Vertical water circulation absorption tower
By designing a convenient filtering mechanism and agitating mechanism in the vertical water circulation absorption tower, the complex problems of easy clogging and replacement of the filtering device is solved, and efficient liquid purification and production efficiency are achieved.
Patent Information
- Application Number
- CN202421948017.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-13
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-08-13
AI Technical Summary
The existing vertical water circulation absorption tower is prone to blockage during use, and the filtration efficiency decreases, which affects the purification effect. The replacement of traditional filtration devices is complicated, increasing maintenance costs and time and reducing production efficiency.
A vertical water circulation absorption tower is designed, and a filter mechanism is adopted, including a filter water tank, limiting groove, limiting block, sliding block and adsorption cover. Through the coordination of limiting groove and sliding groove, the filter box and adsorption cover can be achieved stably installed and conveniently disassembled. Combined with the stirring mechanism and the spraying system, the liquid purification efficiency is improved.
It realizes convenient installation and disassembly of the filter device, improves the liquid purification effect, ensures the quality of the purified liquid, reduces maintenance costs and time, and improves production efficiency.
Smart Images

Figure CN223042465U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of absorption towers, in particular to a vertical water circulation absorption tower. Background Art
[0002] An absorption tower is a device used to process gas mixtures and is usually widely applied in fields such as environmental protection and chemical engineering. The absorption tower utilizes the solubility differences of different components in the gas in a specific absorbent to dissolve some harmful or components to be removed into the absorbent, thereby achieving gas purification. Traditional absorption towers have some deficiencies in gas purification treatment. For example, the purification efficiency is not high enough, the water resource utilization rate is relatively low, and the structural design is not reasonable enough, resulting in insufficient contact between the gas and the absorbent liquid, etc., making it difficult to meet the increasingly strict environmental protection requirements and the needs of efficient production. Therefore, a vertical water circulation absorption tower is particularly needed.
[0003] However, for the existing vertical water circulation absorption tower, as the usage time increases, the filtering device of the vertical water circulation absorption tower will gradually become blocked or the filtering efficiency will decrease due to long-term contact with various pollutants, affecting the normal operation of the entire absorption tower and the gas purification effect. The replacement of the filtering device of the traditional absorption tower is often relatively complex and requires long-term disassembly and installation operations, increasing the maintenance cost and time and reducing the production efficiency. Summary of the Utility Model
[0004] The purpose of the utility model is to provide a vertical water circulation absorption tower to solve the problems in the above background art that for the existing vertical water circulation absorption tower, as the usage time increases, the filtering device of the vertical water circulation absorption tower will gradually become blocked or the filtering efficiency will decrease due to long-term contact with various pollutants, affecting the normal operation of the entire absorption tower and the gas purification effect, and the replacement of the filtering device of the traditional absorption tower is often relatively complex and requires long-term disassembly and installation operations, increasing the maintenance cost and time and reducing the production efficiency.
[0005] To achieve the above object, the utility model provides the following technical solutions: a vertical water circulation absorption tower, including a tower body, on the surface of the tower body is fixedly connected with an air inlet, on the upper surface of the tower body is fixedly connected with an air outlet, on the lower surface of the tower body is fixedly connected with a base, on the lower surface of the base is fixedly connected with a support, on the surface of the tower body is fixedly connected with a first pipeline, and on the other end surface of the first pipeline is provided with a stirring mechanism. The stirring mechanism includes a stirring box, a motor box, a motor, a transmission shaft, a transmission disc, a transmission belt, a rotating disc, a rotating shaft, stirring blades, a rotating disc, a limiting disc and a limiting circular groove. On one side surface of the stirring box is provided with a filtering mechanism, on one side surface of the filtering mechanism is fixedly connected with a water tank, on one side surface of the water tank is fixedly connected with a fourth pipeline, on the other end surface of the fourth pipeline is fixedly connected with a water pump, on the surface of the water pump is fixedly connected with a fifth pipeline, the other end of the fifth pipeline is fixedly connected with a water storage tank, on one side surface of the water storage tank is fixedly connected with a sixth pipeline, the other end of the sixth pipeline is fixedly connected with a spray head, and on the lower surface of the spray head is fixedly connected with a spray port. On the inner surface of the tower body is fixedly connected with a packing partition board, and on the lower surface of the packing partition board is fixedly connected with a hydrophobic plate;
[0006] The filtering mechanism includes a second pipeline, a filtering water tank, a limiting groove, a limiting block, a connecting block, a fixing block, a spring, a clamping groove, a clamping block, a positioning block, a positioning groove, a filtering box, filtering holes, a third pipeline, a sliding block, an adsorption cover, a sliding groove and an adsorption layer. On one side surface of the stirring box is fixedly connected with a second pipeline, on the other end surface of the second pipeline is fixedly connected with a filtering water tank, on the inner surface of the filtering water tank is provided with a limiting groove, on the surface of the limiting groove is slidably connected with a limiting block, on one side surface of the limiting block is fixedly connected with a connecting block, on the inner surface of the connecting block is fixedly connected with a fixing block, on the outer surface of the fixing block is fixedly connected with a spring, on the inner surface of the fixing block is provided with a clamping groove, on the inner surface of the clamping groove is slidably connected with a clamping block, on one side surface of the clamping block is fixedly connected with a positioning block, on the inner surface of the limiting groove is provided with a positioning groove, on one side surface of the connecting block is fixedly connected with a filtering box, on the surface of the filtering box are provided with filtering holes, on one side surface of the filtering water tank is fixedly connected with a third pipeline, on the surface of the third pipeline is fixedly connected with a sliding block, on the surface of the sliding block is slidably connected with an adsorption cover, on the inner surface of the adsorption cover is provided with a sliding groove, and on the surface of the adsorption cover is fixedly connected with an adsorption layer.
[0007] Preferably, the air inlet corresponds to the air outlet, and a plurality of groups of the supports are arranged at equal intervals at the bottom of the base.
[0008] Preferably, one end surface of the first pipeline is fixedly connected with a mixing tank, one side surface of the mixing tank is fixedly connected with a motor box, the inner side surface of the motor box is fixedly connected with a motor, one end surface of the motor is fixedly connected with a transmission shaft, the other end surface of the transmission shaft is fixedly connected with a transmission disc, the surface of the transmission disc is fitted and connected with a transmission belt, the inner side surface of the transmission belt is fitted and connected with a rotating disc, one side surface of the rotating disc is fixedly connected with a rotating shaft, the surface of the rotating shaft is fixedly connected with stirring blades, one end surface of the rotating shaft is fixedly connected with a rotating disc, the surface of the rotating disc is rotatably connected with a limiting disc, and a limiting circular groove is formed in the inner side surface of the limiting disc.
[0009] Preferably, a plurality of groups of the stirring blades are arranged at equal intervals on the surface of the rotating shaft, and the outer wall size of the rotating disc matches the inner wall size of the limiting circular groove.
[0010] Preferably, the inner wall size of the limiting groove matches the outer wall size of the limiting block, and two groups of the limiting blocks are symmetrically arranged with respect to the central axis of the connecting block.
[0011] Preferably, the positioning block and the fixed block form a telescopic structure through a spring, and the outer wall size of the clamping block matches the inner wall size of the clamping groove.
[0012] Preferably, two groups of the sliding blocks are symmetrically arranged with respect to the central axis of the third pipeline, and the outer wall size of the sliding block matches the inner wall size of the sliding groove.
[0013] Compared with the prior art, the beneficial effects of the present utility model are as follows: For this vertical water circulation absorption tower, through the setting of the filtering mechanism, during use, first align the limiting block on the filtering box with the limiting groove inside the filtering water tank, and then gently push the filtering box to make it smoothly insert into the filtering water tank along the limiting groove. When inserted to the appropriate position, the spring releases elastic potential energy to push the positioning block into the positioning groove inside the limiting groove. The clamping groove limits the clamping block, making the positioning block more stable when popping out. The setting of the positioning block enhances the stability of the filtering box in the filtering water tank, preventing it from shaking or shifting under the impact of liquid or other external forces. In this way, the installation of the filtering box is completed. The limiting block on the filtering box cooperates with the limiting groove inside the filtering water tank to achieve a sliding connection. This design enables the filtering box to smoothly insert into or be taken out of the filtering water tank along the limiting groove, facilitating installation and disassembly. Then, align the sliding block on the third pipe with the entrance position of the sliding groove inside the adsorption cover, ensure the accurate alignment of their positions, and gently push the adsorption cover along the direction of the sliding groove to make the sliding block gradually enter the sliding groove. When pushed to the top, rotate it to make the sliding block slide to the innermost part of the sliding groove. During disassembly, simply rotate the adsorption cover in the opposite direction and then separate the adsorption cover from the third pipe along the sliding groove. When the liquid to be filtered in the stirring tank flows through the second pipe to the filtering water tank, after the liquid enters the filtering water tank, it first contacts the filtering box. The filtering holes opened on the surface of the filtering box play a role in preliminarily filtering the impurities in the liquid. Larger particle impurities are intercepted in the filtering box, preliminarily purifying the liquid. The preliminarily filtered liquid continues to flow through the third pipe. The third pipe serves to guide the liquid and transports it to the adsorption cover. When the liquid enters the adsorption cover, the adsorption layer on the surface of the adsorption cover adsorbs the fine particles and harmful substances in the liquid, further improving the purification effect of the liquid and ensuring that the finally flowing out liquid meets specific quality standards. Description of the Drawings
[0014] Figure 1 Side view external structure schematic diagram of the present utility model;
[0015] Figure 2 Schematic diagram of the cooperation structure between the air inlet and the air outlet of the present utility model;
[0016] Figure 3 Schematic diagram of the cooperation structure between the fourth pipe and the water pump of the present utility model;
[0017] Figure 4 Cross-sectional structure schematic diagram of the stirring mechanism of the present utility model;
[0018] Figure 5 Schematic diagram of the structure of the filtering mechanism of the present utility model;
[0019] Figure 6 Schematic diagram of the cooperation structure between the clamping groove and the clamping block of the present utility model;
[0020] Figure 7 This is a schematic diagram of the mutual cooperation structure between the sliding block and the sliding groove of the present utility model.
[0021] In the figure: 1, tower body; 2, air inlet; 3, air outlet; 4, base; 5, support; 6, first pipeline; 7, stirring mechanism; 701, stirring tank; 702, motor box; 703, motor; 704, transmission shaft; 705, transmission disc; 706, transmission belt; 707, rotating disc; 708, rotating shaft; 709, stirring blade; 710, rotating disc; 711, limiting disc; 712, limiting circular groove; 8, filtering mechanism; 801, second pipeline; 802, filtering water tank; 803, limiting groove; 804, limiting block; 805, connecting block; 806, fixing block; 807, spring; 808, clamping groove; 809, clamping block; 810, positioning block; 811, positioning groove; 812, filtering box; 813, filtering holes; 814, third pipeline; 815, sliding block; 816, adsorption cover; 817, sliding groove; 818, adsorption layer; 9, water tank; 10, fourth pipeline; 11, water pump; 12, fifth pipeline; 13, water storage tank; 14, sixth pipeline; 15, spray head; 16, spray port; 17, packing partition board; 18, hydrophobic board. Specific embodiments
[0022] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0023] Please refer to Figure 1-7, the present utility model provides a technical solution: a vertical water circulation absorption tower, which includes a tower body 1. The surface of the tower body 1 is fixedly connected with an air inlet 2. The upper surface of the tower body 1 is fixedly connected with an air outlet 3. The lower surface of the tower body 1 is fixedly connected with a base 4. The lower surface of the base 4 is fixedly connected with a bracket 5. The surface of the tower body 1 is fixedly connected with a first pipe 6. The other end surface of the first pipe 6 is provided with a stirring mechanism 7. The stirring mechanism 7 includes a stirring box 701, a motor box 702, a motor 703, a transmission shaft 704, a transmission disc 705, a transmission belt 706, a rotating disc 707, a rotating shaft 708, stirring blades 709, a rotating disc 710, a limiting disc 711 and a limiting circular groove 712. A filtering mechanism 8 is arranged on one side surface of the stirring box 701. One side surface of the filtering mechanism 8 is fixedly connected with a water tank 9. One side surface of the water tank 9 is fixedly connected with a fourth pipe 10. The other end surface of the fourth pipe 10 is fixedly connected with a water pump 11. The surface of the water pump 11 is fixedly connected with a fifth pipe 12. The other end of the fifth pipe 12 is fixedly connected with a water storage tank 13. One side surface of the water storage tank 13 is fixedly connected with a sixth pipe 14. The other end of the sixth pipe 14 is fixedly connected with a spray head 15. The lower surface of the spray head 15 is fixedly connected with a spray port 16. The inner surface of the tower body 1 is fixedly connected with a packing partition plate 17. The lower surface of the packing partition plate 17 is fixedly connected with a hydrophobic plate 18;
[0024] The filtering mechanism 8 includes a second pipeline 801, a filtering water tank 802, a limiting groove 803, a limiting block 804, a connecting block 805, a fixing block 806, a spring 807, a clamping groove 808, a clamping block 809, a positioning block 810, a positioning groove 811, a filtering box 812, filtering holes 813, a third pipeline 814, a sliding block 815, an adsorption cover 816, a sliding groove 817 and an adsorption layer 818. A second pipeline 801 is fixedly connected to one side surface of the stirring tank 701, the other end surface of the second pipeline 801 is fixedly connected to a filtering water tank 802, a limiting groove 803 is opened on the inner side surface of the filtering water tank 802, a limiting block 804 is slidably connected to the surface of the limiting groove 803, a connecting block 805 is fixedly connected to one side surface of the limiting block 804, a fixing block 806 is fixedly connected to the inner side surface of the connecting block 805, a spring 807 is fixedly connected to the outer side surface of the fixing block 806, a clamping groove 808 is opened on the inner side surface of the fixing block 806, a clamping block 809 is slidably connected to the inner side surface of the clamping groove 808, a positioning block 810 is fixedly connected to one side surface of the clamping block 809, a positioning groove 811 is opened on the inner side surface of the limiting groove 803, a filtering box 812 is fixedly connected to one side surface of the connecting block 805, filtering holes 813 are opened on the surface of the filtering box 812, a third pipeline 814 is fixedly connected to one side surface of the filtering water tank 802, a sliding block 815 is fixedly connected to the surface of the third pipeline 814, an adsorption cover 816 is slidably connected to the surface of the sliding block 815, a sliding groove 817 is opened on the inner side surface of the adsorption cover 816, and an adsorption layer 818 is fixedly connected to the surface of the adsorption cover 816. Through the settings of the second pipeline 801, the filtering water tank 802, the limiting groove 803, the limiting block 804, the connecting block 805, the fixing block 806, the spring 807, the clamping groove 808, the clamping block 809, the positioning block 810, the positioning groove 811, the filtering box 812, the filtering holes 813, the third pipeline 814, the sliding block 815, the adsorption cover 816, the sliding groove 817 and the adsorption layer 818, when in use, first align the limiting block 804 on the filtering box 812 with the limiting groove 803 inside the filtering water tank 802, and then gently push the filtering box 812 to smoothly insert it into the filtering water tank 802 along the limiting groove 803. When inserted to the appropriate position, the spring 807 releases elastic potential energy to push the positioning block 810 into the positioning groove 811 inside the limiting groove 803, and the clamping groove 808 limits the clamping block 809 to make the positioning block 810 more stable when popping out. The setting of the positioning block 810 enhances the stability of the filtering box 812 inside the filtering water tank 802, avoiding shaking or displacement under the impact of liquid or other external forces. In this way, the installation of the filtering box 812 is completed. The limiting block 804 on the filtering box 812 cooperates with the limiting groove 803 inside the filtering water tank 802 to achieve a sliding connection. This design enables the filtering box 812 to be smoothly inserted into or removed from the filtering water tank 802 along the limiting groove 803, facilitating installation and disassembly.Then align the slider 815 on the third pipe 814 with the entrance position of the sliding groove 817 inside the adsorption cover 816 to ensure accurate alignment of their positions. Gently push the adsorption cover 816 along the direction of the sliding groove 817 to gradually insert the slider 815 into the sliding groove 817. When pushed to the top, rotate it so that the slider 815 slides to the innermost part of the sliding groove 817. During disassembly, simply rotate the adsorption cover 816 in the opposite direction and then separate the adsorption cover 816 from the third pipe 814 along the sliding groove 817. When the liquid to be filtered in the mixing tank 701 flows through the second pipe 801 to the filter water tank 802, after the liquid enters the filter water tank 802, it first contacts the filter box 812. The filter holes 813 opened on the surface of the filter box 812 play a role in preliminarily filtering the impurities in the liquid. Larger particle impurities are intercepted in the filter box 812, preliminarily purifying the liquid. The preliminarily filtered liquid continues to flow through the third pipe 814. The third pipe 814 serves to guide the liquid and convey it to the adsorption cover 816. When the liquid enters the adsorption cover 816, the adsorption layer 818 on the surface of the adsorption cover 816 adsorbs the fine particles and harmful substances in the liquid, further improving the purification effect of the liquid and ensuring that the finally flowing out liquid meets specific quality standards.
[0025] Further, the air inlet 2 corresponds to the air outlet 3. Multiple groups of brackets 5 are arranged at equal intervals at the bottom of the base 4. Through the arrangement of the brackets 5, during use, the brackets 5 support the base 4, dispersing the weight borne by the base 4 and evenly transmitting the weight to the ground, making the tower body 1 more stable.
[0026] Further, one end surface of the first pipeline 6 is fixedly connected with a mixing tank 701. One side surface of the mixing tank 701 is fixedly connected with a motor box 702. The inner side surface of the motor box 702 is fixedly connected with a motor 703. One end surface of the motor 703 is fixedly connected with a transmission shaft 704. The other end surface of the transmission shaft 704 is fixedly connected with a transmission disk 705. The surface of the transmission disk 705 is in fitting connection with a transmission belt 706. The inner side surface of the transmission belt 706 is in fitting connection with a rotating disk 707. One side surface of the rotating disk 707 is fixedly connected with a rotating shaft 708. The surface of the rotating shaft 708 is fixedly connected with mixing blades 709. One end surface of the rotating shaft 708 is fixedly connected with a rotating disk 710. The surface of the rotating disk 710 is rotatably connected with a limiting disk 711. The inner side surface of the limiting disk 711 is provided with a limiting circular groove 712. Through the settings of the mixing tank 701, the motor box 702, the motor 703, the transmission shaft 704, the transmission disk 705, the transmission belt 706, the rotating disk 707, the rotating shaft 708, the mixing blades 709, the rotating disk 710, the limiting disk 711 and the limiting circular groove 712, when in use, when the liquid after contacting the gas to be treated flows along the first pipeline 6 to the mixing tank 701, a reactant is added, and then the motor 703 is started. The operation of the motor 703 drives the transmission shaft 704 to rotate. The transmission shaft 704 drives the transmission disk 705 to rotate. The transmission disk 705 drives the rotating disk 707 to rotate through the transmission belt 706. The rotating disk 707 drives the mixing blades 709 to rotate through the rotating shaft 708 to mix the liquid in the mixing tank 701, preventing the uneven mixing of the liquid and the reactant. The rotating disk 710 fixedly connected to one end surface of the rotating shaft 708 rotates together with the rotating shaft 708. The rotating disk 710 rotates inside the limiting disk 711. The limiting circular groove 712 provided on the inner side surface of the limiting disk 711 plays a limiting role on the rotating disk 710, making the rotating shaft 708 more stable during rotation.
[0027] Further, multiple groups of mixing blades 709 are arranged at equal intervals on the surface of the rotating shaft 708. The outer wall size of the rotating disk 710 matches the inner wall size of the limiting circular groove 712. Through the setting of the mixing blades 709, when in use, multiple groups of mixing blades 709 work simultaneously to increase the contact area with the liquid, making the mixing more uniform.
[0028] Further, the inner wall size of the limiting groove 803 matches the outer wall size of the limiting block 804. Two groups of limiting blocks 804 are symmetrically arranged with respect to the central axis of the connecting block 805. Through the settings of the limiting groove 803 and the limiting block 804, when in use, the sizes of the limiting block 804 and the limiting groove 803 match, so that when installing the filter box 812, the two groups of limiting blocks 804 enter the limiting groove 803 simultaneously, ensuring that the filter box 812 can be inserted along the correct direction without deflection or misalignment.
[0029] Furthermore, the positioning block 810 and the fixed block 806 form a telescopic structure through the spring 807. The outer wall dimensions of the clamping block 809 match the inner wall dimensions of the clamping groove 808. Through the settings of the clamping block 809 and the clamping groove 808, during use, the clamping groove 808 limits the clamping block 809, making the movement of the positioning block 810 more stable.
[0030] Furthermore, two sets of sliding blocks 815 are symmetrically arranged with respect to the central axis of the third pipe 814. The outer wall dimensions of the sliding blocks 815 match the inner wall dimensions of the sliding grooves 817. Through the settings of the sliding blocks 815 and the sliding grooves 817, during use, the two sets of symmetrically distributed sliding blocks 815 and sliding grooves 817 make the connection between the third pipe 814 and the adsorption cover 816 more firm and reliable.
[0031] Working principle: The gas to be processed enters the tower body 1 from the air inlet 2. Since the air inlet 2 corresponds to the air outlet 3, the gas flows upward in the tower body 1. There is a packing partition 17 in the tower body 1, and the packing on it increases the contact area and time between the gas and the sprayed liquid. The water or treated liquid in the water storage tank 13 is transported to the nozzle 15 through the sixth pipeline 14. The nozzle 15 sprays the liquid in the form of mist or small droplets from the spray port 16, making full contact with the rising gas, and chemical reactions or physical adsorption and other processes occur to remove harmful substances in the gas. The hydrophobic plate 18 located below the packing partition 17 guides the water flow to disperse and flow downward. The treated gas finally discharges from the air outlet 3 out of the tower body 1. The liquid after contacting the gas flows downward under the action of gravity, converges at the bottom of the tower body 1 and then flows through the first pipeline 6 to the mixing tank 701. Then, a reactant is added, and then the motor 703 is started. The operation of the motor 703 drives the transmission shaft 704 to rotate. The transmission shaft 704 drives the transmission disc 705 to rotate. The transmission disc 705 drives the rotating disc 707 to rotate through the transmission belt 706. The rotating disc 707 drives the stirring blade 709 to rotate through the rotating shaft 708 to stir the liquid in the mixing tank 701 to prevent uneven mixing of the liquid and the reactant. The rotating disc 710 fixedly connected to the surface of one end of the rotating shaft 708 rotates together with the rotating shaft 708. The rotating disc 710 rotates inside the limiting disc 711. The limiting circular groove 712 opened on the inner surface of the limiting disc 711 plays a limiting role on the rotating disc 710, making the rotating shaft 708 more stable during rotation. Subsequently, align the limiting block 804 on the filter box 812 with the limiting groove 803 inside the filter water tank 802, and then gently push the filter box 812 to make it smoothly inserted into the filter water tank 802 along the limiting groove 803. When inserted to the appropriate position, the spring 807 releases elastic potential energy to push the positioning block 810 into the positioning groove 811 inside the limiting groove 803. The clamping groove 808 limits the clamping block 809, making the positioning block 810 more stable when popping out. The setting of the positioning block 810 enhances the stability of the filter box 812 in the filter water tank 802, avoiding shaking or displacement under the impact of liquid or other external forces. In this way, the installation of the filter box 812 is completed. The limiting block 804 on the filter box 812 cooperates with the limiting groove 803 inside the filter water tank 802 to achieve a sliding connection. This design enables the filter box 812 to be smoothly inserted into or removed from the filter water tank 802 along the limiting groove 803, facilitating installation and disassembly. Then, align the sliding block 815 on the third pipeline 814 with the entrance position of the sliding groove 817 inside the adsorption cover 816 to ensure the accurate alignment of their positions. Gently push the adsorption cover 816 along the direction of the sliding groove 817 to make the sliding block 815 gradually enter the sliding groove 817. When pushed to the top, rotate it to make the sliding block 815 slide to the innermost part of the sliding groove 817. During disassembly, just rotate the adsorption cover 816 in the opposite direction, and then separate the adsorption cover 816 from the third pipeline 814 along the sliding groove 817.When the liquid to be filtered in the mixing tank 701 flows through the second pipeline 801 to the filtration water tank 802, after the liquid enters the filtration water tank 802, it first comes into contact with the filtration box 812. The filtration holes 813 opened on the surface of the filtration box 812 play a role in preliminarily filtering the impurities in the liquid. Larger particle impurities are intercepted in the filtration box 812, enabling the liquid to be preliminarily purified. The liquid after preliminary filtration continues to flow through the third pipeline 814. The third pipeline 814 serves to guide the liquid and transports it to the adsorption cover 816. When the liquid enters the adsorption cover 816, the adsorption layer 818 on the surface of the adsorption cover 816 adsorbs the fine particles and harmful substances in the liquid, further improving the purification effect of the liquid and ensuring that the finally outflowing liquid meets specific quality standards. The treated liquid enters the water tank 9 and then enters the water pump 11 through the fourth pipeline 10. The water pump 11 transports the liquid to the storage water tank 13 through the fifth pipeline 12. The liquid in the storage water tank 13 is transported to the spray head 15 through the sixth pipeline 14, thus completing the recycling of the liquid. Among them, the model of the motor 703 is YE2-132S-4, and the model of the water pump 11 is PW-175EAH.,
[0032] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A vertical water circulation absorption tower, comprising a tower body (1), characterized in that: The surface of the tower body (1) is fixedly connected with an air inlet (2), the upper surface of the tower body (1) is fixedly connected with an air outlet (3), the lower surface of the tower body (1) is fixedly connected with a base (4), the lower surface of the base (4) is fixedly connected with a bracket (5), the surface of the tower body (1) is fixedly connected with a first pipe (6), the other end surface of the first pipe (6) is provided with a stirring mechanism (7), the stirring mechanism (7) comprises a stirring box (701), a motor box (702), a motor (703), a transmission shaft (704), a transmission disc (705), a transmission belt (706), a rotating disc (707), a rotating shaft (708), a stirring blade (709), a rotating disc (710), a limiting disc (711) and a limiting circular groove (712), and one side surface of the stirring box (701) is provided with a stirring mechanism (701). A filter mechanism (8) is provided on the surface, a water tank (9) is fixedly connected to one side surface of the filter mechanism (8), a fourth pipe (10) is fixedly connected to one side surface of the water tank (9), a water pump (11) is fixedly connected to the other end surface of the fourth pipe (10), a fifth pipe (12) is fixedly connected to the surface of the water pump (11), the other end of the fifth pipe (12) is fixedly connected to a water storage tank (13), a sixth pipe (14) is fixedly connected to one side surface of the water storage tank (13), a nozzle (15) is fixedly connected to the other end of the sixth pipe (14), a spray port (16) is fixedly connected to the lower surface of the nozzle (15), a packing partition (17) is fixedly connected to the inner side surface of the tower body (1), and a hydrophobic plate (18) is fixedly connected to the lower surface of the packing partition (17); The filtering mechanism (8) comprises a second pipe (801), a filtered water tank (802), a limiting groove (803), a limiting block (804), a connecting block (805), a fixing block (806), a spring (807), a clamping groove (808), a clamping block (809), a positioning block (810), a positioning groove (811), a filtering box (812), a filtering hole (813), a third pipe (814), a sliding block (815), an adsorption cover (816), a sliding groove (817) and an adsorption layer (818). 18), a second pipe (801) is fixedly connected to one side surface of the mixing box (701), a filtered water tank (802) is fixedly connected to the other end surface of the second pipe (801), a limiting groove (803) is provided on the inner side surface of the filtered water tank (802), a limiting block (804) is slidably connected to the surface of the limiting groove (803), a connecting block (805) is fixedly connected to one side surface of the limiting block (804), and a connecting block (805) is fixedly connected to the inner side surface of the connecting block (805). A fixing block (806), the outer surface of which is fixedly connected to a spring (807), the inner surface of which is provided with a slot (808), the inner surface of which is slidably connected to a fixing block (809), one side surface of which is fixedly connected to a positioning block (810), the inner surface of which is provided with a positioning slot (811), and one side surface of which is fixedly connected to a filter box ( 812), a filter hole (813) is provided on the surface of the filter box (812), a third pipe (814) is fixedly connected to the surface of one side of the filter water tank (802), a sliding block (815) is fixedly connected to the surface of the third pipe (814), an adsorption cover (816) is slidably connected to the surface of the sliding block (815), a sliding groove (817) is provided on the inner surface of the adsorption cover (816), and an adsorption layer (818) is fixedly connected to the surface of the adsorption cover (816).
2. The vertical water circulation absorption tower according to claim 1 is characterized in that: The air inlet (2) corresponds to the air outlet (3), and a plurality of brackets (5) are arranged at equal intervals at the bottom of the base (4).
3. The vertical water circulation absorption tower according to claim 1 is characterized in that: A stirring box (701) is fixedly connected to one end surface of the first pipe (6), a motor box (702) is fixedly connected to one side surface of the stirring box (701), a motor (703) is fixedly connected to the inner side surface of the motor box (702), a transmission shaft (704) is fixedly connected to one end surface of the motor (703), a transmission disc (705) is fixedly connected to the other end surface of the transmission shaft (704), and a transmission belt (706) is bonded to the surface of the transmission disc (705). The inner surface of the transmission belt (706) is fittedly connected to a rotating disk (707), one side surface of the rotating disk (707) is fixedly connected to a rotating shaft (708), the surface of the rotating shaft (708) is fixedly connected to a stirring blade (709), one end surface of the rotating shaft (708) is fixedly connected to a rotating disk (710), the surface of the rotating disk (710) is rotatably connected to a limiting disk (711), and a limiting circular groove (712) is provided on the inner surface of the limiting disk (711).
4. The vertical water circulation absorption tower according to claim 3 is characterized in that: The stirring blades (709) are arranged in multiple groups at equal intervals on the surface of the rotating shaft (708), and the outer wall size of the rotating disc (710) is consistent with the inner wall size of the limiting circular groove (712).
5. The vertical water circulation absorption tower according to claim 1, characterized in that: The inner wall size of the limiting groove (803) matches the outer wall size of the limiting block (804), and the limiting blocks (804) are symmetrically arranged in two groups around the central axis of the connecting block (805).
6. The vertical water circulation absorption tower according to claim 1, characterized in that: The positioning block (810) forms a telescopic structure with the fixing block (806) via a spring (807), and the outer wall size of the clamping block (809) matches the inner wall size of the clamping slot (808).
7. The vertical water circulation absorption tower according to claim 1, characterized in that: The sliding blocks (815) are arranged in two groups symmetrically with respect to the central axis of the third pipe (814), and the outer wall size of the sliding blocks (815) is consistent with the inner wall size of the sliding groove (817).