Flue gas absorption anti-corrosion tower convenient for gas-liquid fusion

By using multiple intake nozzles and spray heads in the flue gas absorption anti-corrosion tower, combined with the windshield mechanism and the spray mechanism, the problem of low fusion efficiency between the flue gas and the purified liquid is solved, and a more efficient flue gas desulfurization treatment effect is achieved.

CN222855076UActive Publication Date: 2025-05-13HEBEI AOLEI ANTICORROSION EQUIP CO LTD
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Patent Information

Application Number
CN202421865429.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-03
Publication Date
2025-05-13
Estimated Expiration
2034-08-03

AI Technical Summary

Technical Problem

In the existing flue gas absorption anti-corrosion tower, the fusion efficiency of flue gas and purified liquid is low, which affects the desulfurization treatment effect of industrial flue gas.

Method used

A flue gas absorption and corrosion protection tower is designed to facilitate gas-liquid fusion, using multiple intake nozzles and spray heads, combined with a windshield mechanism and a spray mechanism, improving the contact time and uniformity between the flue gas and the purified liquid.

Benefits of technology

Through the optimized design, the fusion efficiency of flue gas and purified liquid is significantly improved, and the desulfurization treatment effect of industrial flue gas is improved.

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Abstract

The utility model relates to the technical field of flue gas absorption anti-corrosion towers, in particular to a flue gas absorption anti-corrosion tower convenient for gas-liquid fusion, which comprises a tower body, a gas inlet mechanism, a spraying mechanism, a filter plate, an activated carbon adsorption plate and a wind shielding mechanism, the gas inlet mechanism is arranged on the tower body and used for introducing flue gas into the tower body, and the spraying mechanism is arranged in the tower body and used for spraying the activated carbon adsorption plate into the tower body. The spray head is arranged in the tower body and used for spraying purification liquid to flue gas in the tower body, the filter plate and the activated carbon adsorption plate are fixedly arranged in the tower body, and the wind shielding mechanism is arranged in the tower body. Meanwhile, the circulation path of the flue gas is improved through the first wind shielding ring and the second wind shielding ring, so that the time for the flue gas to pass through the tower body is prolonged, the fusion time of the purification liquid and the flue gas can be prolonged, the fusion effect of the flue gas and the purification liquid is improved, and the problem that the fusion efficiency of the flue gas and the purification liquid is low in the related technology is solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of flue gas absorption anti-corrosion towers, in particular to a flue gas absorption anti-corrosion tower which is convenient for gas-liquid fusion. Background Art

[0002] Flue gas is a mixture of gas and smoke, and is the main cause of atmospheric pollution in residential areas. The composition of flue gas is very complex. Gases include water vapor, sulfur dioxide, nitrogen, oxygen, carbon monoxide, carbon dioxide, hydrocarbons, and nitrogen oxides, etc. Smoke includes fuel ash, coal particles, oil droplets, and high-temperature cracking products, etc. The content of toxic and harmful substances contained in industrial flue gas is often higher, because it must be treated before it can be discharged, so a flue gas absorption and anti-corrosion tower is needed to absorb and purify the flue gas.

[0003] For example, the prior art discloses an industrial flue gas desulfurization, denitrification and integrated treatment equipment with publication number CN215742816U, including an absorption tower, an exhaust pipe, a denitrification component, an air intake pipe, a spray pipe, a circulation component and a demister, wherein the circulation component is installed on the absorption tower, and the circulation component includes a guide hood, a jet ring, an air pump and an air guide pipe, wherein the guide hood is fixedly installed in a water reservoir and is located directly below the air outlet of the air intake pipe, and a plurality of through holes are opened on the guide hood.

[0004] When the above-mentioned utility model is in use, the spray pipe and nozzle for spraying the desulfurization liquid are installed inside the air intake pipe. Since the inner space of the air intake pipe is narrow and the flue gas passes through at a fast speed, it is difficult for the desulfurization liquid to be fully mixed and contacted with the industrial flue gas. After the industrial flue gas is discharged from the air intake pipe, it will rise rapidly along the inner cavity of the lower shell and the upper shell, and it is difficult to contact and react with the formed high-temperature atomized desulfurization liquid for a long time, which affects the desulfurization treatment effect of the industrial flue gas to a certain extent, and its practicality is general. Utility Model Content

[0005] The utility model provides a flue gas absorption anti-corrosion tower which is convenient for gas-liquid fusion, and solves the problem of low fusion efficiency of flue gas and purified liquid in the related technology.

[0006] The technical solution of the utility model is as follows: a smoke absorption anti-corrosion tower that is convenient for gas-liquid fusion, comprising a tower body, an air intake mechanism, a spraying mechanism, a filter plate, an activated carbon adsorption plate and a wind shielding mechanism;

[0007] The air intake mechanism is arranged on the tower body and is used to introduce flue gas into the tower body;

[0008] The spraying mechanism is arranged in the tower body and is used to spray the purification liquid to the flue gas in the tower body;

[0009] The filter plate and the activated carbon adsorption plate are fixedly arranged in the tower body;

[0010] The wind shielding mechanism is arranged in the tower body and is used for shielding the smoke in the tower body.

[0011] Preferably, the wind shielding mechanism comprises:

[0012] A first wind shield ring, two of which are fixedly provided on the inner wall of the tower body;

[0013] a second wind shield ring, the second wind shield ring being arranged between the two first wind shield rings;

[0014] A plurality of fixing rods are fixedly arranged between the second wind shielding ring and the inner wall of the tower body.

[0015] Furthermore, the air intake mechanism comprises:

[0016] An air intake ring, the air intake ring is arranged in the tower body, and a plurality of fixing columns are fixedly arranged between the air intake ring and the inner wall of the tower body;

[0017] An air intake pipe, the air intake pipe is arranged through the tower body and is communicated with the air intake ring;

[0018] An air intake nozzle, wherein a plurality of the air intake nozzles are connected and arranged on the air intake ring.

[0019] Furthermore, the spraying mechanism includes:

[0020] A support shell, the support shell is arranged in the tower body, and a plurality of connecting columns are fixedly arranged between the support shell and the inner wall of the tower body;

[0021] A support opening, the support opening being opened on the inner bottom wall of the support shell;

[0022] A support plate, the support plate being slidably disposed in the support shell;

[0023] A support tube, the support tube is rotatably disposed on the support plate, the support tube passes through the support port and the second wind shielding ring, and one end of the support tube away from the support plate is sealed;

[0024] A spraying assembly, the spraying assembly being arranged on the supporting tube and being used for spraying the purification liquid into the flue gas;

[0025] A rotating mechanism, the rotating mechanism is arranged in the supporting shell and is used to control the supporting tube to rotate;

[0026] A lifting mechanism is arranged in the support shell and is used to control the support plate to perform reciprocating lifting and lowering.

[0027] Furthermore, the spray assembly includes:

[0028] Spraying pipes, the supporting pipes are located on both sides of the second wind shielding ring and are rotatably provided with a plurality of the spraying pipes;

[0029] A spray head, wherein a plurality of the spray heads are connected and arranged on the spray pipe;

[0030] A liquid inlet pipe is provided through the side wall of the tower body, and one end of the liquid inlet pipe penetrates the support shell and the support plate and extends into the support pipe.

[0031] On the basis of the above scheme, the rotating mechanism comprises:

[0032] A first annular rack, wherein the first annular rack is fixedly disposed on the support tube;

[0033] a first gear, the first gear being rotatably disposed on the support plate;

[0034] A driving rod, the driving rod is rotatably disposed in the supporting housing, the driving rod passes through the supporting plate and the first gear, and the driving rod is slidably connected to the first gear;

[0035] A power input mechanism is disposed in the support shell and is used to control the drive rod to rotate.

[0036] On the basis of the above solution, the power input mechanism comprises:

[0037] a second gear, the second gear being fixedly disposed on the driving rod;

[0038] a third gear, the third gear being rotatably disposed on the inner top wall of the support shell;

[0039] Wherein, the second gear is meshed with the third gear;

[0040] A first motor, wherein the first motor is fixedly disposed on the supporting shell, and an output end of the first motor is fixedly connected to the third gear.

[0041] On the basis of the above scheme, the lifting mechanism comprises:

[0042] A lifting opening, wherein a plurality of the lifting openings are provided on the support plate, and a lead screw nut is fixedly arranged in the lifting opening;

[0043] A reciprocating screw, wherein a plurality of the reciprocating screws are rotatably arranged in the support housing, and the reciprocating screws penetrate the screw nut through threaded engagement;

[0044] A fourth gear, wherein the fourth gear is fixedly disposed on the reciprocating screw and is meshed with the third gear.

[0045] On the basis of the above scheme, a support rod is fixedly provided on the support plate, the support rod is rotatably connected to the support tube, two first bevel gears are fixedly provided on the support rod, the spray pipe extends into the support tube, a second bevel gear is fixedly provided on the side wall of the spray pipe, and the second bevel gear is meshed with the first bevel gear.

[0046] On the basis of the above scheme, a first driving port is provided on the support plate, a second driving port is provided on the first gear, the driving rod passes through the first driving port and the second driving port, a sliding groove is provided on the driving rod, a sliding block is fixedly provided on the side wall of the second driving port, the sliding block extends into the sliding groove and is slidably connected to the side wall of the sliding groove.

[0047] The working principle and beneficial effects of the utility model are:

[0048] 1. In the utility model, by setting the air intake mechanism, the smoke can be passed into the air intake ring through the air intake pipe, and then the smoke is passed into the tower body through multiple air intake nozzles, thereby improving the air intake uniformity after the smoke enters the tower body;

[0049] 2. The utility model summarizes that, by setting the wind shielding mechanism, it is convenient to shield the flue gas through the first wind shielding ring and the second wind shielding ring, thereby improving the flow path of the flue gas, and then increasing the time for the flue gas to pass through the tower body, thereby increasing the fusion time of the purification liquid and the flue gas, thereby improving the fusion effect of the flue gas and the purification liquid;

[0050] 3. In the present invention, by setting up the spraying mechanism, the purified liquid can be passed into the support pipe and the spraying pipe through the liquid inlet pipe, and then the purified liquid is sprayed into the flue gas through the spraying head. During this process, the support pipe can be controlled to rotate by the rotating mechanism, so that the spraying pipe and the spraying head can move around the support pipe. At the same time, the spraying head can be controlled to reciprocate in the height direction by the lifting mechanism, so as to further improve the fusion efficiency of the flue gas and the purified liquid;

[0051] 4. In the utility model, through the arrangement of the tower body, the air intake mechanism, the spraying mechanism, the filter plate, the activated carbon adsorption plate and the wind shielding mechanism, the spraying head can perform reciprocating movement in the height direction while moving around the support tube. At the same time, the first wind shielding ring and the second wind shielding ring can improve the flow path of the flue gas, thereby improving the time for the flue gas to pass through the tower body, thereby improving the fusion time of the purified liquid and the flue gas, thereby improving the fusion effect of the flue gas and the purified liquid, thereby solving the problem of low fusion efficiency of the flue gas and the purified liquid in the related technology. BRIEF DESCRIPTION OF THE DRAWINGS

[0052] The utility model is further described in detail below in conjunction with the accompanying drawings and specific implementation methods.

[0053] Figure 1 It is a schematic diagram of the structure of the utility model;

[0054] Figure 2 This is a schematic diagram of the cross-sectional structure of the utility model;

[0055] Figure 3 This is a schematic diagram of the cross-sectional structure of the support shell of the utility model;

[0056] Figure 4 It is a schematic diagram of the structure of the spraying mechanism of the utility model.

[0057] In the figure: 1. tower body; 2. filter plate; 3. activated carbon adsorption plate; 4. first wind shield ring; 5. second wind shield ring; 6. air intake ring; 7. air intake pipe; 8. air intake nozzle; 9. support shell; 10. support plate; 11. support pipe; 12. spray pipe; 13. liquid inlet pipe; 14. first annular rack; 15. first gear; 16. drive rod; 17. second gear; 18. third gear; 19. first motor; 20. reciprocating screw; 21. fourth gear; 22. support rod; 23. first bevel gear; 24. second bevel gear; 25. slide groove. DETAILED DESCRIPTION

[0058] The following will be combined with the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0059] like Figure 1-Figure 4 As shown, this embodiment proposes a flue gas absorption anti-corrosion tower which is convenient for gas-liquid fusion, including a tower body 1, an air intake mechanism, a spraying mechanism, a filter plate 2, an activated carbon adsorption plate 3 and a wind shielding mechanism. The air intake mechanism is arranged on the tower body 1, and is used to introduce flue gas into the tower body 1. The spraying mechanism is arranged in the tower body 1, and is used to spray purification liquid into the flue gas in the tower body 1. The filter plate 2 and the activated carbon adsorption plate 3 are fixedly arranged in the tower body 1. The wind shielding mechanism is arranged in the tower body 1, and is used to shield the flue gas in the tower body 1.

[0060] Reference Figure 2 The wind shield mechanism includes a first wind shield ring 4, a second wind shield ring 5 and a fixing rod. Two first wind shield rings 4 are fixedly arranged on the inner wall of the tower body 1. The second wind shield ring 5 is arranged between the two first wind shield rings 4. A plurality of fixing rods are fixedly arranged between the second wind shield ring 5 and the inner wall of the tower body 1.

[0061] Specifically, during the flow of flue gas in the tower body 1, the flue gas can be shielded by the first wind shield ring 4 and the second wind shield ring 5, thereby improving the flow path of the flue gas, and then increasing the time for the flue gas to pass through the tower body 1, thereby increasing the fusion time of the purified liquid and the flue gas, thereby improving the fusion effect of the flue gas and the purified liquid.

[0062] Reference Figure 2 The air intake mechanism includes an air intake ring 6, an air intake pipe 7 and an air intake nozzle 8. The air intake ring 6 is arranged in the tower body 1. A plurality of fixed columns are fixedly arranged between the air intake ring 6 and the inner wall of the tower body 1. The air intake pipe 7 is arranged through the tower body 1. The air intake pipe 7 is connected with the air intake ring 6. A plurality of air intake nozzles 8 are connected and arranged on the air intake ring 6.

[0063] Specifically, the operator passes the flue gas into the air intake ring 6 through the air intake pipe 7 , and then passes the flue gas into the tower body 1 through a plurality of air intake nozzles 8 , thereby improving the air intake uniformity of the flue gas after entering the tower body 1 .

[0064] Reference Figure 2-Figure 4 The spraying mechanism includes a support shell 9, a support port, a support plate 10, a support pipe 11, a spraying assembly, a rotating mechanism and a lifting mechanism. The support shell 9 is arranged in the tower body 1. A plurality of connecting columns are fixedly arranged between the support shell 9 and the inner wall of the tower body 1. The support port is opened on the inner bottom wall of the support shell 9. The support plate 10 is slidably arranged in the support shell 9. The support pipe 11 is rotatably arranged on the support plate 10. The support pipe 11 passes through the support port and the second wind shielding ring 5. The support pipe 11 is sealed at one end away from the support plate 10. The spraying assembly is arranged on the support pipe 11 for spraying the spraying assembly to the tower body 1. Purification liquid is sprayed in the flue gas, and the rotating mechanism is arranged in the supporting shell 9, which is used to control the rotation of the supporting tube 11. The lifting mechanism is arranged in the supporting shell 9, which is used to control the reciprocating lifting and lowering of the supporting plate 10. The spraying assembly includes a spraying tube 12, a spraying head and a liquid inlet pipe 13. The supporting tube 11 is located on both sides of the second wind shielding ring 5, and multiple spraying tubes 12 are rotatably arranged. Multiple spraying heads are connected to the spraying tube 12. The liquid inlet pipe 13 is penetrated on the side wall of the tower body 1, and one end of the liquid inlet pipe 13 penetrates the supporting shell 9 and the supporting plate 10 and extends into the supporting tube 11.

[0065] Specifically, the operator can pass the purification liquid into the support pipe 11 and the spray pipe 12 through the liquid inlet pipe 13, and then spray the purification liquid into the flue gas through the spray head.

[0066] Reference Figure 3 and Figure 4The rotating mechanism includes a first annular rack 14, a first gear 15, a driving rod 16 and a power input mechanism. The first annular rack 14 is fixedly arranged on the support tube 11, the first gear 15 is rotatably arranged on the support plate 10, the driving rod 16 is rotatably arranged in the support shell 9, the driving rod 16 penetrates the support plate 10 and the first gear 15, the driving rod 16 is slidably connected with the first gear 15, the power input mechanism is arranged in the support shell 9, and is used to control the driving rod 16 to rotate. The power input mechanism includes a second gear 17, a third gear 18 and a first motor 19, and the second gear 1 7 is fixedly arranged on the driving rod 16, and the third gear 18 is rotatably arranged on the inner top wall of the supporting shell 9, wherein the second gear 17 is meshed with the third gear 18, the first motor 19 is fixedly arranged on the supporting shell 9, and the output end of the first motor 19 is fixedly connected with the third gear 18, a first driving port is opened on the supporting plate 10, a second driving port is opened on the first gear 15, the driving rod 16 passes through the first driving port and the second driving port, a sliding groove 25 is opened on the driving rod 16, and a slider is fixedly arranged on the side wall of the second driving port, and the slider extends into the sliding groove 25 and is slidably connected with the side wall of the sliding groove 25.

[0067] Specifically, during the spraying process, the operator controls the first motor 19 to work, and the work of the first motor 19 can control the third gear 18 to rotate, and at the same time, the engagement of the third gear 18 with the second gear 17 drives the driving rod 16 to rotate. At the same time, during the rotation of the driving rod 16, the first gear 15 can be driven to rotate through the cooperation of the slider and the slide groove 25, and at the same time, the engagement of the first gear 15 with the first annular rack 14 can drive the support tube 11 to rotate, so that the rotation of the support tube 11 drives the spraying tube 12 and the spraying head to rotate around the support tube 11.

[0068] Reference Figure 3 and Figure 4 The lifting mechanism includes a lifting port, a reciprocating screw 20 and a fourth gear 21. A plurality of lifting ports are opened on the support plate 10. A screw nut is fixedly arranged in the lifting port. A plurality of reciprocating screws 20 are rotatably arranged in the support shell 9. The reciprocating screw 20 penetrates the screw nut through threaded cooperation. The fourth gear 21 is fixedly arranged on the reciprocating screw 20, and the fourth gear 21 is meshed with the third gear 18.

[0069] Specifically, during the rotation of the third gear 18, the reciprocating screw 20 can be driven to rotate through the engagement of the third gear 18 and the fourth gear 21, and at the same time, the support plate 10 is driven to move back and forth through the cooperation of the screw nut and the reciprocating screw 20, thereby driving the spray pipe 12 and the spray head to reciprocate in the height direction through the support tube 11.

[0070] Reference Figure 3 and Figure 4A support rod 22 is fixedly provided on the support plate 10, and the support rod 22 is rotatably connected to the support tube 11. Two first bevel gears 23 are fixedly provided on the support rod 22. The spraying tube 12 extends into the support tube 11. A second bevel gear 24 is fixedly provided on the side wall of the spraying tube 12, and the second bevel gear 24 is meshed with the first bevel gear 23.

[0071] Specifically, during the rotation of the support tube 11 , the second bevel gear 24 can be driven to move around the support rod 22 , and the engagement of the first bevel gear 23 and the second bevel gear 24 can drive the spraying tube 12 to rotate, thereby causing the spraying head to move around the spraying tube 12 .

[0072] In the present embodiment, during use, the operator passes the flue gas into the air intake ring 6 through the air intake pipe 7, and then passes the flue gas into the tower body 1 through a plurality of air intake nozzles 8, thereby improving the air intake uniformity of the flue gas after entering the tower body 1. Later, during the flow of the flue gas in the tower body 1, the flue gas can be shielded by the first wind shield ring 4 and the second wind shield ring 5, thereby improving the flow path of the flue gas, and then improving the time for the flue gas to pass through the tower body 1, thereby improving the fusion time of the purified liquid and the flue gas, thereby improving the fusion effect of the flue gas and the purified liquid. At the same time, the operator can pass the purified liquid into the support pipe 11 and the spray pipe 12 through the liquid inlet pipe 13, and then spray the purified liquid into the flue gas through the spray head. During the spraying process, the operator controls the first motor 19 to work, and the work of the first motor 19 can control the third gear 18 to rotate, and at the same time, the engagement of the third gear 18 with the second gear 17 drives the drive rod 16 to rotate. At the same time, during the rotation of the drive rod 16, the The cooperation between the slider and the slide groove 25 drives the first gear 15 to rotate, and the meshing of the first gear 15 and the first annular rack 14 can drive the support tube 11 to rotate, so that the rotation of the support tube 11 drives the spray pipe 12 and the spray head to rotate around the support tube 11, and during the rotation of the third gear 18, the meshing of the third gear 18 and the fourth gear 21 can drive the reciprocating screw 20 to rotate, and the cooperation of the screw nut and the reciprocating screw 20 drives the support plate 10 to move back and forth, so that the spray pipe 12 and the spray head can be reciprocated in the height direction through the support tube 11, and during the rotation of the support tube 11, the second bevel gear 24 can be driven to move around the support rod 22, and the meshing of the first bevel gear 23 and the second bevel gear 24 drives the spray pipe 12 to rotate, so that the spray head moves around the spray pipe 12, so that the purified liquid can be evenly sprayed into the flue gas for fusion of the purified liquid and the flue gas.

[0073] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.

Claims

1. A flue gas absorption anti-corrosion tower that facilitates gas-liquid fusion, characterized in that: include: Tower body (1); An air intake mechanism, the air intake mechanism being arranged on the tower body (1) and being used for introducing flue gas into the tower body (1); A spraying mechanism, the spraying mechanism being arranged in the tower body (1) and being used for spraying a purification liquid into the flue gas in the tower body (1); A filter plate (2) and an activated carbon adsorption plate (3), wherein the filter plate (2) and the activated carbon adsorption plate (3) are fixedly arranged in the tower body (1); A wind shielding mechanism is arranged in the tower body (1) and is used to shield smoke in the tower body (1).

2. The flue gas absorption anti-corrosion tower that facilitates gas-liquid fusion according to claim 1 is characterized in that: The wind shielding mechanism comprises: A first wind shield ring (4), two of which are fixedly arranged on the inner wall of the tower body (1); a second wind shield ring (5), the second wind shield ring (5) being arranged between the two first wind shield rings (4); Fixed rods, a plurality of the fixed rods are fixedly arranged between the second wind shielding ring (5) and the inner wall of the tower body (1).

3. The flue gas absorption anti-corrosion tower that facilitates gas-liquid fusion according to claim 2 is characterized in that: The air intake mechanism comprises: An air intake ring (6), the air intake ring (6) being arranged in the tower body (1), and a plurality of fixing columns being fixedly arranged between the air intake ring (6) and the inner wall of the tower body (1); An air intake pipe (7), the air intake pipe (7) being arranged through the tower body (1), the air intake pipe (7) being in communication with the air intake ring (6); An air intake nozzle (8), wherein a plurality of the air intake nozzles (8) are connected and arranged on the air intake ring (6).

4. The flue gas absorption anti-corrosion tower that facilitates gas-liquid fusion according to claim 3 is characterized in that: The spraying mechanism comprises: A support shell (9), the support shell (9) being arranged in the tower body (1), and a plurality of connecting columns being fixedly arranged between the support shell (9) and the inner wall of the tower body (1); A support opening, the support opening being opened on the inner bottom wall of the support shell (9); A support plate (10), the support plate (10) being slidably disposed in the support shell (9); A support tube (11), the support tube (11) being rotatably disposed on the support plate (10), the support tube (11) penetrating the support opening and the second wind shielding ring (5), and the support tube (11) being sealed at one end away from the support plate (10); a spraying assembly, the spraying assembly being arranged on the support tube (11) and being used for spraying a purification liquid into the flue gas; a rotating mechanism, the rotating mechanism being arranged in the supporting shell (9) and being used to control the supporting tube (11) to rotate; A lifting mechanism, the lifting mechanism is arranged in the support shell (9) and is used to control the support plate (10) to perform reciprocating lifting and lowering.

5. The flue gas absorption anti-corrosion tower for facilitating gas-liquid fusion according to claim 4 is characterized in that: The spray assembly comprises: Spray pipes (12), wherein the support pipe (11) is located on both sides of the second wind shielding ring (5) and a plurality of the spray pipes (12) are rotatably arranged thereon; A spray head, wherein a plurality of the spray heads are connected and arranged on the spray pipe (12); A liquid inlet pipe (13), the liquid inlet pipe (13) being arranged through the side wall of the tower body (1), one end of the liquid inlet pipe (13) penetrating the support shell (9) and the support plate (10) and extending into the support pipe (11).

6. The flue gas absorption anti-corrosion tower for facilitating gas-liquid fusion according to claim 5, characterized in that: The rotating mechanism comprises: a first annular rack (14), the first annular rack (14) being fixedly arranged on the support tube (11); a first gear (15), the first gear (15) being rotatably disposed on the support plate (10); a driving rod (16), the driving rod (16) being rotatably disposed in the supporting shell (9), the driving rod (16) penetrating the supporting plate (10) and the first gear (15), the driving rod (16) being slidably connected to the first gear (15); A power input mechanism is arranged in the support housing (9) and is used to control the drive rod (16) to rotate.

7. The flue gas absorption anti-corrosion tower for facilitating gas-liquid fusion according to claim 6 is characterized in that: The power input mechanism comprises: a second gear (17), the second gear (17) being fixedly arranged on the driving rod (16); a third gear (18), the third gear (18) being rotatably disposed on the inner top wall of the support shell (9); Wherein, the second gear (17) is meshed with the third gear (18); A first motor (19), wherein the first motor (19) is fixedly disposed on the supporting housing (9), and an output end of the first motor (19) is fixedly connected to the third gear (18).

8. The flue gas absorption anti-corrosion tower for facilitating gas-liquid fusion according to claim 7, characterized in that: The lifting mechanism comprises: A lifting opening, wherein a plurality of the lifting openings are provided on the support plate (10), and a lead screw nut is fixedly arranged in the lifting opening; A reciprocating screw (20), wherein a plurality of the reciprocating screws (20) are rotatably arranged in the support housing (9), and the reciprocating screws (20) penetrate the screw nut through threaded engagement; A fourth gear (21), the fourth gear (21) being fixedly disposed on the reciprocating screw (20), the fourth gear (21) being meshed with the third gear (18).

9. The flue gas absorption anti-corrosion tower for facilitating gas-liquid fusion according to claim 8, characterized in that: A support rod (22) is fixedly arranged on the support plate (10), the support rod (22) is rotatably connected to the support tube (11), two first bevel gears (23) are fixedly arranged on the support rod (22), the spray tube (12) extends into the support tube (11), a second bevel gear (24) is fixedly arranged on the side wall of the spray tube (12), and the second bevel gear (24) is meshed with the first bevel gear (23).

10. The flue gas absorption anti-corrosion tower for facilitating gas-liquid fusion according to claim 9, characterized in that: The support plate (10) is provided with a first drive opening, the first gear (15) is provided with a second drive opening, the drive rod (16) passes through the first drive opening and the second drive opening, the drive rod (16) is provided with a slide groove (25), a side wall of the second drive opening is fixedly provided with a slider, the slider extends into the slide groove (25) and is slidably connected to the side wall of the slide groove (25).

Citation Information

Patent Citations

  • Industrial flue gas desulfurization, denitrification and integrated treatment equipment

    CN215742816U