Light salt brine circulating conveying device capable of reducing pipeline salty mud sediment

The electromagnetic slider drives the cleaning plate to scrape away the sediment in the brine circulation conveying device, and the detachable design solves the problems of salt mud blockage and corrosion, thus achieving stable operation and high efficiency of the device.

CN223788671UActive Publication Date: 2026-01-13HENAN YONGYIN CHEM IND CO LTD
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Patent Information

Application Number
CN202423181925.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-23
Publication Date
2026-01-13
Estimated Expiration
2034-12-23

AI Technical Summary

Technical Problem

During the circulation and transportation of brine, a large amount of sediment accumulates to form salt mud, which leads to blockage and corrosion of the equipment, affecting its stable operation and working efficiency.

Method used

The electromagnetic slider slides on the track, driving the cleaning plate to scrape off the sediment at the bottom of the conveying trough and discharge the sediment through the drain pipe. Combined with the detachable rotating shaft and fan blade design, it is convenient for cleaning and maintenance.

Benefits of technology

It effectively prevents salt mud from accumulating and clogging, reduces corrosion, maintains stable operation of the equipment, improves work efficiency, and promotes the recycling of brine.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of water circulation conveying equipment, and discloses a light salt brine circulation conveying device capable of reducing pipeline salty mud sediment, which comprises a conveying groove, tracks are respectively and fixedly arranged on the front side and the rear side of an inner cavity of the conveying groove, magnets with opposite magnetic poles are sequentially laid in the tracks, and electromagnetic sliding blocks are movably connected to the tracks. A cleaning plate is fixedly installed between the two electromagnetic sliding blocks and located over the bottom of an inner cavity of the conveying groove, the left portion of the inner cavity of the conveying groove is fixedly sleeved with a water inlet pipe, the middle of the water inlet pipe is fixedly sleeved with a pump, the bottom of the inner cavity of the conveying groove is fixedly sleeved with a blow-off pipe, and the middle of the blow-off pipe is fixedly sleeved with a valve. The electromagnetic sliding block slides on the rail, so that the cleaning plate is driven to scrape sediments at the bottom of the inner cavity of the conveying groove, blockage caused by accumulation of a large amount of salty mud is avoided, corrosion of the salty mud to the device is reduced, stable operation of the device is maintained, and the device keeps good working efficiency.
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Description

Technical Field

[0001] This utility model relates to the technical field of water circulation and conveying equipment, and in particular to a brine circulation and conveying device that can reduce the precipitation of salt mud in pipelines. Background Technology

[0002] Water, also known as hydrogen oxide, dihydrogen monoxide, or dihydrogen oxychloride, is an inorganic compound composed of hydrogen and oxygen. It is a colorless, odorless, and transparent liquid at room temperature and pressure. It is non-toxic and drinkable. Water is one of the most common substances on Earth and is an essential resource for the survival of all life, including humans. Therefore, it is hailed as the source of life. Salt water refers to a low-concentration sodium chloride solution and is also one of the most important components of living organisms, playing a vital role in the evolution of life.

[0003] In the prior art, in order to reduce water waste, brine needs to be circulated and transported. During the circulation process, sediment will be generated inside the device. The large accumulation of sediment forms salt mud. Salt mud residue inside the device can cause blockage and even corrosion of the internal structure, making it impossible for the device to maintain stable operation and hindering its good working efficiency. Therefore, in order to solve the above problems, this utility model proposes a brine circulation and transportation device that can reduce salt mud sedimentation in pipelines. Utility Model Content

[0004] To address the shortcomings of existing technologies, this utility model provides a brine circulation conveying device that can reduce the sedimentation of salt mud in pipelines. By energizing the electromagnetic slider and utilizing the magnetism between the track and the electromagnetic slider to drive the slider to move, a cleaning plate is driven to scrape off the sediment at the bottom of the conveying trough, preventing large accumulation of salt mud that could cause blockages, reducing the corrosion of the device by the salt mud, and helping to maintain stable operation and good working efficiency of the device.

[0005] This utility model provides the following technical solution: a brine circulation conveying device that can reduce salt sludge sedimentation in pipelines, comprising a conveying trough, with tracks fixedly installed on the front and rear sides of the inner cavity of the conveying trough, magnets with opposite magnetic poles sequentially laid in the tracks, electromagnetic sliders movably connected to the tracks, a cleaning plate fixedly installed between two electromagnetic sliders, the cleaning plate being located directly above the bottom of the inner cavity of the conveying trough, an inlet pipe fixedly sleeved on the left side of the inner cavity of the conveying trough, a pump fixedly sleeved on the middle of the inlet pipe, and a drain pipe fixedly sleeved on the bottom of the inner cavity of the conveying trough. A valve is fixedly sleeved in the middle of the sewage pipe. A support frame is fixedly installed at the bottom of the conveying trough and to the right of the sewage pipe. There are two support frames. A water outlet pipe is fixedly sleeved at the bottom of the conveying trough and to the right of the support frames. Two inspection plates are movably connected to the upper part of the conveying trough via a shaft. The inspection plates slide on a track via an electromagnetic slider, thereby driving the cleaning plate to scrape off the sediment at the bottom of the inner cavity of the conveying trough, avoiding large accumulation of salt mud that may cause blockage, reducing the corrosion of the device by the salt mud, and helping to maintain stable operation of the device and keep the device in good working efficiency.

[0006] Preferably, a motor is fixedly installed on the upper part of the conveying trough and directly to the right of the inspection plate. A transmission gear one is fixedly sleeved on the output shaft of the motor. A transmission toothed belt is meshed on the outer side of the transmission gear one. A transmission gear two is meshed at the lower end of the transmission toothed belt. A rotating shaft one is fixedly sleeved in the middle of the transmission gear two. The rotating shaft one is movably sleeved in the right part of the inner cavity of the conveying trough. The motor drives the transmission gear one to rotate. The transmission gear one drives the transmission gear two to rotate through the transmission toothed belt. The transmission gear two drives the rotating shaft one to rotate, thereby enabling the device to obtain the power to transport brine.

[0007] Preferably, three connecting rods are uniformly fixedly installed in the inner cavity of the conveying trough. A sleeve is fixedly installed in the middle of the connecting rod, and a rotating shaft is movably sleeved in the middle of the sleeve. The rotating shaft is fixedly connected to the rotating shaft on the right side. By setting the sleeve, the rotation transmission mechanism in the device can maintain stable rotation, avoid deviation during the operation of the transmission mechanism, and promote the stability of the device during operation.

[0008] Preferably, grooves are respectively formed on the corresponding surfaces of adjacent rotating shafts two, and sliding grooves are respectively formed in the front and rear parts of the grooves. Two rotating shafts three are respectively arranged between adjacent rotating shafts two. Cavities are respectively formed at the left and right ends of the rotating shafts three. By setting two sets of rotating shafts three in segments, the transmission mechanism can be removed from the device, reducing the difficulty of cleaning the device, avoiding incomplete cleaning of the device, and reducing sediment residue.

[0009] Preferably, the cavity is provided with two sliding grooves at the front and rear ends, and sleeves are movably sleeved at the left and right ends of the rotating shaft three. Sliding blocks are fixedly installed in the front and rear ends of the inner cavity of the sleeves two, and the sliding blocks are engaged with the sliding grooves two. A moving block is fixedly installed between the two sliding blocks and is engaged with the cavity. By setting the sleeves two, the connection between the rotating shaft three and the rotating shaft two can be flexibly adjusted, so that the rotating shaft three can be quickly disassembled and assembled, which facilitates the maintenance of the device.

[0010] Preferably, a spring is fixedly installed in the cavity, and the other end of the spring is fixedly installed on the movable block. A connecting block is fixedly installed on the side of the movable block away from the spring. The connecting block is engaged with the groove. Ribs are fixedly installed on the front and rear parts of the connecting block, and the ribs are engaged with the sliding groove. A fan blade is fixedly sleeved in the middle of the rotating shaft three. Through the engagement between the ribs and the sliding groove, the rotating shaft two can drive the rotating shaft three to rotate. This allows the rotating shaft three to be quickly disassembled and assembled while also transporting brine, promoting the recycling of brine.

[0011] Compared with the prior art, the present invention has the following beneficial effects:

[0012] 1. After the device operation is completed, the electromagnetic slider is energized. The magnets laid in the track generate a magnetic thrust between the electromagnetic slider and the magnets, which push the electromagnetic slider to slide on the track. This causes the cleaning plate to scrape off the sediment at the bottom of the conveying tank. Opening the valve allows the sediment to be discharged from the drain pipe. This prevents the sediment from accumulating in large quantities in the brine after long-term use and forming salt mud. It also prevents the accumulation of salt mud from causing blockages. Timely cleaning of salt mud reduces the corrosion of the inside of the device by the salt mud, which helps maintain the stable operation of the device, keeps the device in good working efficiency, and promotes the recycling of brine.

[0013] 2. Slide the sleeves at both ends of the rotating shaft three towards each other, causing the moving block to move in the cavity. The moving block causes the connecting block and the rib to disengage from the groove and the slide groove one respectively, so that the rotating shaft three can be removed from between two adjacent rotating shafts two, making it convenient to clean the fan blades on the rotating shaft three. This allows the rotating shaft three and the fan blades that transmit brine in the device to be flexibly disassembled and assembled, making it convenient for staff to maintain the fan blades, avoiding the accumulation of a large amount of salt mud on the fan blades, which would affect the transmission rate of brine. Damaged fan blades can be replaced in time, reducing the time spent on device maintenance. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the external structure of this utility model;

[0015] Figure 2 This is a side view sectional diagram of the conveying trough structure of this utility model;

[0016] Figure 3 This is a top view sectional diagram of the conveying trough structure of this utility model;

[0017] Figure 4 This is a schematic diagram of the fan blade connection structure of this utility model.

[0018] In the diagram: 1. Conveying trough; 2. Track; 3. Electromagnetic slider; 4. Cleaning plate; 5. Inlet pipe; 6. Pump; 7. Drain pipe; 8. Valve; 9. Support frame; 10. Outlet pipe; 11. Inspection plate; 12. Motor; 13. Transmission gear one; 14. Transmission toothed belt; 15. Transmission gear two; 16. Rotating shaft one; 17. Connecting rod; 18. Sleeve one; 19. Rotating shaft two; 20. Groove; 21. Slide groove one; 22. Rotating shaft three; 23. Cavity; 24. Slide groove two; 25. Sleeve two; 26. Sliding block; 27. Moving block; 28. Spring; 29. ​​Connecting block; 30. Rib; 31. Fan blade. Detailed Implementation

[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0020] Please see Figures 1-4A brine circulation conveying device for reducing salt sludge sedimentation in pipelines includes a conveying trough 1. Tracks 2 are fixedly installed on the front and rear sides of the inner cavity of the conveying trough 1. Magnets with opposite magnetic poles are sequentially laid in the tracks 2. Electromagnetic sliders 3 are movably connected to the tracks 2. A cleaning plate 4 is fixedly installed between two electromagnetic sliders 3, located directly above the bottom of the inner cavity of the conveying trough 1. An inlet pipe 5 is fixedly sleeved on the left side of the inner cavity of the conveying trough 1, and a pump 6 is fixedly sleeved in the middle of the inlet pipe 5. A drain pipe 7 is fixedly sleeved on the bottom of the inner cavity of the conveying trough 1, and a valve 8 is fixedly sleeved in the middle of the drain pipe 7. Two support frames 9 are fixedly installed at the bottom of the conveying trough 1 and to the right of the drain pipe 7. An outlet pipe 10 is fixedly sleeved at the bottom of the conveying trough 1 and to the right of the support frames 9. Two inspection plates 11 are movably connected to the upper part of the conveying trough 1 via a shaft. After the device is in operation, the electromagnetic sliders 3 are energized. Because the magnets with opposite magnetic poles are sequentially laid in the tracks 2, the electromagnetic sliders 3 are energized. When the slider 3 is energized, it generates a magnetic force that repels the magnets on the track 2, thereby pushing the electromagnetic slider 3 to move. When the electromagnetic slider 3 moves to the track 2 with the next opposite magnetic pole, the electromagnetic slider 3 is energized in the opposite direction, so that the electromagnetic slider 3 and the track 2 maintain a repulsive magnetic force, thus realizing the continuous movement of the electromagnetic slider 3. When the electromagnetic slider 3 needs to stop, the direction of the current on the electromagnetic slider 3 is not changed, so that it attracts the magnets laid on the track 2, thereby achieving the purpose of fixing the electromagnetic slider 3. By sliding the electromagnetic slider 3 on the track 2, the cleaning plate 4 is driven to move at the bottom of the inner cavity of the conveying tank 1, thereby scraping off the sediment at the bottom of the inner cavity of the conveying tank 1. Opening the valve 8 can discharge the sediment from the drain pipe 7, avoiding the accumulation of a large amount of sediment in the brine after long-term use of the device, forming salt mud, preventing the accumulation of salt mud from causing blockage, timely cleaning of salt mud reduces the corrosion of the inside of the device by salt mud, which is conducive to maintaining the stable operation of the device, keeping the device in good working efficiency, and promoting the recycling of brine.

[0021] A motor 12 is fixedly installed on the upper part of the conveying trough 1 and directly to the right of the inspection plate 11. A transmission gear 13 is fixedly sleeved on the output shaft of the motor 12. A transmission belt 14 is meshed on the outer side of the transmission gear 13. A transmission gear 15 is meshed at the lower end of the transmission belt 14. A rotating shaft 16 is fixedly sleeved in the middle of the transmission gear 15. The rotating shaft 16 is movably sleeved in the right part of the inner cavity of the conveying trough 1. Three connecting rods 17 are evenly fixedly installed in the inner cavity of the conveying trough 1. A sleeve 18 is fixedly installed in the middle of the connecting rod 17. A rotating shaft 19 is movably sleeved in the middle of the sleeve 18. The right rotating shaft 19 is fixedly connected to the rotating shaft 16. Grooves 20 are respectively opened on the corresponding surfaces of adjacent rotating shafts 19. The last two parts are respectively provided with a first groove 21. Two third rotating shafts 22 are respectively provided between adjacent second rotating shafts 19. Each third rotating shaft 22 has a cavity 23 at both ends. The front and rear parts of each cavity 23 are respectively provided with a second groove 24. Sleeves 25 are movably sleeved at both ends of the third rotating shaft 22. Sliding blocks 26 are fixedly installed in the front and rear parts of the inner cavity of each sleeve 25. The sliding blocks 26 and the second groove 24 are mutually engaged. A moving block 27 is fixedly installed between the two sliding blocks 26. The moving block 27 and the cavity 23 are mutually engaged. A spring 28 is fixedly installed in the cavity 23. The other end of the spring 28 is fixedly installed on the moving block 27. A connecting block 29 is fixedly installed on the side of the moving block 27 away from the spring 28. Connecting block 29 engages with groove 20. Ribs 30 are fixedly installed on the front and rear parts of connecting block 29, and ribs 30 engage with slide groove 21. A fan blade 31 is fixedly sleeved in the middle of rotating shaft 22. Pump 6 is started, and brine is introduced into the inner cavity of conveying tank 1 through inlet pipe 5. Motor 12 is started, driving transmission gear 13 to rotate. Transmission gear 13 drives transmission gear 15 to rotate via transmission belt 14. Transmission gear 15 drives rotating shaft 16 to rotate, which in turn drives rotating shaft 19 to rotate. Rotating shaft 19, through slide groove 21 and rib 30 engagement, drives rotating shaft 22 to rotate. During rotation, the fan blade 31 drives water flow towards the right side of the inner cavity of conveying tank 1, finally exiting through the outlet. Pipe 10 discharges the circulation, the inspection plate 11 is opened, and the sleeves 25 at both ends of the rotating shaft 22 are slid towards each other. The sleeves 25 drive the moving block 27 to move in the cavity 23 through the sliding block 26, causing the spring 28 to compress and generate elastic potential energy. The moving block 27 drives the connecting block 29 and the rib 30 to move, causing the connecting block 29 to disconnect from the groove 20 and the rib 30 to disconnect from the slide groove 21. This allows the rotating shaft 22 to be removed from between the two adjacent rotating shafts 19, making it convenient to clean the fan blades 31 on the rotating shaft 22. The above operation is reversed, and under the action of the elastic potential energy of the spring 28, the rotating shaft 22 can be reinstalled between the two adjacent rotating shafts 19. This fixing method is superior to the traditional fixing method.This design allows for flexible disassembly and assembly of the rotating shaft 22 and fan blade 31, which transmits the brine, facilitating maintenance and preventing the accumulation of salt mud on the fan blades. This avoids affecting the brine transmission rate and allows for timely replacement of damaged fan blades, significantly reducing maintenance time.

[0022] Working principle: Pump 6, once started, introduces brine into the inner cavity of the conveying tank 1 through inlet pipe 5. Motor 12 is then started, driving transmission gear 13 to rotate. Transmission gear 13, via transmission belt 14, drives transmission gear 15 to rotate. Transmission gear 15 drives rotating shaft 16 to rotate, which in turn drives rotating shaft 19 to rotate. Rotating shaft 19, through the engagement of slide groove 21 and rib 30, drives rotating shaft 22 to rotate. During rotation, rotating shaft 22, via fan blades 31, propels water towards the conveying tank. The water flows in the right part of the inner cavity and is finally discharged through the outlet pipe 10. After the device operation is completed, the electromagnetic slider 3 is energized. Since magnets with opposite magnetic poles are laid in the track 2 in sequence, the electromagnetic slider 3 is energized to generate a magnetic force that repels the magnets on the track 2, thereby pushing the electromagnetic slider 3 to move. When the electromagnetic slider 3 moves to the track 2 with the next opposite magnetic pole, the electromagnetic slider 3 is energized in the opposite direction, so that the electromagnetic slider 3 and the track 2 maintain a repulsive magnetic force, so as to realize the continuous movement of the electromagnetic slider 3. When the electromagnetic slider 3 needs to stop, the direction of the current on the electromagnetic slider 3 is not changed, so that it attracts the magnets laid in the track 2, thereby achieving the purpose of fixing the electromagnetic slider 3. By sliding the electromagnetic slider 3 on the track 2, the cleaning plate 4 is driven to move at the bottom of the inner cavity of the conveying tank 1, thereby scraping off the sediment at the bottom of the inner cavity of the conveying tank 1. Opening the valve 8 can discharge the sediment from the drain pipe 7. Opening the inspection plate 11 and sliding the sleeves 25 at both ends of the rotating shaft 3 22 towards each other. The sleeves 25 drive the moving block 27 in the cavity through the sliding block 26. The movement of the body 23 causes the spring 28 to compress and generate elastic potential energy. The moving block 27 drives the connecting block 29 and the rib 30 to move, causing the connecting block 29 to disconnect from the groove 20 and the rib 30 to disconnect from the slide groove 21. This allows the rotating shaft 22 to be removed from between the two adjacent rotating shafts 19, making it easier to clean the fan blades 31 on the rotating shaft 22. The above operation can be reversed and the rotating shaft 22 can be reinstalled between the two adjacent rotating shafts 19 under the action of the elastic potential energy of the spring 28.

Claims

1. A fresh brine circulating device capable of reducing the precipitation of salt sludge in a pipeline, comprising a conveying tank (1), characterized in that: The track (2) is sequentially laid with magnets with opposite magnetic poles, the track (2) is movably connected with electromagnetic sliding blocks (3), the two electromagnetic sliding blocks (3) are fixedly connected with a cleaning plate (4), the cleaning plate (4) is located directly above the bottom of the inner cavity of the conveying groove (1), the left part of the inner cavity of the conveying groove (1) is fixedly sleeved with a water inlet pipe (5), the middle part of the water inlet pipe (5) is fixedly sleeved with a pump (6), the bottom of the inner cavity of the conveying groove (1) is fixedly sleeved with a sewage pipe (7), the middle part of the sewage pipe (7) is fixedly sleeved with a valve (8), the bottom of the conveying groove (1) and right of the sewage pipe (7) is fixedly installed with a support frame (9), the number of the support frame (9) is two, the bottom of the conveying groove (1) and right of the support frame (9) is fixedly sleeved with a water outlet pipe (10), the upper part of the conveying groove (1) is movably connected with an inspection plate (11), the number of the inspection plate (11) is two.

2. The device for circulating and transporting dilute brine capable of reducing the precipitation of salt sludge in pipelines according to claim 1, characterized in that: The upper part of the conveying groove (1) and right of the inspection plate (11) is fixedly installed with a motor (12), the output shaft of the motor (12) is fixedly sleeved with a transmission gear one (13), the transmission gear one (13) is externally engaged with a transmission toothed belt (14), the lower end of the transmission toothed belt (14) is engaged with a transmission gear two (15), the middle part of the transmission gear two (15) is fixedly sleeved with a rotating shaft one (16), the rotating shaft one (16) is movably sleeved in the right part of the inner cavity of the conveying groove (1).

3. The device for circulating and delivering dilute brine capable of reducing the precipitation of salt sludge in a pipeline according to claim 2, characterized in that: The inner cavity of the conveying groove (1) is uniformly fixedly installed with connecting rods (17), the number of the connecting rods (17) is three, the middle part of the connecting rod (17) is fixedly installed with a sleeve one (18), the middle part of the sleeve one (18) is movably sleeved with a rotating shaft two (19), the right side of the rotating shaft two (19) is fixedly connected with the rotating shaft one (16).

4. The device for circulating and delivering the diluted brine capable of reducing the precipitation of the salt slurry in the pipeline according to claim 3, characterized in that: Corresponding surfaces of adjacent rotating shaft two (19) are respectively provided with grooves (20), the front and rear parts of the groove (20) are respectively provided with sliding grooves one (21), adjacent rotating shaft two (19) are respectively provided with rotating shaft three (22), the number of the rotating shaft three (22) is two, the left and right ends of the rotating shaft three (22) are respectively provided with cavities (23).

5. The device for circulating and delivering the diluted brine capable of reducing the precipitation of the salt slurry in the pipeline according to claim 4, characterized in that: The front and rear parts of the cavity (23) are respectively provided with sliding grooves two (24), the left and right ends of the rotating shaft three (22) are respectively movably sleeved with sleeve two (25), the inner cavities of the sleeve two (25) are respectively fixedly installed with sliding blocks (26), the sliding blocks (26) and the sliding grooves two (24) are mutually fitted, the two sliding blocks (26) are fixedly installed with a moving block (27), the moving block (27) and the cavity (23) are mutually fitted.

6. The device for circulating and delivering the diluted brine capable of reducing the precipitation of the salt slurry in the pipeline according to claim 5, characterized in that: The spring (28) is fixedly installed in the cavity (23), and the other end of the spring (28) is fixedly installed on the moving block (27), one side of the moving block (27) away from the spring (28) is fixedly installed with the connecting block (29), the connecting block (29) is clamped with the groove (20), the front and rear parts of the connecting block (29) are fixedly installed with the ridge (30) respectively, the ridge (30) is clamped with the sliding groove (21), and the middle part of the rotating shaft (22) is fixedly sleeved with the fan blade (31).