An air-powered water treatment separator
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- TIANJIN TAIDA WISDOM WATER CO LTD
- Filing Date
- 2025-12-24
- Publication Date
- 2026-08-07
AI Technical Summary
[0003]在水处理分离器正常使用过程中,通常需将排污口设置的较小,以保证分离器内部的压力和高速旋转气流的稳定性,但较小的排污口长时间使用,会出现堵塞的情况,堵塞后的污染物无法排出,导致分离器体内杂质堆积,降低气、液、固三相分离效果,最终出水水质恶化,同时污染物堵塞可能造成腔体内部压力升高,影响进气系统稳定性甚至损坏风机或压缩装置,而现有通常安排巡检人员定期对排污口进行疏通,以减小上述情况发生的可能,但人工疏通存在以下缺点:人工疏通需暂停设备运行,导致供水或废水处理流程中中断,且人工疏通无法确保能够第一时间对堵塞的污水口进行疏通,且到达现场需一定时间的问题
1、通过设置触发部件,当大颗粒污泥杂质逐步将排污口堵住时,随着自来水继续进入罐体,使得罐体内部的压力逐渐变大,压力弧板在压力的作用下被沿着水平方向挤压运动,且在运动过程中带动密封板同步运动,两个密封板在运动过程中使得排污口的孔径变大,孔径的变化能够使得堵塞的污泥杂质自动排出。
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Figure CN121426211B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of water treatment technology, and more particularly to a water treatment separator based on aerodynamics. Background Technology
[0002] A water treatment separator is a device that utilizes aerodynamic principles to improve efficiency. It is mainly used to separate impurities, air bubbles, and fixed particles from water. Its working principle is as follows: tap water enters two constant-pressure air tanks on the left and right sides. The air inside the tanks is compressed by the water pressure, creating aerodynamic energy. This aerodynamic energy reacts with the water, creating a pulse vibration effect (commonly known as water hammer). After being separated by pulse vibration, the water enters the tank from the connecting pipes on both sides in a clockwise direction via centrifugal force. The water rotates at high speed around a conical disk inside the tank, generating a strong centrifugal force. Under the action of aerodynamics and centrifugal force, most impurities in the water are rapidly separated from the water. The impurities settle and are discharged through the drain outlet. The separated water enters the activation chamber, where even smaller impurities are separated. The separated and isolated water is then discharged through the top outlet pipe.
[0003] During normal use of a water treatment separator, the drain outlet is usually set to be relatively small to ensure the stability of the internal pressure and high-speed rotating airflow. However, prolonged use of a small drain outlet can lead to blockage. Once blocked, pollutants cannot be discharged, causing impurities to accumulate inside the separator, reducing the separation effect of the gas, liquid, and solid phases, and ultimately deteriorating the quality of the effluent. At the same time, the blockage may cause the internal pressure of the chamber to increase, affecting the stability of the air intake system and even damaging the blower or compressor. Currently, it is common practice to arrange for inspectors to regularly unclog the drain outlet to reduce the possibility of the above situations. However, manual unclogging has the following disadvantages: manual unclogging requires stopping the equipment operation, causing an interruption in the water supply or wastewater treatment process. In addition, manual unclogging cannot guarantee that the blocked sewage outlet can be unclogged immediately, and there is a certain amount of time required to reach the site. Summary of the Invention
[0004] In view of the problems of existing water treatment separators having blocked discharge outlets, and the inability of manual unblocking to reach the site in time and the need to stop the equipment operation for unblocking, a water treatment separator based on air power is proposed.
[0005] This application provides a pneumatically powered water treatment separator, the purpose of which is to: by setting a triggering component, when the drain outlet is blocked, the pressure arc plate can move horizontally under pressure changes, and during the movement, the sealing plate and the drain plate are opened. The opening of the sealing plate can temporarily enlarge the drain outlet diameter, providing favorable conditions for unblocking. At the same time, the opening of the drain plate can allow some tap water to be used to flush out the solid particles blocking the drain outlet, thereby achieving the effect of automatically unblocking the sewage outlet.
[0006] The technical solution of the present invention is as follows: an aerodynamic water treatment separator, including a support plate, a tank disposed on the upper part of the support plate, a drain outlet disposed on the lower part of the tank, and an anti-clogging unit disposed on the upper part of the drain outlet, wherein the anti-clogging unit includes a triggering component and a clearing component disposed on the upper part of the drain outlet; The triggering component includes a lower sliding seat disposed on both sides of the bottom end inside the tank, an upper sliding seat disposed on both sides of the inner wall of the tank, a sliding strip disposed in the lower sliding seat and the upper sliding seat respectively, a pressure arc plate disposed between the corresponding sliding strips, a mounting plate disposed on the side wall of the pressure arc plate, a reset spring disposed between the mounting plate and the inner wall of the tank, and an expansion assembly installed on the inner wall of the drain outlet. The two pressure arc plates are located on both sides of the sewage outlet. The expansion assembly includes horizontal grooves opened on both sides of the inner wall of the sewage outlet, a sealing plate set in the horizontal groove, and a synchronization plate set between the sealing plate and the pressure arc plate. The pressure arc plate drives the corresponding sealing plate to open and close in the horizontal direction according to the pressure change inside the tank.
[0007] Furthermore, the unblocking component includes a conical disc disposed on the inner wall of the tank, a water drain groove disposed on the conical disc, a water drain plate disposed in the water drain groove, a rotating gear ring disposed on the bottom end of the tank, a driven helical tooth disposed on the upper end of the rotating gear ring, a mating helical tooth disposed on the lower end of the sliding bar, the mating helical tooth meshing with the driven helical tooth, and a rotating rod disposed between the rotating gear ring and the water drain plate. The water drain plate is used to flush the drain outlet with some tap water to unblock the clogged drain outlet.
[0008] Furthermore, an inlet pan is fixedly installed on the inner wall of the tank, and an activated chamber is set at the upper end of the inlet pan. The activated chamber is filled with activated carbon, which is used for secondary filtration of tap water.
[0009] Furthermore, support rods are fixedly installed on both sides of the outer wall of the tank, and a connecting ring is fixedly installed at one end of each of the two support rods. An air constant pressure tank is fixedly installed on the inner wall of the connecting ring, and a connecting pipe is installed between the two air constant pressure tanks and the tank body. The air constant pressure tank is used to control the water supply pressure to be stable and to ensure the water supply volume.
[0010] Furthermore, the inlets of the two connecting pipes are both located between the inlet plate and the conical plate.
[0011] Furthermore, water inlet pipes are installed on the outer walls of both air pressure tanks, and a water inlet connector is installed between the two water inlet pipes.
[0012] Furthermore, a water outlet pipe is fixedly installed on the upper part of the outer wall of the tank, one end of which is connected to the inside of the tank, and the water outlet pipe is used to discharge the treated tap water.
[0013] Furthermore, a through groove is provided on the support plate, and the through groove is located directly below the drain outlet.
[0014] The beneficial effects of this invention are: 1. By setting a trigger component, when large particles of sludge and impurities gradually block the drain outlet, as tap water continues to enter the tank, the pressure inside the tank gradually increases. Under the action of pressure, the pressure arc plate is squeezed and moved in the horizontal direction, and during the movement, it drives the sealing plate to move synchronously. During the movement of the two sealing plates, the diameter of the drain outlet increases. The change in the diameter allows the blocked sludge and impurities to be automatically discharged.
[0015] 2. By setting up unblocking components, when the pressure arc plate moves horizontally under pressure, it drives the rotating gear ring to rotate through the interaction of the helical teeth and the driven helical teeth. When the rotating gear ring rotates, it opens the drain plate through the rotating rod. At this time, the tap water at the top is flushed downward under pressure, further flushing out the polluting particles that are blocking the drain outlet. This, together with the triggering components, effectively improves the unblocking efficiency.
[0016] 3. By setting up an anti-clogging unit, when the water treatment separator becomes clogged, it can automatically unclog the drain outlet immediately without the need for manual on-site unclog. This effectively improves the flexibility of the water treatment separator, reduces the time of drain outlet clogging, and the unclogging process does not require machine shutdown, thus effectively improving water treatment efficiency. Attached Figure Description
[0017] Figure 1 This is a first-view three-dimensional structural diagram of the present invention; Figure 2 This is a second-view three-dimensional structural diagram of the present invention; Figure 3 This is a schematic diagram of the internal structure of the tank of the present invention; Figure 4 This is a schematic diagram of the activated carbon chamber installation structure of the present invention; Figure 5 This is a schematic diagram of the anti-clogging unit structure of the present invention; Figure 6This is a schematic diagram of the trigger component structure of the present invention; Figure 7 For the present invention Figure 6 Partial sectional view of the planar structure; Figure 8 This is a schematic diagram of the unblocking component structure of the present invention.
[0018] In the picture: 1. Support plate; 2. Tank body; 3. Drain outlet; 4. Lower sliding seat; 5. Upper sliding seat; 6. Sliding strip; 7. Pressure arc plate; 8. Mounting plate; 9. Return spring; 10. Horizontal groove; 11. Sealing plate; 12. Synchronizing plate; 13. Conical disc; 14. Water drain trough; 15. Water drain plate; 16. Rotating gear ring; 17. Rotating rod; 18. Water inlet plate; 19. Activated chamber; 20. Activated carbon; 21. Support rod; 22. Air constant pressure tank; 23. Connecting pipe; 24. Water inlet pipe; 25. Water inlet connector; 26. Water outlet pipe; 27. Connecting ring. Detailed Implementation
[0019] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.
[0020] Example 1, referring to Figures 1-7 The first embodiment of the present invention provides an aerodynamic water treatment separator, including a support plate 1, a tank 2 fixedly installed on the upper end of the support plate 1, a drain port 3 opened at the lower end of the tank 2, and an anti-clogging unit installed on the upper end of the drain port 3. The anti-clogging unit includes a triggering component and a clearing component installed on the upper end of the drain port 3.
[0021] The triggering components include lower sliding seats 4 fixedly installed on both sides of the bottom inside the tank 2, upper sliding seats 5 fixedly installed on both sides of the inner wall of the tank 2, sliding strips 6 respectively slidably installed in the lower sliding seats 4 and the upper sliding seats 5, pressure arc plates 7 fixedly installed between the corresponding sliding strips 6, mounting plates 8 fixedly installed on the side wall of the pressure arc plates 7, and a return spring 9 fixedly installed between the mounting plate 8 and the inner wall of the tank 2. An expansion assembly is installed on the inner wall of the drain outlet 3.
[0022] Two pressure arc plates 7 are located on both sides of the drain outlet 3. The expansion assembly includes horizontal grooves 10 opened on both sides of the inner wall of the drain outlet 3, a sealing plate 11 slidably installed in the horizontal grooves 10, and a synchronization plate 12 fixedly installed between the sealing plate 11 and the pressure arc plates 7. The pressure arc plates 7 drive the corresponding sealing plates 11 to open and close in the horizontal direction through the pressure change inside the tank 2.
[0023] Specifically, the triggering component functions as follows: when the drain outlet 3 of the water treatment separator becomes blocked, it automatically clears the drain outlet 3 by changing the internal pressure of the water treatment separator. This achieves automatic clearing without requiring personnel to discover or arrive at the site, and resets after clearing, without affecting the continued use of the water treatment separator. Its working principle is as follows: The water treatment separator is used to treat impurities in tap water. Therefore, tap water needs to be continuously input to treat the impurities in the tap water. Once the drain outlet 3 is blocked, the particulate pollutants inside the tank 2 cannot be discharged. As the particulate pollutants increase, the internal pressure increases. Because the particulate pollutants are located between the two pressure arc plates 7, the particulate pollutants will exert a horizontal squeezing force on the two pressure arc plates 7. As the squeezing force increases, the pressure arc plates 7 move horizontally under the action of the squeezing force. During the movement of the pressure arc plates 7, the corresponding sealing plates 11 are driven to move horizontally synchronously through the synchronous plate 12. When the two sealing plates 11 move to the maximum value, the diameter of the drain outlet 3 becomes larger. When the diameter of the drain outlet 3 becomes larger, it is conducive to the discharge of the internal blockage particles.
[0024] Because the drain port 3 of the water treatment separator cannot be set too large during normal use (the reason for setting the drain port 3 relatively small is that it is usually necessary to set it relatively small to ensure the stability of the internal pressure and high-speed rotating airflow of the separator), a triggering component is installed so that when the water treatment separator becomes clogged, the diameter of the drain port 3 can be temporarily enlarged to discharge the clogged particulate pollutants. By installing the pressure arc plate 7, the triggering component can automatically unclog the clogged drain port 3, effectively improving the applicability of the water treatment separator.
[0025] During operation, when the drain outlet 3 is blocked by pollutant particles, the amount of pollutant particles at the drain outlet 3 increases continuously as tap water continues to flow in. As the pollutant particles cannot be discharged normally through the drain outlet 3, the pressure at the drain outlet 3 continuously increases. The pollutant particles exert a squeezing force on the pressure arc plates 7 on both sides. Under the action of the squeezing force, the pressure arc plates 7 move horizontally. During the horizontal movement of the pressure arc plates 7, the corresponding sealing plates 11 move synchronously along the horizontal groove 10 through the synchronous plate 12. As the sealing plates 11 move horizontally, the diameter of the drain outlet 3 increases. As the diameter of the drain outlet 3 increases, the particulate pollutants blocking the drain outlet 3 are discharged normally. When the particulate pollutants are discharged, the pressure inside the water treatment separator gradually decreases. The pressure arc plates 7 on both sides reset under the elastic force of the return spring 9, so that the diameter of the drain outlet 3 is restored, ensuring the normal operation of the water treatment separator.
[0026] Example 2, refer to Figures 7-8This is the second embodiment of the present invention, which differs from the first embodiment in that: the unblocking component includes a conical disc 13 fixedly installed on the inner wall of the tank 2, a water drain trough 14 opened on the conical disc 13, a water drain plate 15 slidably installed in the water drain trough 14, a rotating gear ring 16 rotatably installed on the bottom end of the tank 2, a driven helical tooth (not shown in the figure) fixedly installed on the upper end of the rotating gear ring 16, a mating helical tooth (not shown in the figure) fixedly installed on the lower end of the sliding bar 6, the mating helical tooth and the driven helical tooth meshing with each other, and a rotating rod 17 fixedly installed between the rotating gear ring 16 and the water drain plate 15. The water drain plate 15 is used to use some tap water to flush the drain outlet 3 and unblock the clogged drain outlet 3.
[0027] Specifically, the function of the unblocking component is to further improve the unblocking effect on the drain outlet 3 by assisting the triggering component. When the triggering component operates, that is, when the pressure arc plate 7 moves in the horizontal direction, it will drive the sliding bar 6 at the lower end to move synchronously. During the movement of the sliding bar 6, the driven helical teeth and the mating helical teeth drive the rotating gear ring 16 to rotate (this is the prior art and will not be elaborated on here). The rotation of the rotating gear ring 16 drives the corresponding drain plate 15 to move along the inside of the drain trough 14 through the rotating rod 17. When the drain plate 15 enters the drain trough 14, the side wall of the conical disc 13 is in the open state. At this time, the tap water at the upper end will flow directly into the drain outlet 3 under the action of gravity, and flush the drain outlet 3 under the action of greater pressure at the upper end, so as to improve the unblocking effect on the drain outlet 3.
[0028] By sacrificing some tap water, the water treatment separator achieves self-flushing, effectively improving the unblocking effect of drain outlet 3. Furthermore, because the tap water is pressurized upon entering tank 2, it ensures sufficient flushing force to wash away particulate contaminants at drain outlet 3, effectively enhancing the flexibility of the water treatment separator. Once the pressure arc plate 7 resets after unblocking, the drain plate 15 simultaneously resets and blocks the drain trough 14 to ensure the sealing of the conical disc 13 and the normal operation of the water treatment separator. The entire unblocking process of drain outlet 3 requires no manual intervention and can immediately clear blockages, effectively improving the flexibility of the device and reducing the workload of personnel.
[0029] During use, when the pressure arc plate 7 moves horizontally under pressure, the sliding strip 6 moves synchronously along the lower sliding seat 4 along the pressure arc plate 7. Through the interaction of the driven helical teeth and the mating helical teeth, it drives the lower rotating gear ring 16 to rotate. When the rotating gear ring 16 rotates, it drives the corresponding drain plate 15 to move in the drain trough 14 through the rotating rod 17, so that the drain trough 14 is in the open state. When the drain trough 14 is open, the tap water at its upper end directly flushes the drain outlet 3 under the action of gravity and pressure, thereby assisting the triggering component in flushing the particulate pollutants at the drain outlet 3 to improve the unblocking effect.
[0030] The remaining structure is the same as that in Example 1.
[0031] Example 3, referring to Figures 1-4 This is the third embodiment of the present invention, which differs from the second embodiment in that: a water inlet plate 18 is fixedly installed on the inner wall of the tank body 2, and an activated carbon chamber 19 is disposed on the upper end of the water inlet plate 18. The activated carbon chamber 19 is filled with activated carbon 20, which is used for secondary filtration of tap water. Support rods 21 are fixedly installed on the outer walls of both sides of the tank body 2. A connecting ring 27 is fixedly installed at one end of each support rod 21. An air pressure tank 22 is fixedly installed on the inner wall of the connecting ring 27. A connecting pipe 23 is installed between the two air pressure tanks 22 and the tank body 2. The air pressure tanks 22 are used to control the water supply pressure and ensure the water supply volume. The openings of the two connecting pipes 23 are located between the water inlet plate 18 and the conical plate 13. A water inlet pipe 24 is installed on the outer wall of each of the two air pressure tanks 22, and a water inlet connector 25 is installed between the two water inlet pipes 24. A water outlet pipe 26 is fixedly installed on the upper part of the outer wall of the tank body 2. One end of the water outlet pipe 26 is connected to the inside of the tank body 2, and the water outlet pipe 26 is used to discharge the treated tap water. A through groove is opened on the support plate 1, and the through groove is located directly below the drain outlet 3.
[0032] Specifically, after tap water enters the two air pressure tanks 22 on the left and right, the air inside the tanks is reduced in volume due to water pressure, forming aerodynamic energy. When this aerodynamic energy reacts on the water, it creates a pulse vibration effect (commonly known as water hammer). After being separated by pulse vibration, the water enters the tank 2 on the left and right sides of the tank 2 in a clockwise direction through the connecting pipes 23 on both sides through centrifugal force. The water rotates at high speed around the conical disk 13 inside the tank 2. The water generates a strong centrifugal force during rotation. Under the action of aerodynamic force and centrifugal force, most of the impurities in the water are quickly separated from the water. The impurities settle and are discharged through the drain outlet 3. The separated water enters the activation chamber 19, which separates even smaller impurities. The separated and isolated water is discharged from the outlet pipe 26 at the top of the tank 2 (the working principle of the air pressure tank 22 is existing technology and will not be elaborated on here).
[0033] During use, untreated tap water enters the two air pressure tanks 22 through the inlet pipe 24. The air in the air pressure tank 22 is reduced in volume due to water pressure, forming aerodynamic energy. When this aerodynamic energy reacts on the water, it forms a pulse vibration effect. Under the action of centrifugal force, the water rotates at high speed along the conical disk 13 through the connecting pipes 23 on both sides, forming a strong centrifugal force that quickly separates most of the impurities from the water. The water then enters the active chamber 19, which further separates the impurities. The separated and isolated water is discharged from the outlet pipe 26 at the top of the tank 2.
[0034] The remaining structure is the same as that in Example 2.
[0035] Based on embodiments 1-3, the working principle of the present invention is as follows: Untreated tap water enters two air pressure tanks 22 through the inlet pipe 24. The air in the air pressure tank 22 is reduced in volume due to water pressure, forming aerodynamic energy. When this aerodynamic energy reacts on the water, it forms a pulse vibration effect. Under the action of centrifugal force, the water rotates at high speed along the conical disk 13 through the connecting pipes 23 on both sides, forming a strong centrifugal force that quickly separates most of the impurities in the water from the solid. Subsequently, the water enters the active chamber 19, which further separates the impurities. The separated and isolated water is discharged from the outlet pipe 26 at the top of the tank 2.
[0036] When the drain outlet 3 is blocked by pollutant particles, the amount of pollutant particles at the drain outlet 3 increases continuously as tap water continues to flow in. As the pollutant particles cannot be discharged normally through the drain outlet 3, the pressure at the drain outlet 3 continues to increase. The pollutant particles exert a squeezing force on the pressure arc plates 7 on both sides. Under the action of the squeezing force, the pressure arc plates 7 move horizontally. During the horizontal movement of the pressure arc plates 7, the corresponding sealing plates 11 move synchronously along the horizontal groove 10 through the synchronous plate 12. As the sealing plates 11 move horizontally, the diameter of the drain outlet 3 increases. As the diameter of the drain outlet 3 increases, the particulate pollutants blocking the drain outlet 3 are discharged normally. When the particulate pollutants are discharged, the pressure inside the water treatment separator gradually decreases. The pressure arc plates 7 on both sides are reset under the elastic force of the return spring 9, so that the diameter of the drain outlet 3 is restored, ensuring the normal operation of the water treatment separator.
[0037] When the pressure arc plate 7 moves horizontally under pressure, the sliding bar 6 moves synchronously along the lower sliding seat 4 along the pressure arc plate 7. Through the interaction of the driven helical teeth and the mating helical teeth, it drives the lower rotating gear ring 16 to rotate. When the rotating gear ring 16 rotates, it drives the corresponding drain plate 15 to move in the drain trough 14 through the rotating rod 17, so that the drain trough 14 is in the open state. When the drain trough 14 is open, the tap water at its upper end directly flushes the drain outlet 3 under the action of gravity and pressure, thereby assisting the triggering component in flushing the particulate pollutants at the drain outlet 3 to improve the unblocking effect.
[0038] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.
Claims
1. An aerodynamic water treatment separator for separating impurities in tap water, comprising a support plate (1), a tank (2) disposed on the upper end of the support plate (1), and a drain outlet (3) disposed on the lower end of the tank (2), characterized in that, It also includes an anti-blocking unit installed at the upper end of the sewage outlet (3), the anti-blocking unit including a triggering component and a clearing component installed at the upper end of the sewage outlet (3); The triggering component includes a lower sliding seat (4) disposed on both sides of the bottom end inside the tank (2), an upper sliding seat (5) disposed on both sides of the inner wall of the tank (2), a sliding strip (6) disposed in the lower sliding seat (4) and the upper sliding seat (5) respectively, a pressure arc plate (7) disposed between the corresponding sliding strip (6), an mounting plate (8) disposed on the side wall of the pressure arc plate (7), a reset spring (9) disposed between the mounting plate (8) and the inner wall of the tank (2), and an expansion assembly is installed on the inner wall of the drain outlet (3); The two pressure arc plates (7) are located on both sides of the drain outlet (3). The expansion assembly includes a horizontal groove (10) opened on both sides of the inner wall of the drain outlet (3), a sealing plate (11) set in the horizontal groove (10), and a synchronization plate (12) set between the sealing plate (11) and the pressure arc plate (7). The pressure arc plate (7) drives the corresponding sealing plate (11) to open and close in the horizontal direction through the pressure change inside the tank (2). The unblocking component includes a conical disc (13) on the inner wall of the tank (2), a water drain trough (14) on the conical disc (13), a water drain plate (15) in the water drain trough (14), a rotating toothed ring (16) on the bottom of the tank (2), a driven helical tooth on the upper end of the rotating toothed ring (16), a mating helical tooth on the lower end of the sliding bar (6), the mating helical tooth meshing with the driven helical tooth, and a rotating rod (17) between the rotating toothed ring (16) and the water drain plate (15). The water drain plate (15) is used to flush the drain outlet (3) with some tap water to unblock the clogged drain outlet (3).
2. The aerodynamic water treatment separator according to claim 1, characterized in that, An inlet pan (18) is fixedly installed on the inner wall of the tank (2). An activated chamber (19) is fixedly installed at the upper end of the inlet pan (18). The activated chamber (19) is filled with activated carbon (20), which is used for secondary filtration of tap water.
3. The aerodynamic water treatment separator according to claim 1, characterized in that, Support rods (21) are fixedly installed on the outer walls of both sides of the tank (2). A connecting ring (27) is fixedly installed at one end of each of the two support rods (21). An air constant pressure tank (22) is fixedly installed on the inner wall of the connecting ring (27). A connecting pipe (23) is installed between the two air constant pressure tanks (22) and the tank (2). The air constant pressure tank (22) is used to control the water supply pressure to be stable and to ensure the water supply volume.
4. A water treatment separator based on aerodynamics according to claim 3, characterized in that, The openings of both connecting pipes (23) are located between the inlet plate (18) and the conical plate (13).
5. A water treatment separator based on aerodynamics according to claim 4, characterized in that, Both of the air pressure tanks (22) are equipped with water inlet pipes (24) on their outer walls, and a water inlet connector (25) is installed between the two water inlet pipes (24).
6. A water treatment separator based on aerodynamics according to claim 5, characterized in that, A water outlet pipe (26) is fixedly installed on the upper part of the outer wall of the tank (2). One end of the water outlet pipe (26) is connected to the inside of the tank (2). The water outlet pipe (26) is used to discharge the treated tap water.
7. A water treatment separator based on aerodynamics according to claim 1, characterized in that, The bearing plate (1) has a through groove, which is located directly below the drain outlet (3).
Citation Information
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