Mixed type efficient spraying and flushing system

The hybrid high-efficiency spray flushing system uses moving parts to drive the flushing device to move horizontally, and combines compressed air and water for flushing. This solves the problems of excessive nozzles and high dust removal costs, and improves the cleaning efficiency and flushing effect of the anode tube.

CN223761198UActive Publication Date: 2026-01-06FUJIAN LONGKING CO LTD
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Patent Information

Application Number
CN202423029948.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-09
Publication Date
2026-01-06
Estimated Expiration
2034-12-09

AI Technical Summary

Technical Problem

The existing vertical wet electrostatic precipitators have too many nozzles, resulting in high dust removal costs and insufficient impact force of the flushing water on the anode tubes, which affects the dust collection effect.

Method used

The system employs a hybrid high-efficiency spray flushing system, which includes a support frame, a flushing device, and a moving component. The moving component drives the flushing device to move along the support frame, and two rows of flushing nozzles are used for translational movement. This reduces the number of nozzles, and the opening and closing of the nozzles are controlled by a trigger. The system combines compressed air and water for flushing, thereby improving the flushing effect.

Benefits of technology

This approach reduces the number of nozzles and electric valves, saves flushing water, improves flushing effect, solves the problem of high dust removal costs, and improves the cleaning efficiency of anode tubes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a mixing type efficient spraying flushing system which comprises a supporting frame, a flushing device and a moving part, the flushing device comprises two flushing pipes and flushing nozzles, and the two flushing pipes are both arranged on the inner side of the supporting frame; the multiple flushing nozzles are connected to the flushing pipe, and the multiple flushing nozzles can be used for flushing the anode module to be flushed; the moving part is connected to the supporting frame, the moving part can drive the flushing device to move from one end of the supporting frame to the other end of the supporting frame, the moving part comprises a middle connecting block, one side of the middle connecting block is connected with one flushing pipe, and the other side of the middle connecting block is connected with the other flushing pipe. The technical scheme has the beneficial effects that two rows of nozzles are adopted for translational motion, the number of the nozzles is reduced, the number of electric valves is reduced, and more flushing water is saved. Therefore, the problems of too many nozzles and too high dust removal cost in the prior art are solved.
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Description

Technical Field

[0001] This utility model relates to the field of spray systems, specifically to a hybrid high-efficiency spray rinsing system. Background Technology

[0002] When dealing with roasting flue gas, companies primarily focus on controlling asphalt fumes, dust, and fluorides. Dust removal systems are typically used to treat the dust in the roasting flue gas in a harmless manner.

[0003] Vertical wet electrostatic precipitators typically employ a fixed, fully covered nozzle arrangement for spray rinsing, which has the following disadvantages: 1. The number of nozzles is large, reaching hundreds; 2. Due to the large number of nozzles, a zoned spray pipe system is required, resulting in high costs for pipes, electric valves, and water pumps; 3. Because the nozzles are fixedly arranged and at a fixed angle, the rinsing water has a rain-like effect, resulting in a weak impact force on the anode tubes, leading to scaling and dirt buildup on the anode tubes and affecting dust collection efficiency.

[0004] Therefore, it is very necessary to provide a hybrid high-efficiency spray flushing system to solve the above-mentioned technical problems. Utility Model Content

[0005] Based on the above description, this utility model provides a hybrid high-efficiency spray flushing system to solve the problem of excessive number of nozzles and high dust removal costs in the prior art.

[0006] The technical solution of this utility model to solve the above-mentioned technical problems is as follows: A hybrid high-efficiency spray flushing system includes a support frame, a flushing device, and a moving part. The flushing device includes a flushing pipe and a flushing nozzle. There are two flushing pipes, both of which are located inside the support frame. There are several flushing nozzles, all of which are connected to the flushing pipes. The several flushing nozzles can flush the anode module to be flushed. The moving part is connected to the support frame and can drive the flushing device to move along one end of the support frame to the other end. The moving part includes a central connecting block. One side of the central connecting block is connected to one of the flushing pipes, and the other side of the central connecting block is connected to the other flushing pipe.

[0007] Furthermore, the movable component includes a track and track pulleys, the track being connected to both sides of the support frame; two track pulleys are provided, and the two track pulleys are respectively connected to both ends of the flushing pipe.

[0008] Furthermore, the flushing pipe is provided with a slide rail and includes a trigger element. The trigger element includes a trigger protrusion, a sliding connecting plate, an impact roller, and a lever-type mechanical valve. There are two trigger protrusions, which are respectively connected to both sides of the support frame, and one trigger protrusion is arranged in every two rows of anode modules. The sliding connecting plate is slidably connected to the slide rail on the flushing pipe. The impact roller is rotatably connected to the sliding connecting plate. When the impact roller abuts against the trigger protrusion, the sliding connecting plate moves away from the track. When the impact roller disengages from the trigger protrusion, the sliding connecting plate moves closer to the track. There are several lever-type mechanical valves. One end of each lever-type mechanical valve is rotatably connected to the flushing nozzle, and the other end is rotatably connected to the sliding connecting plate. When the impact roller abuts against the trigger protrusion, the lever-type mechanical valve is triggered to open the flushing nozzle.

[0009] Furthermore, it also includes a recovery support and a recovery connector, wherein the recovery support is fixedly connected to the flushing pipe; one end of the recovery connector is connected to the recovery support, and the other end of the recovery connector is connected to the sliding connecting plate.

[0010] Furthermore, the return connector is a spring.

[0011] Furthermore, the movable component includes a flange fixing plate, a screw fixing seat, and a screw. One end of the flange fixing plate is connected to the flushing pipe, and the other end of the flange fixing plate is connected to the central connecting block. The screw fixing seat is connected to both ends of the middle part of the support frame. The screw is rotatably connected to the screw fixing seat, and the central connecting block is threadedly connected to the screw. The screw can drive the central connecting block to move during rotation.

[0012] Furthermore, it also includes a moving drive component, which includes a moving motor. The moving motor has a fixed end and a rotating end. The fixed end of the moving motor is fixedly connected to the support frame, and the rotating end of the moving motor is connected to the lead screw. The moving motor can drive the lead screw to rotate in the forward or reverse direction, so that the lead screw drives the central connecting block to move forward and backward.

[0013] Furthermore, the flushing device also includes a water inlet component, which includes a water inlet support, a water pipe fixing bracket, and a water inlet hose. The two ends of the water inlet support are respectively connected to the two ends of the support bracket. A plurality of water pipe fixing brackets are provided, and the plurality of water pipe fixing brackets are all connected to the water inlet support. The water inlet hose is connected to the plurality of water pipe fixing brackets, and the water outlet end of the water inlet hose is connected to the central connecting block.

[0014] Furthermore, it also includes a one-way valve, which is connected to the inlet end of the water inlet hose. The one-way valve is provided with a compressed air connection end, which can fill the water inlet hose with compressed air.

[0015] Furthermore, limit switches are connected to both ends of the support frame.

[0016] Compared with the prior art, the technical solution of this application has the following beneficial technical effects:

[0017] A support frame is positioned above the anode module to be flushed, and a movable component is connected to the support frame. Two flushing pipes are connected at their midpoints by a central connecting block, which supplies water to the flushing pipes. Both ends of the two flushing pipes are connected to the movable component, and several flushing nozzles are attached to each pipe. Thus, the movable component can move the flushing device along one end of the support frame to the other for thorough cleaning of the anode module. The use of two rows of flushing nozzles with a linear motion reduces the number of nozzles and electric valves, resulting in more economical flushing water. This solves the problem of excessive nozzle count and high dust removal costs associated with existing technologies. Attached Figure Description

[0018] Figure 1 A schematic diagram of the overall structure of a hybrid high-efficiency spray flushing system provided for an embodiment of this utility model;

[0019] Figure 2 for Figure 1 Enlarged structural diagram at point Q;

[0020] Figure 3 for Figure 1 Enlarged structural diagram at point W;

[0021] Figure 4 for Figure 1 Enlarged structural diagram at point E;

[0022] Figure 5 for Figure 1 Enlarged structural diagram at point R in the middle;

[0023] Figure 6 An enlarged structural schematic diagram of the water inlet component in a hybrid high-efficiency spray flushing system provided for an embodiment of this utility model;

[0024] Figure 7 for Figure 6 Enlarged structural diagram at point T;

[0025] Figure 8 for Figure 6 A schematic diagram of the magnified mechanism at point Y;

[0026] Figure 9A partial structural diagram of the sliding connecting plate and slide rail in a hybrid high-efficiency spray flushing system provided for an embodiment of this utility model;

[0027] Figure 10 This utility model provides a hybrid high-efficiency spray flushing system.

[0028] The attached diagram lists the components represented by each number as follows:

[0029] 1. Support frame;

[0030] 2. Flushing device; 21. Flushing pipe; 211. Slide rail;

[0031] 22. Rinse the nozzle;

[0032] 23. Water inlet component; 231. Water inlet support; 232. Water pipe fixing bracket; 233. Water inlet hose; 234. One-way valve; 235. Compressed air connection terminal;

[0033] 3. Moving parts; 31. Central connecting block; 32. Track; 33. Track pulleys;

[0034] 34. Trigger element; 341. Trigger protrusion; 342. Sliding connecting plate; 343. Impact roller; 344. Lever-type mechanical valve;

[0035] 35. Flange fixing plate; 36. Threaded rod fixing seat; 37. Threaded rod;

[0036] 4. Anode module;

[0037] 5. Return the support;

[0038] 6. Restore the connector;

[0039] 7. Moving drive components; 71. Moving motor;

[0040] 8. Limit switches. Detailed Implementation

[0041] To facilitate understanding of this application, a more complete description will be provided below with reference to the accompanying drawings, which illustrate embodiments of the present application. However, the present application can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided so that the disclosure of this application will be thorough and complete.

[0042] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used herein in the specification of this application is for the purpose of describing particular embodiments only and is not intended to be limiting of this application.

[0043] It is understood that spatial relation terms such as "below," "under," "below," "below," "above," "above," etc., can be used here to describe the relationship between one element or feature shown in the figure and other elements or features. It should be understood that, in addition to the orientation shown in the figure, spatial relation terms also include different orientations of the device in use and operation. For example, if the device in the figure is flipped, the element or feature described as "below" or "below" of the other element or feature will be oriented "above" the other element or feature. Therefore, the exemplary terms "below" and "below" can include both upper and lower orientations. Furthermore, the device may also include other orientations (e.g., rotated 90 degrees or other orientations), and the spatial descriptive terms used herein will be interpreted accordingly.

[0044] It should be noted that when one element is considered to be "connected" to another element, it can be directly connected to the other element or connected to the other element through an intermediary element. In the following embodiments, "connection" should be understood as "electrical connection," "communication connection," etc., if the connected circuits, modules, units, etc., have the transmission of electrical signals or data between them.

[0045] When used herein, the singular forms of “a,” “an,” and “the” may also include the plural forms unless the context clearly indicates otherwise. It should also be understood that the terms “comprising,” “including,” or “having,” etc., specify the presence of the stated feature, whole, step, operation, component, part, or combination thereof, but do not preclude the possibility of the presence or addition of one or more other features, wholes, steps, operations, components, parts, or combinations thereof.

[0046] like Figures 1 to 9 As shown, a hybrid high-efficiency spray flushing system includes a support frame 1, a flushing device 2, and a moving component 3. The flushing device 2 includes flushing pipes 21 and flushing nozzles 22. There are two flushing pipes 21, both of which are located inside the support frame 1. There are several flushing nozzles 22, each connected to a flushing pipe 21, which can flush the anode module 4 to be flushed. The moving component 3 is connected to the support frame 1 and can move the flushing device 2 along one end of the support frame 1 to the other end. The moving component 3 includes a central connecting block 31, one side of which is connected to one of the flushing pipes 21, and the other side of which is connected to the other flushing pipe 21.

[0047] In this embodiment, the support frame 1 is positioned above the anode module 4 to be rinsed, and the movable component 3 is connected to the support frame 1. Two rinsing pipes 21 are connected at their midpoints by a central connecting block 31, which supplies water to the rinsing pipes 21. Both ends of the two rinsing pipes 21 are connected to the movable component 3, and several rinsing nozzles 22 are connected to the two rinsing pipes 21. Thus, the movable component 3 can drive the rinsing device 2 to move along one end of the support frame 1 to the other end for thorough cleaning of the anode module 4 to be rinsed. The use of two rows of rinsing nozzles 22 in a translational motion reduces the number of nozzles and electric valves, resulting in more economical rinsing water. This solves the problem of excessive nozzle quantity and high dust removal costs in existing technologies.

[0048] In some embodiments, the movable component 3 includes a track 32 and track pulleys 33. The track 32 is connected to both sides of the support frame 1. Two track pulleys 33 are provided, and the two track pulleys 33 are respectively connected to both ends of the flushing pipe 21.

[0049] In this embodiment, the track 32 provides a fixed path for the movement of the rinsing device 2. It is connected to both sides of the support frame 1, ensuring the stability and accuracy of the rinsing device 2 during movement.

[0050] In some embodiments, the flushing pipe 21 is provided with a slide 211 and further includes a trigger 34. The trigger 34 includes a trigger protrusion 341, a sliding connecting plate 342, an impact roller 343, and a lever-type mechanical valve 344. Two trigger protrusions 341 are provided, and the two trigger protrusions 341 are respectively connected to both sides of the support frame 1, with one trigger protrusion 341 arranged in every two rows of anode modules 4. The sliding connecting plate 342 is slidably connected to the slide 211 on the flushing pipe 21. The impact roller 343 is rotatably connected to the sliding connecting plate 342. When the triggering protrusion 341 abuts, the sliding connecting plate 342 moves away from the track 32. When the impact roller 343 disengages from the triggering protrusion 341, the sliding connecting plate 342 moves closer to the track 32. A plurality of lever-type mechanical valves 344 are provided. One end of each lever-type mechanical valve 344 is rotatably connected to the flushing nozzle 22, and the other end is rotatably connected to the sliding connecting plate 342. When the impact roller 343 abuts against the triggering protrusion 341, the lever-type mechanical valve 344 is triggered to open the flushing nozzle 22.

[0051] In this embodiment, trigger protrusions 341 are arranged on both sides of the support frame 1, with one protrusion in every two rows of anode modules 4. When the flushing device 2 moves on the track 32, the trigger protrusion 341 contacts the impact roller 343, thereby triggering the flushing action. The sliding connecting plate 342 is slidably connected to the slide rail 211 on the flushing pipe 21, ensuring that it can move smoothly within the slide rail. When the impact roller 343 contacts the trigger protrusion 341, the sliding connecting plate 342 is pushed, thereby driving the lever-type mechanical valve 344 to operate. The impact roller 343 is rotatably connected to the sliding connecting plate 342. When it contacts the trigger protrusion 341, it generates a thrust, causing the sliding connecting plate 342 to move. When the roller disengages from the trigger protrusion, the sliding connecting plate returns to its original position due to the action of the reset device. One end of the lever-type mechanical valve 344 is rotatably connected to the flushing nozzle 22, and the other end is rotatably connected to the sliding connecting plate 342. When the sliding connecting plate 342 moves, it drives the lever-type mechanical valve 344 to rotate, thereby opening or closing the flushing nozzle 22. The working process is as follows: When the flushing device 2 moves along the track 32, the impact roller 343 contacts each trigger protrusion 341 in sequence; upon contact, the impact roller 343 pushes the sliding connecting plate 342 to move away from the track 32; the movement of the sliding connecting plate 342 drives the lever-type mechanical valve 344 to rotate, thereby opening the flushing nozzle 22 connected to the mechanical valve. When the impact roller 343 disengages from the trigger protrusion 341, due to the action of the reset device, the sliding connecting plate 342 returns to its original position, simultaneously driving the lever-type mechanical valve 344 to close the flushing nozzle. The flushing device continues to move, repeating the above process until all anode modules 4 are flushed.

[0052] In some embodiments, the system further includes a return support 5 and a return connector 6. The return support 5 is fixedly connected to the flushing pipe 21. One end of the return connector 6 is connected to the return support 5, and the other end of the return connector 6 is connected to the sliding connecting plate 342.

[0053] In some embodiments, the return connector 6 is a spring.

[0054] In this embodiment, the functions of the return support 5 and the return connector 6 have been described in the above embodiments, and will not be repeated here.

[0055] In some embodiments, the movable component 3 includes a flange fixing plate 35, a screw fixing seat 36, and a screw 37. One end of the flange fixing plate 35 is connected to the flushing pipe 21, and the other end of the flange fixing plate 35 is connected to the central connecting block 31. The screw fixing seat 36 is connected to both ends of the middle part of the support frame 1. The screw 37 is rotatably connected to the screw fixing seat 36, and the central connecting block 31 is threadedly connected to the screw 37. The screw 37 can drive the central connecting block 31 to move during rotation.

[0056] In some embodiments, a moving drive component 7 is further included. The moving drive component 7 includes a moving motor 71, which has a fixed end and a rotating end. The fixed end of the moving motor 71 is fixedly connected to the support frame 1, and the rotating end of the moving motor 71 is connected to the lead screw 37. The moving motor 71 can drive the lead screw 37 to rotate in the forward or reverse direction, so that the lead screw 37 drives the central connecting block 31 to move forward and backward.

[0057] In some embodiments, the flushing device 2 further includes a water inlet component 23, which includes a water inlet support 231, a water pipe fixing bracket 232, and a water inlet hose 233. The two ends of the water inlet support 231 are respectively connected to the two ends of the support frame 1. A plurality of water pipe fixing brackets 232 are provided, and a plurality of water pipe fixing brackets 232 are connected to the water inlet support 231. The water inlet hose 233 is connected to a plurality of water pipe fixing brackets 232, and the water outlet end of the water inlet hose 233 is connected to the central connecting block 31.

[0058] In this embodiment, the water inlet support 231 serves as the support structure for the entire water inlet component, with both ends of the support 1 connected to its ends. This ensures the stability of the water inlet component and allows it to move along with the flushing device 2 on the support 1. A water pipe fixing bracket 232 is connected to the water inlet support 231 and is used to fix and support the water inlet hose 233. This also ensures that the water inlet hose will not affect the water flow due to swaying or twisting during movement. The water inlet hose 233, as the connecting pipe between the water source and the flushing device, possesses good flexibility and wear resistance. Its outlet end is connected to the central connecting block 31, ensuring that the flushing water is evenly distributed to the two flushing pipes 21. The working process is as follows: when the flushing device 2 begins to move, the water inlet support 231 moves accordingly, ensuring that the water inlet component 23 remains in the correct position. The water source enters the flushing device 2 through the water inlet hose 233, and the water flow remains stable after being supported and fixed by the water pipe fixing bracket. The outlet end of the inlet hose 233 is connected to the central connecting block 31, which evenly distributes the water flow to the two flushing pipes 21. The flushing nozzles 22 on the flushing pipes 21 are opened and closed sequentially according to the control of the trigger 34 to flush the anode module.

[0059] In some embodiments, a one-way valve 234 is also included, which is connected to the water inlet end of the water inlet hose 233. The one-way valve 234 is provided with a compressed air connection end 235, which can fill the water inlet hose 233 with compressed air.

[0060] In this embodiment, a one-way valve 234 is installed at the inlet end of the inlet hose 233. Its main function is to ensure that the water flow is unidirectional, preventing backflow due to pressure changes or operational errors during rinsing. A compressed air connection 235 is connected to the one-way valve 234 and is used to connect to a compressed air source. When compressed air needs to be filled into the inlet hose 233, simply connect the compressed air source to this connection. The overall structure of this device consists of a compressed air supply component, a pipeline component, a control component, and an energy release component. The compressed air supply component includes a compressor, an air tank, and a pressure regulating valve, used to compress air to a certain pressure and store it, while ensuring stable pressure output. The pipeline component includes a main pipeline, branch pipelines, and valves, used to deliver compressed air and rinsing water to designated locations respectively. The control unit includes a PLC controller, sensors, and actuators, used to achieve automated control and monitoring of the system. The energy release component includes a quick-release valve and a throttling component, used to quickly release the compressed air accumulated in the pipeline during the rinsing stage, providing acceleration power for the water flow. During the non-flushing phase, the corresponding control unit injects compressed air into the pipeline components by adjusting the output pressure of the compressed air supply component, bringing it to a preset pressure level. At this time, the compressed air acts like a compressed spring, accumulating a large amount of elastic potential energy. When flushing is required, the control unit quickly opens the rapid release valve of the energy release component, allowing the compressed air accumulated inside the pipeline to be released instantaneously. This release process not only provides powerful acceleration for the water flow but also gives the water flow extremely high impact energy. Because the elastic potential energy of the compressed air is fully utilized, the flushing effect is significantly improved, and the cleaning ability is stronger. After flushing is completed, the system enters the next energy storage phase, while the control component monitors parameters such as pressure and flow rate within the pipeline components in real time to ensure stable system operation. Furthermore, intermittent flushing avoids continuous waste of water resources. Simultaneously, utilizing the elastic potential energy of the compressed air for acceleration makes each flush more powerful, thereby reducing the number of flushes and water waste. The system features a high-efficiency, energy-saving compressor, a large-capacity air storage tank, and a precision pressure regulating valve. These components compress air to a specific pressure, such as 0.8 MPa, and store it while ensuring stable pressure output with a fluctuation range of ±0.05 MPa. Furthermore, the diameters of the main and branch pipelines are adjusted according to actual conditions. Additionally, pneumatically controlled valves ensure smooth flow of mixed water within the pipelines. The PLC controller is a Siemens S7-300 series PLC, and the sensors are Kistler pressure sensors and flow meters, while the actuators are Festo pneumatic actuators.

[0061] In some embodiments, limit switches 8 are connected to both ends of the support frame 1.

[0062] In this embodiment, by connecting limit switches 8 at both ends of the support frame 1, the moving part 3 can be effectively prevented from detaching from the support frame 1 during movement.

[0063] The real-time operation of this application is as follows: During operation, water and compressed air enter the flushing pipe 21 through the water inlet hose 233. The moving motor 71 drives the lead screw 37 to rotate, thereby moving the central connecting block 31 and thus the flushing device 2. A trigger protrusion 341 is set at the position of every two rows of anode modules 4. When the flushing device 2 moves to the position of the trigger protrusion 341, the lever-type mechanical valve 344 opens, and flushing water is sprayed out from the flushing nozzle 22. When the flushing device 2 continues to move away from the position of the trigger protrusion 341, the lever-type mechanical valve 344 closes, water is stored inside the flushing pipe 21, and the moving motor 71 continues to rotate. When the flushing device 2 moves to the next trigger protrusion 341 position, the lever-type mechanical valve 344 at that position opens, and flushing water is sprayed out. This cycle repeats until flushing is complete. When the flushing device 2 moves to the position of the limit switch 8, the limit switch 8 is sensed, and the moving motor 71 stops. When the system is activated again, the moving motor 71 reverses, and the flushing device 2 flushes in the opposite direction until the limit switch 8 on the opposite side is triggered, at which point the system stops operating. Furthermore, the flushing water in this application is a mixture of compressed air and water, and the compressed air in the mixed flushing water possesses a certain elastic potential energy. Moreover, this application employs an intermittent flushing method; when not flushing, the inside of the pipeline is in a pressurized, energy-storing state, allowing the elastic potential energy of the flushing compressed air to be released instantaneously, accelerating the water flow and resulting in higher flushing energy and better decontamination.

[0064] Compared with the prior art, the technical solution of this application has the following beneficial technical effects:

[0065] A support frame is positioned above the anode module to be rinsed, and a movable component is connected to the support frame. Two rinsing pipes are connected at their midpoints by a central connecting block, which supplies water to the rinsing pipes. Both ends of the two rinsing pipes are connected to the movable component, and several nozzles are attached to each rinsing pipe. Thus, the movable component can move the rinsing device along one end of the support frame to the other for thorough cleaning of the anode module. The use of two rows of nozzles in a linear motion reduces the number of nozzles and electric valves, resulting in more economical rinsing water. This solves the problem of excessive nozzle count and high dust removal costs associated with existing technologies.

[0066] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A hybrid high efficiency spray flush system, characterized in that, The utility model relates to an anode module washing device, including: Support frame (1); Rinse device (2) including: Rinse pipe (21) are equipped with two, two the rinse pipe (21) are all arranged in the inside of support frame (1); Rinse nozzle (22) are equipped with several, several the rinse nozzle (22) are all connected on the rinse pipe (21), and several the rinse nozzle (22) can rinse the anode module (4) to be rinsed; Moving part (3) is connected on support frame (1), and moving part (3) can drive rinse device (2) and move to the other end along the one end of support frame (1), and moving part (3) includes: Middle connecting block (31) one side with one of the rinse pipe (21) is connected, and the other side of middle connecting block (31) is connected with another rinse pipe (21).

2. A hybrid high efficiency spray flushing system according to claim 1, wherein, The moving part (3) includes: Track (32) is connected on both sides of support frame (1); Track pulley (33) are equipped with two, two the track pulley (33) are connected on both ends of the rinse pipe (21).

3. A hybrid high efficiency spray flushing system according to claim 2, wherein, The rinse pipe (21) is equipped with slide (211), and further include trigger part (34), which includes: Trigger lug (341) are equipped with two, two the trigger lug (341) are connected on both sides of support frame (1), and the trigger lug (341) is arranged according to every two columns anode module (4) one; Sliding connection plate (342) is slidably connected with the slide (211) on the rinse pipe (21); Impact roller (343) is rotatably connected with the sliding connection plate (342), when the impact roller (343) is abutted with the trigger lug (341), the sliding connection plate (342) moves to the side away from the track (32), when the impact roller (343) is separated from the trigger lug (341), the sliding connection plate (342) moves to the side close to the track (32); Dial lever type mechanical valve (344) are equipped with several, one end of several the dial lever type mechanical valve (344) is rotatably connected with the rinse nozzle (22), the other end of the dial lever type mechanical valve (344) is rotatably connected with the sliding connection plate (342), when the impact roller (343) is abutted with the trigger lug (341), the dial lever type mechanical valve (344) is triggered to make the rinse nozzle (22) open.

4. The hybrid high efficiency spray flushing system of claim 3, wherein, Further including: Recovery support (5) is fixedly connected with the rinse pipe (21); Recovery connecting piece (6) one end is connected with recovery support (5), and the other end of recovery connecting piece (6) is connected with the sliding connection plate (342).

5. A hybrid high efficiency spray flushing system according to claim 4, wherein, The recovery connecting piece (6) adopts spring.

6. The hybrid high efficiency spray flushing system of claim 1, wherein, The moving part (3) includes: Flange fixed plate (35) one end is connected with the rinse pipe (21), and the other end of flange fixed plate (35) is connected with the middle connecting block (31); Lead screw fixed seat (36) is connected in the middle of support frame (1) both ends; A screw rod (37) is rotatably connected with the screw rod fixing base (36), the middle connecting block (31) is threadedly connected with the screw rod (37), and the screw rod (37) can drive the middle connecting block (31) to move during rotation.

7. A hybrid high efficiency spray flushing system according to claim 6, wherein, The mobile driving member (7) comprises: A mobile motor (71) is provided with a fixed end and a rotating end, the fixed end of the mobile motor (71) is fixedly connected with the support frame (1), the rotating end of the mobile motor (71) is connected with the screw rod (37), the mobile motor (71) can drive the screw rod (37) to rotate forward or reversely, so that the screw rod (37) drives the middle connecting block (31) to move forward or backward.

8. The hybrid high efficiency spray flushing system of claim 1, wherein, The flushing device (2) further comprises a water inlet component (23), which comprises: A water inlet support (231) is connected at both ends of the support frame (1); A plurality of water pipe fixing frames (232) are provided, and the water pipe fixing frames (232) are connected on the water inlet support (231); A water inlet hose (233) is connected on the plurality of water pipe fixing frames (232), and the water outlet end of the water inlet hose (233) is connected with the middle connecting block (31).

9. A hybrid high efficiency spray flushing system according to claim 8, wherein, Further comprising: A one-way valve (234) is connected at the water inlet end of the water inlet hose (233), the one-way valve (234) is provided with a compressed air connection end (235), and the compressed air connection end (235) can fill compressed air into the water inlet hose (233).

10. The hybrid high efficiency spray flushing system of claim 1, wherein, The support frame (1) is connected with a limit switch (8) at both ends.