An integrated purification system for the exhaust gas of fabric setting machines in a factory area

By setting up a blowing device and a spoiler device in the spray tower, the rotation of the eccentric disc generates turbulent air flow and the rotation of the spoiler, the uniform purification of the exhaust gas of the shaped machine is achieved, the problem of uneven purification of existing equipment is solved, and the purification efficiency is improved.

CN120132568BActive Publication Date: 2025-07-22FUJIAN YUBANG TEXTILE TECH CO LTD
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Patent Information

Application Number
CN202510615149.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-14
Publication Date
2025-07-22
Estimated Expiration
2045-05-14

AI Technical Summary

Technical Problem

The existing exhaust gas treatment equipment of the stencil machine has low efficiency in the treatment of exhaust gas, resulting in uneven purification and polluting the environment.

Method used

The blowing device, filler plate, activated carbon adsorption plate and spoiler in the spray tower is adopted to drive the telescopic air pump to generate turbulent air flow through the rotation of the eccentric disc. Combined with the rotation of the spray mechanism and the spoiler, uniform contact and sufficient purification of the exhaust gas and the purified liquid are achieved.

Benefits of technology

It improves the purification efficiency of waste gas, ensures uniform purification of waste gas, and avoids environmental pollution.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of waste gas purification, and discloses a unified waste gas purification system for fabric setting machines in a factory area. Its structure includes a spray tower, a blowing device, a packing plate, an activated carbon adsorption plate, a flow disturbance device, and a spraying mechanism. In the present invention, a blowing device is additionally provided inside the spray tower. By means of the eccentric disk making an eccentric rotary motion, it will sequentially squeeze each group of telescopic air cylinders connected thereto to perform air pumping motions in sequence and generate gas. The generated gas will be blown out from the nozzle to disperse the waste gas, so that the waste gas can uniformly contact the purification liquid. And by means of the falling of the purification liquid contacting the flow disturbance plate, the gravity when the purification liquid falls drives the flow disturbance plate and the rotating frame to rotate. By means of the inertia when the rotating frame rotates, the rollers at the bottom of the rotating frame will be driven to rotate irregularly in the annular groove, so that the flow disturbance plate rotates irregularly, generating an air flow, which can continuously disturb the rising waste gas, enabling the waste gas to better contact the purification liquid uniformly to complete purification.
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Description

Technical Field

[0001] The present invention belongs to the field of waste gas purification, and particularly relates to a unified waste gas purification system for fabric setting machines in a factory area. Background Art

[0002] A fabric setting machine is a machine device used for strengthening and setting textiles, mainly for the setting process of knitted and woven fabrics, yarns and non-woven materials. Its main function is to improve the dimensional stability of textiles, solve problems such as fabric shrinkage, handle, and tissue structure displacement, and ensure that the finished fabric will not deform due to washing after being made into clothes. When the setting machine is working, it will generate a large amount of oily fume waste gas, and the waste gas contains pollutants such as lubricants, plasticizers, dyes, and dyeing assistants. Therefore, the waste gas needs to be purified before being discharged.

[0003] However, the existing technology has the following deficiencies: the existing waste gas treatment equipment for setting machines has low treatment efficiency for waste gas, and the purification of the discharged waste gas is uneven, so the discharge of unevenly purified waste gas will cause environmental pollution.

[0004] Therefore, this application proposes a unified waste gas purification system for fabric setting machines in a factory area to improve the above defects. Summary of the Invention

[0005] The technical problem to be solved by the present invention is to overcome the deficiencies of the existing technology and provide a unified waste gas purification system for fabric setting machines in a factory area that has the function of uniformly purifying waste gas.

[0006] To solve the above technical problems, the present invention adopts the following technical solutions:

[0007] A unified waste gas purification system for fabric setting machines in a factory area includes a spray tower, an air inlet, a spray water tank, an exhaust passage, a demisting device, and an exhaust tower. The bottom of one side of the spray tower is connected to the air inlet, a spray water tank is provided on one side of the spray tower, the top of the spray tower is connected to the exhaust passage, the other end of the exhaust passage is connected to the demisting device, and the other end of the demisting device is connected to the exhaust tower, which can discharge the purified waste gas.

[0008] In a specific feasible implementation scheme, the interior of the spray tower includes a blowing device, a packing plate, an activated carbon adsorption plate, a flow disturbance device, and a spraying mechanism. The blowing device, the packing plate, the activated carbon adsorption plate, the flow disturbance device, and the spraying mechanism are sequentially arranged in the spray tower from bottom to top. The blowing device is located at the bottom of the spray tower and below the air inlet, and the spraying mechanism is connected to the water inlet pipe of the spray water tank.

[0009] In a specific feasible implementation, the blowing device includes a chassis, a leakage groove, an eccentric disk, a column, a first connecting rod, a second connecting rod, and an air pumping mechanism. A number of leakage grooves are arrayed on the chassis. An eccentric disk is rotatably fitted on the chassis. A number of columns are annularly arrayed on the top of the eccentric disk. A first connecting rod is rotatably fitted on a number of the columns. The other end of the first connecting rod is rotatably fitted with a second connecting rod. The other end of the second connecting rod is rotationally fitted with the air pumping mechanism. Four groups of the air pumping mechanisms are arrayed and installed on the chassis.

[0010] In a specific feasible implementation, the air pumping mechanism includes a telescopic air pump, an air outlet pipe, a universal ball, a nozzle, and a connecting seat. One end of the telescopic air pump is fixed to the eccentric disk. The other end of the telescopic air pump is connected to the air outlet pipe. A universal ball is rotatably fitted at the other end of the air outlet pipe. A through hole for gas to discharge is opened at the center of the universal ball. A nozzle is installed at the through hole of the universal ball. A connecting seat is installed on the side wall of the nozzle. The connecting seat is rotatably fitted with the second connecting rod.

[0011] In a specific feasible implementation, the activated carbon adsorption plate includes an activated carbon disk, a vibrating plate, an arc-shaped strip, a cleaning needle, and a discharge port. A vibrating plate is provided directly above the activated carbon disk. A number of arc-shaped strips are annularly arrayed between the vibrating plate and the activated carbon disk. The number of the arc-shaped strips are elastic strip plates. A number of cleaning needles are provided at the bottom of the vibrating plate. The diameter of the needle tip of the cleaning needle is smaller than the diameter of the exhaust hole on the activated carbon disk. A discharge port is opened at the center of the vibrating plate.

[0012] In a specific feasible implementation, the flow disturbance device includes a driving component, a striking component, and a fixing rod. Both ends of the driving component are connected with the striking component. The other ends of the two groups of striking components are both connected with the fixing rod.

[0013] In a specific feasible implementation, the driving component includes a fixed disk, a rotating frame, a mounting clip, a flow disturbance plate, a roller, and an annular groove. A rotating frame is rotatably fitted at the center of the fixed disk. The rotating frame can rotate on the fixed disk. A number of mounting clips are arrayed at both the upper and lower ends of the rotating frame. The number of the mounting clips are rotatably fitted with the rotating frame. A flow disturbance plate is installed on the mounting clip. A roller is installed at the bottom of the mounting clip. The roller is located in the annular groove and can roll in the annular groove. The annular groove is opened on the fixed disk and is an irregular ring.

[0014] In a specific feasible implementation, the striking component includes a reciprocating shaft, a lifting frame, a limiting frame, and a striking cylinder. A lifting frame and a striking cylinder are installed on the reciprocating shaft. A limiting frame is fixed on the lifting frame. The limiting frame and the striking cylinder are on the same center line and are slidably fitted.

[0015] In a specific feasible implementation, the reciprocating shaft includes an upper rotating shaft and a lower rotating shaft. The upper rotating shafts are symmetrically arranged and rotatably connected to the lifting frame. A lower rotating shaft is provided between the two upper rotating shafts. The lower rotating shaft is rotatably connected to the striking cylinder, and the upper rotating shaft and the lower rotating shaft are arranged in a vertically staggered manner.

[0016] According to the technical solution proposed above, the unified waste gas purification system for a factory area fabric shaping machine of the present invention has the following beneficial effects:

[0017] (1) In the present invention, a blowing device is additionally provided inside the spray tower. By means of the eccentric disk making an eccentric rotational movement, when the eccentric disk rotates, it will successively squeeze each group of telescopic air cylinders connected thereto, and drive the four groups of telescopic air cylinders to successively perform air pumping movements and generate gas. The generated gas will be blown out from the nozzle to disperse the rising waste gas, so that the waste gas can uniformly contact the purification liquid.

[0018] (2) When the eccentric disk rotates in the present invention, it will reciprocally pull a plurality of first connecting rods and second connecting rods located on the upright column, so that the first connecting rods and the second connecting rods will perform reciprocating stretching and folding, and drive the universal balls connected to one end to perform universal rotation on the air outlet pipe, so that the gas blown out by the nozzle is irregularly flowing and turbulent, so that the waste gas can fully contact and purify with the purification liquid and the activated carbon adsorption plate, improving the purification efficiency of the waste gas.

[0019] (3) In the present invention, a flow disturbing device is additionally provided. The purification liquid of the spraying mechanism falls and contacts the flow disturbing plate. By means of the gravity when the purification liquid falls, it drives the flow disturbing plate and the rotating frame to rotate. By means of the inertia when the rotating frame rotates, it drives the rollers at the bottom of the rotating frame to perform irregular rotation in the annular groove, so that the flow disturbing plate rotates irregularly, generating an air flow, which can continuously disturb the rising waste gas, so that the waste gas can better uniformly contact the purification liquid to complete purification.

[0020] (4) When the rotating frame rotates in the present invention, it will drive the reciprocating shaft connected to both ends of it to rotate synchronously, and drive the lifting frame and the striking cylinder to perform up-and-down reciprocating movements through the upper rotating shaft and the lower rotating shaft. By means of the reciprocating movement of the striking cylinder, it will strike the shock plate below it, so that the shock plate generates a downward pressure vibration, which will clean the activated carbon tray with the cleaning needle, and can prevent the activated carbon tray from being blocked. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] By reading the detailed description of the non-restrictive embodiments with reference to the following drawings, other features, objects and advantages of the present invention will become more obvious:

[0022] Figure 1 It is a schematic structural diagram of a unified waste gas purification system for a factory area fabric shaping machine in an embodiment of the present application;

[0023] Figure 2Schematic diagram of the inner wall structure of the spray tower in the embodiment of the present application;

[0024] Figure 3 Schematic diagram of the structure of the blowing device in the embodiment of the present application;

[0025] Figure 4 Schematic diagram of the structure of the air pumping mechanism in the embodiment of the present application;

[0026] Figure 5 Schematic diagram of the structure of the activated carbon adsorption plate in the embodiment of the present application;

[0027] Figure 6 Schematic diagram of the structure of the flow disturbance device in the embodiment of the present application;

[0028] Figure 7 Schematic diagram of the structure of the drive assembly in the embodiment of the present application;

[0029] Figure 8 Schematic diagram of the structure of the striking assembly in the embodiment of the present application;

[0030] Figure 9 Schematic diagram of the structure of the reciprocating shaft in the embodiment of the present application.

[0031] In the figure: spray tower - 1, air inlet - 2, spray water tank - 3, exhaust passage - 4, demisting device - 5, exhaust tower - 6, blowing device - 11, packing plate - 12, activated carbon adsorption plate - 13, flow disturbance device - 14, spraying mechanism - 15, chassis - 111, leakage trough - 112, eccentric disk - 113, column - 114, first connecting rod - 115, second connecting rod - 116, air pumping mechanism - 117, telescopic air pump - 21, air outlet pipe - 22, universal ball - 23, nozzle - 24, connecting seat - 25, activated carbon disk - 131, vibrating plate - 132, arc strip - 133, cleaning needle - 134, discharge port - 135, drive assembly - 141, striking assembly - 142, fixed rod - 143, fixed disk - 31, rotating frame - 32, mounting clip - 33, flow disturbance plate - 34, roller - 35, annular groove - 36, reciprocating shaft - 41, lifting frame - 42, limiting frame - 43, striking cylinder - 44, upper rotating shaft - 411, lower rotating shaft - 412. Detailed implementation manners

[0032] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific implementation manners.

[0033] Embodiment 1: Please refer to Figures 1-4 , the specific embodiment of the present invention is as follows:

[0034] A unified purification system for the exhaust gas of a fabric shaping machine in a factory area, the structure of which includes a spray tower 1, an air inlet 2, a spray water tank 3, an exhaust passage 4, a demisting device 5 and an exhaust tower 6. At the bottom of one side of the spray tower 1, there is an air inlet 2 connected to discharge the exhaust gas. On one side of the spray tower 1, there is a spray water tank 3 for spray-purifying the exhaust gas. At the top of the spray tower 1, there is an exhaust passage 4 connected. The other end of the exhaust passage 4 is connected to the demisting device 5, and the other end of the demisting device 5 is connected to the exhaust tower 6, which can discharge the exhaust gas that has been purified.

[0035] Please refer to Figure 2 , the interior of the spray tower 1 includes a blowing device 11, a packing plate 12, an activated carbon adsorption plate 13, a flow disturbance device 14 and a spraying mechanism 15. The blowing device 11, the packing plate 12, the activated carbon adsorption plate 13, the flow disturbance device 14 and the spraying mechanism 15 are sequentially arranged in the spray tower 1 from bottom to top. The blowing device 11 is located at the bottom of the spray tower 1 and below the air inlet 2, and can blow the exhaust gas entering from the air inlet 2. The spraying mechanism 15 is connected to the water inlet pipe of the spray water tank 3, and through a number of spray heads at the bottom of the spraying mechanism 15, the purification liquid can be diffused downward to spray and purify the exhaust gas.

[0036] Please refer to Figure 2 , the packing plate 12 can guide the rising exhaust gas, so that the exhaust gas is evenly distributed inside the spray tower 1, and then through the structure with the purification liquid, the dust quality is increased, and it is better adsorbed and filtered by the activated carbon adsorption plate 13.

[0037] Please refer to Figure 3 , the blowing device 11 includes a chassis 111, a leaky trough 112, an eccentric disk 113, a column 114, a first connecting rod 115, a second connecting rod 116 and a gas pumping mechanism 117. The chassis 111 is connected to the inner wall of the spray tower 1. A number of leaky troughs 112 are arrayed on the chassis 111. The number of leaky troughs 112 can make the downwardly sprayed purification liquid enter the bottom of the spray tower 1 and be recycled. An eccentric disk 113 is rotatably fitted on the chassis 111. The eccentric disk 113 is driven by a driving motor inside the chassis 111 to rotate and perform eccentric motion. A number of columns 114 are annularly arrayed on the top of the eccentric disk 113. A first connecting rod 115 is rotatably fitted on the number of columns 114. The other end of the first connecting rod 115 is rotatably fitted with a second connecting rod 116. The other end of the second connecting rod 116 is rotatably fitted with the gas pumping mechanism 117. There are four groups of the gas pumping mechanisms 117 and they are installed on the chassis 111.

[0038] Please refer to Figure 4, the air pumping mechanism 117 includes a telescopic air pump 21, an air outlet pipe 22, a universal ball 23, a nozzle 24 and a connecting seat 25. One end of the telescopic air pump 21 is fixed to the eccentric disc 113, and the other end of the telescopic air pump 21 is connected to the air outlet pipe 22. The air outlet pipe 22 is fixed on the chassis 111. A universal ball 23 is rotatably fitted at the other end of the air outlet pipe 22. A through hole for discharging gas is provided at the center of the universal ball 23. A nozzle 24 is installed at the through hole of the universal ball 23. A connecting seat 25 is installed on the side wall of the nozzle 24, and the connecting seat 25 is rotatably fitted with the second connecting rod 116.

[0039] Please refer to Figures 3-4 , the driving motor in the chassis 111 drives the eccentric disc 113 to perform eccentric rotational motion. When rotating, it will sequentially squeeze each group of telescopic air pumps 21, and drive the four telescopic air pumps 21 to perform air pumping motion in sequence to generate gas. The generated gas will be blown out from the nozzle 24 to disperse the waste gas entering the spray tower 1, so that the waste gas can be evenly contacted with the purification liquid to complete purification.

[0040] Please refer to Figures 3-4 , when the eccentric disc 113 rotates, it will reciprocally pull a plurality of first connecting rods 115 and second connecting rods 116 located on the column 114, so that the first connecting rods 115 and the second connecting rods 116 perform reciprocal stretching and folding. As a result, when stretching and folding, it will drive the universal ball 23 connected at one end to rotate universally on the air outlet pipe 22, so that the gas blown out by the nozzle 24 flows irregularly and turbulently, so that the waste gas can be fully contacted and purified with the purification liquid and the activated carbon adsorption plate 13.

[0041] Embodiment 2: Please refer to Figures 5-9 , the specific embodiment of the present invention is as follows:

[0042] Please refer to Figure 5 , the activated carbon adsorption plate 13 includes an activated carbon disc 131, a vibration plate 132, an arc-shaped strip 133, a cleaning needle 134 and a discharge port 135. The outside of the activated carbon disc 131 is fixed to the spray tower 1. A vibration plate 132 is provided directly above the activated carbon disc 131. A plurality of arc-shaped strips 133 are annularly arranged between the vibration plate 132 and the activated carbon disc 131. The plurality of arc-shaped strips 133 are elastic strip plates. A plurality of cleaning needles 134 for cleaning and dredging the activated carbon disc 131 are provided at the bottom of the vibration plate 132. The diameter of the needle tip of the cleaning needle 134 is smaller than the diameter of the exhaust hole on the activated carbon disc 131. A discharge port 135 is provided at the center of the vibration plate 132, and the discharge port 135 can discharge the waste gas after the activated carbon adsorption is completed.

[0043] Please refer to Figure 6, the spoiler device 14 includes a driving assembly 141, a striking assembly 142 and a fixing rod 143. Both ends of the driving assembly 141 are connected with the striking assembly 142. The other ends of the two striking assemblies 142 are both connected with the fixing rod 143. The fixing rod 143 is rotatably connected with the inner wall of the spray tower 1, and the spoiler device 14 is installed in the spray tower 1.

[0044] Please refer to Figure 7 , the driving assembly 141 includes a fixing disk 31, a rotating frame 32, a mounting clip 33, a spoiler plate 34, a roller 35 and an annular groove 36. The rotating frame 32 is rotatably fitted at the center of the fixing disk 31, and the rotating frame 32 can rotate on the fixing disk 31. A number of mounting clips 33 are arrayed at the upper and lower ends of the rotating frame 32. The number of mounting clips 33 is rotatably fitted with the rotating frame 32. A spoiler plate 34 capable of disturbing the waste gas is installed on the mounting clip 33. A roller 35 is installed at the bottom of the mounting clip 33. The roller 35 is located in the annular groove 36 and can roll in the annular groove 36. The annular groove 36 is opened on the fixing disk 31 and is an irregular circular ring.

[0045] Please refer to Figure 7 , when the spraying mechanism 15 sprays the purification liquid downward, the falling purification liquid will contact the spoiler plate 34 on the driving assembly 141. By means of the gravity when the purification liquid falls and the inertia when the rotating frame 32 rotates, the roller 35 at the bottom of the rotating frame 32 will be driven to rotate irregularly in the annular groove 36, so that the spoiler plate 34 rotates irregularly, generating an air flow, which can play a role in disturbing the rising waste gas, enabling the waste gas to better contact the activated carbon adsorption plate 13 evenly to complete purification.

[0046] Please refer to Figure 8 , the striking assembly 142 includes a reciprocating shaft 41, a lifting frame 42, a limiting frame 43 and a striking cylinder 44. The reciprocating shaft 41 is installed with the lifting frame 42 and the striking cylinder 44. A limiting frame 43 is fixed on the lifting frame 42. The limiting frame 43 and the striking cylinder 44 are on the same center line and are slidably fitted. The limiting frame 43 can play a role in limiting the movement of the striking cylinder 44, so that the striking cylinder 44 can only perform reciprocating up and down movements.

[0047] Please refer to Figure 9 , the reciprocating shaft 41 includes an upper rotating shaft 411 and a lower rotating shaft 412. The upper rotating shafts 411 are symmetrically arranged and are rotatably connected with the lifting frame 42. A lower rotating shaft 412 is arranged between the two upper rotating shafts 411. The lower rotating shaft 412 is rotatably connected with the striking cylinder 44, and the upper rotating shaft 411 and the lower rotating shaft 412 are arranged in a staggered manner up and down. When the lower rotating shaft 412 drives the striking cylinder 44 to descend, the upper rotating shaft 411 will simultaneously drive the lifting frame 42 and the limiting frame 43 to ascend, so that the limiting frame 43 can always be on the striking cylinder 44 to limit it.

[0048] Please refer to Figures 8-9, when the rotary frame 32 rotates, it will drive the reciprocating shafts 41 connected to both ends of the rotary frame 32 to rotate synchronously, and drive the lifting frame 42 and the striking cylinder 44 to perform reciprocating up and down movements by means of the upper rotary shaft 411 and the lower rotary shaft 412. The reciprocating movement of the striking cylinder 44 will strike the vibrating plate 132 below it, causing the vibrating plate 132 to generate downward pressure vibration and cleaning the activated carbon tray 131 by means of the cleaning needles 134, preventing the activated carbon tray 131 from being blocked.

[0049] Based on the above embodiments, the specific working principle is as follows:

[0050] When the fabric sizing machine in the factory area finishes processing, the generated waste gas will be discharged into the spray tower 1 through the pipeline from the air inlet 2 for waste gas purification. After the waste gas enters the spray tower 1, due to the small density of the waste gas, it will move upward. Then, the drive motor in the chassis 111 drives the eccentric disk 113 to perform eccentric rotational motion. When the eccentric disk 113 rotates, it will sequentially squeeze each group of telescopic air cylinders 21 connected to it, and drive the four telescopic air cylinders 21 to perform air injection movements in sequence to generate gas. The generated gas will be blown out from the nozzle 24 to disperse the rising waste gas, so that the waste gas can be evenly contacted with the purification liquid. When the eccentric disk 113 rotates, it will reciprocally pull a number of first connecting rods 115 and second connecting rods 116 located on the column 114, causing the first connecting rods 115 and the second connecting rods 116 to perform reciprocating stretching and folding, and driving the universal ball 23 connected to one end to perform universal rotation on the air outlet pipe 22, so that the gas blown out from the nozzle 24 flows irregularly and turbulently, so that the waste gas can be fully contacted and purified with the purification liquid and the activated carbon adsorption plate 13;

[0051] The dispersed waste gas will be filtered and purified after passing through the packing plate 12 and the activated carbon adsorption plate 13, and continuously contacted and purified with the purification liquid, and then discharged from the exhaust tower 6. The falling purification liquid will contact the spoiler plate 34 on the drive assembly 141. With the gravity of the falling purification liquid, it will drive the spoiler plate 34 and the rotary frame 32 to rotate. With the inertia when the rotary frame 32 rotates, it will drive the rollers 35 at the bottom of the rotary frame 32 to rotate irregularly in the annular groove 36, so that the spoiler plate 34 rotates irregularly to generate air flow, which can continuously disturb the rising waste gas and enable the waste gas to better contact the purification liquid evenly to complete purification;

[0052] When the rotary frame 32 rotates, it will drive the reciprocating shafts 41 connected to both ends of the rotary frame 32 to rotate synchronously, and drive the lifting frame 42 and the striking cylinder 44 to perform reciprocating up and down movements by means of the upper rotary shaft 411 and the lower rotary shaft 412. The reciprocating movement of the striking cylinder 44 will strike the vibrating plate 132 below it, causing the vibrating plate 132 to generate downward pressure vibration and cleaning the activated carbon tray 131 by means of the cleaning needles 134, preventing the activated carbon tray 131 from being blocked.

[0053] The control method of the present invention is controlled by a controller. The control circuit of the controller can be realized by simple programming by those skilled in the art. The provision of power also belongs to the common knowledge in this field. Therefore, the control method and circuit connection of the present invention will not be explained in detail.

[0054] In the description of the present invention, it should be understood that the indicated orientation or positional relationship is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present invention.

[0055] The above is only the specific implementation manner of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art within the technical scope disclosed in the present application can easily think of changes or substitutions, and all should be covered by the protection scope of the present application.

Claims

1. An integrated purification system for the exhaust gas of a fabric setting machine in a factory area, the structure of which includes a spray tower (1), an air inlet (2) located at the bottom on one side of the spray tower (1), and a spray water tank (3) arranged on one side of the spray tower (1); characterized in that: Inside the spray tower (1), a blowing device (11), a packing plate (12), an activated carbon adsorption plate (13), a flow disturbance device (14) and a spray mechanism (15) are sequentially arranged from bottom to top; The blowing device (11) includes a chassis (111), a plurality of leakage grooves (112) arranged on the chassis (111), an eccentric disk (113) used for rotational cooperation with the chassis (111), a plurality of upright columns (114) arrayed on the top of the eccentric disk (113), a first connecting rod (115) used for rotational cooperation with the plurality of upright columns (114), a second connecting rod (116) rotatably connected to the other end of the first connecting rod (115), and an air pumping mechanism (117) arranged at the other end of the second connecting rod (116); The air pumping mechanism (117) includes a telescopic air pump (21), an air outlet pipe (22) arranged at the other end of the telescopic air pump (21), a universal ball (23) used for rotational cooperation with one end of the air outlet pipe (22), a nozzle (24) located on the universal ball (23), and a connecting seat (25) installed on the side wall of the nozzle (24), and the connecting seat (25) is rotatably connected to the second connecting rod (116); The flow disturbance device (14) includes a driving assembly (141), striking assemblies (142) arranged at both ends of the driving assembly (141), and fixed rods (143) located at the other ends of the two groups of striking assemblies (142); The driving assembly (141) includes a fixed disk (31), a rotating frame (32) used for rotational cooperation at the center of the fixed disk (31), a plurality of mounting clips (33) located at the upper and lower ends of the rotating frame (32), flow disturbance plates (34) installed on the mounting clips (33), and rollers (35) located at the bottom of the mounting clips (33), and the rollers (35) are located in an annular groove (36) and can roll in the annular groove (36).

2. The unified purification system for waste gas of a fabric shaping machine in a factory area according to claim 1, wherein: The activated carbon adsorption plate (13) includes an activated carbon disk (131), a vibrating plate (132) located directly above the activated carbon disk (131), a plurality of arc-shaped strips (133) arrayed between the vibrating plate (132) and the activated carbon disk (131), the plurality of arc-shaped strips (133) are elastic strip plates, a plurality of cleaning needles (134) are arranged at the bottom of the vibrating plate (132), the diameter of the needle tip of the cleaning needles (134) is smaller than the diameter of the exhaust holes on the activated carbon disk (131), and a discharge port (135) is opened at the center of the vibrating plate (132).

3. The unified purification system for waste gas of a fabric shaping machine in a factory area according to claim 1, characterized in that: The striking assembly (142) includes a reciprocating shaft (41), a lifting frame (42) arranged on the reciprocating shaft (41), a striking cylinder (44), and a limiting frame (43) located on the lifting frame (42), and the limiting frame (43) and the striking cylinder (44) are on the same central line and are slidably matched.

4. The unified purification system for the waste gas of a fabric setting machine in a factory area according to claim 3, wherein: The reciprocating shaft (41) includes an upper rotating shaft (411) and a lower rotating shaft (412). The upper rotating shafts (411) are symmetrically arranged and rotatably connected to the lifting frame (42). A lower rotating shaft (412) is provided between the two upper rotating shafts (411). The lower rotating shaft (412) is rotatably connected to the striking cylinder (44), and the upper rotating shaft (411) and the lower rotating shaft (412) are arranged in a vertically staggered manner.

5. The unified purification system for waste gas of a factory area fabric setting machine according to claim 1, characterized in that: The blowing device (11) is located at the bottom of the spray tower (1) and is arranged below the air inlet (2). The spraying mechanism (15) is connected to the water inlet pipe of the spray water tank (3).

6. The unified purification system for waste gas of a factory area fabric setting machine according to claim 1, wherein: The fixing rod (143) is rotatably connected to the inner wall of the spray tower (1), and the flow disturbing device (14) is installed in the spray tower (1).

7. An integrated purification system for the exhaust gas of a fabric setting machine in a factory area according to claim 1, characterized in that: The annular groove (36) is formed on the fixed disk (31) and is an irregular ring.

Citation Information

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