe 4. The inner wall of the drain pipe 4 is provided with a filter structure 5. By setting the filter structure 5, during the cleaning process of the inside of the fuzz remover 1, the waste water containing fuzz can be filtered, so that it is not necessary for the staff to filter the waste water twice, saving time, and thus greatly improving the purification efficiency of the fuzz remover 1. Traction structures 6 are provided at the positions of the drain pipe 4 relative to the two bearing plates 513. By setting the traction structures 6, it is convenient for the staff to rotate the bearing plates 513, so as to facilitate the staff to clean the fuzz remaining on the bearing plates 513. Two cleaning structures 7 are provided on the inner wall of the drain pipe 4. By setting the cleaning structures 7, the fuzz attached to the bearing plates 513 is scraped off, so as to facilitate the cleaning of the fuzz.
[0046] Next, specifically describe the specific settings and functions of its filter structure 5, traction structure 6 and cleaning structure 7.
[0047] AsFigure 3 , Figure 5 and Figure 6 as well as Figure 7 As shown in Figure 3 , Figure 5 , Figure 6 and Figure 7 , the filtering structure 5 includes a support plate 501, a filter plate 508 for filtering fluff, and a receiving plate 513 for receiving fluff. The support plate 501 is fixedly connected to the inner wall of the drain pipe 4. A sliding plate 502 vertically penetrates through the support plate 501. The upper end of the sliding plate 502 is fixedly connected to a rectangular pipe 503. Two connecting plates 504 are fixedly connected to the side wall of the rectangular pipe 503. Rectangular plates 505 are fixedly connected to one side of the two connecting plates 504 away from the rectangular pipe 503. A filter plate 508 is fixedly connected to the upper surfaces of the two rectangular plates 505. The vertical cross-section of the filter plate 508 is in a "V" shape. A first electric telescopic rod 506 is fixedly connected to the upper surface of the support plate 501. The output end of the first electric telescopic rod 506 penetrates through the rectangular pipe 503. The output end of the first electric telescopic rod 506 is fixedly connected to a top plate 507. The top plate 507 is located inside the rectangular pipe 503. Two receiving plates 513 are rotatably connected to the inner wall of the drain pipe 4. The receiving plate 513 is slidably connected to the rectangular plate 505. When the first electric telescopic rod 506 is started, the output end of the first electric telescopic rod 506 starts to extend. At this time, the output end of the first electric telescopic rod 506 will pass through the rectangular pipe 503 and drive the top plate 507 to move upward. When the top plate 507 moves, it will contact the top of the inner wall of the rectangular pipe 503. At this time, the rectangular pipe 503 will move synchronously with the top plate 507. The movement of the rectangular pipe 503 will drive the connecting plate 504 to move. The movement of the connecting plate 504 will drive the rectangular plate 505 to move. The movement of the rectangular plate 505 will drive the filter plate 508 to move. When the rectangular plate 505 moves to a suitable position, the receiving plate 513 is rotated upward. When the receiving plate 513 rotates to a suitable position, the first electric telescopic rod 506 is started again. The output end of the first electric telescopic rod 506 starts to contract. The top plate 507 will move with the output end of the first electric telescopic rod 506 and be disengaged from the inner wall of the rectangular pipe 503. At this time, the filter plate 508 will slide downward under the influence of its own gravity. The sliding of the filter plate 508 will drive the rectangular plate 505 to slide, so that the rectangular plate 505 contacts the receiving plate 513.
[0048] As Figure 3 and Figure 6 as well as Figure 7As shown, baffles 509 are fixedly connected to both sides of the skateboard 502. The baffles 509 are slidably connected to the support plate 501. The baffles 509 are located above the support plate 501. After the baffles 509 come into contact with the upper surface of the support plate 501, the baffles 509 prevent the skateboard 502 from sliding down further, thereby supporting the filter plate 508 and minimizing the effect of the rectangular plate 505 separating from the receiving plate 513. The lower surface of the support plate 501 is fixedly connected to an L-shaped plate 510. The upper surface of the short arm of the L-shaped plate 510 is fixedly connected to a driving motor 511. The output end of the driving motor 511 is fixedly connected to a rotating block 512. The rotating block 512 has a regular quadrangular prism structure. The rotating block 512 is slidably connected to the skateboard 502. When the driving motor 511 is started, the output end of the driving motor 511 starts to rotate and drives the rotating block 512 to rotate. The rotation of the rotating block 512 will squeeze the skateboard 502. Since the rotating block 512 has a regular quadrangular prism structure, under the influence of the self-weight of the filter plate 508, the rotation of the rotating block 512 will cause the skateboard 502 to move reciprocally in the vertical direction, thereby causing the filter plate 508 to vibrate, facilitating the fluff attached to the upper surface of the filter plate 508 to slide down along the upper surface of the filter plate 508 onto the receiving plate 513.
[0049] As Figure 5 , Figure 8 and Figure 9 as well as Figure 10 shown, the traction structure 6 includes a fixing plate 61. The fixing plate 61 is fixedly connected to the inner wall of the drain pipe 4. The upper surface of the fixing plate 61 is fixedly connected to a servo motor 62. The output end of the servo motor 62 is fixedly connected to a cylindrical block 63. A traction rope 64 is wound around the arc surface of the cylindrical block 63. One end of the traction rope 64 away from the cylindrical block 63 is fixedly connected to the receiving plate 513. Two anti-detachment plates 65 are fixedly connected to the arc surface of the cylindrical block 63. The traction rope 64 is located between the two anti-detachment plates 65. The two anti-detachment plates 65 minimize the effect of the traction rope 64 detaching from the surface of the cylindrical block 63.
[0050] As Figure 8 and Figure 9 as well as Figure 10As shown in the figure, a limiting component 66 is provided on the lower surface of the fixing plate 61. The limiting component 66 includes a limiting plate 661. The vertical cross-section of the limiting plate 661 is in an "L" shape. The short arm of the limiting plate 661 is fixedly connected to the fixing plate 61. A limiting tube 662 is fixedly connected to the surface of the long arm of the limiting plate 661. The inner wall of the limiting tube 662 is slidably connected to the towing rope 64. A limiting ball 663 is fixedly connected to the arc surface of the towing rope 64. The limiting ball 663 is slidably connected to the limiting tube 662. The limiting ball 663 is located below the limiting tube 662. When the towing rope 64 moves, it will drive the limiting ball 663 to move upward. When the limiting ball 663 contacts the limiting tube 662, the limiting tube 662 prevents the limiting ball 663 from continuing to move, thereby restricting the continued movement of the towing rope 64, and further restricting the upward rotation range of the bearing plate 513. A positioning component 67 is provided on the lower surface of the fixing plate 61. The positioning component 67 includes a second electric telescopic rod 671. The second electric telescopic rod 671 is fixedly connected to the fixing plate 61. The output end of the second electric telescopic rod 671 is fixedly connected to a positioning plate 672. The cross-section of the positioning plate 672 is in a "U" shape. The size of the positioning plate 672 is adapted to the size of the limiting ball 663. When the second electric telescopic rod 671 is started, the output end of the second electric telescopic rod 671 will drive the positioning plate 672 to slide in the direction close to the towing rope 64. When the positioning plate 672 slides below the limiting ball 663, the positioning plate 672 restricts the position of the limiting ball 663, thereby restricting the position of the bearing plate 513.
[0051] As Figure 5 , Figure 11 and Figure 12 As shown in the figure, the cleaning structure 7 includes two rotating frames 71. The rotating frames 71 are rotatably connected to the inner wall of the drain pipe 4. A round rod 72 is slidably connected to the inner walls of the two rotating frames 71. A cleaning plate 73 is fixedly connected to the arc surface of the round rod 72. The cleaning plate 73 is slidably connected to the upper surface of the bearing plate 513. A support rod 74 is fixedly connected to the lower surface of the rotating frame 71. The lower end of the support rod 74 is slidably connected to the bearing plate 513. A strip-shaped hole 75 is opened on the upper surface of the rotating frame 71. A guiding plate 76 is slidably connected to the inner wall of the strip-shaped hole 75 on the rotating frame 71. The guiding plate 76 is fixedly connected to the round rod 72. The guiding plate 76 is slidably connected to the upper surface of the rotating frame 71. When the round rod 72 slides, it will drive the guiding plate 76 to slide along the inner wall of the strip-shaped hole 75 and the upper surface of the rotating frame 71. The guiding plate 76 can prevent the round rod 72 from rotating as much as possible, thereby preventing the cleaning plate 73 from disengaging from the bearing plate 513 as much as possible.
[0052] Its overall working principle is as follows: When it is necessary to filter the fluff contained in the wastewater, first start the first electric telescopic rod 506. The output end of the first electric telescopic rod 506 starts to extend. At this time, the output end of the first electric telescopic rod 506 will pass through the rectangular tube 503 and drive the top plate 507 to move upward. When the top plate 507 moves, it will contact the inner wall top of the rectangular tube 503. At this time, the rectangular tube 503 will move synchronously with the top plate 507. The movement of the rectangular tube 503 will drive the connecting plate 504 to move, the movement of the connecting plate 504 will drive the rectangular plate 505 to move, and the movement of the rectangular plate 505 will drive the filter plate 508 to move. When the rectangular plate 505 moves to a suitable position, make the receiving plate 513 rotate upward. When the receiving plate 513 rotates to a suitable position, start the first electric telescopic rod 506 again. The output end of the first electric telescopic rod 506 starts to contract, and the top plate 507 will move with the output end of the first electric telescopic rod 506 and disengage from the inner wall of the rectangular tube 503. At this time, the filter plate 508 will slide downward under the influence of its own gravity. The sliding of the filter plate 508 will drive the rectangular plate 505 to slide, so that the rectangular plate 505 contacts the receiving plate 513. The connecting plate 504 will drive the rectangular tube 503 to move synchronously by means of the movement of the rectangular plate 505, and finally the baffle 509 will contact the upper surface of the support plate 501. At this time, the baffle 509 prevents the slide plate 502 from continuing to slide downward, thereby supporting the filter plate 508 and preventing the rectangular plate 505 from disengaging from the receiving plate 513 as much as possible. When the wastewater containing fluff flows through the filter plate 508, the filter plate 508 will filter the wastewater. At this time, the water will flow through the filter plate 508 and flow out from the drain pipe 4, while the fluff will remain on the upper surface of the filter plate 508. Then start the drive motor 511. The output end of the drive motor 511 starts to rotate and drives the rotating block 512 to rotate. The rotation of the rotating block 512 will squeeze the slide plate 502. Since the rotating block 512 has a regular quadrangular prism structure, under the influence of the self-gravity of the filter plate 508, the rotation of the rotating block 512 will cause the slide plate 502 to perform reciprocating motion in the vertical direction, thereby causing the filter plate 508 to vibrate, so as to facilitate the fluff attached to the upper surface of the filter plate 508 to slide down along the upper surface of the filter plate 508 to the receiving plate 513. During this process, the rectangular plate 505 prevents the filter plate 508 from generating a gap with the receiving plate 513 and causing the fluff to fall as much as possible. The receiving plate 513 temporarily stores the fluff and prevents the fluff from blocking the filter plate 508 as much as possible.
[0053] When it is necessary to discharge the lint stored above the receiving plate 513, first use the first electric telescopic rod 506 to move the rectangular plate 505 upward to disengage from the receiving plate 513. Then, start the second electric telescopic rod 671. The output end of the second electric telescopic rod 671 will drive the positioning plate 672 to move away from the traction rope 64. When the positioning plate 672 moves away from below the limiting ball 663, start the servo motor 62. The output end of the servo motor 62 starts to rotate and drives the cylindrical block 63 to move synchronously. The rotation of the cylindrical block 63 will cause the traction rope 64 to unwind from the arc surface of the cylindrical block 63. At this time, the traction rope 64 will become loose, and the receiving plate 513 will rotate downward under the influence of its own gravity. At this time, the lint stored on the upper surface of the receiving plate 513 will slide off the upper surface of the receiving plate 513 under the influence of its own gravity. After the lint has fallen off, start the servo motor 62 again. The output end of the servo motor 62 will rotate in the opposite direction. The cylindrical block 63 will wind up the traction rope 64 by means of the rotation of the output end of the servo motor 62. At this time, the two anti-disengagement plates 65 function to prevent the traction rope 64 from falling off the surface of the cylindrical block 63 as much as possible. The movement of the traction rope 64 will drive the limiting ball 663 to move upward. When the limiting ball 663 contacts the limiting tube 662, the limiting tube 662 prevents the limiting ball 663 from continuing to move, thereby restricting the movement of the traction rope 64 and further restricting the range of upward rotation of the receiving plate 513. Then, start the second electric telescopic rod 671 again. The output end of the second electric telescopic rod 671 will drive the positioning plate 672 to slide towards the traction rope 64. When the positioning plate 672 slides below the limiting ball 663, the positioning plate 672 restricts the position of the limiting ball 663 and thus restricts the position of the receiving plate 513.
[0054] When the receiving plate 513 rotates downward, the support rod 74 will disengage from the receiving plate 513. At this time, the rotating frame 71 will rotate downward under the influence of its own gravity, causing the support rod 74 to contact the receiving plate 513 again. The cleaning plate 73 will slide downward along the surface of the receiving plate 513 under the influence of its own gravity. The sliding of the cleaning plate 73 will drive the round rod 72 to slide along the inner wall of the rotating frame 71. The sliding of the round rod 72 will drive the guiding plate 76 to slide along the inner wall of the strip-shaped hole 75 and the upper surface of the rotating frame 71. The guiding plate 76 functions to prevent the round rod 72 from rotating as much as possible, thereby preventing the cleaning plate 73 from disengaging from the receiving plate 513 as much as possible. During the sliding process of the cleaning plate 73, the cleaning plate 73 will scrape off the lint attached to the receiving plate 513, thus facilitating the cleaning of the lint. When the receiving plate 513 rotates upward, the receiving plate 513 will drive the support rod 74 to move synchronously. The movement of the support rod 74 will cause the rotating frame 71 to rotate upward. At this time, the cleaning plate 73 will slide in the opposite direction again under the influence of its own gravity, so that the cleaning plate 73 automatically resets, facilitating the next use.
[0055] The above are only the preferred embodiments of the present invention, and are not intended to limit the present invention in other forms. Any person skilled in the art may use the disclosed technical content to make changes or modifications into equivalent embodiments with equivalent changes and apply them to other fields. However, as long as it does not depart from the technical solution content of the present invention, any simple modification, equivalent change and modification made to the above embodiments based on the technical essence of the present invention still fall within the protection scope of the technical solution of the present invention.
Claims
1. An efficient waste gas treatment device for a setting machine, including a fluff remover (1), Characterized in that: A static adsorber (2) is communicated with the side wall of the fluff remover (1), an air inlet pipe (3) is communicated with the side wall of the fluff remover (1), a drain pipe (4) is communicated with the lower surface of the fluff remover (1), and a filtering structure (5) is arranged on the inner wall of the drain pipe (4). The filtering structure (5) includes a support plate (501), a filter plate (508) for filtering fluff, and a receiving plate (513) for receiving fluff; The support plate (501) is fixedly connected to the inner wall of the drain pipe (4). A slide plate (502) vertically slides through the support plate (501). The upper end of the slide plate (502) is fixedly connected to a rectangular pipe (503). Two connecting plates (504) are fixedly connected to the side wall of the rectangular pipe (503). On one side of the two connecting plates (504) away from the rectangular pipe (503), a rectangular plate (505) is fixedly connected. A filter plate (508) is fixedly connected to the upper surface of the two rectangular plates (505). The vertical cross-section of the filter plate (508) is in a "V" shape. A first electric telescopic rod (506) is fixedly connected to the upper surface of the support plate (501). The output end of the first electric telescopic rod (506) penetrates through the rectangular pipe (503). The output end of the first electric telescopic rod (506) is fixedly connected to a top plate (507). The top plate (507) is located inside the rectangular pipe (503). Two receiving plates (513) are rotatably connected to the inner wall of the drain pipe (4). The receiving plate (513) is slidably connected to the rectangular plate (505); An L-shaped plate (510) is fixedly connected to the lower surface of the support plate (501). A driving motor (511) is fixedly connected to the upper surface of the short arm of the L-shaped plate (510). The output end of the driving motor (511) is fixedly connected to a rotating block (512). The rotating block (512) has a regular quadrangular prism structure. The rotating block (512) is slidably connected to the slide plate (502); A traction structure (6) is arranged at the position of the drain pipe (4) corresponding to the two receiving plates (513). The traction structure (6) includes a fixing plate (61). The fixing plate (61) is fixedly connected to the inner wall of the drain pipe (4). A servo motor (62) is fixedly connected to the upper surface of the fixing plate (61). The output end of the servo motor (62) is fixedly connected to a cylindrical block (63). A traction rope (64) is wound around the arc surface of the cylindrical block (63). One end of the traction rope (64) away from the cylindrical block (63) is fixedly connected to the receiving plate (513); The inner wall of the drain pipe (4) is provided with two cleaning structures (7). The cleaning structure (7) includes two rotating frames (71). The rotating frames (71) are rotatably connected to the inner wall of the drain pipe (4). A round rod (72) is slidably connected to the inner walls of the two rotating frames (71). A cleaning plate (73) is fixedly connected to the arc surface of the round rod (72). The cleaning plate (73) is slidably connected to the upper surface of the receiving plate (513). A support rod (74) is fixedly connected to the lower surface of the rotating frame (71). The lower end of the support rod (74) is slidably connected to the receiving plate (513).
2. The high-efficiency setting machine waste gas treatment equipment according to claim 1, characterized in that: Both sides of the sliding plate (502) are fixedly connected with baffles (509). The baffles (509) are slidably connected to the support plate (501). The baffles (509) are located above the support plate (501).
3. The high-efficiency setting machine waste gas treatment equipment according to claim 1, characterized in that: Two anti-disengagement plates (65) are fixedly connected to the arc surface of the cylindrical block (63). The towing rope (64) is located between the two anti-disengagement plates (65).
4. The high-efficiency setting machine waste gas treatment equipment according to claim 3, characterized in that: A limiting component (66) is arranged on the lower surface of the fixing plate (61). The limiting component (66) includes a limiting plate (661). The vertical cross-section of the limiting plate (661) is in an "L" shape. The short arm of the limiting plate (661) is fixedly connected to the fixing plate (61). A limiting tube (662) is fixedly connected to the surface of the long arm of the limiting plate (661). The inner wall of the limiting tube (662) is slidably connected to the towing rope (64). A limiting ball (663) is fixedly connected to the arc surface of the towing rope (64). The limiting ball (663) is slidably connected to the limiting tube (662). The limiting ball (663) is located below the limiting tube (662).
5. The high-efficiency setting machine waste gas treatment equipment according to claim 4, characterized in that: A positioning component (67) is arranged on the lower surface of the fixing plate (61). The positioning component (67) includes a second electric telescopic rod (671). The second electric telescopic rod (671) is fixedly connected to the fixing plate (61). The output end of the second electric telescopic rod (671) is fixedly connected with a positioning plate (672). The cross-section of the positioning plate (672) is in a "U" shape. The size of the positioning plate (672) is adapted to the size of the limiting ball (663).
6. The high-efficiency setting machine waste gas treatment equipment according to claim 1, characterized in that: A strip-shaped hole (75) is opened on the upper surface of the rotating frame (71). A guiding plate (76) is slidably connected to the inner wall of the strip-shaped hole (75) on the rotating frame (71). The guiding plate (76) is fixedly connected to the round rod (72). The guiding plate (76) is slidably connected to the upper surface of the rotating frame (71).
Citation Information
Patent Citations
Printing and dyeing setter waste gas treatment equipment
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Device for clearing fluff in pipeline waste gas
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