Recycling box with waste lead-acid battery electrolyte treatment structure
By designing a recycling tank with a waste lead-acid battery electrolyte treatment structure, and utilizing components such as air curtains, crushing rollers, filter plates, and centrifugal stirring blades, efficient solid-liquid separation and full recovery of electrolyte from waste lead-acid batteries are achieved, solving the problem of insufficient separation in existing technologies and improving recycling efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- ANHUI NANDU HUABO NEW MATERIAL TECH CO LTD
- Filing Date
- 2026-04-29
- Publication Date
- 2026-06-09
AI Technical Summary
In existing technologies, during the crushing and collection process of waste lead-acid batteries, the solid fragments are not sufficiently separated from the electrolyte, resulting in a large amount of electrolyte residue, which leads to waste and makes efficient recycling difficult.
A recycling box with a waste lead-acid battery electrolyte treatment structure was designed, including a crushing unit and a treatment unit. Airflow is generated through an air curtain nozzle to prevent waste gas leakage. The crushing roller separates solid fragments from the electrolyte. The filter plate vibrates to separate the electrolyte. The centrifugal stirring blade purifies the electrolyte and distills it through a distillation chamber.
It achieves efficient separation and recycling of solid fragments and electrolyte, ensuring full treatment of electrolyte, reducing waste, and improving recycling efficiency.
Smart Images

Figure CN122177991A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of waste lead-acid battery recycling technology, specifically to a recycling box with a waste lead-acid battery electrolyte treatment structure. Background Technology
[0002] Waste lead-acid batteries refer to lead-acid batteries that have been discarded after use. They are mainly composed of metallic lead, lead oxide, sulfuric acid electrolyte, and plastic casing, and are widely used in various devices such as electric vehicles, automobiles, motorcycles, communication base stations, UPS power supplies, and power systems. In order to achieve the goals of environmental protection and resource recycling, waste batteries are usually recycled. For reference, see the relevant patent CN118281392B. Its essence is to use a casting mechanism to quickly remove sodium salt floating on the surface of lead liquid, and drive the tipping plate to rotate in the recycling hopper, spreading the accumulated sodium salt evenly in the recycling hopper to ensure efficient collection of sodium salt.
[0003] To illustrate the process of collecting waste lead-acid battery electrolyte: Although solid fragments and electrolyte are collected separately during the battery crushing and collection process, the separation is insufficient. A significant amount of electrolyte remains on the surface of the solid fragments, hindering subsequent processing and resulting in electrolyte waste. Therefore, in addition to ensuring thorough separation of solid fragments and electrolyte, further electrolyte processing is necessary to ensure efficient recovery. To address this, we offer a recycling box equipped with a waste lead-acid battery electrolyte processing structure to solve these problems. Summary of the Invention
[0004] The purpose of this invention is to provide a recycling box with a waste lead-acid battery electrolyte treatment structure to solve the problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is as follows:
[0006] A recycling bin with a waste lead-acid battery electrolyte treatment structure includes a storage bin. The input end of the storage bin is equipped with a crushing unit that separates solid residue from the electrolyte. The bottom surface of the crushing unit is equipped with a treatment unit that filters and distills the electrolyte for purification.
[0007] The crushing unit includes a discharge bin fixedly installed on the side of the storage bin for drying and fixing fragments, a sorting bin fixedly installed on the top surface of the discharge bin for separating solid fragments from electrolyte, and a crushing bin fixedly installed at one end of the top surface of the sorting bin for crushing waste lithium batteries.
[0008] The processing unit includes a filtrate chamber fixedly installed at one end of the bottom surface of the sorting chamber for purifying the electrolyte, and a distillation chamber located at the output end of the filtrate chamber and fixedly installed inside the discharge chamber for distilling and purifying the electrolyte.
[0009] A further improvement of the technical solution of the present invention is that: two crushing rollers with opposite directions are rotatably connected inside the crushing chamber, an auxiliary block is fixedly connected to the inner side of the crushing chamber, a drive gear is fixedly connected to the side of the crushing roller, and a chain is movably connected to the outer surface of the drive gear.
[0010] A further improvement of the technical solution of the present invention is that: an air curtain nozzle is fixedly connected to one end of the inner top surface of the crushing chamber, a fan is fixedly connected to the top surface of the sorting chamber, and the air curtain nozzle is fixedly connected to the output end of the fan.
[0011] A further improvement of the technical solution of the present invention is that: a filter plate is movably connected to one end of the internal part of the sorting chamber, a tension spring is fixedly connected to one end of the bottom surface of the filter plate, the tension spring is fixedly connected to the internal bottom surface of the sorting chamber, a drive roller is rotatably connected to the internal bottom surface of the sorting chamber, the drive roller is movably connected to the bottom surface of the filter plate, and a chain is movably connected to one end of the outer surface of the drive roller.
[0012] A further improvement of the technical solution of the present invention is that: a baffle is fixedly connected to the top surface of the filter plate, and an exhaust port is fixedly connected to one end of the inner top surface of the sorting chamber, and the exhaust port is fixedly connected to the output end of the blower.
[0013] A further improvement of the technical solution of the present invention is that a heating wire is fixedly connected to one end of the interior of the sorting chamber, and a guide plate is fixedly connected to the bottom surface of the interior of the sorting chamber.
[0014] A further improvement of the technical solution of the present invention is that: a centrifugal chamber is fixedly connected inside the filtrate chamber, a centrifugal stirring blade is rotatably connected inside the centrifugal chamber, a fixing rod is fixedly connected to the top surface inside the centrifugal chamber, and a dosing port is fixedly connected to the side of the filtrate chamber.
[0015] A further improvement of the technical solution of the present invention is that: one end of the bottom surface of the centrifugal stirring blade penetrates the bottom surface of the centrifugal chamber and is fixedly connected to a stirring plate; the output end of the filtrate chamber is fixedly connected to a water outlet pipe; and a water pump is fixedly connected to the side of the water outlet pipe.
[0016] A further improvement of the technical solution of the present invention is that: the water pump is fixedly connected to the input end of the distillation chamber, a guide plate is fixedly connected to the top surface of the distillation chamber, a distillation gas outlet pipe is fixedly connected inside the top surface of the guide plate, and a drain outlet is fixedly connected inside the bottom surface of the distillation chamber.
[0017] Due to the adoption of the above technical solution, the technical progress achieved by this invention compared to the prior art is as follows:
[0018] 1. The present invention provides a recycling box with a waste lead-acid battery electrolyte treatment structure. By inserting the material into the side opening of the crushing chamber, the blower provides airflow to the air curtain nozzle. The air curtain nozzle generates an air curtain inside the crushing chamber, preventing the exhaust gas inside the equipment from leaking out, and at the same time guiding the electrolyte splashed during battery crushing to flow into the sorting chamber.
[0019] The battery, once placed inside the crushing chamber, slides down the ramp of the auxiliary block into the surface of two relatively moving crushing rollers. It is then pulled and torn apart by the crushing rollers, and the solid fragments and electrolyte are further transferred to the sorting chamber located at its bottom. The auxiliary block, which meshes with the crushing rollers, peels off the debris stuck in the gaps between the crushing rollers, ensuring the efficiency of the equipment.
[0020] 2. This invention provides a recycling box with a waste lead-acid battery electrolyte treatment structure. The crushed battery is divided into two parts: solid fragments and electrolyte. The solid fragments accumulate on the top surface of the filter plate and are blocked by the baffle. The electrolyte flows through the filter plate into its bottom output end. When the crushing roller rotates, the chain drives the drive roller to rotate. The arc-shaped block set on the surface of the drive roller lifts the filter plate. Then the tension spring resets the filter plate, causing the solid fragments on the surface of the filter plate to vibrate and move to the other output end of the sorting bin as the filter plate vibrates.
[0021] As the filter plate causes the fragments to vibrate, the electrolyte adhering to the surface of the fragments will pass through the filter plate and flow into the output terminal set on its bottom surface. At the same time, the exhaust port will guide the airflow to the top surface of the filter plate to ensure that the electrolyte on the surface of the solid fragments can be fully separated.
[0022] Solid fragments fall into the heating wire, where they are heated to remove the electrolyte from their surface, facilitating subsequent processing. The fragments are then fixed and fall onto the top surface of the guide plate, where they are guided into the storage compartment for storage.
[0023] 3. The present invention provides a recycling box with a waste lead-acid battery electrolyte treatment structure. The electrolyte falls into the centrifugal chamber. The centrifugal stirring blade is driven by the motor on the top of the fixed rod to rotate, which helps the electrolyte pass through the centrifugal chamber and fall into the bottom of the filtrate chamber. When the liquid inside the centrifugal chamber accumulates to a certain level, the coagulating agent is added into the filtrate chamber through the dosing port, and the stirring plate ensures that the liquid and the agent are evenly combined.
[0024] The water pump transfers the liquid into the distillation chamber, where the distillation chamber transfers heat to the liquid to complete the distillation process. The distillation waste remaining inside the distillation chamber can be discharged by opening the drain port and further treated in an environmentally friendly manner. Attached Figure Description
[0025] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0026] Figure 2 This is a schematic diagram of the structure of the crushing unit of the present invention;
[0027] Figure 3 This is a schematic diagram of the component structure of the crushing unit of the present invention;
[0028] Figure 4 This is a schematic diagram of another component of the crushing unit of the present invention;
[0029] Figure 5 This is a schematic diagram of the processing unit of the present invention;
[0030] Figure 6 This is a schematic diagram of the internal structure of the processing unit of the present invention;
[0031] Figure 7 This is a schematic diagram of the component structure of the processing unit of the present invention.
[0032] In the diagram: 1. Storage bin; 2. Crushing unit; 21. Discharge bin; 22. Sorting bin; 23. Crushing bin; 24. Fan; 25. Air curtain nozzle; 26. Crushing roller; 27. Auxiliary block; 28. Drive gear; 29. Chain; 210. Filter plate; 211. Drive roller; 212. Tension spring; 213. Baffle; 214. Exhaust outlet; 215. Guide plate; 216. Heating wire; 3. Processing unit; 31. Filtrate bin; 32. Fixing rod; 33. Centrifugal stirring blade; 34. Dosing port; 35. Centrifugal bin; 36. Stirring plate; 37. Water pump; 38. Water outlet pipe; 39. Distillation exhaust pipe; 310. Distillation bin; 311. Sewage outlet; 312. Guide plate. Detailed Implementation
[0033] The present invention will be further described in detail below with reference to embodiments:
[0034] Example 1: As Figure 1-7 As shown, the present invention provides a recycling bin with a waste lead-acid battery electrolyte treatment structure, including a storage bin 1. The input end of the storage bin 1 is provided with a crushing unit 2 for separating solid fragments from electrolyte. The bottom surface of the crushing unit 2 is provided with a treatment unit 3 for filtering and distilling the electrolyte. The crushing unit 2 includes a discharge bin 21 fixedly installed on the side of the storage bin 1 for drying and fixing fragments, a sorting bin 22 fixedly installed on the top surface of the discharge bin 21 for separating solid fragments from electrolyte, and a crushing bin 23 fixedly installed on one end of the top surface of the sorting bin 22 for crushing waste lithium batteries.
[0035] The crushing chamber 23 has two crushing rollers 26 rotating inside, which are opposite to each other. An auxiliary block 27 is fixedly connected to the inner side of the crushing chamber 23. A drive gear 28 is fixedly connected to the side of the crushing roller 26. A chain 29 is movably connected to the outer surface of the drive gear 28. An air curtain nozzle 25 is fixedly connected to one end of the inner top surface of the crushing chamber 23. A blower 24 is fixedly connected to the top surface of the sorting chamber 22. The air curtain nozzle 25 is fixedly connected to the output end of the blower 24.
[0036] The top surface of the sorting chamber 22 is fixedly connected to two fan 24 outputs, which are respectively connected to the air curtain nozzle 25 and the exhaust port 214. The crushing chamber 23 has two crushing rollers 26 arranged inside, which are opposite to each other and mesh with each other. The crushing chamber 23 has two auxiliary blocks 27 fixedly connected inside, which mesh with the other end of the crushing rollers 26 respectively. The drive gears 28 fixedly connected to the sides of the two auxiliary blocks 27 mesh with each other and drive the drive rollers 211 to rotate through the chain 29.
[0037] In this embodiment, by inserting the material into the side opening of the crushing chamber 23, the blower 24 will provide airflow to the air curtain nozzle 25, and an air curtain will be generated inside the crushing chamber 23 through the air curtain nozzle 25 to prevent the exhaust gas inside the equipment from leaking out, while guiding the electrolyte splashed when the battery is crushed to flow into the interior of the sorting chamber 22.
[0038] The battery, once placed inside the crushing chamber 23, slides down the ramp of the auxiliary block 27 onto the surface of two moving crushing rollers 26. It is then pulled and torn apart by the crushing rollers 26, and the solid fragments and electrolyte are further transferred to the sorting chamber 22 located at its bottom. The auxiliary block 27, which meshes with the crushing rollers 26, will peel off the debris stuck in the gaps of the crushing rollers 26, ensuring the working efficiency of the equipment.
[0039] Example 2: Figure 1-7 As shown, based on Embodiment 1, the present invention provides a technical solution: Preferably, a filter plate 210 is movably connected to one end of the internal part of the sorting chamber 22, a tension spring 212 is fixedly connected to one end of the bottom surface of the filter plate 210, the tension spring 212 is fixedly connected to the internal bottom surface of the sorting chamber 22, a drive roller 211 is rotatably connected to the internal bottom surface of the sorting chamber 22, the drive roller 211 is movably connected to the bottom surface of the filter plate 210, a chain 29 is movably connected to one end of the outer surface of the drive roller 211, a baffle 213 is fixedly connected to the top surface of the filter plate 210, an exhaust port 214 is fixedly connected to one end of the internal top surface of the sorting chamber 22, the exhaust port 214 is fixedly connected to the output end of the blower 24, a heating wire 216 is fixedly connected to one end of the internal part of the sorting chamber 22, and a guide plate 215 is fixedly connected to the internal bottom surface of the sorting chamber 22;
[0040] The bottom surface of the sorting chamber 22 has two output ends. The filter plate 210 is located on the top surface of one of the output ends and one end is fixed inside the sorting chamber 22 by a hinge. Liquid can pass through the inside of the filter plate 210. One end of the filter plate 210 is pulled by the tension spring 212 to make it tilted. An arc-shaped block is fixedly connected to one end of the outer surface of the drive roller 211, which can drive the filter plate 210 to rise as it rotates.
[0041] The discharge bin 21 is located at the other output end of the sorting bin 22 and is equipped with insulation material. The distillation bin 310 is located inside the discharge bin 21 and at the axis of the heating wire 216. It does not directly contact the heating wire 216. The fixed debris will fall onto the top surface of the guide plate 215 through the gap between the heating wire 216 and the distillation bin 310.
[0042] In this embodiment, the broken battery is divided into two parts: solid fragments and electrolyte. The solid fragments accumulate on the top surface of the filter plate 210 and are blocked by the baffle 213. The electrolyte flows through the filter plate 210 and into its bottom output end. When the crushing roller 26 rotates, the chain 29 drives the drive roller 211 to rotate. The arc-shaped block on the surface of the drive roller 211 lifts the filter plate 210. Then the tension spring 212 resets the filter plate 210, causing the solid fragments on the surface of the filter plate 210 to vibrate and move to the other output end of the sorting chamber 22 as the filter plate 210 vibrates.
[0043] As the filter plate 210 causes the fragments to vibrate, the electrolyte adhering to the surface of the fragments will flow through the filter plate 210 into the output end set on its bottom surface. At the same time, the exhaust port 214 will guide the airflow to the top surface of the filter plate 210 to ensure that the electrolyte on the surface of the solid fragments can be fully separated.
[0044] Solid fragments fall into the interior of heating wire 216, where heating further removes the electrolyte from their surface, facilitating subsequent processing. The fragments then fall onto the top surface of guide plate 215 and are guided by guide plate 215 into the interior of storage chamber 1 for storage.
[0045] Example 3: As Figure 1-7As shown, based on Embodiment 1, the present invention provides a technical solution: Preferably, the processing unit 3 includes a filtrate chamber 31 fixedly installed at one end of the bottom surface of the sorting chamber 22 for purifying the electrolyte, a distillation chamber 310 disposed at the output end of the filtrate chamber 31 and fixedly installed inside the discharge chamber 21 for distilling and purifying the electrolyte, a centrifuge chamber 35 fixedly connected inside the filtrate chamber 31, a centrifugal stirring blade 33 rotatably connected inside the centrifuge chamber 35, a fixing rod 32 fixedly connected to the top surface inside the centrifuge chamber 35, a dosing port 34 fixedly connected to the side of the filtrate chamber 31, a stirring plate 36 fixedly connected to one end of the bottom surface of the centrifuge stirring blade 33 penetrating the bottom surface of the centrifuge chamber 35, and an outlet pipe 38 fixedly connected to the output end of the filtrate chamber 31, and a water pump 37 fixedly connected to the side of the outlet pipe 38;
[0046] The interior of the filtrate chamber 31 is divided into two areas by the centrifuge chamber 35. A motor is fixedly connected to the top surface of the fixing rod 32 and is protected by a protective cover set on the fixing rod 32. The top surface of the dosing port 34 is provided with an openable and closable top cover. The stirring plate 36 is attached to the interior of the filtrate chamber 31 and can stir the electrolyte inside the filtrate chamber 31.
[0047] A water pump 37 is fixedly connected to the input end of a distillation chamber 310. A guide plate 312 is fixedly connected to the top surface of the distillation chamber 310. A distillation outlet pipe 39 is fixedly connected inside the top surface of the guide plate 312. A drain outlet 311 is fixedly connected inside the bottom surface of the distillation chamber 310.
[0048] The distillation chamber 310 has good thermal conductivity, which can conduct the heat of the heating wire 216 to the liquid inside it. The drain port 311 is equipped with an openable baffle. The distillation gas outlet pipe 39 on the top surface of the guide plate 312 can transfer the distilled gas inside the distillation chamber 310 to the external condenser.
[0049] In this embodiment, the electrolyte falls into the centrifuge chamber 35, and the centrifuge stirring blade 33 is driven to rotate by the motor on the top surface of the fixed rod 32, which helps the electrolyte to pass through the centrifuge chamber 35 and fall into the bottom surface of the filtrate chamber 31. When the liquid inside the centrifuge chamber 35 accumulates to a certain level, the coagulating agent is added into the filtrate chamber 31 through the dosing port 34, and the stirring plate 36 ensures that the liquid and the agent are evenly combined.
[0050] Pump 37 transfers liquid into the interior of distillation chamber 310. At this time, distillation chamber 310 transfers heat to the liquid to complete the distillation operation. Distillation waste remaining in distillation chamber 310 can be discharged by opening drain port 311 and further treated in an environmentally friendly manner.
[0051] The working principle of this recycling box with a waste lead-acid battery electrolyte treatment structure will be explained in detail below.
[0052] like Figure 1-7 As shown, by inserting the material into the side opening of the crushing chamber 23, the blower 24 will provide airflow to the air curtain nozzle 25, and an air curtain will be generated inside the crushing chamber 23 through the air curtain nozzle 25 to prevent the exhaust gas inside the equipment from leaking out, while guiding the electrolyte splashed when the battery is crushed to flow into the interior of the sorting chamber 22.
[0053] The battery, once placed inside the crushing chamber 23, slides down the ramp of the auxiliary block 27 onto the surface of two moving crushing rollers 26. It is then pulled and torn apart by the crushing rollers 26, and the solid fragments and electrolyte are further transferred to the sorting chamber 22 located at its bottom. The auxiliary block 27, which meshes with the crushing rollers 26, will peel off the debris stuck in the gaps of the crushing rollers 26, ensuring the working efficiency of the equipment.
[0054] The broken battery will be divided into two parts: solid fragments and electrolyte. The solid fragments will accumulate on the top surface of the filter plate 210 and be blocked by the baffle 213. The electrolyte will flow through the filter plate 210 into its bottom output end. When the crushing roller 26 rotates, the chain 29 will drive the drive roller 211 to rotate. The arc-shaped block set on the surface of the drive roller 211 will lift the filter plate 210. Then the tension spring 212 will reset the filter plate 210, causing the solid fragments on the surface of the filter plate 210 to vibrate and move to the other output end of the sorting chamber 22 as the filter plate 210 vibrates.
[0055] As the filter plate 210 causes the fragments to vibrate, the electrolyte adhering to the surface of the fragments will flow through the filter plate 210 into the output end set on its bottom surface. At the same time, the exhaust port 214 will guide the airflow to the top surface of the filter plate 210 to ensure that the electrolyte on the surface of the solid fragments can be fully separated.
[0056] Solid fragments fall into the interior of heating wire 216, where heating further removes the electrolyte from their surface, facilitating subsequent processing of the solid fragments. The fragments are then fixed and fall onto the top surface of guide plate 215, where they are guided into the storage chamber 1 for storage.
[0057] Electrolyte falls into the centrifugal chamber 35. The centrifugal stirring blade 33 is rotated by the motor on the top surface of the fixed rod 32, which helps the electrolyte to pass through the centrifugal chamber 35 and fall into the bottom surface of the filtrate chamber 31. When the liquid inside the centrifugal chamber 35 accumulates to a certain level, coagulation agent is added into the filtrate chamber 31 through the dosing port 34, and the stirring plate 36 ensures that the liquid and agent are evenly combined.
[0058] Pump 37 transfers liquid into the interior of distillation chamber 310. At this time, distillation chamber 310 transfers heat to the liquid to complete the distillation operation. Distillation waste remaining in distillation chamber 310 can be discharged by opening drain port 311 and further treated in a harmless manner.
[0059] In summary, the crushing unit 2 can crush the battery and collect the solid fragments and electrolyte separately. The processing unit 3 will perform preliminary processing on the electrolyte. The crushing unit 2 can dry the solid fragments and transfer the drying heat to the interior of the processing unit 3. Through the cooperation of the crushing unit 2 and the processing unit 3, the electrolyte can be distilled, thus achieving electrolyte recovery while crushing the battery.
[0060] The present invention has been described in detail above. However, modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, any modifications or improvements made without departing from the spirit of the present invention are within the scope of protection of the present invention.
Claims
1. A recycling bin with a waste lead-acid battery electrolyte treatment structure, including a storage compartment (1), characterized in that: The storage chamber (1) is provided with a crushing unit (2) for separating solid residue from electrolyte at its input end, and a processing unit (3) for filtering and purifying electrolyte is provided on the bottom surface of the crushing unit (2). The crushing unit (2) includes a discharge bin (21) fixedly installed on the side of the storage bin (1) for drying and fixing fragments, a sorting bin (22) fixedly installed on the top surface of the discharge bin (21) for separating solid fragments from electrolyte, and a crushing bin (23) fixedly installed on one end of the top surface of the sorting bin (22) for crushing waste lithium batteries. The processing unit (3) includes a filtrate chamber (31) fixedly installed at one end of the bottom surface of the sorting chamber (22) for purifying the electrolyte, and a distillation chamber (310) set at the output end of the filtrate chamber (31) and fixedly installed inside the discharge chamber (21) for distilling and purifying the electrolyte.
2. The recycling box with a waste lead-acid battery electrolyte treatment structure according to claim 1, characterized in that: The crushing chamber (23) has two crushing rollers (26) rotatably connected inside. An auxiliary block (27) is fixedly connected to the inner side of the crushing chamber (23). A drive gear (28) is fixedly connected to the side of the crushing roller (26). A chain (29) is movably connected to the outer surface of the drive gear (28).
3. The recycling box with a waste lead-acid battery electrolyte treatment structure according to claim 2, characterized in that: An air curtain nozzle (25) is fixedly connected to one end of the inner top surface of the crushing chamber (23), and a fan (24) is fixedly connected to the top surface of the sorting chamber (22). The air curtain nozzle (25) is fixedly connected to the output end of the fan (24).
4. The recycling box with a waste lead-acid battery electrolyte treatment structure according to claim 3, characterized in that: A filter plate (210) is movably connected to one end of the sorting chamber (22). A tension spring (212) is fixedly connected to one end of the bottom surface of the filter plate (210). The tension spring (212) is fixedly connected to the bottom surface of the sorting chamber (22). A drive roller (211) is rotatably connected to the bottom surface of the sorting chamber (22). The drive roller (211) is movably connected to the bottom surface of the filter plate (210). The chain (29) is movably connected to one end of the outer surface of the drive roller (211).
5. The recycling box with a waste lead-acid battery electrolyte treatment structure according to claim 4, characterized in that: A baffle (213) is fixedly connected to the top surface of the filter plate (210), and an exhaust port (214) is fixedly connected to one end of the inner top surface of the sorting bin (22). The exhaust port (214) is fixedly connected to the output end of the fan (24).
6. The recycling box with a waste lead-acid battery electrolyte treatment structure according to claim 5, characterized in that: A heating wire (216) is fixedly connected to one end of the sorting chamber (22), and a guide plate (215) is fixedly connected to the bottom surface of the sorting chamber (22).
7. The recycling box with a waste lead-acid battery electrolyte treatment structure according to claim 6, characterized in that: The filtrate chamber (31) is fixedly connected to a centrifuge chamber (35), the centrifuge chamber (35) is rotatably connected to a centrifuge stirring blade (33), the top surface of the centrifuge chamber (35) is fixedly connected to a fixing rod (32), and the side of the filtrate chamber (31) is fixedly connected to a dosing port (34).
8. The recycling box with a waste lead-acid battery electrolyte treatment structure according to claim 7, characterized in that: One end of the bottom surface of the centrifugal stirring blade (33) penetrates the bottom surface of the centrifugal chamber (35) and is fixedly connected to the stirring plate (36). The output end of the filtrate chamber (31) is fixedly connected to the water outlet pipe (38), and the side of the water outlet pipe (38) is fixedly connected to the water pump (37).
9. The recycling box with a waste lead-acid battery electrolyte treatment structure according to claim 8, characterized in that: The water pump (37) is fixedly connected to the input end of the distillation chamber (310). A guide plate (312) is fixedly connected to the top surface of the distillation chamber (310). A distillation outlet pipe (39) is fixedly connected inside the top surface of the guide plate (312). A drain outlet (311) is fixedly connected inside the bottom surface of the distillation chamber (310).