Spraying device of washing tower for waste gas
By using a water wave filtering mechanism and a circulating swing spray mechanism in the exhaust gas scrubber, the problems of insufficient contact time and uneven distribution in traditional devices are solved, and more efficient waste gas purification and equipment maintenance optimization are achieved.
Patent Information
- Application Number
- CN202510608738.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-13
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2045-05-13
AI Technical Summary
The traditional waste gas scrubber spraying device has insufficient contact time in the airflow rising path, resulting in the inability to effectively capture pollutants and the uneven distribution of the airflow, resulting in poor washing effect in some areas.
The water wave filtering mechanism and a circulating swing spraying mechanism are adopted to increase the contact area and contact time of exhaust gas and liquid through the water wave filtering mechanism. The circulating swing spraying mechanism improves the uniform distribution of airflow and the liquid coverage range through revolution and swing.
It significantly improves the uniform distribution of airflow in the scrubber, increases the contact time and area between waste gas and liquid, improves the exhaust gas purification efficiency, reduces the equipment maintenance frequency, and extends the equipment service life.
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Figure CN120114955A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of scrubber spray, and particularly relates to a scrubber spray device for waste gas. Background Art
[0002] A scrubber spray device for waste gas is a device used to purify waste gas. It mainly removes harmful components in the waste gas, such as acidic gases, alkaline gases, volatile organic compounds, etc., through liquid absorption, reaction or physical adsorption. Its basic principle is that inside the scrubber, the waste gas contacts the spray liquid, thereby realizing the exchange of pollutants in the gas and the liquid. The pollutants are absorbed, dissolved or neutralized, and finally the purified waste gas is discharged into the atmosphere.
[0003] When the traditional scrubber spray device for waste gas is in use, after injecting the waste gas into the scrubber and passing through the shunt screen, the nozzles at the top of the scrubber spray water to purify the rising waste gas. Since the waste gas rises from the bottom and passes through the shunt screen, and then the washing liquid is sprayed by the top nozzles, there may not be enough contact time for the gas flow to fully mix with the liquid during its upward path in the tower. This will result in the failure to effectively capture the pollutants in the waste gas, especially for pollutants with low concentration or difficult to remove, and the purification effect may not be good. Moreover, the shunt screen cannot completely and evenly distribute the gas flow, making the gas flow in the tower uneven. The gas flow in some areas may be more concentrated, resulting in poor washing effects in these areas. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to overcome the above-mentioned disadvantages of the prior art and provide a scrubber spray device for waste gas.
[0005] The technical solution adopted to solve the above technical problem is: A scrubber spray device for waste gas, including a tower body. An exhaust pipe is installed at the top end of the tower body, and a filter plate fixedly connected to the inner wall of the exhaust pipe is provided between the tower body and the exhaust pipe. One side at the bottom of the tower body is communicated with a waste gas inlet pipe, and a plurality of observation windows are linearly and symmetrically arranged on the outer wall of the tower body. At the same time, a water tank fixedly installed on the outer wall of the tower is provided on one side at the bottom of the waste gas inlet pipe. A guide plate is arranged inside the tower body, and the guide plate is fixedly connected to the inner wall of the tower body at the center of the tower body. The top and bottom of the guide plate are arranged in a mirror-image trapezoidal structure. Inside the tower body at the bottom of the guide plate, a water wave filtering mechanism fixedly connected to the inner wall of the tower body is provided to increase the contact area and contact time between the waste gas and the liquid. Inside the tower body at the top of the guide plate, a circulating swing spraying mechanism is provided to improve the coverage range of the sprayed liquid.
[0006] Through the above technical solution, the combined action of the revolving swing of the nozzle and the staggered cyclic movement of several rings can significantly improve the uniform distribution of the air flow in the scrubbing tower. The multi-angle spraying of the nozzle and the water wave flow formed by several rings avoid the concentration of waste gas in certain areas, ensure the uniform distribution of the air flow, and avoid the imbalance of waste gas treatment.
[0007] Furthermore, the water wave filtering mechanism includes a support frame fixedly connected to the inner wall of the tower body, and the support frame is arranged in a U-shaped structure. A plurality of cams are arranged at the bottom of the support frame, and the plurality of cams are arranged in a staggered manner on the vertical plane of the support frame. At the same time, the plurality of cams are divided into two groups and are mirror-symmetrically arranged with the midline of the support frame as the axis. One of the cams is located at the midline of the support frame, and the tops of the plurality of cams are arranged in different directions. A fixing rod is rotatably connected through the plurality of cams, and the fixing rod is located at the eccentric position of the cam. At the same time, the connections between the cams in each group divided into two groups and the fixing rod are all different. Both ends of the fixing rod are rotatably connected to the support frame.
[0008] Through the above technical solution, the movement similar to the water wave ripples can make the contact between the waste gas and the liquid more sufficient. The air flow shows a wave-like flow under the action of several rings, making the liquid contact the waste gas more evenly, thereby improving the waste gas purification efficiency. The pollutants in the waste gas are more easily adsorbed or dissolved in the liquid.
[0009] Furthermore, a fan wheel is rotatably connected to the bottom of the support frame, and chain assemblies are arranged on both sides of the bottom of the support frame. At the same time, the two sprockets in the chain assemblies are rotatably connected through the support frame. The through ends of the two sprockets in the chain assemblies are respectively fixedly connected to the fan wheel and the fixing rod. A connecting rod is rotatably connected to the tops of the plurality of cams, and the other end of the connecting rod is slidably connected through the support frame. At the same time, a ring is fixedly connected to the through end of the connecting rod.
[0010] Through the above technical solution, since the staggered movement of several rings can avoid the accumulation of impurities in the waste gas, reduce the wear and blockage inside the tower, therefore, the maintenance frequency of the equipment is low, the service life of the equipment is extended, and the maintenance cost is reduced.
[0011] Furthermore, several of the rings are sleeved with each other, and gaps are provided between several of the rings. A metal ball is fixedly connected to the top end of the connecting rod located at the midline of the support frame, and the metal ball is located in the middle of several of the rings. Several of the rings are located in the middle of the flow guiding plate.
[0012] Through the above technical solution, the air flow dead zone and stagnation phenomenon in the scrubbing tower can be effectively reduced. Through the disturbance of the water wave pattern, the air flow can pass through the tower more smoothly, avoiding the situation where the waste gas cannot be fully treated, and improving the waste gas treatment capacity and effect.
[0013] Furthermore, the cyclic swing spraying mechanism includes a fixing frame fixedly connected to the inner wall of the tower body, and a support base fixedly connected to the bottom of the fixing frame. The top end of the support base is rotatably connected to a disc, and a spherical structure is provided at the center of the bottom of the disc. At the same time, the spherical end at the bottom of the disc is located inside the top end of the support base and is rotatably connected thereto. A plurality of spray heads are fixedly connected to the bottom surface of the disc in a circumferentially symmetric distribution. A conical pipe is welded to the center of the top surface of the disc, and the conical pipe, the disc and the spray heads are of a hollow structure. At the same time, the interiors of the conical pipe, the disc and the spray heads are in communication with each other.
[0014] Through the above technical solution, the cyclic swing spray head can avoid the long-term accumulation of liquid at the spray head, reduce the risk of spray head blockage due to liquid accumulation, scaling or impurities. The swinging and rotating movements of the spray head help to remove impurities on the surface of the spray head, ensure the stable operation of the system, and reduce the maintenance frequency and downtime.
[0015] Furthermore, a connecting pipe is rotatably connected through the end of the conical pipe away from the disc, and the penetrating end of the conical pipe is located at the eccentric position of the connecting pipe. The top end of the connecting pipe is rotatably connected to the fixing frame. A first bevel gear is rotatably connected to one side of the top of the L-shaped connecting plate at the center of the top end of the fixing frame, and the first bevel gear is drivingly connected to a second bevel gear. The connecting shaft of the second bevel gear is rotatably connected through the L-shaped connecting plate and the fixing frame. At the same time, the penetrating end of the connecting shaft of the second bevel gear is fixedly connected to the connecting pipe.
[0016] Through the above technical solution, through the revolution and swinging spraying, the spray head can more effectively spray the liquid to all corners of the tower body, avoid liquid waste, have a wide liquid coverage area, ensure that every drop of liquid can effectively participate in the waste gas purification process, thereby reducing the consumption of liquid and saving resources.
[0017] Furthermore, a driving motor is installed on one side of the top of the tower body. The output end of the driving motor is rotatably connected through the tower body and the L-shaped connecting plate, and the penetrating end of the driving motor is fixedly connected to the first bevel gear. Two sides of the top surface of the disc are slidably connected with sliding rods, and the contact end of the sliding rods with the disc is of a hemispherical structure. The end of the sliding rod away from the disc is fixedly connected with a spring rod, and the other end of the spring rod is fixedly connected with the fixing frame.
[0018] Through the above technical solution, due to the movement mode of the rotary swing spraying, the liquid can collide with the waste gas with higher efficiency, increasing the contact time and surface area of the gas-liquid interface, thereby improving the absorption efficiency of pollutants in the waste gas.
[0019] Furthermore, a spray pipe is installed on one side of the outer wall of the tower body. One end of the spray pipe is fixedly connected through the outer wall of the tower body, and the penetrating end of the spray pipe is rotatably connected through the second bevel gear, the L-shaped connecting plate and the fixing bracket. At the same time, the penetrating end of the spray pipe is located inside the connecting pipe. A hose is used to connect and fix the penetrating end of the spray pipe located inside the connecting pipe and one end of the conical pipe located inside the connecting pipe to achieve penetration.
[0020] The beneficial effects of the present invention are as follows: (1) By adopting the water wave filtering mechanism in the present invention, when the waste gas enters the tower body through the waste gas inlet pipe and moves upward, the waste gas pushes the fan wheel to rotate, causing the chain assemblies on both sides to drive, and then driving the fixing rod to rotate. As a result, several cams draw elliptical motions with the connection point with the fixing rod as the origin. The cams and the fixing rod rotate relative to each other, causing the connecting rod to move up and down reciprocally while rotating relative to the cams, prompting a metal ball and several rings to move up and down reciprocally synchronously. Since the connection points of the fixing rod with several cams in a group are separate eccentric points, the several rings and a metal ball move up and down reciprocally at different time intervals, achieving a motion similar to water wave ripples. Under the action of the baffle, the waste gas passes through the gaps between the moving metal ball and rings, greatly increasing the surface area of contact between the gas flow and the liquid, enabling the liquid to diffuse more evenly in the gas flow, thereby effectively improving the contact effect between the waste gas and the liquid and enhancing the removal efficiency of pollutants. (2) By adopting the circulating swing spraying mechanism in the present invention, the driving motor operates to drive the first bevel gear to rotate, thereby driving the second bevel gear, driving the connecting pipe at the bottom to rotate, prompting the conical pipe connected to the eccentric part at the bottom of the connecting pipe to rotate synchronously with the connecting pipe, and deforming the hose inside the connecting pipe. As a result, the disc swings up and down with the connecting pipe as the origin while rotating with the conical pipe. The conical pipe and the connecting pipe rotate relative to each other. While the disc rotates and swings up and down cyclically, the spray head at the bottom of the disc rotates and swings synchronously. The tap water in the spray pipe enters the conical pipe through the hose, then passes through the disc and the inside of the spray head, and is sprayed out from the bottom of the rotating and swinging spray head to spray and purify the waste gas after flow disturbance, enabling the waste gas to be more comprehensively treated in the scrubbing tower. It can not only increase the contact opportunities between the liquid and the waste gas, but also ensure the balanced absorption of various pollutants in the waste gas, enhancing the overall treatment capacity of the waste gas purification tower. Description of the Drawings
[0021] Figure 1 is the first perspective structural schematic diagram of the present invention; Figure 2 is the second perspective structural schematic diagram of the present invention; Figure 3 is the third perspective structural schematic diagram of the present invention; Figure 4It is a sectional view of the internal components of the tower body of the present invention; Figure 5 It is a schematic structural diagram of the first perspective of the water wave filtering mechanism of the present invention; Figure 6 It is a schematic structural diagram of the second perspective of the water wave filtering mechanism of the present invention; Figure 7 It is Figure 4 The enlarged structural diagram of part A of Figure 8 It is a schematic structural diagram of the first perspective of the circulating swing spraying mechanism of the present invention; Figure 9 It is a schematic structural diagram of the second perspective of the circulating swing spraying mechanism of the present invention; Figure 10 It is a schematic structural diagram of the connection part of the fan wheel inside the tower body of the present invention; Figure 11 It is a schematic structural diagram of the connection part between the fixing frame and the tower body of the present invention.
[0022] Reference numerals: 11, tower body; 12, waste gas inlet pipe; 13, tower top outlet gas pipe; 14, water tank; 15, observation window; 16, spray pipe; 17, filter plate; 18, guide plate; 2, water wave filtering mechanism; 21, support frame; 22, connecting rod; 23, ring; 24, cam; 25, fixed rod; 26, fan wheel; 27, chain assembly; 28, metal ball; 3, circulating swing spraying mechanism; 31, fixing frame; 32, support seat; 33, L-shaped connecting plate; 34, first bevel gear; 35, second bevel gear; 36, connecting pipe; 37, spring rod; 38, sliding rod; 39, conical pipe; 310, disc; 311, nozzle; 312, driving motor. Detailed implementation manners
[0023] In order to make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0024] As Figures 1 - 10As shown, a spray device for a waste gas scrubbing tower in this embodiment includes a tower body 11. An exhaust pipe 13 is installed at the top of the tower body 11, and a filter plate 17 fixedly connected to the inner wall of the exhaust pipe 13 is provided between the tower body 11 and the exhaust pipe 13. One side at the bottom of the tower body 11 is connected to an exhaust gas inlet pipe 12, and a number of observation windows 15 are linearly arranged at a certain distance on the outer wall of the tower body 11. At the same time, a water tank 14 fixedly installed on the outer wall of the tower body 11 is provided on one side at the bottom of the exhaust gas inlet pipe 12. An existing water pump is installed in the water tank 14, and the water pump is connected to the inside of the tower body 11. A flow guide plate 18 is provided inside the tower body 11, and the flow guide plate 18 is fixedly connected to the inner wall of the tower body 11 at the center of the tower body 11. The combined action of the revolving and swinging of the spray heads 311 and the staggered cyclic movement of a number of rings 23 can significantly improve the uniform distribution of the airflow in the scrubbing tower. The multi-angle spraying of the spray heads 311 and the water wave flow formed by a number of rings 23 avoid the concentration of waste gas in certain areas, ensure the uniform distribution of the airflow, and avoid the imbalance of waste gas treatment. The top and bottom of the flow guide plate 18 are arranged in a mirror trapezoidal structure.
[0025] As Figures 2 - 9 shown, a water wave filtering mechanism 2 fixedly connected to the inner wall of the tower body 11 is provided inside the tower body 11 at the bottom of the flow guide plate 18, which is used to increase the contact area and contact time between the waste gas and the liquid. The water wave filtering mechanism 2 includes a support frame 21 fixedly connected to the inner wall of the tower body 11. A fan wheel 26 is rotatably connected to the bottom of the support frame 21, and chain assemblies 27 are provided on both sides at the bottom of the support frame 21. At the same time, the two sprockets in the chain assemblies 27 are rotatably connected through the support frame 21. The movement similar to the water wave ripples can make the contact between the waste gas and the liquid more sufficient. The airflow shows a fluctuating flow under the action of a number of rings 23, making the liquid contact the waste gas more evenly, thereby improving the waste gas purification efficiency. The pollutants in the waste gas are more easily adsorbed or dissolved in the liquid. The through ends of the two sprockets in the chain assemblies 27 are respectively fixedly connected to the fan wheel 26 and a fixed rod 25. The tops of a number of cams 24 are rotatably connected to a connecting rod 22, and the other end of the connecting rod 22 is slidably connected through the support frame 21. At the same time, the through end of the connecting rod 22 is fixedly connected to a ring 23. A number of rings 23 are sleeved with each other, and gaps are provided between a number of rings 23.
[0026] As Figures 3 - 9As shown, at the top of the connecting rod 22 located at the midline of the support frame 21, a metal ball 28 is fixedly connected. The metal ball 28 is located in the middle of a plurality of rings 23. The plurality of rings 23 are located in the middle of the deflector 18. The support frame 21 is arranged in a U-shaped structure. A plurality of cams 24 are arranged at the bottom of the support frame 21. The plurality of cams 24 are arranged in a staggered manner on the vertical plane of the support frame 21. Since the staggered movement of the plurality of rings 23 can avoid the accumulation of impurities in the waste gas, reduce the wear and blockage inside the tower. Therefore, the maintenance frequency of the equipment is low, the service life of the equipment is extended, and the maintenance cost is reduced. At the same time, the plurality of cams 24 are divided into two groups and are arranged in a mirror image with the midline of the support frame 21 as the axis. One of the cams 24 is located at the midline of the support frame 21. The tops of the plurality of cams 24 are arranged in different directions. A fixing rod 25 is rotatably connected through the plurality of cams 24. The fixing rod 25 is located at the eccentric position of the cam 24, which can effectively reduce the air flow dead zone and retention phenomenon in the scrubber tower. Through the disturbance of the water ripples, the air flow can pass through the tower more smoothly, avoiding the situation where the waste gas cannot be fully treated, improving the treatment capacity and effect of the waste gas. At the same time, the connections between the cams 24 in each group divided into two groups and the fixing rod 25 are different. The two ends of the fixing rod 25 are rotatably connected to the support frame 21. As Figures 1 - 11 As shown, inside the tower body 11 at the top of the deflector 18, a circulating swing spraying mechanism 3 is arranged to improve the coverage range of the sprayed liquid. The circulating swing spraying mechanism 3 includes a fixing frame 31 fixedly connected to the inner wall of the tower body 11. At the bottom of the fixing frame 31, a support seat 32 is fixedly connected. At the top of the support seat 32, a disc 310 is rotatably connected. A spherical structure is arranged at the center of the bottom of the disc 310. At the same time, the spherical end at the bottom of the disc 310 is located inside the top of the support seat 32 and is rotatably connected thereto. Due to the movement mode of the rotating swing spraying, the liquid can collide with the waste gas with higher efficiency, increasing the contact time and surface area of the gas-liquid interface, thereby improving the absorption efficiency of pollutants in the waste gas. A plurality of nozzles 311 arranged in a circumferentially symmetric distribution are fixedly connected to the bottom surface of the disc 310. The circulating swing nozzles 311 can avoid the long-term accumulation of liquid at the nozzles 311, reducing the risk of nozzle 311 blockage due to liquid accumulation, scaling or impurities. The swinging and rotating actions of the nozzles 311 help to remove impurities on the surface of the nozzles 311, ensuring the stable operation of the system, reducing the maintenance frequency and downtime. A tapered pipe 39 is welded to the center of the top surface of the disc 310. One end of the tapered pipe 39 away from the disc 310 is rotatably connected through a connecting pipe 36. The penetrating end of the tapered pipe 39 is located at the eccentric position of the connecting pipe 36. The top of the connecting pipe 36 is rotatably connected to the fixing frame 31. At the center of the top of the fixing frame 31, an L-shaped connecting plate 33 is fixedly connected. A driving motor 312 is installed on one side of the top of the tower body 11. The output end of the driving motor 312 is rotatably connected through the tower body 11 and the L-shaped connecting plate 33. The penetrating end of the driving motor 312 is fixedly connected to the first bevel gear 34.
[0027] As shown Figures 3 - 11 Figures 3 - 11 On both sides of the top surface of the disk 310, there are sliding rods 38 connected. The contact end of the sliding rod 38 with the disk 310 is arranged in a hemispherical structure. One end of the sliding rod 38 away from the disk 310 is fixedly connected with a spring rod 37, and the other end of the spring rod 37 is fixedly connected with the fixing frame 31. On one side of the top of the L-shaped connecting plate 33, there is a first bevel gear 34 rotatably connected, and the first bevel gear 34 is drivingly connected with a second bevel gear 35. On one side of the outer wall of the tower body 11, there is a spray pipe 16 installed. One end of the spray pipe 16 is fixedly connected through the outer wall of the tower body 11, and the penetrating end of the spray pipe 16 is rotatably connected through the second bevel gear 35, the L-shaped connecting plate 33 and the fixing frame 31. At the same time, the penetrating end of the spray pipe 16 is located inside the connecting pipe 36. Through revolution and swinging spraying, the spray head 311 can more effectively spray the liquid to all corners of the tower body 11, avoiding liquid waste, having a wide liquid coverage area, ensuring that every drop of liquid can effectively participate in the waste gas purification process, thereby reducing the consumption of liquid, saving resources. The penetrating end of the spray pipe 16 located inside the connecting pipe 36 is connected and fixed with one end of a conical pipe 39 located inside the connecting pipe 36 through a hose to achieve penetration. Existing hoses are respectively connected and fixed with the spray pipe 16 and the conical pipe 39. When the connecting pipe 36 rotates, the hose rotates synchronously with the conical pipe 39 inside the connecting pipe 36 and undergoes bending deformation. The connecting shaft of the second bevel gear 35 is rotatably connected through the L-shaped connecting plate 33 and the fixing frame 31. At the same time, the penetrating end of the connecting shaft of the second bevel gear 35 is connected and fixed with the connecting pipe 36. The conical pipe 39, the disk 310 and the spray head 311 are arranged with hollow structures inside, and at the same time, the interiors of the conical pipe 39, the disk 310 and the spray head 311 are in communication with each other.
[0028] The working principle of this embodiment is as follows. Before the present invention is used, after moving the overall equipment to the installation location, the spray pipe 16 is connected to the tap water pipe, and the waste gas inlet pipe 12 is connected to the waste gas pipe. Then, the waste gas enters the tower body 11 from the waste gas inlet pipe 12 and moves upward. The clean tap water enters the top of the tower body 11 from the spray pipe 16 and is sprayed to spray and purify the upward-moving waste gas. The purified waste gas passes through the filter plate 17 and is discharged from the tower top outlet pipe 13. The liquid that falls to the bottom of the tower body 11 after spraying is recycled at the bottom of the tower body 11 under the action of the water tank 14 and the water pump inside it, or it can be discharged from the inside of the tower body 11.
[0029] When the waste gas enters the interior of the tower body 11 through the waste gas inlet pipe 12 and moves upward, the waste gas drives the fan wheel 26 to rotate, causing the chain assemblies 27 on both sides to drive, and then driving the fixed rod 25 to rotate, so that several cams 24 draw an elliptical motion with the connection point with the fixed rod 25 as the origin. The relative rotation between the cam 24 and the fixed rod 25 causes the connecting rod 22 to move up and down reciprocally while relatively rotating with the cam 24, prompting a metal ball 28 and several rings 23 to move up and down reciprocally synchronously. Since the connection points of the fixed rod 25 with several cams 24 in a group are separate eccentric points, several rings 23 and a metal ball 28 move up and down reciprocally at different time intervals, realizing a water ripple-like rippling motion. Under the action of the deflector 18, the waste gas turbulates through the gap between the moving metal ball 28 and the rings 23 while reducing the air flow dead zone and retention phenomenon in the tower body 11.
[0030] Then the drive motor 312 operates to drive the first bevel gear 34 to rotate, thereby driving the second bevel gear 35, driving the bottom connecting pipe 36 to rotate, and prompting the conical pipe 39 connected to the eccentric point at the bottom of the connecting pipe 36 to rotate synchronously with the connecting pipe 36. The hose inside the connecting pipe 36 deforms, and then the disk 310 swings up and down with the connecting pipe 36 as the origin while rotating with the conical pipe 39. The relative rotation between the conical pipe 39 and the connecting pipe 36 causes the disk 310 to rotate and swing up and down cyclically. At the same time, the spray head 311 at the bottom of the disk 310 rotates and swings synchronously, and the slide rod 38 slides relatively with the disk 310, and the two spring rods 37 contract to different degrees to support the disk 310. Then the tap water in the spray pipe 16 enters the interior of the conical pipe 39 through the hose, and then passes through the interior of the disk 310 and the spray head 311 and sprays out from the bottom of the rotating and swinging spray head 311 to spray and purify the turbulated waste gas. The way of spraying the liquid is more flexible and comprehensive, which can increase the contact time and contact area between the waste gas and the liquid, and the enhanced gas-liquid contact helps to improve the removal efficiency of the scrubbing tower, especially for treating high-concentration or difficult-to-treat waste gas.
[0031] The above is only the preferred embodiment of the present invention and is not used to limit the protection scope of the present invention.
Claims
1. A waste gas washing tower spray device, comprising a tower body (11), a tower top outlet pipe (13) being installed at the top of the tower body (11), and a filter plate (17) being fixedly connected to the inner wall of the tower top outlet pipe (13) being arranged between the tower body (11) and the tower top outlet pipe (13), a waste gas inlet pipe (12) being connected to one side of the bottom of the tower body (11), and a plurality of observation windows (15) being arranged at a linear distance from one another being installed on the outer wall of the tower body (11), and a water tank (14) being fixedly installed to the outer wall of the tower body (11) being arranged on one side of the bottom of the waste gas inlet pipe (12), characterized in that: A guide plate (18) is arranged inside the tower body (11), and the guide plate (18) is located at the center of the tower body (11) and is fixedly connected to the inner wall of the tower body (11). The top and bottom of the guide plate (18) are arranged in a mirror-image trapezoidal structure. A water wave filtering mechanism (2) fixedly connected to the inner wall of the tower body (11) is arranged inside the tower body (11) at the bottom of the guide plate (18), and is used to increase the contact area and contact time between the exhaust gas and the liquid. A circulating swing spraying mechanism (3) is arranged inside the tower body (11) at the top of the guide plate (18), and is used to increase the coverage of the sprayed liquid.
2. The waste gas scrubber spraying device according to claim 1, characterized in that: The water wave filtering mechanism (2) comprises a support frame (21) fixedly connected to the inner wall of the tower body (11), and the support frame (21) is arranged in a U-shaped structure. A plurality of cams (24) are arranged at the bottom of the support frame (21), and the plurality of cams (24) are arranged on a vertical plane of the support frame (21) and are staggered with respect to each other. At the same time, the plurality of cams (24) are divided into two groups and are arranged in a mirror image with the center line of the support frame (21) as an axis. One of the cams (24) is located at the center line of the support frame (21), and the top ends of the plurality of cams (24) are arranged in different directions. A fixed rod (25) is rotatably connected between the plurality of cams (24), and the fixed rod (25) is located at an eccentric position of the cam (24). At the same time, the connection points between the cams (24) and the fixed rod (25) in the two groups are different, and both ends of the fixed rod (25) are rotatably connected to the support frame (21).
3. The waste gas scrubber spraying device according to claim 2, characterized in that: The bottom of the support frame (21) is rotatably connected to a fan wheel (26), and chain assemblies (27) are arranged on both sides of the bottom of the support frame (21), and two sprocket wheels in the chain assembly (27) are rotatably connected to the support frame (21), and the through ends of the two sprocket wheels in the chain assembly (27) are respectively fixedly connected to the fan wheel (26) and the fixed rod (25), and the top ends of the plurality of cams (24) are rotatably connected to a connecting rod (22), and the other end of the connecting rod (22) is slidably connected to the support frame (21), and the through end of the connecting rod (22) is fixedly connected to a ring (23).
4. The waste gas scrubber spraying device according to claim 3, characterized in that: The plurality of circular rings (23) are sleeved together, and gaps are provided between the plurality of circular rings (23). A metal ball (28) is fixedly connected to the top end of the connecting rod (22) located at the midline of the support frame (21), and the metal ball (28) is located in the middle of the plurality of circular rings (23). The plurality of circular rings (23) are located in the middle of the guide plate (18).
5. The waste gas scrubber spraying device according to claim 1, characterized in that: The cyclic swing spray mechanism (3) comprises a fixing frame (31) fixedly connected to the inner wall of the tower body (11), and a support seat (32) fixedly connected to the bottom of the fixing frame (31), a disc (310) rotatably connected to the top of the support seat (32), and a spherical structure is arranged at the center of the bottom of the disc (310), and the spherical end of the bottom of the disc (310) is located inside the top of the support seat (32) and is rotatably connected thereto, a plurality of spray heads (311) arranged in a circumferentially symmetrical distribution are fixedly connected to the bottom surface of the disc (310), a conical tube (39) is welded to the center of the top surface of the disc (310), and the inside of the conical tube (39), the disc (310) and the spray head (311) are hollow structures, and the inside of the conical tube (39), the disc (310) and the spray head (311) are connected.
6. The waste gas scrubber spraying device according to claim 5, characterized in that: The end of the conical tube (39) away from the disc (310) penetrates and is rotatably connected to a connecting tube (36), and the penetrating end of the conical tube (39) is located at an eccentric position of the connecting tube (36). The top end of the connecting tube (36) is rotatably connected to a fixing frame (31), and an L-shaped connecting plate (33) is fixedly connected at the center of the top end of the fixing frame (31). A first bevel gear (34) is rotatably connected to one side of the top of the L-shaped connecting plate (33), and the first bevel gear (34) is transmission-connected to a second bevel gear (35). The connecting shaft of the second bevel gear (35) penetrates and is rotatably connected to the L-shaped connecting plate (33) and the fixing frame (31), and the penetrating end of the connecting shaft of the second bevel gear (35) is fixedly connected to the connecting tube (36).
7. The waste gas scrubber spraying device according to claim 6, characterized in that: A driving motor (312) is installed on one side of the top of the tower body (11); an output end of the driving motor (312) is rotatably connected to the tower body (11) and the L-shaped connecting plate (33); and a through end of the driving motor (312) is fixedly connected to a first bevel gear (34); sliding rods (38) are slidably connected to both sides of the top surface of the disk (310); and the contact ends of the sliding rods (38) and the disk (310) are arranged in a hemispherical structure; one end of the sliding rod (38) away from the disk (310) is fixedly connected to a spring rod (37); and the other end of the spring rod (37) is fixedly connected to a fixing frame (31).
8. The waste gas scrubber spraying device according to claim 7, characterized in that: A spray pipe (16) is installed on one side of the outer wall of the tower body (11); one end of the spray pipe (16) is fixedly connected to the outer wall of the tower body (11), and the through end of the spray pipe (16) is rotatably connected to the second bevel gear (35), the L-shaped connecting plate (33) and the fixing frame (31); the through end of the spray pipe (16) is located inside the connecting pipe (36); the through end of the spray pipe (16) located inside the connecting pipe (36) and one end of the conical pipe (39) located inside the connecting pipe (36) are connected and fixedly connected by a hose to achieve penetration.
Citation Information
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