A salt-containing wastewater processor with a heat treatment function

By using cleaning parts outside the arc block and uniform steam heating technology in the wastewater treatment device, the problems of structural wear and uneven heating in the prior art are solved, and more efficient wastewater treatment and equipment life extension are achieved.

CN119390155BActive Publication Date: 2025-06-13JIANGSU RUIDA TECH CO LTD
View PDF 5 Cites 0 Cited by

Patent Information

Application Number
CN202411784693.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-06
Publication Date
2025-06-13
Estimated Expiration
2044-12-06

AI Technical Summary

Technical Problem

During the filtration process, existing wastewater treatment machines are prone to accelerate structural wear due to jitter or replacement of the filter screen, which increases maintenance frequency and cost; the heating treatment is uneven, which affects the wastewater treatment effect.

Method used

A salt-containing wastewater treatment processor with heat treatment function is designed, and the inner wall of the treatment cylinder is cleaned using cleaning parts on the outside of the arc block, and the temperature is uniformly increased by steam, and the wastewater is uniformly treated through solenoid valves and conveying pipeline systems.

Benefits of technology

It reduces corrosion problems in the inner wall of the device, improves the evaporation efficiency of wastewater, extends the service life of the equipment, reduces maintenance costs, and improves the overall wastewater treatment effect.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119390155B_ABST
    Figure CN119390155B_ABST
Patent Text Reader

Abstract

The present invention discloses a salt-containing wastewater processor with a heat treatment function, including a provided drive box, a treatment box is installed at the upper end of the drive box, a first treatment cylinder and a second treatment cylinder are arranged inside the treatment box, a rotating rod is arranged inside both the first treatment cylinder and the second treatment cylinder, an arc-shaped block is connected through a support block on the outer wall of the rotating rod, and a cleaning member and a first spray head are arranged on the arc-shaped block; a second conveying pipeline is installed at the side end of the treatment box, and the second conveying pipeline is connected to the input end of a first conveying pump. For this salt-containing wastewater processor with a heat treatment function, the inner walls of the first treatment cylinder and the second treatment cylinder are cleaned by the cleaning member on the outer side of the arc-shaped block, reducing the corrosion problem caused by impurities adhering to the inner wall of the device. The steam generated after heating the second treatment cylinder is transmitted to the inside of the second treatment cylinder through a sleeve, facilitating the uniform heating of the wastewater and improving the overall efficiency of wastewater evaporation.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field related to saline wastewater treatment, and in particular to a saline wastewater processor with a heat treatment function. Background Art

[0002] Wastewater treatment is to treat wastewater by physical or chemical means to purify wastewater and reduce pollution so as to achieve the recycling of wastewater. However, existing wastewater treatment devices still have certain defects when used;

[0003] At present, in the filtration process of the existing wastewater treatment device, large dirt or excessive debris in the wastewater is filtered onto the filter plate, which will block the filter plate, making the wastewater treatment efficiency very low, thereby affecting the filtration effect of the wastewater;

[0004] In order to overcome the above defects, the prior art 1 (application number 202420555943.X, Chinese patent application date 2024-03-21) is a heat treatment wastewater treatment equipment, including a box body, the top of the box body is open, and a detachable filter plate is arranged inside, a fixed bracket is arranged on the top, a telescopic motor is installed on the fixed bracket, the telescopic end of the telescopic motor is vertically downward, and a movable platform is fixedly installed, and a movable bracket driven to move in the horizontal direction is arranged at the bottom of the movable platform, an oil suction roller is rotatably installed on the movable bracket, a gear is fixedly installed on the rotating shaft of the oil suction roller, and the gear and the rack extending in the horizontal direction at the top of the box body match, when the oil in the wastewater floats to the surface after standing still, the telescopic motor drives the surface of the oil suction roller to contact the oil and remove the oil, which can avoid premature contact with the sewage to affect its oil removal effect, and then the servo motor drives the oil suction roller to move in the horizontal direction, and rotates through the meshing of the gear and the rack, so that the wastewater surface can be deoiled everywhere, and the deoiling range is large and the effect is good;

[0005] There is also prior art 2 (Chinese patent with application number 202321601916.3 and application date 2023-06-21), a high-level catalytic oxidation wastewater treatment device, comprising a housing and a filter assembly, wherein a feed port is arranged on the top of the housing, a motor is installed on the top of the outside of the reaction chamber 1, a rotating shaft is arranged below the bearing shaft, and L-shaped impellers are arranged on both sides of the rotating shaft, a fixing seat 1 is fixed to the top of the inner top of the housing, a heating rod is arranged below the fixing seat 1, a track is arranged inside the housing, and the filter assembly is arranged inside the track, the filter assembly comprises an ultrafine filter, a handle 1, a tray, and a handle 2, a handle 1 is fixed on one side of the ultrafine filter, and a tray is arranged outside the ultrafine filter. During use, harmful substances precipitated in the wastewater can be classified and treated, thereby reducing labor costs. At the same time, the device further prevents the reproduction rate of bacteria and reduces the harm caused by severe odor in the wastewater;

[0006] and Prior Art Three (a Chinese patent with application number 202223456311.8 and application date December 23, 2022), a small wastewater processor that is easy to move, comprising a base, on one side of the upper end face of the base is fixedly connected with a disinfection mechanism, on the other side of the upper end face of the base is fixedly connected with a sterilization mechanism, in the middle of the upper end face of the base is fixedly connected with a water pump, at the four corners of the lower end face of the base are fixedly connected with casters, one side and the upper end of the water pump are fixedly connected with pipes, the two pipes on one side are connected through the disinfection mechanism, and the two pipes on one side are connected through the sterilization mechanism. Place the filter screen from the water inlet into the disinfection mechanism, and engage the clamping blocks at the four corners of the filter screen with the internal clamping rods through the holes of the fixing blocks. Pour the wastewater from the water inlet into the disinfection mechanism. The filter screen can hold some large dirt in the wastewater and prevent it from falling down. Moreover, the clamping rods and blocks can be removed to clean the filter screen.

[0007] Although the prior art can improve the overall wastewater treatment efficiency, during the working process, it operates by jittering or replacing the filter screen. Jittering accelerates the wear of the overall structure, increasing the frequency and cost of maintenance. Replacing the filter screen not only increases the labor intensity of the operation but also requires shutdown for processing, making the overall operation inconvenient. And only heating treatment is carried out through a heating rod, making the overall wastewater temperature rise unevenly, affecting the normal progress of relevant reactions and treatments, thus resulting in inconvenient wastewater treatment.

[0008] In view of the above problems, it is urgent to innovate and design on the basis of the original salt-containing wastewater processor with heat treatment function. Therefore, we have proposed a salt-containing wastewater processor with heat treatment function that can well solve the above problems. Summary of the Invention

[0009] The purpose of the present invention is to provide a salt-containing wastewater processor with heat treatment function to solve the problems in the above background technology, that is, in the current market, it operates by jittering or replacing the filter screen. Jittering accelerates the wear of the overall structure, increasing the frequency and cost of maintenance. Replacing the filter screen not only increases the labor intensity of the operation but also requires shutdown for processing, making the overall operation inconvenient. And only heating treatment is carried out through a heating rod, making the overall wastewater temperature rise unevenly, affecting the normal progress of relevant reactions and treatments, thus resulting in inconvenient wastewater treatment.

[0010] To achieve the above purpose, the present invention provides the following technical solution: A salt-containing wastewater processor with heat treatment function, comprising a provided drive box, on the upper end of the drive box is installed a treatment box, inside the treatment box are arranged a first treatment cylinder and a second treatment cylinder, and the first treatment cylinder and the second treatment cylinder are connected by an electromagnetic valve;

[0011] Inside both the first processing cylinder and the second processing cylinder, there is a rotating rod. The outer wall of the rotating rod is connected to an arc-shaped block through a support block. A cleaning member and a first nozzle are provided on the arc-shaped block. An anti-backflow component is provided inside the rotating rod passage.

[0012] A second conveying pipeline is installed on the side end of the processing box. The second conveying pipeline is connected to the input end of the first conveying pump. A first conveying pipeline is installed on the top of the second processing cylinder. One end of the second conveying pipeline is connected to the middle section of the first conveying pipeline through a solenoid valve. The other end of the second conveying pipeline is connected to a connecting pipeline between the first conveying pump and the sleeve. The first conveying pump is installed inside the drive box. The pipeline at the output end of the first conveying pump is connected to the inside of the rotating rod through the sleeve.

[0013] Preferably, a motor is installed inside the drive box. The output end of the motor is connected to the rotating rod through a driving member. The outside of the rotating rod is connected to a sleeve through a sealing bearing. The sleeve is installed at the inner bottom of the first processing cylinder and the second processing cylinder.

[0014] Preferably, a cavity is provided inside the drive box. The second conveying pipeline is connected through the cavity.

[0015] Preferably, the anti-backflow component includes a limiting plate installed inside the rotating rod. A lifting rod is connected through the limiting plate. A baffle is installed on the outside of the lifting rod.

[0016] Preferably, a first magnetic block is provided at the top of the lifting rod. The first magnetic block is adapted to the second magnetic block. The second magnetic block is installed at the top of the first processing cylinder and the second processing cylinder after passing through the top of the rotating rod through a support column. A spiral member is movably connected inside the rotating rod passage.

[0017] Preferably, the first conveying pipeline is connected through the inside of the condensation box. A condenser is installed inside the condensation box. The condensation box is installed on the side end of the drive box. The first conveying pump is connected to the inside of the condensation box through the second conveying pipeline.

[0018] Preferably, a second conveying pump is installed inside the drive box. A filtering member is installed inside the second processing cylinder. The input end of the second conveying pump is connected to the inner bottom of the second processing cylinder through a pipeline. The output end of the second conveying pump is connected to the top side of the drive box through a pipeline, and the position of the pipeline at the output end of the second conveying pump is higher than the installation position of the filtering member.

[0019] Preferably, a solar panel is installed on the top of the drive box, and a flushing component is installed on the top of the drive box. The flushing component includes a first conveying cylinder installed on the top of the drive box. The input end of the first conveying cylinder is connected to the first conveying pipeline through a third conveying pipeline. The output end of the first conveying cylinder is connected to the inside of the condensation box through a side pipeline. A second conveying cylinder is installed on the side of the first conveying cylinder.

[0020] Preferably, pistons are arranged inside both the first conveying cylinder and the second conveying cylinder. A moving seat is installed on the side of the piston. The input end of the second conveying cylinder is connected to the inside of the condensation box through a pipeline. The output end of the second conveying cylinder is connected to the inside of the moving seat through a pipeline. A spring is sleeved outside the piston. A second spray head is installed on the side of the moving seat. The second spray head is located on the side of the solar panel.

[0021] Compared with the prior art, the beneficial effects of the present invention are as follows: For this salt-containing wastewater processor with a heat treatment function, the cleaning parts on the outside of the arc-shaped block clean the inner walls of the first treatment cylinder and the second treatment cylinder, reducing the corrosion problem caused by impurities adhering to the inner walls of the device. The steam generated after heating the second treatment cylinder is transmitted to the inside of the second treatment cylinder through the sleeve, facilitating the uniform heating of the wastewater and improving the overall efficiency of wastewater evaporation. The specific content is as follows:

[0022] The cleaning parts on the outside of the arc-shaped block clean the inner walls of the first treatment cylinder and the second treatment cylinder, reducing the corrosion problem caused by impurities adhering to the inner walls of the device. The steam is introduced into the wastewater for uniform heating, improving the overall efficiency of wastewater evaporation;

[0023] The wastewater inside the first treatment cylinder reacts with the flocculant, reducing the subsequent treatment burden. The second treatment cylinder evaporates the water inside the wastewater, not only improving the salt recovery rate but also converting the harmful substances in the water into solid residues, improving the overall wastewater treatment effect;

[0024] The anti-backflow component facilitates the transportation of gas through the pipeline inside the support block and reduces the pollution problem caused by wastewater backflow. Through the cooperation of the first magnetic block and the second magnetic block, the spiral part cleans the inner wall of the arc-shaped block, improving the overall service life;

[0025] The first transfer pump transports the condensed liquid to the inside of the sleeve and sprays it out through the arc-shaped nozzles provided on the arc-shaped block, facilitating the cleaning operation of the first treatment cylinder and the second treatment cylinder. The second transfer pump sprays the liquid inside the second treatment cylinder onto the filter element, improving the overall cleaning efficiency;

[0026] The conversion of electric energy by the solar panel and the preheating of steam cooperate to greatly improve the wastewater treatment efficiency and broaden the overall applicable range. The flushing component sprays liquid to clean the dust on the solar panel, improving the photoelectric conversion efficiency and resource utilization rate of the solar panel. Brief Description of the Drawings

[0027] Figure 1 Schematic diagram of the overall structure of the present invention;

[0028] Figure 2 Schematic diagram of the internal structure of the treatment tank of the present invention;

[0029] Figure 3 Schematic diagram of the connection structure between the second conveying pipeline and the first conveying pump of the present invention;

[0030] Figure 4 Schematic diagram of the connection structure between the rotating rod and the sleeve of the present invention;

[0031] Figure 5 For the present invention Figure 4 Schematic diagram of the enlarged structure at A in;

[0032] Figure 6 Schematic diagram of the connection structure between the first conveying pipeline and the second conveying pipeline of the present invention;

[0033] Figure 7 Schematic diagram of the internal structure of the condensation box of the present invention;

[0034] Figure 8 Schematic diagram of the overall back view structure of the present invention;

[0035] Figure 9 Schematic diagram of the internal structure of the first conveying cylinder of the present invention;

[0036] Figure 10 Schematic diagram of the connection structure between the moving seat and the nozzle of the present invention.

[0037] In the figure: 1, drive box; 2, treatment tank; 3, first treatment cylinder; 4, second treatment cylinder; 5, cavity; 6, motor; 7, driving member; 8, rotating rod; 9, support block; 10, arc-shaped block; 11, cleaning member; 12, first nozzle; 13, first conveying pipeline; 14, second conveying pipeline; 15, first conveying pump; 16, sleeve; 17, limiting plate; 18, lifting rod; 19, baffle; 20, first magnetic block; 21, support column; 22, second magnetic block; 23, spiral member; 24, condensation box; 25, condenser; 26, second conveying pump; 27, filtering member; 28, solar panel; 29, third conveying pipeline; 30, first conveying cylinder; 31, piston; 32, moving seat; 33, spring; 34, second conveying cylinder; 35, second nozzle. Detailed Description of the Invention

[0038] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0039] Embodiment 1: In this embodiment, in order to uniformly heat the wastewater, the second conveying pipeline 14 is used, and its purpose is to reduce the problem that the treatment efficiency is reduced due to local overheating or overcooling in the second treatment cylinder 4, such as Figures 1-4The shown technical solution includes a provided drive box 1. A processing box 2 is installed at the upper end of the drive box 1. Inside the processing box 2, a first processing cylinder 3 and a second processing cylinder 4 are provided. And the first processing cylinder 3 and the second processing cylinder 4 are connected by a solenoid valve. Inside both the first processing cylinder 3 and the second processing cylinder 4, a rotating rod 8 is provided. On the outer wall of the rotating rod 8, an arc-shaped block 10 is connected through a support block 9. A cleaning part 11 and a first spray head 12 are provided on the arc-shaped block 10. Inside the passage of the rotating rod 8, an anti-backflow component is provided. A second conveying pipeline 14 is installed at the side end of the processing box 2. The second conveying pipeline 14 is connected to the input end of a first conveying pump 15. A first conveying pipeline 13 is installed at the top of the second processing cylinder 4. The middle section of the first conveying pipeline 13 is connected to one end of the second conveying pipeline 14 through a solenoid valve. The other end of the second conveying pipeline 14 is connected to a connecting pipeline between the first conveying pump 15 and a sleeve 16. The first conveying pump 15 is installed inside the drive box 1. The pipeline at the output end of the first conveying pump 15 is communicated with the inside of the rotating rod 8 through the sleeve 16. A motor 6 is installed inside the drive box 1. The output end of the motor 6 is connected to the rotating rod 8 through a driving part 7. The outside of the rotating rod 8 is connected to the sleeve 16 through a sealing bearing. The sleeve 16 is installed at the inner bottom of the first processing cylinder 3 and the second processing cylinder 4. A cavity 5 is opened inside the side of the drive box 1. The second conveying pipeline 14 is connected through and installed inside the cavity 5. Pour the saline wastewater to be processed into the first processing cylinder 3 of the processing box 2, and pour a flocculant into the inside of the first processing cylinder 3. Turn on the motor 6 inside the drive box 1. The output end of the motor 6 drives the rotating rod 8 to rotate inside the first processing cylinder 3 through the driving part 7, so that the wastewater inside the first processing cylinder 3 reacts with the flocculant, facilitating the coagulation of impurities inside the wastewater and effectively removing the solid impurities in the wastewater, reducing the subsequent processing burden. The processed wastewater is conveyed through the solenoid valve at the connection between the first processing cylinder 3 and the second processing cylinder 4. The solenoid valve provided at the bottom of the second processing cylinder 4 introduces the preliminarily processed wastewater, and uses a heating part provided on the side wall of the second processing cylinder 4 to heat it, so that the water inside the wastewater evaporates, thereby causing the salt inside the water to crystallize, and thus performing the wastewater treatment operation. Through the process of promoting salt crystallization by heating, not only the recovery rate of salt is improved, but also the harmful substances in the water can be converted into solid residues, thus achieving a more efficient wastewater concentration treatment effect. Since the outside of the rotating rod 8 is connected to the arc-shaped block 10 through the support block 9, when the rotating rod 8 rotates, the cleaning part 11 on the outside of the arc-shaped block 10 cleans the inner walls of the first processing cylinder 3 and the second processing cylinder 4, reducing the corrosion problem caused by impurities adhering to the inner wall of the device, reducing the inconvenience problem caused by the need to replace the internal structure, extending the service life of the equipment, and reducing the maintenance cost. After the second processing cylinder 4 is heated, steam is generated. The steam is transmitted through the first conveying pipeline 13. The second conveying pipeline 14 connected to the middle section of the first conveying pipeline 13 through a solenoid valve conveys part of the steam into the cavity 5 inside the processing box 2, so that the inside of the processing box 2 is preheated, improving the overall processing efficiency.And the second conveying pipeline 14 transmits steam through the sleeve 16, so that the gas is ejected from the first nozzle 12 at the side end of the arc-shaped block 10, increasing the temperature on the rotating rod 8, facilitating uniform heating inside the wastewater, avoiding the situation of reduced treatment efficiency caused by local overheating or overcooling in the second treatment cylinder 4, thus ensuring the stability and effect of the treatment process and improving the overall wastewater evaporation efficiency.

[0040] Embodiment 2: In this embodiment, in order to improve the overall cleaning efficiency, an anti-backflow component is used. Its purpose is to reduce the problem of pollution caused by wastewater backflow, specifically as Figures 3-7As shown, the anti-backflow component includes a limiting plate 17 installed inside the rotating rod 8. A lifting rod 18 is connected through the limiting plate 17. A baffle 19 is installed on the outer side of the lifting rod 18. A first magnet 20 is arranged at the top of the lifting rod 18. The first magnet 20 is adapted to the second magnet 22. The second magnet 22 is installed on the tops of the first processing cylinder 3 and the second processing cylinder 4 after passing through the top of the rotating rod 8 through a support column 21. A spiral member 23 is movably connected inside the channel of the rotating rod 8. The first conveying pipeline 13 is connected through the inside of the condensation box 24. A condenser 25 is installed inside the condensation box 24. The condensation box 24 is installed on the side end of the driving box 1. The first conveying pump 15 is connected to the inside of the condensation box 24 through a second conveying pipeline 14. A second conveying pump 26 is installed inside the driving box 1. A filtering member 27 is installed inside the second processing cylinder 4. The input end of the second conveying pump 26 is connected to the inner bottom of the second processing cylinder 4 through a pipeline. The output end of the second conveying pump 26 is connected to the top side of the driving box 1 through a pipeline, and the position of the pipeline at the output end of the second conveying pump 26 is higher than the installation position of the filtering member 27. The gas inside the rotating rod 8 pushes the lifting rod 18 on the limiting plate 17 upward, so that the lifting rod 18 drives the baffle 19 to move upward, facilitating the transportation of the gas through the pipeline inside the support block 9. When the wastewater outside the arc-shaped block 10 flows into the rotating rod 8, the baffle 19 and the lifting rod 18 block the through groove on the limiting plate 17 through the water flow, thus reducing the pollution problem caused by wastewater backflow, improving the overall treatment efficiency. And because the second magnet 22 is arranged on the support column 21 and the first magnet 20 at the top of the lifting rod 18 is adapted to the second magnet 22, the lifting rod 18 can drive the baffle 19 to lift through the cooperation of the first magnet 20 and the second magnet 22, thus facilitating the input and output of the liquid inside the arc-shaped block 10. The spiral member 23 inside the arc-shaped block 10 rotates and lifts through the cooperation of the liquid, facilitating the cleaning of the inner wall of the arc-shaped block 10 and improving the overall service life. The first conveying pipeline 13 transports the steam to the inside of the condensation box 24, and the steam is condensed by the condenser 25, facilitating the use of the first conveying pump 15 to transport the condensed liquid to the inside of the sleeve 16 and spraying it out through the arc-shaped block 10 arranged on the arc-shaped block 10, facilitating the cleaning operation of the first processing cylinder 3 and the second processing cylinder 4. It not only reduces the damage problem caused by inconvenient overall cleaning, improves the overall service life, but also improves the utilization rate of wastewater. And after the saline wastewater is heated inside the second processing cylinder 4, the second conveying pump 26 can be opened to spray the liquid inside the second processing cylinder 4 onto the filtering member 27, and the filtering member 27 is used to filter the impurities in the boiling water, improving the overall cleaning efficiency and reducing the maintenance cost.

[0041] Embodiment 3: In this embodiment, in order to broaden the overall applicable range, the solar panel 28 is used. The overall applicable range is improved through the preheating cooperation with the steam, specifically as Figure 1 andFigures 8-10 As shown in the figure, a solar panel 28 is installed on the top of the drive box 1. A flushing assembly is installed on the top of the drive box 1. The flushing assembly includes a first conveying cylinder 30 installed on the top of the drive box 1. The input end of the first conveying cylinder 30 is connected to the first conveying pipe 13 through a third conveying pipe 29. The output end of the first conveying cylinder 30 is connected to the inside of the condensation box 24 through a side-end pipe. A second conveying cylinder 34 is installed on the side end of the first conveying cylinder 30. Pistons 31 are arranged inside both the first conveying cylinder 30 and the second conveying cylinder 34. A moving seat 32 is installed on the side end of the piston 31. The input end of the second conveying cylinder 34 is connected to the inside of the condensation box 24 through a pipe. The output end of the second conveying cylinder 34 is connected to the inside of the moving seat 32 through a pipe. A spring 33 is sleeved outside the piston 31. A second spray head 35 is installed on the side end of the moving seat 32. The second spray head 35 is located on the side end of the solar panel 28. The solar panel 28 arranged on the top of the treatment box 2 facilitates the conversion of solar energy into electrical energy for use, thereby greatly improving the heating efficiency inside the treatment box 2. It can not only use external equipment for heating operations, but also operate through clean energy. Overall, through cooperation with the preheating of steam, the wastewater treatment efficiency is greatly improved, and the overall applicable range is broadened. The first conveying pipe 13 transmits steam to the inside of the first conveying cylinder 30 through the third conveying pipe 29. Through the cooperation of the piston 31 and the moving seat 32, the second conveying cylinder 34 conveys the liquid inside the condensation box 24. Since a spring 33 is arranged outside the piston 31, through the combined use of the steam inside the third conveying pipe 29, the second conveying cylinder 34 conveys the liquid to the inside of the moving seat 32 and sprays it out through the second spray head 35 on the side end of the moving seat 32, so as to clean the dust on the solar panel 28. This not only improves the service life of the solar panel 28, but also improves the photoelectric conversion efficiency of the solar panel 28, thereby enhancing the overall power generation effect. The water source generated by condensation is used as a whole, improving the utilization rate of the overall resources.

[0042] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A salt-containing wastewater treatment device with a heat treatment function, comprising a drive box (1), a treatment box (2) is installed on the upper end of the drive box (1), a first treatment cylinder (3) and a second treatment cylinder (4) are arranged inside the treatment box (2), and the first treatment cylinder (3) and the second treatment cylinder (4) are connected via a solenoid valve; It is characterized in that Also includes: A rotating rod (8) is disposed inside each of the first treatment cylinder (3) and the second treatment cylinder (4); an arc block (10) is connected to the outer wall of the rotating rod (8) via a support block (9); a cleaning member (11) and a first nozzle (12) are disposed on the arc block (10); and a backflow prevention component is disposed inside the channel of the rotating rod (8); A second delivery pipeline (14) is installed at the side end of the processing box (2), and the second delivery pipeline (14) is connected to the input end of the first delivery pump (15). A first delivery pipeline (13) is installed at the top of the second processing cylinder (4). The middle section of the first delivery pipeline (13) is connected to one end of the second delivery pipeline (14) through a solenoid valve. The other end of the second delivery pipeline (14) is connected to a connecting pipeline between the first delivery pump (15) and a sleeve (16). The first delivery pump (15) is installed inside the driving box (1), and the output end pipeline of the first delivery pump (15) is connected to the inside of the rotating rod (8) through the sleeve (16). The backflow prevention assembly comprises a limit plate (17) installed inside the rotating rod (8), a lifting rod (18) is connected through the limit plate (17), and a baffle (19) is installed outside the lifting rod (18); A first magnetic block (20) is arranged on the top of the lifting rod (18), the first magnetic block (20) is adapted to the second magnetic block (22), the second magnetic block (22) passes through the top of the rotating rod (8) through a support column (21) and is then installed on the top of the first processing cylinder (3) and the second processing cylinder (4), and a spiral member (23) is movably connected inside the channel of the rotating rod (8).

2. The salt-containing wastewater processor with heat treatment function according to claim 1, characterized in that: A motor (6) is installed inside the drive box (1); the output end of the motor (6) is connected to a rotating rod (8) via a driving member (7); the outer side of the rotating rod (8) is connected to a sleeve (16) via a sealed bearing; the sleeve (16) is installed at the bottom of the first treatment cylinder (3) and the second treatment cylinder (4).

3. The salt-containing wastewater processor with heat treatment function according to claim 1, characterized in that: A cavity (5) is provided inside the driving box (1), and the second delivery pipe (14) penetrates and is connected inside the cavity (5).

4. The salt-containing wastewater processor with heat treatment function according to claim 1, characterized in that: The first delivery pipeline (13) is connected to the inside of a condensation box (24), a condenser (25) is installed inside the condensation box (24), the condensation box (24) is installed on the side end of the drive box (1), and the first delivery pump (15) is connected to the inside of the condensation box (24) through the second delivery pipeline (14).

5. The salt-containing wastewater processor with heat treatment function according to claim 1, characterized in that: A second delivery pump (26) is installed inside the driving box (1), and a filter element (27) is installed inside the second treatment cylinder (4). The input end of the second delivery pump (26) is connected to the bottom of the second treatment cylinder (4) through a pipeline, and the output end of the second delivery pump (26) is connected to the top of the driving box (1) through a pipeline, and the position of the pipeline at the output end of the second delivery pump (26) is higher than the installation position of the filter element (27).

6. The salt-containing wastewater processor with heat treatment function according to claim 1, characterized in that: A solar panel (28) is mounted on the top of the drive box (1); a flushing assembly is mounted on the top of the drive box (1); the flushing assembly comprises a first conveying cylinder (30) mounted on the top of the drive box (1); an input end of the first conveying cylinder (30) is connected to the first conveying pipeline (13) via a third conveying pipeline (29); an output end of the first conveying cylinder (30) is connected to the inside of a condensation box (24) via a side end pipeline; and a second conveying cylinder (34) is mounted on the side end of the first conveying cylinder (30).

7. The salt-containing wastewater processor with heat treatment function according to claim 6, characterized in that: A piston (31) is disposed inside each of the first conveying cylinder (30) and the second conveying cylinder (34); a movable seat (32) is mounted on the side end of the piston (31); an input end of the second conveying cylinder (34) is connected to the inside of a condensation tank (24) via a pipeline; an output end of the second conveying cylinder (34) is connected to the inside of the movable seat (32) via a pipeline; a spring (33) is sleeved on the outside of the piston (31); a second nozzle (35) is mounted on the side end of the movable seat (32); and the second nozzle (35) is located at the side end of the solar panel (28).

Citation Information

Patent Citations

  • Small wastewater treater convenient to move

    CN219194621U

  • Advanced catalytic oxidation wastewater treatment device

    CN220012410U

  • Heat treatment wastewater treatment equipment

    CN221917538U

  • Device and method for treating wastewater containing high-salt organic matters and high-concentration odor difficult to resist

    CN118929818A

  • Environment-friendly recovery equipment for ammonium sulfate wastewater

    CN220132046U