A natural gas setting machine exhaust gas treatment device
Through the exhaust gas leaching tower and intelligently controlled oil-water separation technology, the problems of large water content and unstable treatment efficiency in the existing devices are solved, and the stability and efficiency of waste gas treatment are achieved.
Patent Information
- Application Number
- CN202310871346.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-07-14
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2043-07-14
AI Technical Summary
The existing natural gas stencil exhaust gas treatment device has a large organic content during the oil-water separation process, resulting in a fixed treatment efficiency. When the organic content in the waste gas changes, it is easy to cause energy waste or untimely separation.
The waste gas leaching tower is used to separate oil and water through the liquid cloth assembly and measurement assembly. The linoleum absorbing felt column is used to adsorb organic matter, and the treatment process is adjusted in real time with the liquid level overflower and monitoring mechanism to ensure the stability of the oil and water ratio. After adsorbing organic matter, the linoleum absorbing felt column is regenerated through the desorption mechanism to adapt to changes in the organic matter content in the waste gas.
It improves the practicality and efficiency of the exhaust gas treatment device, reduces energy waste, and ensures stable treatment effect under different organic content conditions.
Smart Images

Figure CN116832472B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of waste gas treatment equipment, and more particularly to a waste gas treatment device for a natural gas shaping machine. Background Art
[0002] The setting machine is a key equipment for textile printing and dyeing finishing. It can be classified according to the different energy sources used. For example, the natural gas setting machine has a high temperature during the heat setting process of the fabric, so a large amount of high-temperature gas is generated in the setting machine oven. The high-temperature gas contains organic oils, dyes, dye auxiliaries, lubricating oils, fiber particles and other pollutants. The main components of the setting machine exhaust gas are aldehydes, ketones, hydrocarbons, fatty acids, alcohols, esters, lactones, heterocyclic compounds, aromatic compounds, oil smoke and other exhaust gases. The exhaust gas volatilized by the setting machine during operation can directly damage the respiratory mucosa when inhaled into the human body, and has a certain stimulating effect on the human respiratory tract and lungs, reducing the human immune function, causing choking, chest tightness, shortness of breath, airway contraction, and increased respiratory resistance. It is necessary to use a setting machine exhaust gas treatment device to purify its exhaust gas.
[0003] The existing natural gas shaping machine exhaust gas treatment device consists of a spray mechanism and an oil-water separation mechanism. When in use, the spray mechanism first sprays condensed water onto the exhaust gas to liquefy the organic matter in the exhaust gas. The liquefied organic matter is mixed with water and flows into the oil-water separation mechanism with the condensed water. Then the oil-water separation mechanism separates the organic matter in the water and recycles the remaining water. However, the separated organic matter has a large water content, which affects subsequent treatment. Moreover, the oil-water separation work can only be performed rigidly, and the working efficiency remains unchanged. However, the organic matter content in the exhaust gas often changes. When the organic matter content in the exhaust gas is low, energy waste will be caused. When the organic matter content in the exhaust gas is high, the oil-water separation will not be timely, which affects the exhaust gas treatment work. Therefore, it is urgent to design a natural gas shaping machine exhaust gas treatment device. Summary of the Invention
[0004] 1. Technical problems to be solved
[0005] The existing natural gas shaping machine waste gas treatment device in the prior art consists of a spray mechanism and an oil-water separation mechanism. When in use, the spray mechanism first sprays condensed water onto the waste gas to liquefy the organic matter in the waste gas. The liquefied organic matter is mixed with water and flows into the oil-water separation mechanism with the condensed water. Then the oil-water separation mechanism separates the organic matter in the water and recycles the remaining water. However, the separated organic matter has a large water content, which affects subsequent treatment, and can only perform oil-water separation work rigidly. The working efficiency remains unchanged, but the organic matter content in the waste gas changes frequently. When the organic matter content in the waste gas is low, energy waste will be caused. When the organic matter content in the waste gas is high, oil-water separation will not be timely, affecting the waste gas treatment work. The purpose of the present invention is to provide a natural gas shaping machine waste gas treatment device, which can well solve the problems raised in the background technology.
[0006] 2. Technical solution
[0007] To solve the above problems, the present invention adopts the following technical solutions.
[0008] A natural gas shaping machine exhaust gas treatment device includes an exhaust gas washing tower, the exhaust gas washing tower includes an exhaust tower body, an intelligent control cabinet is fixedly installed on the front of the exhaust tower body, the top of the exhaust tower body is fixedly connected to a gas collecting hood, a demister located at the top is fixedly installed on the inner wall of the exhaust tower body, a spray piece located below the demister is fixedly installed on the inner wall of the exhaust tower body, a water pipe is connected to the spray piece, the other end of the water pipe extends from the top of the right side of the exhaust tower body and extends from the bottom of the right side of the exhaust tower body to the inside, the middle position of the water pipe line is connected to a water supply pipe, and the water pipe line is connected to A circulation pump is located inside the elution tower body, and the circulation pump is fixedly installed on the bottom surface of the inner cavity of the elution tower body. An exhaust gas ejection part is installed on the inner wall of the elution tower body below the spray part. The exhaust gas ejection part is connected with an air supply pipe, and the air supply pipe extends from the left side of the elution tower body. A partition plate is fixedly installed on the inner wall of the elution tower body below the exhaust gas ejection part, and a leakage cone pipe at its left end is fixedly plugged into the partition plate. A liquid distribution component is provided on the inner wall of the elution tower body below the partition plate, and the liquid distribution component includes a liquid distribution pan, which is slidably plugged into the interior of the elution tower body, and a liquid level overflow is installed on the bottom surface of the partition plate. The liquid level overflow device includes a rotary motor, which is fixedly mounted on the bottom surface of the partition plate, and a rotary cylinder is fixedly connected to the end of the output shaft of the rotary motor, and the bottom end of the rotary cylinder is fixedly connected to a rotary disk box, and a mounting bracket is provided on the rotary disk box, and the mounting bracket includes an extension tube, which is fixedly connected to the side surface of the rotary disk box, and the other end of the extension tube is connected to a bull horn tube, and a measuring component is installed on the end of the bull horn tube, and the measuring component includes a measuring cylinder, the bull horn tube is buckled on the outside of the measuring cylinder, and the end of the bull horn tube is fixedly connected to the surface of the measuring cylinder, and the left side of the elution tower body is fixedly plugged in. There is an oil drain pipe at its bottom end, and a supporting platform mechanism is provided on the bottom surface of the inner cavity of the elution tower body, wherein the supporting platform mechanism includes an annular supporting platform, which is fixedly connected to the bottom surface of the inner cavity of the elution tower body, and a lifting bearing is installed on the top surface of the annular supporting platform, and a measuring cylinder is installed on the top surface of the lifting bearing. A monitoring mechanism is installed on the left side of the inner cavity of the elution tower body, and the monitoring mechanism includes a monitoring bottom plate, which is fixedly connected to the left side of the inner cavity of the elution tower body, and a desorption mechanism is installed on the right side of the inner cavity of the elution tower body, and the desorption mechanism includes an arc-shaped flat tube, which is fixedly connected to the right side of the inner cavity of the elution tower body.
[0009] Preferably, the liquid distribution assembly further comprises a liquid distribution ring groove, which is provided on the top surface of the liquid distribution plate, and four liquid distribution conical holes are provided on the bottom surface of the inner cavity of the liquid distribution ring groove, and the four liquid distribution conical holes are connected end to end.
[0010] Preferably, the liquid level overflow also includes an expansion cylinder and an overflow hole. The expansion cylinder is fixedly sleeved on the outside of the rotating cylinder, and the bottom end of the expansion cylinder is fixedly connected to the top surface of the rotating disk box. The overflow hole is opened on the surface of the rotating cylinder and is located inside the expansion cylinder. A switching inclined tube is fixedly inserted on the bottom surface of the inner cavity of the expansion cylinder, and the bottom end of the switching inclined tube passes through the rotating disk box. The liquid level overflow also includes a rotating sleeve, which is slidably sleeved on the outside of the rotating disk box. The bottom end of the rotating sleeve is fixedly connected to a circulating water chamber, and the bottom surface of the circulating water chamber is fixedly connected to the bottom surface of the inner cavity of the elution tower body, and the end of the water supply pipe is connected to the circulating water chamber.
[0011] Preferably, the mounting bracket also includes a guide tube, which is fixedly connected to the ox horn tube, and a piston tube is slidably inserted inside the guide tube. The mounting bracket also includes a supporting cross bar, which is fixedly sleeved on the ox horn tube, and a positioning long tube is fixedly inserted on the supporting cross bar, and a guide slide rod is slidably inserted inside the positioning long tube, and the bottom end of the guide slide rod is fixedly connected to a rolling steel ball assembly.
[0012] Preferably, the measuring assembly also includes a measuring spring, the bottom end of the measuring spring is fixedly connected to the bottom surface of the inner cavity of the measuring fixed cylinder, the top end of the measuring spring is fixedly connected to the measuring movable cylinder, the measuring movable cylinder is slidably inserted into the interior of the measuring fixed cylinder, the measuring movable cylinder is connected to the piston tube, the top movable cover of the measuring movable cylinder is provided with a measuring cover plate, an oil absorption felt column is fixedly inserted into the bottom surface of the measuring cover plate, the bottom end of the oil absorption felt column is movably inserted into the interior of the measuring movable cylinder, the top surface of the measuring cover plate is fixedly connected to a water collecting cone tube, the top end of the oil absorption felt column extends to the interior of the water collecting cone tube, and the water collecting cone tube is aligned with the liquid distribution cone hole.
[0013] Preferably, the support mechanism further includes a first arc-shaped inclined surface member and a second arc-shaped inclined surface member, both of which are fixedly connected to the inner wall of the annular support, and both of which are adapted to the rolling steel ball assembly.
[0014] Preferably, the monitoring mechanism also includes a monitoring slide rod, which is fixedly connected to the top surface of the monitoring base plate, the top end of the monitoring slide rod is fixedly connected to the monitoring top plate, the monitoring top plate is fixedly connected to the inner wall of the elution tower body, and a trigger switch is fixedly installed on the bottom surface of the monitoring top plate. The outer sliding sleeve of the monitoring slide rod is connected to a touch-pressure cross bar, and a buffer cavity is provided inside the touch-pressure cross bar. The inner wall of the buffer cavity is connected to a buffer piston through a buffer spring transmission, and a monitoring fixed angle block is fixedly connected to the buffer piston. The other end of the monitoring fixed angle block extends to the outside of the touch-pressure cross bar. The monitoring mechanism also includes a monitoring dynamic angle block, which is fixedly installed on the surface of the measuring cylinder, and the monitoring dynamic angle block is adapted to the monitoring fixed angle block.
[0015] Preferably, the desorption mechanism also includes an arc-shaped sliding hole and an arc-shaped sliding rod. The arc-shaped sliding hole is opened on the inner side surface of the arc-shaped flat tube. The arc-shaped sliding rod is fixedly connected to the inner wall of the arc-shaped flat tube. The outer movable sleeve of the arc-shaped sliding rod is provided with a reset spring and an arc-shaped sliding member. The arc-shaped sliding member is transmission-connected to the inner wall of the arc-shaped flat tube through the reset spring. A desorption platform is fixedly connected to the arc-shaped sliding member. The other end of the desorption platform passes through the arc-shaped sliding hole and extends to the outside thereof and is adapted to the measuring cylinder and the oil-absorbing felt column. A triangular guide groove is opened on the surface of the desorption platform.
[0016] 3. Beneficial effects
[0017] Compared with the prior art, the advantages of the present invention are:
[0018] 1. The exhaust gas scrubber can be used to spray the exhaust gas and liquefy the organic matter in the exhaust gas to achieve the purpose of removing the organic matter in the exhaust gas. The liquid distribution component can inject the continuously flowing condensed water into a specific measuring component. The measuring component can adsorb the organic matter in the condensed water to achieve the purpose of oil-water separation. The liquid level overflow can rotate the mounting bracket in a circle, and the mounting bracket can rotate the measuring component in a circle to achieve the function of replacing the measuring component. The replaced measuring component has a longer time to adsorb the organic matter in the condensed water inside it, which helps to increase the oil-water separation effect. The support mechanism can apply a lifting force to the mounting bracket, and the mounting bracket can lift the oil absorption felt column in the measuring component from the condensed water. The oil holding capacity of the oil absorption felt column is used to absorb organic matter and achieve the effect of draining water, reducing the water content in the oil layer and facilitating subsequent treatment. The desorption mechanism can squeeze out the organic matter inside the oil absorption felt column to achieve the regeneration of the oil absorption felt column, thereby improving the practicality of the natural gas shaping machine exhaust gas treatment device.
[0019] 2. The condensed water inside the measuring component can be discharged through the liquid level overflow to ensure that the condensed water will not overflow from the measuring component. The oil-water ratio inside the measuring component can be monitored in real time through the measuring component. The measuring component will trigger the monitoring mechanism when the oil-water ratio is relatively large. The triggered monitoring mechanism will send an electrical signal to the exhaust gas scrubber, so that the exhaust gas scrubber can control the action of the liquid level overflow to replace the measuring component that receives the condensed water, thereby achieving the purpose of continuous treatment of exhaust gas, which is not affected by changes in the organic matter content in the exhaust gas, and does not cause problems caused by excessive or insufficient organic matter content in the exhaust gas, thereby improving the practicality of the exhaust gas treatment device of the natural gas shaping machine. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a structural schematic diagram of the present invention;
[0021] Figure 2 For the present invention Figure 1 Schematic diagram of the internal structure;
[0022] Figure 3 For the present invention Figure 2 An enlarged schematic diagram of the upper local structure;
[0023] Figure 4 For the present invention Figure 3 Schematic diagram of the internal structure;
[0024] Figure 5 For the present invention Figure 4 Schematic diagram of the internal structure of the medium liquid level overflow;
[0025] Figure 6 For the present invention Figure 3 Schematic diagram of the structure of the measurement component;
[0026] Figure 7 For the present invention Figure 6 Right view of;
[0027] Figure 8 For the present invention Figure 7 Schematic diagram of the internal structure;
[0028] Figure 9 For the present invention Figure 3 Schematic diagram of the structure of the monitoring agency;
[0029] Figure 10 For the present invention Figure 9 Schematic diagram of the internal structure;
[0030] Figure 11 For the present invention Figure 3 Schematic diagram of the internal structure of the desorption mechanism from a top view;
[0031] Figure 12 For the present invention Figure 3 Schematic diagram of the internal structure of the liquid distribution component;
[0032] Figure 13 For the present invention Figure 12 A top view of
[0033] Figure 14 For the present invention Figure 3 Cross-section view at AA in the middle.
[0034] Description of the numbers in the figure:
[0035] 1. Exhaust gas leaching tower; 101. leaching tower body; 102. Intelligent control cabinet; 103. Gas collecting hood; 104. Demister; 105. Spraying element; 106. Water pipe; 107. Water supply pipe; 108. Circulating pump; 109. Exhaust gas ejection element; 110. Partition plate; 111. Leakage cone; 112. Oil drain pipe; 2. Liquid distribution assembly; 21. Liquid distribution tray; 22. Liquid distribution ring groove; 23. Liquid distribution cone hole; 3. Liquid level overflow; 31. Rotating motor; 32. Rotating cylinder; 33. Expanding cylinder; 34. Overflow hole; 35. Rotating disk box; 36. Adapter inclined pipe; 37. Rotating sleeve; 38. Circulating water chamber; 4. Mounting bracket; 41. Extension pipe; 42. Ox-horn pipe; 43. Guide pipe; 44. Piston pipe; 45. Support bar; 46. Positioning long pipe; 4 7. Guide slide; 48. Rolling steel ball assembly; 5. Measuring assembly; 51. Measuring fixed cylinder; 52. Measuring spring; 53. Measuring movable cylinder; 54. Measuring cover; 55. Oil-absorbing felt column; 56. Water collecting cone; 6. Support mechanism; 61. Annular support; 62. First arc-shaped inclined surface member; 63. Second arc-shaped inclined surface member; 7. Monitoring mechanism; 70. Monitoring movable angle block; 71. Monitoring bottom plate; 72. Monitoring slide; 73. Monitoring top plate; 74. Trigger switch; 75. Touch-pressure horizontal bar; 76. Buffer chamber; 77. Buffer spring; 78. Buffer piston; 79. Monitoring fixed angle block; 8. Desorption mechanism; 81. Arc-shaped flat tube; 82. Arc-shaped sliding hole; 83. Arc-shaped slide; 84. Reset spring; 85. Arc-shaped slide; 86. Desorption table; 87. Triangular guide groove. DETAILED DESCRIPTION
[0036] The following will be combined with the accompanying drawings to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of them. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without creative effort shall fall within the scope of protection of the present invention.
[0037] A natural gas setting machine exhaust gas treatment device, including an exhaust gas washing tower 1, see Figure 1-4The exhaust gas scrubbing tower 1 includes a scrubbing tower body 101, an intelligent control cabinet 102 is fixedly installed on the front of the scrubbing tower body 101, a liquid level gauge located below the intelligent control cabinet 102 is fixedly installed on the front of the scrubbing tower body 101, and the liquid level gauge is connected to the circulating water chamber 38. The top of the scrubbing tower body 101 is fixedly connected to a gas collecting hood 103, and a demister 104 located at its top is fixedly installed on the inner wall of the scrubbing tower body 101, and a spray piece 105 located below the demister 104 is fixedly installed on the inner wall of the scrubbing tower body 101. A water pipe 106 is connected to the spray piece 105, and the other end of the water pipe 106 extends from the top of the right side of the scrubbing tower body 101 and extends from the bottom of the right side of the scrubbing tower body 101 to its interior, The middle part of the pipe 106 is connected to a water supply pipe 107, and the water supply pipe 106 is connected to a circulation pump 108 located inside the elution tower body 101. The circulation pump 108 is fixedly installed on the bottom surface of the inner cavity of the elution tower body 101. An exhaust gas ejection part 109 located below the spray part 105 is installed on the inner wall of the elution tower body 101. The exhaust gas ejection part 109 is connected to the air supply pipe, and the air supply pipe extends from the left side of the elution tower body 101. A partition plate 110 located below the exhaust gas ejection part 109 is fixedly installed on the inner wall of the elution tower body 101. A leakage cone 111 located at its left end is fixedly plugged into the partition plate 110. A liquid distribution component 2 located below the partition plate 110 is provided on the inner wall of the elution tower body 101. Please refer to Figure 12-13 The liquid distribution assembly 2 includes a liquid distribution tray 21, which is slidably inserted into the interior of the elution tower body 101. A liquid level overflow device 3 is installed on the bottom surface of the partition plate 110. The liquid level overflow device 3 includes a rotary motor 31, which is fixedly installed on the bottom surface of the partition plate 110. A rotating cylinder 32 is fixedly connected to the end of the output shaft of the rotary motor 31. Please refer to Figure 5 The bottom end of the rotating drum 32 is fixedly connected to a rotating disk box 35. The rotating disk box 35 is provided with a mounting bracket 4. The mounting bracket 4 includes four extension tubes 41. The four extension tubes 41 are fixedly connected to the side of the rotating disk box 35 and are equidistantly distributed. Figure 6-8The other end of the extension tube 41 is connected to the horn tube 42, and a measuring component 5 is installed on the end of the horn tube 42. There are four measuring components 5 and they are arranged in a counterclockwise direction. The first one aligned with the leakage cone 111 is arranged first. The measuring component 5 includes a measuring cylinder 51. The horn tube 42 is buckled on the outside of the measuring cylinder 51. The end of the horn tube 42 is fixedly connected to the surface of the measuring cylinder 51. The left side of the elution tower body 101 is fixedly plugged with an oil drain pipe 112 at its bottom end. A support mechanism 6 is provided on the bottom surface of the inner cavity of the elution tower body 101. The support mechanism 6 includes an annular support 61. The annular support 61 is fixedly connected to the bottom surface of the inner cavity of the elution tower body 101. A lifting bearing is installed on the top surface of the annular support 61. The measuring cylinder 51 is installed on the top surface of the lifting bearing. A monitoring mechanism 7 is installed on the left side of the inner cavity of the elution tower body 101. Please refer to Figure 9-10 The monitoring mechanism 7 includes a monitoring base plate 71, which is fixedly connected to the left side of the inner cavity of the elution tower body 101. The desorption mechanism 8 is installed on the right side of the inner cavity of the elution tower body 101. Figure 11 The desorption mechanism 8 includes an arc-shaped flat tube 81 , which is fixedly connected to the right side surface of the inner cavity of the elution tower body 101 .
[0038] See also Figure 12-13 The liquid distribution component 2 also includes a liquid distribution ring groove 22, which is opened on the top surface of the liquid distribution plate 21. Four liquid distribution cone holes 23 are opened on the bottom surface of the inner cavity of the liquid distribution ring groove 22. The four liquid distribution cone holes 23 are connected end to end and are used to inject the continuously flowing condensed water into the specific measuring component 5 to play the role of water distribution.
[0039] See also Figure 5 The liquid level overflow device 3 also includes an expansion cylinder 33 and an overflow hole 34. The expansion cylinder 33 is fixedly sleeved on the outside of the rotating cylinder 32, and the bottom end of the expansion cylinder 33 is fixedly connected to the top surface of the rotating disk box 35. The overflow hole 34 is opened on the surface of the rotating cylinder 32 and is located inside the expansion cylinder 33. A switching inclined tube 36 is fixedly inserted on the bottom surface of the inner cavity of the expansion cylinder 33, and the bottom end of the switching inclined tube 36 passes through the rotating disk box 35. The liquid level overflow device 3 also includes a rotating sleeve 37, which is slidably sleeved on the outside of the rotating disk box 35 and the two are in a sealed state. The bottom end of the rotating sleeve 37 is fixedly connected to a circulating water chamber 38. The bottom surface of the circulating water chamber 38 is fixedly connected to the bottom surface of the inner cavity of the elution tower body 101. The end of the water supply pipe 106 is connected to the circulating water chamber 38 for draining the condensed water inside the measuring component 5 and temporarily storing it. The circulating water chamber 38 is connected to an external refrigerator.
[0040] See also Figure 6-8The mounting bracket 4 also includes a guide tube 43, which is fixedly connected to the ox horn tube 42. The piston tube 44 is slidably inserted inside the guide tube 43, so that the measuring cylinder 53 can move up and down. The mounting bracket 4 also includes a supporting cross bar 45, which is fixedly sleeved on the ox horn tube 42. A positioning long tube 46 is fixedly inserted on the supporting cross bar 45, and a guide slide rod 47 is slidably inserted inside the positioning long tube 46. The bottom end of the guide slide rod 47 is fixedly connected to a rolling steel ball assembly 48, which is used to apply a lifting force to the measuring cover 54 so that the measuring cover 54 can lift the oil-absorbing felt column 55 upward.
[0041] See also Figure 6-8 The measuring assembly 5 also includes a measuring spring 52, the bottom end of the measuring spring 52 is fixedly connected to the bottom surface of the inner cavity of the measuring fixed cylinder 51, the top of the measuring spring 52 is fixedly connected to a measuring movable cylinder 53, the measuring movable cylinder 53 is slidably inserted into the interior of the measuring fixed cylinder 51, the measuring movable cylinder 53 is connected to the piston tube 44, and the top movable cover of the measuring movable cylinder 53 is provided with a measuring cover plate 54. The measuring cover plate 54 can seal the gap between it and the measuring movable cylinder 53, and an oil absorption felt column 55 is fixedly inserted on the bottom surface of the measuring cover plate 54. The bottom end of the oil absorption felt column 55 is movably inserted into the interior of the measuring movable cylinder 53, and a water collecting cone 56 is fixedly connected to the top surface of the measuring cover plate 54. The top end of the oil absorption felt column 55 extends to the interior of the water collecting cone 56, and the water collecting cone 56 is aligned with the liquid distribution cone hole 23 to adsorb organic matter in the condensed water, realize oil-water separation, and monitor the oil-water ratio inside the measuring movable cylinder 53 at the same time.
[0042] See also Figure 3-4 and Figure 14 The support mechanism 6 also includes a first arc-shaped inclined surface member 62 and a second arc-shaped inclined surface member 63. The first arc-shaped inclined surface member 62 and the second arc-shaped inclined surface member 63 are both fixedly connected to the inner wall of the annular support platform 61. The first arc-shaped inclined surface member 62 and the second arc-shaped inclined surface member 63 are both adapted to the rolling steel ball assembly 48 to apply a lifting force to the rolling steel ball assembly 48, so as to lift the guide slide rod 47 upward.
[0043] See also Figure 9-10The monitoring mechanism 7 also includes a monitoring slide bar 72, which is fixedly connected to the top surface of the monitoring bottom plate 71. The top of the monitoring slide bar 72 is fixedly connected to a monitoring top plate 73, which is fixedly connected to the inner wall of the elution tower body 101. A trigger switch 74 is fixedly installed on the bottom surface of the monitoring top plate 73. The outer sliding sleeve of the monitoring slide bar 72 is connected to a touch-pressure horizontal bar 75. A buffer chamber 76 is provided inside the touch-pressure horizontal bar 75. The inner wall of the buffer chamber 76 is connected to a buffer piston 78 through a buffer spring 77. A monitoring fixed angle block 79 is fixedly connected to the buffer piston 78. The other end of the monitoring fixed angle block 79 extends to the outside of the touch-pressure horizontal bar 75. The monitoring mechanism 7 also includes a monitoring dynamic angle block 70. The monitoring dynamic angle block 70 is fixedly mounted on the surface of the measuring cylinder 53. The monitoring dynamic angle block 70 is adapted to the monitoring fixed angle block 79 and is used to monitor the position of the measuring cylinder 53 in real time, thereby monitoring the oil-water ratio inside the measuring cylinder 53.
[0044] See also Figure 11 The desorption mechanism 8 also includes an arc-shaped sliding hole 82 and an arc-shaped sliding rod 83. The arc-shaped sliding hole 82 is opened on the inner side surface of the arc-shaped flat tube 81, and the arc-shaped sliding rod 83 is fixedly connected to the inner wall of the arc-shaped flat tube 81. The outer movability of the arc-shaped sliding rod 83 is sleeved with a reset spring 84 and an arc-shaped sliding member 85. The arc-shaped sliding member 85 is transmission-connected to the inner wall of the arc-shaped flat tube 81 through the reset spring 84. A desorption platform 86 is fixedly connected to the arc-shaped sliding member 85. The other end of the desorption platform 86 passes through the arc-shaped sliding hole 82 and extends to the outside thereof and is adapted to the measuring cylinder 53 and the oil absorption felt column 55. A triangular guide groove 87 is opened on the surface of the desorption platform 86, which is used to pressurize the oil absorption felt column 55 and squeeze out the organic matter inside the oil absorption felt column 55 to achieve the effect of regeneration.
[0045] Working principle:
[0046] First, the condensed water inside the circulating water chamber 38 is driven by the circulating pump 108 and sprayed into the leaching tower body 101 through the water pipe 106 and the spraying part 105, so that a rain curtain is formed inside the leaching tower body 101. Then the exhaust gas enters the leaching tower body 101 through the exhaust gas ejection part 109, and then the exhaust gas passes through the rain curtain. The rain curtain contacts the exhaust gas and cools it, so that the organic matter in the exhaust gas is condensed and liquefied to form liquid organic matter, thereby achieving a purification effect. The purified exhaust gas rises and is defogged by the demister 104 and then discharged from the gas collecting hood 103 to the next treatment link. After that, the organic matter falls to the top surface of the partition plate 110 with the condensed water and passes through the leakage cone pipe 111, the liquid distribution ring groove 22, and the corresponding liquid distribution cone hole 23 to fall into the corresponding water collecting cone pipe 56. Then the condensed water passes through the demister 104 and is discharged from the gas collecting hood 103 to the next treatment link. The organic matter in the condensed water passes through the pores on the oil-absorbing felt column 55 and enters the measuring cylinder 53, and the organic matter in the condensed water is adsorbed by the oil-absorbing felt column 55. Then the condensed water inside the measuring cylinder 53 passes through the piston tube 44, the guide tube 43, the ox-horn tube 42, the extension tube 41, the rotating disk box 35, the rotating cylinder 32, the overflow hole 34, the enlarged diameter cylinder 33, and the adapter inclined tube 36 and flows back to the circulating water chamber 38. As the use time increases, the organic matter adsorbed inside the oil-absorbing felt column 55 gradually increases, and the proportion of organic matter in the measuring cylinder 53 gradually increases. Since the density of organic matter is less than the density of water, the total weight of the measuring cylinder 53 and its contents gradually decreases. Afterwards, the measuring cylinder 53 moves upward with the monitoring movable angle block 70 under the action of the elastic force of the measuring spring 52, and the measuring cylinder 53 is weighed. The measuring cylinder 53 pulls up a distance with the piston tube 44 inside the guide tube 43, and then the monitoring movable angle block 70 contacts the bottom surface of the monitoring fixed angle block 79 and applies an upward thrust to it, and then the monitoring fixed angle block 79 moves upward with the contact pressure bar 75, and then the contact pressure bar 75 squeezes the trigger switch 74, and then the trigger switch 74 sends an electrical signal to the intelligent control cabinet 102, and then the intelligent control cabinet 102 controls the rotation motor 31 to run, and then the rotation motor 31 drives the rotating cylinder 32 to rotate clockwise, and then the rotating cylinder 32 drives the liquid distribution plate 21 to rotate, and at the same time, the rotating cylinder 32 drives the mounting bracket 4 to rotate through the rotating disk box 35, and the mounting bracket 4 drives the measuring component 5 to rotate, which will cause the first measuring component 5 to drive the monitoring movable angle block 70 to be misaligned with the monitoring fixed angle block 79. Open, the touch-pressure bar 75 moves downward and resets under the action of gravity, and then the rolling steel ball assembly 48 corresponding to the second measuring component 5 slides off the horizontal surface of the second arc-shaped inclined surface member 63, and then the measuring cover 54 moves vertically downward under the action of its own gravity, the oil-absorbing felt column 55, the water-collecting cone 56, the guide slide 47, and the gravity of the rolling steel ball assembly 48, and then the oil-absorbing felt column 55 is inserted into the measuring cylinder 53, and then the measuring cover 54 covers the top of the measuring cylinder 53, and then the liquid distribution cone hole 23 corresponding to the second measuring component 5 is aligned with the leakage cone 111. At this time, the condensed water can enter the measuring cylinder 53 corresponding to the second measuring component 5 through the leakage cone 111, the liquid distribution cone hole 23, and the water-collecting cone 56. At this time, the rotating cylinder 32 rotates ninety degrees.Then the intelligent control cabinet 102 controls the rotary motor 31 to stop running, and the first measuring component 5 is in a stationary state for static stratification. The organic matter floats in the condensed water and is adsorbed by the oil-absorbing felt column 55. Then, as the condensed water is injected into the measuring cylinder 53 corresponding to the second measuring component 5, the weight of the measuring cylinder 53 and its contents gradually increases. Then, the measuring cylinder 53 squeezes the measuring spring 52 and moves the monitoring movable angle block 70 downward. Then, the inclined surface of the monitoring movable angle block 70 contacts the inclined surface of the monitoring fixed angle block 79 and squeezes each other. Then, the monitoring fixed angle block 79 is pushed to the left. Then, the monitoring fixed angle block 79 moves toward the inside of the buffer chamber 76. Then, the monitoring movable angle block 70 passes over the monitoring fixed angle block 79. Then, the buffer piston 78 is in the buffer chamber. Under the action of the elastic force of the impact spring 77, the monitoring fixed angle block 79 pops out and resets, and then the proportion of organic matter in the second measuring component 5 gradually increases, and then the second measuring component 5 triggers the monitoring mechanism 7, and then the intelligent control cabinet 102 controls the rotary motor 31 to rotate the rotating cylinder 32 clockwise ninety degrees, and then the third measuring component 5 receives the condensed water, and the second measuring component 5 is allowed to stand and stratify, and the rolling steel ball assembly 48 corresponding to the first measuring component 5 slides along the inclined surface of the first arc-shaped inclined surface member 62 to the horizontal surface above it, and then the rolling steel ball assembly 48 is pulled out of the measuring dynamic cylinder 53 with the oil-absorbing felt column 55 through the guide slide rod 47 and the measuring cover plate 54 for drainage. The drainage time is controlled by the rotation speed of the rotating cylinder 32, and then as the first measuring component 5 is The measuring component 5 rotates in a circle, and the desorption table 86 is inserted into the gap between the measuring cylinder 53 and the oil-absorbing felt column 55 corresponding to the first measuring component 5. Then the rolling steel ball component 48 slides off the horizontal surface of the first arc-shaped inclined surface member 62. Then the measuring cover 54 presses the oil-absorbing felt column 55 onto the top surface of the desorption table 86 under the action of its own gravity, the oil-absorbing felt column 55, the water-collecting cone 56, the guide slide 47, and the gravity of the rolling steel ball component 48. Then the oil-absorbing felt column 55 is elastically compressed and squeezes out the organic matter inside it. Then the squeezed organic matter flows along the triangular guide groove 87 and falls into the inside of the annular support 61 and is discharged through the oil drain pipe 112. Then the third measuring component 5 triggers the monitoring mechanism 7, and then the intelligent control cabinet 102 controls The rotary motor 31 drives the rotary cylinder 32 to rotate slowly ninety degrees clockwise, and then the first weighing component 5 drives the arc-shaped slide 85 to rotate clockwise through the friction between the oil-absorbing felt column 55 and the desorption plate 86, and then the arc-shaped slide 85 pulls the reset spring 84, and the reset spring 84 elastically stretches, and the elastic potential energy increases. Then, the rolling steel ball assembly 48 corresponding to the first weighing component 5 moves upward along the inclined surface of the second arc-shaped inclined surface component 63, and then the rolling steel ball assembly 48 moves upward with the oil-absorbing felt column 55 through the guide slide rod 47 and the weighing cover plate 54, and then the friction between the oil-absorbing felt column 55 and the desorption plate 86 is reduced, and then the arc-shaped slide 85 drives the desorption plate 86 to rotate counterclockwise and reset under the action of the elastic tension of the reset spring 84.The desorption platen 86 is then inserted between the oil-absorbing felt column 55 corresponding to the second weighing component 5 and the weighing cylinder 53. The intelligent control cabinet 102 then controls the rotary motor 31 to rotate the rotating cylinder 32 clockwise 90 degrees. The intelligent control cabinet 102 controls the rotary motor 31 to stop. The fourth weighing component 5 then receives condensed water. The third weighing component 5 is allowed to stand for stratification. The second weighing component 5 is squeezed and regenerated. The rolling steel ball assembly 48 corresponding to the first weighing component 5 slides along the inclined surface of the second arc-shaped ramp member 63 to its horizontal surface. The fourth weighing component 5 then triggers the monitoring mechanism 7. The intelligent control cabinet 102 then controls the rotary motor 31 to rotate the rotating cylinder 32 clockwise 90 degrees. The first weighing component 5 then moves to its starting position and receives condensed water. This process is repeated.
[0047] The above description is only a preferred specific embodiment of the present invention; however, the protection scope of the present invention is not limited thereto; any technician familiar with the technical field within the technical scope disclosed by the present invention; any equivalent replacement or change based on the technical solution and improved conception of the present invention shall be covered within the protection scope of the present invention.
Claims
1. A natural gas setting machine exhaust gas treatment device, comprising an exhaust gas washing tower (1), characterized in that: The waste gas leaching tower (1) comprises a leaching tower body (101), an intelligent control cabinet (102) is fixedly installed on the front of the leaching tower body (101), a gas collecting hood (103) is fixedly connected to the top of the leaching tower body (101), a demister (104) located at the top of the leaching tower body (101) is fixedly installed on the inner wall of the leaching tower body (101), a spraying part (105) located below the demister (104) is fixedly installed on the inner wall of the leaching tower body (101), a water pipe (106) is connected to the spraying part (105), the other end of the water pipe (106) extends from the top of the right side of the leaching tower body (101) and extends from the bottom of the right side of the leaching tower body (101) to the inside thereof, and the middle position of the water pipe (106) is connected to the water supply pipe (106). 07), the water delivery pipe (106) is connected to a circulation pump (108) located inside the elution tower body (101), the circulation pump (108) is fixedly installed on the bottom surface of the inner cavity of the elution tower body (101), the inner wall of the elution tower body (101) is equipped with an exhaust gas ejection part (109) located below the spray part (105), the exhaust gas ejection part (109) is connected to an air delivery pipe, and the air delivery pipe extends from the left side of the elution tower body (101), the inner wall of the elution tower body (101) is equipped with a partition plate (110) located below the exhaust gas ejection part (109), the partition plate (110) is fixedly connected to a leakage cone (111) located at its left end, and the inner wall of the elution tower body (101) is provided with a gas outlet located below the partition plate (110). The liquid distribution assembly (2) comprises a liquid distribution tray (21), the liquid distribution tray (21) is slidably inserted into the interior of the elution tower body (101), a liquid level overflow device (3) is installed on the bottom surface of the partition plate (110), and the liquid level overflow device (3) comprises a rotary motor (31), the rotary motor (31) is fixedly installed on the bottom surface of the partition plate (110), a rotary cylinder (32) is fixedly connected to the end of the output shaft of the rotary motor (31), the bottom end of the rotary cylinder (32) is fixedly connected to a rotary disk box (35), and a mounting bracket (4) is provided on the rotary disk box (35), and the mounting bracket (4) comprises an extension pipe (41), the extension pipe (41) is fixedly connected to the side of the rotary disk box (35), and the other end of the extension pipe (41) is fixedly connected to the side of the rotary disk box (35). The ox horn tube (42) is connected, and a measuring assembly (5) is installed on the end of the ox horn tube (42). The measuring assembly (5) includes a measuring cylinder (51). The ox horn tube (42) is buckled on the outside of the measuring cylinder (51). The end of the ox horn tube (42) is fixedly connected to the surface of the measuring cylinder (51). An oil drain pipe (112) located at the bottom end is fixedly plugged on the left side of the elution tower body (101). A support mechanism (6) is provided on the bottom surface of the inner cavity of the elution tower body (101). The support mechanism (6) includes an annular support (61). The annular support (61) is fixedly connected to the bottom surface of the inner cavity of the elution tower body (101). A lifting bearing is installed on the top surface of the annular support (61). The measuring cylinder (51) is installed on the top surface of the lifting bearing.A monitoring mechanism (7) is installed on the left side of the inner cavity of the elution tower body (101), the monitoring mechanism (7) includes a monitoring base plate (71), the monitoring base plate (71) is fixedly connected to the left side of the inner cavity of the elution tower body (101), and a desorption mechanism (8) is installed on the right side of the inner cavity of the elution tower body (101), the desorption mechanism (8) includes an arc-shaped flat tube (81), and the arc-shaped flat tube (81) is fixedly connected to the right side of the inner cavity of the elution tower body (101); The mounting bracket (4) further comprises a guide tube (43), the guide tube (43) being fixedly connected to the ox-horn tube (42), the piston tube (44) being slidably inserted into the interior of the guide tube (43), the mounting bracket (4) further comprises a support bar (45), the support bar (45) being fixedly sleeved on the ox-horn tube (42), a positioning long tube (46) being fixedly inserted into the support bar (45), a guide slide bar (47) being slidably inserted into the interior of the positioning long tube (46), and a rolling steel ball assembly (48) being fixedly connected to the bottom end of the guide slide bar (47); The measuring assembly (5) further comprises a measuring spring (52), the bottom end of the measuring spring (52) being fixedly connected to the bottom surface of the inner cavity of the measuring fixed cylinder (51), the top end of the measuring spring (52) being fixedly connected to a measuring movable cylinder (53), the measuring movable cylinder (53) being slidably inserted into the interior of the measuring fixed cylinder (51), the measuring movable cylinder (53) being communicated with the piston tube (44), the top movable cover of the measuring movable cylinder (53) being provided with a measuring cover plate (54), the bottom surface of the measuring cover plate (54) being fixedly inserted with an oil-absorbing felt column (55), the bottom end of the oil-absorbing felt column (55) being movably inserted into the interior of the measuring fixed cylinder (53), the top surface of the measuring cover plate (54) being fixedly connected with a water-collecting cone tube (56), the top end of the oil-absorbing felt column (55) extending to the interior of the water-collecting cone tube (56), the water-collecting cone tube (56) being aligned with the liquid-distributing cone hole (23); The desorption mechanism (8) further comprises an arc-shaped sliding hole (82) and an arc-shaped sliding rod (83). The arc-shaped sliding hole (82) is provided on the inner side surface of the arc-shaped flat tube (81). The arc-shaped sliding rod (83) is fixedly connected to the inner wall of the arc-shaped flat tube (81). The outer movability of the arc-shaped sliding rod (83) is sleeved with a reset spring (84) and an arc-shaped sliding member (85). The arc-shaped sliding member (85) is transmission-connected to the inner wall of the arc-shaped flat tube (81) via the reset spring (84). A desorption platform (86) is fixedly connected to the arc-shaped sliding member (85). The other end of the desorption platform (86) passes through the arc-shaped sliding hole (82) and extends to the outside thereof and is adapted to the measuring cylinder (53) and the oil-absorbing felt column (55). A triangular guide groove (87) is provided on the surface of the desorption platform (86).
2. The exhaust gas treatment device for a natural gas shaping machine according to claim 1, characterized in that: The liquid distribution assembly (2) further comprises a liquid distribution annular groove (22), which is provided on the top surface of the liquid distribution plate (21), and four liquid distribution conical holes (23) are provided on the bottom surface of the inner cavity of the liquid distribution annular groove (22), and the four liquid distribution conical holes (23) are connected end to end.
3. The exhaust gas treatment device for a natural gas setting machine according to claim 1, characterized in that: The liquid level overflow device (3) further comprises an expansion cylinder (33) and an overflow hole (34). The expansion cylinder (33) is fixedly sleeved on the outside of the rotating cylinder (32). The bottom end of the expansion cylinder (33) is fixedly connected to the top surface of the rotating disk box (35). The overflow hole (34) is provided on the surface of the rotating cylinder (32) and is located inside the expansion cylinder (33). A switching oblique tube (36) is fixedly inserted on the bottom surface of the inner cavity of the expansion cylinder (33). The bottom end of the tube (36) passes through the rotating disk box (35). The liquid level overflow device (3) further includes a rotating sleeve (37). The rotating sleeve (37) is slidably sleeved on the outside of the rotating disk box (35). The bottom end of the rotating sleeve (37) is fixedly connected to a circulating water cavity (38). The bottom surface of the circulating water cavity (38) is fixedly connected to the bottom surface of the inner cavity of the elution tower body (101). The end of the water delivery pipe (106) is connected to the circulating water cavity (38).
4. The exhaust gas treatment device for a natural gas shaping machine according to claim 1, characterized in that: The support platform mechanism (6) further comprises a first arc-shaped inclined surface member (62) and a second arc-shaped inclined surface member (63), both of which are fixedly connected to the inner wall of the annular support platform (61), and both of which are adapted to the rolling steel ball assembly (48).
5. The exhaust gas treatment device for a natural gas shaping machine according to claim 1, characterized in that: The monitoring mechanism (7) further comprises a monitoring slide bar (72), the monitoring slide bar (72) being fixedly connected to the top surface of the monitoring bottom plate (71), the top end of the monitoring slide bar (72) being fixedly connected to a monitoring top plate (73), the monitoring top plate (73) being fixedly connected to the inner wall of the elution tower body (101), a trigger switch (74) being fixedly mounted on the bottom surface of the monitoring top plate (73), the outer portion of the monitoring slide bar (72) being slidably sleeved with a touch pressure bar (75), the inner portion of the touch pressure bar (75) being provided with a buffer The punching cavity (76) is provided with a buffer piston (78) on the inner wall of the buffer cavity (76) through a buffer spring (77). The buffer piston (78) is fixedly connected with a monitoring fixed angle block (79). The other end of the monitoring fixed angle block (79) extends to the outside of the contact pressure bar (75). The monitoring mechanism (7) also includes a monitoring dynamic angle block (70). The monitoring dynamic angle block (70) is fixedly mounted on the surface of the measuring movable cylinder (53). The monitoring dynamic angle block (70) is adapted to the monitoring fixed angle block (79).
Citation Information
Patent Citations
Device for treating industrial waste gas by spraying method
CN104707446A
Self-cleaning roller-shaped oily waste gas adsorber
CN112023621A
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