A hazardous waste resource processing device and method containing water-soluble salt and organic matter

The hazardous waste resource recovery device, which uses a power component to drive the stirring and cleaning components, solves the problem of filter clogging caused by the accumulation of impurities after the mixed solution is diluted. It achieves efficient separation and collection of water-soluble salts and organic matter, improving purification efficiency and resource utilization.

CN117298683BActive Publication Date: 2026-05-15ZHANGJIAGANG HUARUI HAZARDOUS WASTES TREATING CENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
ZHANGJIAGANG HUARUI HAZARDOUS WASTES TREATING CENT CO LTD
Filing Date
2023-11-01
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

In existing technologies, when water-soluble salts are separated after dilution of the mixed solution, impurities tend to accumulate on the filter screen, causing the filter screen to become clogged and affecting the purification efficiency.

Method used

A hazardous waste resource recovery treatment device containing water-soluble salts and organic matter is adopted. The device uses a power component to drive a stirring component and a cleaning component to stir the mixed solution and remove impurities. Combined with a distillation component, organic matter and water-soluble salts are separated. The scraper and inclined plate structure is used to prevent impurities from accumulating.

Benefits of technology

It effectively prevents filter clogging, improves purification efficiency, ensures the complete separation and collection of water-soluble salts and organic matter, reduces resource waste, and enhances environmental protection.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application discloses a device and method for the resource recovery treatment of hazardous waste containing water-soluble salts and organic matter, relating to the field of hazardous waste resource recovery treatment devices. The device includes a base, with two first supports fixedly connected to the top left side of the base and two second supports fixedly connected to the top right side of the base. A rotating shaft is fixedly connected inside each of the first supports, and a stirring tank is rotatably connected inside the rotating shaft. A sealing cover is fixedly connected to the top of the stirring tank, and a feed pipe and a water inlet pipe are fixedly connected inside the sealing cover. A first heating block is fixedly connected inside the stirring tank. A funnel is fixedly connected to the top of the stirring tank, and grooves are formed on both sides of the funnel. Two silicone pads are fixedly connected inside the grooves. A toggle assembly is connected to the bottom of the stirring tank, a power assembly is fixedly connected inside the sealing cover, a transmission assembly is provided at the bottom of the stirring tank, and a cleaning assembly is provided at the bottom of the inner cavity of the stirring tank.
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Description

Technical Field

[0001] This application relates to the field of hazardous waste resource recovery and treatment equipment, and in particular to a hazardous waste resource recovery and treatment equipment containing water-soluble salts and organic matter. Background Technology

[0002] Many industries today require the use of organic matter and water-soluble salts in their operations, but these two substances may contaminate other materials after use, rendering them unusable.

[0003] Nowadays, many contaminated substances undergo filtration and purification after use. They are then buried in designated locations or transported to sewers to remove the contaminated substances. Alternatively, the contaminants are diluted, and the mixed solution is filtered to separate it from water-soluble salts.

[0004] However, the above methods still have significant drawbacks in use. The most prominent one is that when the pollutants are diluted and water-soluble salts are separated, impurities inside the mixed solution accumulate on the filter screen, which may clog the filter screen, reduce subsequent purification efficiency, or even prevent purification. This is quite inconvenient in actual use. Summary of the Invention

[0005] The purpose of this application is to address the problem mentioned in the background art that when pollutants are diluted and water-soluble salts are separated, impurities in the mixed solution accumulate on the filter screen, which may cause the filter screen to become clogged, resulting in reduced subsequent purification efficiency or even failure to purify, and is inconvenient in actual use. This application provides a hazardous waste resource recovery treatment device containing water-soluble salts and organic matter.

[0006] To achieve the above objectives, this application specifically adopts the following technical solution:

[0007] A hazardous waste resource recovery device containing water-soluble salts and organic matter includes a base. Two first supports are fixedly connected to the top left side of the base, and two second supports are fixedly connected to the top right side of the base. A rotating shaft is fixedly connected inside each of the first supports, and a stirring tank is rotatably connected inside the rotating shaft. A sealing cover is fixedly connected to the top of the stirring tank, and a feed pipe and a water inlet pipe are fixedly connected inside the sealing cover. A first heating block is fixedly connected inside the stirring tank. A funnel is fixedly connected to the top of the stirring tank, and sliding grooves are formed on both sides of the funnel. Two silicone pads are fixedly connected inside the sliding grooves. A toggle assembly is connected to the bottom of the stirring tank. A power assembly is fixedly connected inside the sealing cover. A transmission assembly is provided at the bottom of the stirring tank. A cleaning assembly is provided at the bottom of the inner cavity of the stirring tank. A transfer assembly is provided inside the base. A sliding assembly is provided at the top of each of the second supports. A distillation assembly is provided inside the second supports. The transmission assembly is driven by the power assembly. The cleaning assembly is driven by the power assembly through the transmission assembly. The sliding assembly is driven by the distillation assembly.

[0008] By adopting the above technical solution, the power component drives the stirring component to agitate the mixed solution inside the mixing tank. Simultaneously, the first heating block heats the mixed solution to 30 degrees Celsius, facilitating faster mixing of organic matter and water-soluble salts with water. When the power component drives the stirring component, it also drives the transmission component, which in turn drives the cleaning component. After the mixed solution is agitated, the power component lowers the solution into the transfer component. Once the solution has been lowered, the power component continues to drive the transmission component, which in turn drives the cleaning component to remove impurities from inside the mixing tank. Simultaneously, the transfer component moves the mixed solution and performs secondary agitation, ensuring proper mixing. The process is more thorough. When the transfer component carries the mixed solution to the bottom of the distillation component, the sliding component moves the distillation component, thus combining the distillation component and the transfer component. After the distillation component and the transfer component are combined, the transfer component will operate again to heat the mixed solution inside the transfer component, causing the mixed solution to boil and generate steam. This steam will carry the organic matter inside the mixed solution upwards. The steam will then move along the distillation component and be stored inside the distillation component. When the mixed solution inside the transfer component has completely evaporated, the organic matter will be completely stored inside the distillation component, while the water-soluble salts will be stored inside the transfer component. This facilitates the collection of water-soluble salts and organic matter, making them easy to reuse. This method of resource collection reduces resource waste and further improves environmental protection.

[0009] Furthermore, the cleaning assembly includes a second transmission rod rotatably connected to the mixing tank, a first screw fixedly connected to the end of the second transmission rod, a second positioning rod fixedly connected inside the mixing tank, a slider and a scraper rotatably connected to the outside of the first screw, the slider and the scraper fixedly connected, the second positioning rod passing through the slider and the scraper and slidably connected to the slider and the scraper, an inclined plate rotatably connected inside the mixing tank, a counterweight slidably connected to the top of the inclined plate, a filter screen fixedly connected to the top of the counterweight, the filter screen fixedly connected to the first transmission rod, a hose fixedly connected to the outside of the mixing tank at the end, a solenoid valve fixedly connected inside the hose, and a temporary storage box fixedly connected to the end of the hose.

[0010] By adopting the above technical solution, the first screw drives the scraper to move, thereby scraping off the impurities remaining on the filter screen. At the same time, the inclined plate will be raised, allowing the impurities to slide down along the upward movement of the inclined plate, facilitating faster movement of the impurities. This allows the impurities to move more quickly and be collected more quickly, preventing the accumulation of impurities, reducing the possibility of the filter screen being blocked, and further improving work efficiency.

[0011] Furthermore, the power assembly includes a first motor fixedly connected inside the sealing cover, a first transmission rod being drivenly connected to the end of the first motor, a reciprocating screw being fixedly connected to the end of the first transmission rod, a circular limiting plate being fixedly connected to the end of the first transmission rod, a first positioning rod being fixedly connected to the outside of the circular limiting plate, a sealing plate being rotatably connected to the outside of the reciprocating screw, and a first stirring rod being fixedly connected to the outside of the first transmission rod.

[0012] By adopting the above technical solution, the first motor drives the first transmission rod, which in turn drives the first stirring rod to rotate, thereby stirring the mixed solution inside the mixing tank, so that the waste and water can be mixed more thoroughly.

[0013] Furthermore, the transmission assembly includes a fixed rod fixedly connected to the sealing plate, a connecting rod fixedly connected to the end of the fixed rod, a top rod fixedly connected to the top of the connecting rod, a tension rod rotatably connected to the end of the top rod, a limit rod fixedly connected to the bottom of the mixing tank, the limit rod rotatably connected to the tension rod, a steel rope fixedly connected to the end of the tension rod, a first rack fixedly connected to the end of the steel rope, a limit block slidably connected to the outside of the first rack, the limit block fixedly connected to the mixing tank, a first gear meshing with the outside of the first rack, a spring fixedly connected between the first rack and the limit block, and a second transmission rod fixedly connected to the end of the first gear.

[0014] By adopting the above technical solution, the connecting rod drives the tension rod to rotate, which in turn drives the steel rope to move, which in turn drives the first rack to move, which in turn drives the first gear to rotate, which in turn drives the second transmission rod to rotate, thereby transmitting power to the cleaning component, thereby reducing the power source output and thus reducing production costs.

[0015] Furthermore, the transfer assembly includes a liquid storage tank slidably connected to the base. A second heating block is fixedly connected to the bottom of the inner cavity of the liquid storage tank. A third transmission rod is rotatably connected to the bottom of the liquid storage tank. A limit plate is fixedly connected to the top of the third transmission rod. A second stirring rod is fixedly connected to the outer side of the third transmission rod. The third transmission rod passes through the liquid storage tank and the second heating block. A second gear is fixedly connected to the bottom of the third transmission rod. A second rack meshes with the outer side of the second gear. A first sliding rod is slidably connected to one side of the bottom of the liquid storage tank, and a second screw is rotatably connected to the other side. The first sliding rod is fixedly connected to the inside of the base. One end of the second screw is rotatably connected to the base, and the other end is rotatably connected to a second motor. The second motor is fixedly connected to the inside of the base.

[0016] By adopting the above technical solution, the second motor drives the second screw to rotate, thereby moving the liquid storage tank, which in turn drives the second gear to rotate along the second rack, thereby driving the second stirring rod to rotate, thus stirring the mixed solution inside the liquid storage tank and making the mixing more thorough.

[0017] Furthermore, the sliding assembly includes four second sliding rods fixedly connected to the second bracket. A top plate is slidably connected to the outer side of each second sliding rod. Two third screws are rotatably connected to the top of the second bracket. A fourth transmission rod is fixedly connected to the top of each third screw. A third motor is drivenly connected to the top of each fourth transmission rod. Belts are drivenly connected to the outer sides of the two fourth transmission rods.

[0018] By adopting the above technical solution, the third motor drives the third screw to rotate, thereby driving the belt to transmit power on the two third screws, thereby moving the top plate, which in turn facilitates the movement of the distillation assembly.

[0019] Furthermore, the distillation assembly includes a storage box fixedly connected to the top plate, a discharge port fixedly connected to the bottom of the storage box, a solenoid valve fixedly connected inside the discharge port, a flow tube fixedly connected to the outside of the storage box, and a plug fixedly connected to the end of the flow tube.

[0020] By adopting the above technical solution, the distillation assembly is moved by a third motor, which in turn drives the stopper to connect with the transfer assembly, thereby facilitating subsequent distillation operations.

[0021] Furthermore, the actuating assembly includes a first actuating block fixedly connected to the bottom of the mixing tank, and the actuating assembly also includes a second actuating block fixedly connected to the top of the liquid storage tank.

[0022] By adopting the above technical solution, the second lever moves the first lever, thereby causing the mixing tank to rotate, which facilitates the shaking of impurities and allows them to be cleaned more quickly.

[0023] A method for the resource recovery treatment of hazardous waste containing water-soluble salts and organic matter, comprising the following steps:

[0024] S1: First, the waste is transported into the mixing tank through the feed pipe by the machine. Then, water is transported into the mixing tank through the water inlet pipe. Then, the first motor is started, which drives the first stirring rod to rotate. At the same time, the first heating block is started to increase the water temperature inside the mixing tank to the sliding temperature. While stirring, the sealing plate will slowly rise. After stirring is completed, the sealing plate will continue to rise. When the sealing plate leaves the range of the funnel, the mixture inside the mixing tank will be injected into the storage tank through the filter screen.

[0025] S2: After completing the above S1 operation, the second motor can be started to move the liquid storage tank to the bottom of the distillation machine. Then, the third motor is started to move the stopper into the liquid storage tank to seal it. Then, the second heating block is started to distill the mixture in the liquid storage tank. When distillation begins, the steam will enter the storage tank through the flow pipe and be stored. After distillation continues for a period of time, the liquid in the liquid storage tank will be completely evaporated. At this time, the organic matter in the mixture will enter the storage tank with the steam, while water-soluble salts will remain in the liquid storage tank.

[0026] S3: After completing the above S2 operation, the water-soluble salt inside the storage tank can be manually removed and stored for future use. Then, the solenoid valve can be opened to release the distillate stored inside the storage tank through the discharge port, and the distillate can be transported away through the transport tank to facilitate the extraction of organic matter by adding chemical substances.

[0027] In summary, this application includes at least one of the following beneficial effects;

[0028] 1. In this application, when waste and water are put into the mixing tank, the first motor will drive the sealing plate to move, thereby driving the connecting rod to move, thereby driving the tension rod to rotate, thereby driving the first rack to move, thereby driving the first gear to rotate, thereby driving the scraper to move, so that the scraper can clean the filter screen, so that the impurities on the filter screen can slide down along the scraper, so that the impurities on the filter screen will not accumulate, thereby reducing the risk of the filter screen being blocked, thereby improving the filtration capacity and improving the working efficiency.

[0029] 2. In this application, after the impurities on the filter screen are hung down, the inclined plate will be lifted by the push rod, so that the impurities can slide along the slope of the inclined plate, thereby facilitating the sliding of the impurities to the outside of the mixing tank, so that the impurities can be transferred more quickly, thereby reducing the probability of impurity accumulation and the possibility of filter screen clogging. At the same time, the rapid sliding of impurities can further improve work efficiency.

[0030] 3. In this application, after the mixed solution is lowered into the storage tank, the second motor drives the storage tank to move, thereby driving the second gear to rotate the second rack, which in turn drives the second stirring rod to rotate, thereby stirring the mixed solution inside the storage tank. This allows the organic matter and water-soluble salts in the mixed solution to mix more thoroughly with water, further improving the degree of fusion between water-soluble salts and water, making the subsequent extraction of water-soluble salts smoother, reducing the difficulty of subsequent extraction, and further improving work efficiency. Attached Figure Description

[0031] Figure 1 This is a three-dimensional structural diagram of the main body of the device in this application;

[0032] Figure 2 This is a three-dimensional structural schematic diagram of the main body of the device in this application;

[0033] Figure 3 This is a three-dimensional structural schematic diagram of the main body of the device in this application, viewed from the front.

[0034] Figure 4 This is a three-dimensional structural schematic diagram of the main body of the device in this application, viewed from the front and in cross-section.

[0035] Figure 5 This is a three-dimensional structural schematic diagram of the main body of the device in this application from a side view;

[0036] Figure 6 This is a three-dimensional structural schematic diagram of the device transfer component in this application, viewed from top cross-section.

[0037] Figure 7 This is a three-dimensional structural schematic diagram of the device transfer component in this application, viewed from the side and in cross-section.

[0038] Explanation of reference numerals in the attached figures:

[0039] 1. Base; 2. First support; 3. Second support; 4. Rotating shaft; 5. Mixing tank; 6. Sealing cover; 7. Feed pipe; 8. Water inlet pipe; 9. First heating block; 10. Funnel; 11. First motor; 12. First transmission rod; 13. Reciprocating screw; 14. First mixing rod; 15. Sealing plate; 16. First positioning rod; 17. Fixing rod; 18. Connecting rod; 19. Top rod; 20. Pull rod; 21. Limiting rod; 22. Steel rope; 23. First rack; 24. Limiting block; 25. Spring; 26. First gear; 27. Second transmission rod; 28. First screw; 29. ​​Second positioning rod; 30. 31. Slider; 32. Scraper; 33. Filter screen; 34. Counterweight; 35. Inclined plate; 36. Hose; 37. Temporary storage box; 38. Liquid storage tank; 39. Second heating block; 40. Third transmission rod; 41. Limiting plate; 42. Second stirring rod; 43. Second gear; 44. Second rack; 45. Second screw; 46. First slide rod; 47. Second slide rod; 48. Top plate; 49. Third screw; 50. Third motor; 51. Fourth transmission rod; 52. Belt; 53. Storage box; 54. Discharge port; 55. Flow pipe; 56. Plug; 57. First lever; 58. Second lever. Detailed Implementation

[0040] The following is in conjunction with the appendix Figure 1-7 This application will be described in further detail.

[0041] This application discloses a device for the resource recovery treatment of hazardous waste containing water-soluble salts and organic matter.

[0042] Reference Figure 1 and Figure 2 A hazardous waste resource recovery device containing water-soluble salts and organic matter includes a base 1. Two first supports 2 are fixedly connected to the top left side of the base 1, and two second supports 3 are fixedly connected to the top right side of the base 1. A rotating shaft 4 is fixedly connected inside the first supports 2, and a stirring tank 5 is rotatably connected inside the rotating shaft 4. A sealing cover 6 is fixedly connected to the top of the stirring tank 5, and a feed pipe 7 and a water inlet pipe 8 are fixedly connected inside the sealing cover 6. A first heating block 9 is fixedly connected inside the stirring tank 5. A funnel 10 is fixedly connected to the top of the stirring tank 5. Slide grooves are opened on both sides of the funnel 10, and two silicone pads are fixedly connected inside the slide grooves. A toggle assembly is connected to the bottom of the stirring tank 5. A power assembly is fixedly connected inside the sealing cover 6. A transmission assembly is provided at the bottom of the stirring tank 5. A cleaning assembly is provided at the bottom of the inner cavity of the stirring tank 5. A transfer assembly is provided inside the base 1. A sliding assembly is provided at the top of the second supports 3. A distillation assembly is provided inside the second supports 3. The transmission assembly is connected to the power assembly through the transmission assembly. The cleaning assembly is connected to the power assembly through the transmission assembly. The sliding assembly is connected to the distillation assembly through the transmission assembly.

[0043] When dilution and stirring of the mixed solution are required, the mixed solution can be fed into the mixing tank 5 through the feed pipe 7, and then water can be injected into the mixing tank 5 through the water inlet pipe 8. The power unit then drives the stirring component to rotate, thereby stirring the mixed solution inside the mixing tank 5. Simultaneously, the first heating block 9 is activated to heat the mixed solution inside the mixing tank 5, facilitating faster mixing of water-soluble salts and organic matter with water. When stirring begins, the power unit simultaneously drives the transmission component to operate, transmitting power to the cleaning component, which then moves the cleaning component. After stirring is complete, the mixed solution inside the mixing tank 5 is discharged through the funnel 10. As the liquid is discharged, impurities in the mixed solution are intercepted by the internal cleaning component. Once the liquid has been completely discharged, the cleaning component operates to remove the intercepted impurities, facilitating subsequent work and preventing impurities from affecting... Internal blockages can reduce subsequent work efficiency. To further improve efficiency, once liquid enters the transfer component, it operates to transfer the liquid and simultaneously moves the agitator, rotating the mixing tank 5 to facilitate faster collection of impurities, thus increasing collection speed and overall efficiency. The transfer component also agitates the liquid, ensuring thorough mixing. Upon reaching the designated location, the sliding component moves the distillation component, allowing it to connect with the transfer component. Once connected, the transfer component operates again to evaporate the liquid, allowing the evaporated liquid to carry organic matter into the distillation component. After evaporation, water-soluble salts remain in the storage tank 37, which technicians can then remove and store for reuse.

[0044] Reference Figure 2 and Figure 4 The cleaning assembly includes a second transmission rod 27 rotatably connected to the mixing tank 5, a first screw 28 fixedly connected to the end of the second transmission rod 27, a second positioning rod 29 fixedly connected inside the mixing tank 5, a slider 30 and a scraper 31 rotatably connected to the outside of the first screw 28, the slider 30 and the scraper 31 fixedly connected, the second positioning rod 29 passing through the slider 30 and the scraper 31 and slidably connected to the slider 30 and the scraper 31, an inclined plate 34 rotatably connected inside the mixing tank 5, a counterweight 33 slidably connected to the top of the inclined plate 34, a filter screen 32 fixedly connected to the top of the counterweight 33, a hose 35 fixedly connected to the outside of the mixing tank 5, a solenoid valve fixedly connected inside the hose 35, and a temporary storage box 36 fixedly connected to the end of the hose 35.

[0045] The power assembly includes a first motor 11 fixedly connected inside the sealing cover 6, a first transmission rod 12 connected to the end of the first motor 11, a reciprocating screw 13 fixedly connected to the end of the first transmission rod 12, a circular limiting plate fixedly connected to the end of the first transmission rod 12, a first positioning rod 16 fixedly connected to the outside of the circular limiting plate, a sealing plate 15 rotatably connected to the outside of the reciprocating screw 13, and a first stirring rod 14 fixedly connected to the outside of the first transmission rod 12.

[0046] Furthermore, the transmission assembly includes a fixed rod 17 fixedly connected to the sealing plate 15, a connecting rod 18 fixedly connected to the end of the fixed rod 17, a top rod 19 fixedly connected to the top of the connecting rod 18, a tension rod 20 rotatably connected to the end of the top rod 19, a limit rod 21 fixedly connected to the bottom of the mixing tank 5, the limit rod 21 rotatably connected to the tension rod 20, a steel rope 22 fixedly connected to the end of the tension rod 20, a first rack 23 fixedly connected to the end of the steel rope 22, a limit block 24 slidably connected to the outside of the first rack 23, the limit block 24 fixedly connected to the mixing tank 5, a first gear 26 meshing with the outside of the first rack 23, a spring 25 fixedly connected between the first rack 23 and the limit block 24, and a second transmission rod 27 fixedly connected to the end of the first gear 26.

[0047] After waste and water are fed into the mixing tank 5, the first motor 11 can be started, which drives the first transmission rod 12, which in turn drives the first stirring rod 14 to rotate, facilitating the stirring of the mixed solution. Simultaneously, the first heating block 9 is activated to heat the mixed solution to 30 degrees Celsius, allowing the water-soluble salts and organic matter inside the waste to more quickly dissolve with the water. The stirring action of the first stirring rod 14 further agitates the waste and water, ensuring a more thorough mixing of the water-soluble salts and organic matter. Simultaneously, the rotation of the first transmission rod 12 drives the filter screen 32 to rotate, which in turn drives the reciprocating screw 13 to rotate, causing the sealing plate 15 to slowly rise. The rising of the sealing plate 15 will cause the fixing rod 17 to rise, which in turn will cause the connecting rod 18 to rise, which in turn will cause the top rod 19 to rise. Simultaneously, the tension rod 20 will rotate along the limiting rod 21, which will cause the steel rope 22 to move, which will cause the first rack 23 to move, which will cause the spring 25 to compress, which will cause the first gear 26 to rotate, which will cause the second transmission rod 27 to rotate, which will cause the first screw 28 to rotate, which will cause the slider 30 and scraper 31 to move. After mixing is complete, the sealing plate 15 will rise into the mixing tank 5. At this time, the mixed solution will fall through the funnel 10. During the falling of the mixed solution, impurities inside the mixed solution will be filtered out by the filter screen 32. After all the mixed solution is discharged, the impurities will be... All impurities are intercepted. At this point, the reciprocating screw 13 continues to rotate, causing the sealing plate 15 to rise, which in turn causes the top rod 19 to rise, simultaneously moving the scraper 31. This allows the scraper 31 to contact the filter screen 32. Once the scraper 31 contacts the filter screen 32, the first transmission rod 12 continues to rotate, causing the filter screen 32 to rotate on the surface of the scraper 31. This allows the scraper 31 to scrape off impurities from the filter screen 32, allowing them to slide down the scraper 31 and separate from the filter screen 32. This reduces the amount of impurities accumulated and lowers the probability of the filter screen 32 becoming clogged. As the scraper 31 continues to move, it is held in place by the counterweight 33. Because the scraper 31 is soft, it... The pressure applied to the filter screen 32 will not be excessive, causing it to deform. Simultaneously, the push rod 19 will lift the inclined plate 34, raising the end where the two inclined plates 34 meet. This allows impurities sliding down the inclined plate 34 and scraper 31 to slide along the slope of the inclined plate 34, facilitating their entry into the temporary storage box 36 via the hose 35. When the inclined plate 34 is lifted, it will cause the counterweight 33 to rise, deforming the filter screen 32. After the inclined plate 34 is lifted, the first motor 11 will stop rotating, ensuring the inclined plate 34 continuously provides downward force for the impurities. This ensures continuous transport of impurities, further preventing their accumulation and reducing the probability of the filter screen 32 becoming clogged.This ensures that the subsequent filtration and purification capabilities will not be significantly reduced.

[0048] Reference Figure 4 , Figure 6 and Figure 7 The transfer assembly includes a liquid storage tank 37 slidably connected to the base 1. A second heating block 38 is fixedly connected to the bottom of the inner cavity of the liquid storage tank 37. A third transmission rod 39 is rotatably connected to the bottom of the liquid storage tank 37. A limit plate 40 is fixedly connected to the top of the third transmission rod 39. A second stirring rod 41 is fixedly connected to the outside of the third transmission rod 39. The third transmission rod 39 passes through the liquid storage tank 37 and the second heating block 38. A second gear 42 is fixedly connected to the bottom of the third transmission rod 39. A second rack 43 meshes with the outside of the second gear 42. A first sliding rod 46 is slidably connected to one side of the bottom of the liquid storage tank 37. A second screw 45 is rotatably connected to the other side. The first sliding rod 46 is fixedly connected to the inside of the base 1. One end of the second screw 45 is rotatably connected to the base 1. The other end is rotatably connected to a second motor 44. The second motor 44 is fixedly connected to the inside of the base 1.

[0049] Once the mixed solution inside the stirring tank 5 has completely entered the storage tank 37, the second motor 44 starts operating, driving the second screw 45 to rotate, which in turn moves the storage tank 37, causing the second gear 42 to rotate on the second rack 43, which in turn drives the third transmission rod 39 to rotate, which in turn drives the second stirring rod 41 to rotate, thus stirring the mixed solution inside the storage tank 37 and making the mixed solution rotate continuously, thereby making the mixing of the mixed solution more thorough. At the same time, the second screw 45 will continue to rotate, thereby conveying the storage tank 37 to the bottom of the distillation assembly.

[0050] Reference Figure 1 and Figure 2 The sliding assembly includes four second slide rods 47 fixedly connected to the second bracket 3. A top plate 48 is slidably connected to the outside of the second slide rods 47. Two third screws 49 are rotatably connected to the top of the second bracket 3. A fourth transmission rod 51 is fixedly connected to the top of the third screws 49. A third motor 50 is driven to the top of the fourth transmission rod 51. A belt 52 is driven to the outside of the two fourth transmission rods 51.

[0051] The distillation assembly includes a storage box 53 fixedly connected to the top plate 48. A discharge port 54 is fixedly connected to the bottom of the storage box 53. A solenoid valve is fixedly connected inside the discharge port 54. A flow pipe 55 is fixedly connected to the outside of the storage box 53. A plug 56 is fixedly connected to the end of the flow pipe 55.

[0052] Once the storage tank 37 is conveyed to the bottom of the distillation assembly, the third motor 50 starts, driving the third screw 49 to rotate, which in turn drives the belt 52 to rotate, which in turn drives the second third screw 49 to rotate, causing the top plate 48 to descend. This causes the stopper 56 to move towards the opening on the storage tank 37. When the stopper 56 is fully engaged with the opening on the storage tank 37, the second heating block 38 at the bottom of the storage tank 37 heats the mixed solution inside the storage tank 37, generating steam. As the steam appears, the organic matter in the mixed solution rises with it. The steam then flows along the flow path connected to the stopper 56. As the pipe 55 moves, the steam is cooled by the flow pipe 55 and enters the storage tank 53 for storage. After the mixed solution in the storage tank 37 is completely evaporated, the organic matter is also carried by the steam into the storage tank 53 for temporary storage. Water-soluble salts are stored in the storage tank 37 for easy collection by technicians and subsequent reuse. The distillate stored in the storage tank 53 can be discharged through the discharge port 54 at the bottom of the storage tank 53 for easy extraction of organic matter. This facilitates resource collection, reduces the possibility of waste pollution to the environment, and improves resource utilization.

[0053] Reference Figure 2 and Figure 3 The actuating assembly includes a first actuating block 57 fixedly connected to the bottom of the mixing tank 5, and a second actuating block 58 fixedly connected to the top of the liquid storage tank 37.

[0054] When the liquid storage tank 37 moves, it will drive the second lever 58 to move, which in turn will move the first lever 57 at the bottom of the mixing tank 5, causing the mixing tank 5 to rotate along the rotating shaft 4. This will cause the impurities inside the mixing tank 5 to be shaken, allowing them to slide more quickly along the inclined plate 34, facilitating the transfer of impurities and enabling them to be cleaned more quickly, thereby further improving work efficiency.

[0055] A method for the resource recovery treatment of hazardous waste containing water-soluble salts and organic matter, comprising the following steps:

[0056] S1: First, the waste is transported to the mixing tank 5 through the feed pipe 7 by the machine. Then, water is transported to the mixing tank 5 through the water inlet pipe 8. Then, the first motor 11 is started, which drives the first stirring rod 14 to rotate. At the same time, the first heating block 9 is started to increase the water temperature inside the mixing tank 5 to 30 degrees. While stirring, the sealing plate 15 will slowly rise. After stirring is completed, the sealing plate 15 will continue to rise. When the sealing plate 15 leaves the range of the funnel 10, the mixture inside the mixing tank 5 will be injected into the storage tank 37 through the filter screen 32.

[0057] S2: After completing the above S1 operation, the second motor 44 can be started to move the liquid storage tank 37 to the bottom of the distillation machine. Then, the third motor 50 is started to move the stopper 56 into the liquid storage tank 37 to seal it. Then, the second heating block 38 is started to distill the mixture in the liquid storage tank 37. When the distillation starts, the steam will enter the storage tank 53 through the flow pipe 55 and be stored. After the distillation continues for a period of time, the liquid in the liquid storage tank 37 will be completely evaporated. At this time, the organic matter in the mixture will enter the storage tank 53 with the steam, while water-soluble salts will remain in the liquid storage tank 37.

[0058] S3: After completing the above S2 operation, the water-soluble salt inside the storage tank 37 can be manually removed and stored for future use. Then, the solenoid valve can be opened to release the distillate stored in the storage tank 53 through the discharge port 54, and the distillate can be transported away through the transport tank to facilitate the extraction of organic matter by adding chemical substances.

[0059] Working principle:

[0060] When dilution and stirring of the mixed solution are required, the mixed solution can be fed into the mixing tank 5 through the feed pipe 7. Then, water can be injected into the mixing tank 5 through the water inlet pipe 8. After the waste and water are fed into the mixing tank 5, the first motor 11 can be started, which drives the first transmission rod 12, which in turn drives the first stirring rod 14 to rotate, thereby facilitating the stirring of the mixed solution. At the same time, the first heating block 9 is started to heat the mixed solution to 30 degrees Celsius, so that the water-soluble salts and organic matter in the waste can be more quickly fused with water. At the same time, the stirring of the first stirring rod 14 can agitate the waste and water, so that the water-soluble salts and organic matter in the waste can be more thoroughly fused with water.

[0061] Simultaneously, when the first transmission rod 12 rotates, it drives the filter screen 32 to rotate, which in turn drives the reciprocating screw 13 to rotate, thereby causing the sealing plate 15 to rise slowly. The rise of the sealing plate 15 drives the fixing rod 17 to rise, which in turn drives the connecting rod 18 to rise, which in turn drives the top rod 19 to rise. At the same time, it drives the tension rod 20 to rotate along the limit rod 21, which in turn drives the steel rope 22 to move, which in turn drives the first rack 23 to move, which in turn drives the spring 25 to compress, which in turn drives the first gear 26 to rotate, which in turn drives the second transmission rod 27 to rotate, which in turn drives the first screw 28 to rotate, which in turn drives the slider 30 and scraper 31 to move. After mixing is completed, the sealing plate 15 will rise into the mixing tank 5. At this time, the mixed solution will fall down the funnel 10. When the mixed solution falls, the impurities inside the mixed solution will be filtered out by the filter screen 32. After the mixed solution is completely discharged, all impurities will be intercepted. At this time, the reciprocating screw 13 will continue to rotate, thereby driving the sealing plate 15 to continue to rise, thereby driving the top rod 19 to rise, and at the same time driving the scraper 31 to continue to move, so that the scraper 31 contacts the filter screen 32. After the scraper 31 contacts the filter screen 32, the first transmission rod 12 will continue to rotate, so that the filter screen 32 rotates on the surface of the scraper 31, thereby causing the scraper 31 to scrape off the impurities on the filter screen 32, allowing the impurities to slide down along the scraper 31, thereby separating the impurities from the filter screen 32, thereby reducing the amount of impurities accumulated, and thus reducing the probability of the filter screen 32 being blocked by impurities. When the scraper 31 continues to move, the scraper 31 will be supported by the counterweight 33. Because the scraper 31 is soft, the scraper 31 will not apply excessive pressure to the filter screen 32, causing the filter screen 32 to deform.

[0062] Simultaneously, the top rod 19 lifts the inclined plate 34, raising the end where the two inclined plates 34 are in contact with each other. This allows impurities sliding down the inclined plate 34 and scraper 31 to slide along the slope of the inclined plate 34, facilitating their entry into the temporary storage box 36 through the hose 35. When the inclined plate 34 is lifted, it causes the counterweight 33 to rise, which in turn deforms the filter screen 32. When the inclined plate 34 is lifted, the first motor 11 stops rotating, allowing the inclined plate 34 to continuously provide downward force for the impurities. This ensures that the impurities are continuously transported away, further preventing their accumulation and reducing the probability of the filter screen 32 being clogged. This prevents a significant reduction in subsequent filtration and purification capacity.

[0063] Once the mixed solution inside the mixing tank 5 has completely entered the storage tank 37, the second motor 44 starts operating, driving the second screw 45 to rotate. This causes the storage tank 37 to move, causing the second gear 42 to rotate on the second rack 43, which in turn drives the third transmission rod 39 to rotate, thereby driving the second stirring rod 41 to rotate. The second stirring rod 41 then stirs the mixed solution inside the storage tank 37, ensuring continuous rotation and more thorough mixing. Simultaneously, the second screw 45 continues to rotate, transporting the storage tank 37 to the bottom of the distillation assembly. As the storage tank 37 moves, it drives the second lever 58 to move, which in turn moves the first lever 57 at the bottom of the mixing tank 5. This causes the mixing tank 5 to rotate along the shaft 4, agitating impurities inside the mixing tank 5 and allowing them to slide more quickly along the inclined plate 34. This facilitates the transfer and removal of impurities, further improving work efficiency.

[0064] Once the storage tank 37 is conveyed to the bottom of the distillation assembly, the third motor 50 starts, driving the third screw 49 to rotate, which in turn drives the belt 52 to rotate, which in turn drives the second third screw 49 to rotate, causing the top plate 48 to descend. This causes the stopper 56 to move towards the opening on the storage tank 37. When the stopper 56 is fully engaged with the opening on the storage tank 37, the second heating block 38 at the bottom of the storage tank 37 heats the mixed solution inside the storage tank 37, generating steam. As the steam appears, the organic matter in the mixed solution rises with it. The steam then flows along the flow path connected to the stopper 56. As the pipe 55 moves, the steam is cooled by the flow pipe 55 and enters the storage tank 53 for storage. After the mixed solution in the storage tank 37 is completely evaporated, the organic matter is also carried by the steam into the storage tank 53 for temporary storage. Water-soluble salts are stored in the storage tank 37 for easy collection by technicians and subsequent reuse. The distillate stored in the storage tank 53 can be discharged through the discharge port 54 at the bottom of the storage tank 53 for easy extraction of organic matter. This facilitates resource collection, reduces the possibility of waste pollution to the environment, and improves resource utilization.

Claims

1. A device for the resource recovery treatment of hazardous waste containing water-soluble salts and organic matter, comprising a base (1), characterized in that: The base (1) has two first brackets (2) fixedly connected to the top left side, and two second brackets (3) fixedly connected to the top right side. The first bracket (2) has a rotating shaft (4) fixedly connected inside, and the rotating shaft (4) has a stirring tank (5) rotatably connected inside. The stirring tank (5) has a sealing cover (6) fixedly connected to the top, and the sealing cover (6) has a feed pipe (7) and a water inlet pipe (8) fixedly connected inside. The stirring tank (5) has a first heating block (9) fixedly connected inside, and the stirring tank (5) has a funnel (10) fixedly connected to the top. The funnel (10) has openings on both sides. The system is equipped with a chute, with two silicone pads fixedly connected inside the chute. The bottom of the mixing tank (5) is connected to a toggle assembly, and the inside of the sealing cover (6) is fixedly connected to a power assembly. The bottom of the mixing tank (5) is equipped with a transmission assembly, and the bottom of the inner cavity of the mixing tank (5) is equipped with a cleaning assembly. The base (1) is equipped with a transfer assembly, the top of the second support (3) is equipped with a sliding assembly, and the inside of the second support (3) is equipped with a distillation assembly. The transmission assembly is connected to the power assembly, the cleaning assembly is connected to the power assembly through the transmission assembly, and the sliding assembly is connected to the distillation assembly. The cleaning assembly includes a second transmission rod (27) rotatably connected to the mixing tank (5), a first screw (28) fixedly connected to the end of the second transmission rod (27), a second positioning rod (29) fixedly connected inside the mixing tank (5), a slider (30) and a scraper (31) rotatably connected to the outside of the first screw (28), the slider (30) and the scraper (31) fixedly connected, the second positioning rod (29) passes through the slider (30) and the scraper (31) and slides with the slider (30) and the scraper (31), an inclined plate (34) rotatably connected inside the mixing tank (5), a counterweight (33) slidably connected to the top of the inclined plate (34), a filter screen (32) fixedly connected to the top of the counterweight (33), the filter screen (32) fixedly connected to the first transmission rod (12), a hose (35) fixedly connected to the outside of the mixing tank (5) at the end, a solenoid valve fixedly connected inside the hose (35), and a temporary storage box (36) fixedly connected to the end of the hose (35).

2. The hazardous waste resource recovery treatment device containing water-soluble salts and organic matter according to claim 1, characterized in that: The power assembly includes a first motor (11) fixedly connected inside the sealing cover (6), a first transmission rod (12) being driven to the end of the first motor (11), a reciprocating screw (13) being fixedly connected to the end of the first transmission rod (12), a circular limiting plate being fixedly connected to the end of the first transmission rod (12), a first positioning rod (16) being fixedly connected to the outside of the circular limiting plate, a sealing plate (15) being rotatably connected to the outside of the reciprocating screw (13), and a first stirring rod (14) being fixedly connected to the outside of the first transmission rod (12).

3. The hazardous waste resource recovery treatment device containing water-soluble salts and organic matter according to claim 2, characterized in that: The transmission assembly includes a fixed rod (17) fixedly connected to the sealing plate (15), a connecting rod (18) fixedly connected to the end of the fixed rod (17), a top rod (19) fixedly connected to the top of the connecting rod (18), a tension rod (20) rotatably connected to the end of the top rod (19), a limit rod (21) fixedly connected to the bottom of the mixing tank (5), the limit rod (21) rotatably connected to the tension rod (20), a steel rope (22) fixedly connected to the end of the tension rod (20), a first rack (23) fixedly connected to the end of the steel rope (22), a limit block (24) slidably connected to the outside of the first rack (23), the limit block (24) fixedly connected to the mixing tank (5), a first gear (26) meshing with the outside of the first rack (23), a spring (25) fixedly connected between the first rack (23) and the limit block (24), and a second transmission rod (27) fixedly connected to the end of the first gear (26).

4. The hazardous waste resource recovery treatment device containing water-soluble salts and organic matter according to claim 1, characterized in that: The transfer assembly includes a liquid storage tank (37) slidably connected to the base (1). A second heating block (38) is fixedly connected to the bottom of the inner cavity of the liquid storage tank (37). A third transmission rod (39) is rotatably connected to the bottom of the liquid storage tank (37). A limit plate (40) is fixedly connected to the top of the third transmission rod (39). A second stirring rod (41) is fixedly connected to the outside of the third transmission rod (39). The third transmission rod (39) passes through the liquid storage tank (37) and the second heating block (38). A second gear (42) is fixedly connected to the bottom of the third transmission rod (39). A second rack (43) meshes with the outside of the second gear (42). A first slide rod (46) is slidably connected to one side of the bottom of the liquid storage tank (37). A second screw (45) is rotatably connected to the other side. The first slide rod (46) is fixedly connected to the inside of the base (1). One end of the second screw (45) is rotatably connected to the base (1). The other end is rotatably connected to a second motor (44). The second motor (44) is fixedly connected to the inside of the base (1).

5. The hazardous waste resource recovery treatment device containing water-soluble salts and organic matter according to claim 1, characterized in that: The sliding assembly includes four second slide rods (47) fixedly connected to the second bracket (3). A top plate (48) is slidably connected to the outer side of the second slide rods (47). Two third screws (49) are rotatably connected to the top of the second bracket (3). A fourth transmission rod (51) is fixedly connected to the top of the third screw (49). A third motor (50) is driven to the top of the fourth transmission rod (51). A belt (52) is driven to the outer side of the two fourth transmission rods (51).

6. The hazardous waste resource recovery treatment device containing water-soluble salts and organic matter according to claim 5, characterized in that: The distillation assembly includes a storage box (53) fixedly connected to the top plate (48), a discharge port (54) fixedly connected to the bottom of the storage box (53), a solenoid valve fixedly connected inside the discharge port (54), a flow tube (55) fixedly connected to the outside of the storage box (53), and a plug (56) fixedly connected to the end of the flow tube (55).

7. A hazardous waste resource recovery treatment device containing water-soluble salts and organic matter according to claim 6, characterized in that: The actuating assembly includes a first actuating block (57) fixedly connected to the bottom of the mixing tank (5), and the actuating assembly also includes a second actuating block (58) fixedly connected to the top of the liquid storage tank (37).

8. A method for the resource-based treatment of hazardous waste containing water-soluble salts and organic matter, characterized in that: This method is based on a hazardous waste resource recovery treatment device containing water-soluble salts and organic matter as described in any one of claims 1-7, and the steps of the method are as follows: S1: First, the waste is transported to the mixing tank (5) through the feed pipe (7) by the machine. Then, water is transported to the mixing tank (5) through the water inlet pipe (8). Then, the first motor (11) is started, which drives the first stirring rod (14) to rotate. At the same time, the first heating block (9) is started to increase the water temperature inside the mixing tank (5) to the slider (30) degree. While stirring, the sealing plate (15) will slowly rise. When the stirring is completed, the sealing plate (15) will continue to rise. When the sealing plate (15) leaves the range of the funnel (10), the mixture inside the mixing tank (5) will be injected into the storage tank (37) through the filter screen (32). S2: After completing the above S1 operation, start the second motor (44) to move the liquid storage tank (37) to the bottom of the distillation machine. Then start the third motor (50) to move the stopper (56) into the liquid storage tank (37) to seal the liquid storage tank (37). Then start the second heating block (38) to distill the mixture in the liquid storage tank (37). When the distillation starts, the steam will enter the storage tank (53) through the flow pipe (55) and be stored. When the distillation continues for a period of time, the liquid in the liquid storage tank (37) will be completely evaporated. At this time, the organic matter in the mixture will enter the storage tank (53) with the steam, and water-soluble salt will be left in the liquid storage tank (37). S3: After completing the above S2 operation, the water-soluble salt inside the storage tank (37) is manually removed and stored for future use. Then, the solenoid valve is opened to release the distillate stored in the storage tank (53) through the discharge port (54) and the distillate is transported away by the transport tank to facilitate the extraction of organic matter by adding chemical substances.