Waste recovery device and method for ton bag production

By designing a waste recycling device for ton bag production, and utilizing rotating pressure bars and hot air cleaning and drying technology, the problem of poor raw material filtration in ton bag production was solved, achieving efficient impurity removal and cost reduction.

CN121625331APending Publication Date: 2026-03-10XUZHOU YIHUI PACKAGING TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-31
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

In the existing technology, the raw material filtration effect is poor during the production of ton bags, making it difficult to remove impurities, which affects product quality and increases production costs.

Method used

A waste recycling device for ton bag production was designed, including a recycling treatment pool, a disassembly and cleaning mechanism, a separation and drying mechanism, and an air guiding and water removal mechanism. The device uses a rotating pressure bar to disassemble the clumped waste, and uses hot air and water flow for cleaning and drying. Combined with an impurity collection component and a blockage control mechanism, it achieves efficient filtration and impurity removal.

Benefits of technology

It improves the filtration effect of raw materials in ton bags, prevents impurities from entering subsequent processing, reduces production costs, and ensures product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a waste recovery device and method for ton bag production, and the waste recovery device for ton bag production comprises a recovery treatment pool, a splitting and cleaning mechanism, a separating and drying mechanism and an air guiding and water removing mechanism. A pair of water outlets are formed in the recovery treatment pond; the split cleaning mechanism comprises a pair of split base tables, a rotating main shaft and a plurality of rotating pressing rods. A plurality of split clamping grooves matched with the rotating pressing rods in a rotating mode are formed in the pair of split base tables. The pair of separating and drying mechanisms is arranged on the outer side of the recovery treatment pond, each separating and drying mechanism comprises a drying slide, a plurality of convex block frames and a drainage part, the drying slides are communicated with the water outlet, and a plurality of uniform air spraying holes are formed in the convex block frames. Through the arrangement of corresponding mechanisms, the filtering effect on ton bag raw materials is improved, impurities are prevented from entering the subsequent processing flow, waste of the raw materials is avoided, and then the quality of ton bags is not affected after the production cost is reduced.
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Description

Technical Field

[0001] This invention belongs to the field of waste recycling technology for ton bag production, specifically relating to a waste recycling device and method for ton bag production. Background Technology

[0002] Ton bags, also known as ton bags, container bags, or space bags, are flexible woven containers primarily used to pack granular or powdered products. They are convenient for transportation and carrying, and are mainly made of polypropylene and polyethylene. They are currently a very convenient packaging product for containerized transportation. Waste generated during the production of ton bags can be mainly divided into three categories: raw material processing waste, molding process waste, and auxiliary process waste.

[0003] The raw material processing waste mainly includes: broken particles, impurity particles, and damp, agglomerated particles. Current technologies typically use filter screens to filter the raw materials, but damp, agglomerated particles are still filtered out, resulting in material waste and increased production costs. Furthermore, filter screens only remove impurities based on pore size, making it difficult to filter out impurities similar in size to the raw materials, thus affecting the quality of the produced ton bags and causing unnecessary trouble for users.

[0004] Therefore, in order to address the above-mentioned technical problems, it is necessary to provide a waste recycling device and method for ton bag production. Summary of the Invention

[0005] The purpose of this invention is to provide a waste recycling device and method for ton bag production, which can solve the problem of poor raw material filtration effect in the prior art.

[0006] To achieve the above objectives, a specific embodiment of the present invention provides the following technical solution: A waste recycling device for ton bag production includes: a recycling treatment pool, a disassembly and cleaning mechanism, a separation and drying mechanism, and an air guiding and water removal mechanism.

[0007] The recycling pool has a pair of water outlets. The drainage control mechanism is located on the side wall of the outlet and is used to block the discharge of water. The disassembly and cleaning mechanism is located in the recycling pool. The disassembly and cleaning mechanism includes a pair of disassembly bases, a rotating main shaft, and multiple rotating pressure rods. The multiple rotating pressure rods are evenly installed on the rotating main shaft. Each pair of disassembly bases has multiple disassembly slots that rotate and cooperate with the rotating pressure rods. The impurity collection component is disposed between the pair of disassembly bases for collecting the impurities washed off and facilitating their discharge. A pair of separation and drying mechanisms are disposed on the outside of the recycling tank. The separation and drying mechanism includes a drying slide, multiple protrusion frames and a drainage component. The multiple protrusion frames are evenly installed inside the drying slide. The drying slide is connected to the water outlet. Multiple evenly spaced air jet holes are drilled on the protrusion frames. The air-guiding and water-removing mechanism is located between the pair of drying slides and is used to deliver hot air into the drying slides.

[0008] In one or more embodiments of the present invention, the drainage control mechanism includes a blocking vertical plate and a lifting blocking block; the blocking vertical plate is slidably disposed within the water outlet; the lifting blocking block is disposed below the blocking vertical plate, and a supporting connecting rod is fixedly connected between the blocking vertical plate and the lifting blocking block. By blocking the water outlet with the blocking vertical plate, the clumped waste material will not fall during disassembly and cleaning, and water leakage will be minimized. The lifting blocking block then drives the lifting and lowering movement of the supporting connecting rod and the blocking vertical plate, achieving the effect of controlled movement.

[0009] In one or more embodiments of the present invention, a pair of limiting blocks are fixed above the lifting block to limit the lifting block, so that the lifting block can no longer rise and move, thereby achieving the limiting effect. A support spring is fixedly connected between the lifting block and the recycling tank to pull the lifting block back to its original position, which in turn drives the support rod and the sealing vertical plate to descend, so that the sealing vertical plate can seal the outlet again.

[0010] In one or more embodiments of the present invention, a plurality of evenly distributed splitting crossbars are fixedly connected between a pair of splitting bases to connect the pair of splitting bases, so that the pair of sealing vertical plates cannot be displaced, and to cooperate with a plurality of rotating pressure rods to split the clumped waste. One end of the rotating main shaft is fixedly connected to a tool to drive the rotating main shaft to rotate, providing power for the cleaning of the clumped waste and materials. The tool is fixedly installed on the outer wall of the recycling treatment pool. Both ends of the rotating spindle are fixedly connected to the recycling tank with support bearings to fix the rotating spindle, prevent the rotating spindle from shaking or tilting, improve the stability of the device, and also prevent the rotation of the rotating spindle from being affected.

[0011] In one or more embodiments of the present invention, a gathering frame is further provided between the pair of splitting bases for gathering impurity particles, so as to facilitate their concentrated and rapid discharge, thereby avoiding affecting the use of the device. A guide inclined plate is fixed inside the gathering frame, so that the impurity particles can slide towards one end of the gathering frame, thereby facilitating rapid discharge. The gathering frame is chiseled with toothed grooves that cooperate with multiple rotating pressure rods, so as to cooperate with the rotation of multiple rotating pressure rods and avoid affecting the rotation of the rotating pressure rods. A connecting end is fixedly installed on the collecting frame, and a slag discharge pipe is connected to the connecting end. A control valve is installed on the slag discharge pipe, and a control handle is installed on the control valve. By rotating the control handle, the control valve is opened, and the water and impurities in the collecting frame will be discharged outward from the connecting end and the slag discharge pipe, thereby achieving the cleaning of impurity particles.

[0012] In one or more embodiments of the present invention, a connecting cover is provided on the drying slide, a waterproof fan is installed inside the connecting cover, an air jet frame is provided on the recycling pool, a first air delivery pipe is fixedly connected between the air jet frame and the connecting cover, and a shielding cap is fixed at the lower end of the connecting cover.

[0013] Specifically, the gas is blocked by a shielding cap, and then a waterproof fan is activated to extract the gas, allowing the gas from multiple jet holes to enter the connecting cover. The gas is then transported to the jet frame through the first conveying air pipe and ejected. The ejected gas pushes the suspended clumps of waste material to the side near the drying slide, making it easier for multiple rotating pressure rods to press the clumps of waste material into the water, thus achieving separation and cleaning. After separation and cleaning, the gas ejected from the jet frame can also push the material towards the drying slide, facilitating the material to slide into the drying slide and achieve material discharge.

[0014] In one or more embodiments of the present invention, a storage collection box is provided below the drying slide for collecting and storing water flow, and a plurality of connecting pipes are fixedly connected between a pair of storage collection boxes to make the pair of storage collection boxes interconnected and facilitate water flow. One of the storage and collection boxes is equipped with a water pump, which is connected to a water delivery pipe. The other end of the water delivery pipe is connected to the recycling and processing pool. By starting the water pump, water is drawn out of the storage and collection box and then delivered to the recycling and processing pool through the water delivery pipe. This gradually increases the water volume in the recycling and processing pool, and the water flows out from the outlet, carrying away the disassembled and cleaned materials.

[0015] In one or more embodiments of the present invention, the air guiding and dehydration mechanism includes a conveying air frame, a plurality of second conveying air pipes, and an air pump. The conveying air frame is disposed between a pair of drying slides; the plurality of second conveying air pipes are disposed between the conveying air frame and the pair of drying slides, and both ends of the second conveying air pipes are respectively connected to the conveying air frame and a plurality of protrusion frames; the air pump is disposed below the conveying air frame, and a main conveying pipe is connected between the air pump and the conveying air frame.

[0016] Specifically, the gas is drawn in by an air pump and then transported to the gas delivery frame through the main delivery pipe. After being heated by a heating rod, the gas temperature rises. It is then transported to the protrusion frame through multiple secondary delivery pipes and then ejected outward through multiple jet holes, impacting the material and washing away the moisture. Furthermore, by increasing the gas temperature, the evaporation of moisture is accelerated, ensuring the dryness of the discharged material.

[0017] In one or more embodiments of the present invention, a heating rod is installed inside the conveying air frame, and a branch air pipe is connected between the main conveying pipe and the recycling treatment tank. A solenoid valve is installed on the branch air pipe. The solenoid valve controls the opening and closing of the branch air pipe. After the material in the recycling treatment tank has been separated and cleaned, the solenoid valve is opened, allowing the gas in the main conveying pipe to be conveyed to the lower part of the lifting block through the branch air pipe, thereby pushing the lifting block upward and raising the sealing vertical plate. At this time, the material can move into the drying slide through the water outlet.

[0018] A method for recycling waste materials from the production of ton bag manufacturing includes the following steps: S1. After the clumped waste is poured into the recycling tank, the process is started. Due to the material of the waste, it will float on the water surface in the recycling tank. The rotating spindle and multiple rotating pressure rods will rotate, and the rotation of the rotating pressure rods will push the clumped waste underwater. The multiple rotating pressure rods will also be stuck in multiple splitting slots, and multiple splitting crossbars will be inserted during the rotation, thereby splitting the clumped waste. By pressing the material into the water and stirring the water, the split material is cleaned. S2. After disassembly and cleaning, the solenoid valve is opened so that the gas pumped in by the air pump can be delivered to the bottom of the lifting block through the branch air pipe. Then, as the gas enters, it pushes the lifting block, causing the lifting block to drive the support rod and the sealing vertical plate to rise, so that the sealing vertical plate no longer blocks the water outlet. At this time, the water in the recycling treatment tank will flow out from the water outlet. S3. At the same time, the water pump will start to draw water from the storage collection tank and transport it to the recycling tank through the water pipe. This will ensure that the water in the recycling tank always flows out from the outlet, thereby driving the material floating on the water surface to move outward and into the drying slide, where it will slide down. S4. During the downward sliding process, the material will hit the jet hole, causing it to bounce irregularly. At this time, the gas drawn in by the air pump is transported to the conveying air frame through the main conveying pipe, and then heated by the heating rod and transported to the protrusion frame through the second conveying air pipe. Then it is sprayed out from multiple jet holes, so that the sprayed gas blows onto the rolling material, blowing away the water droplets on the surface of the material. Moreover, the heated gas is more conducive to the evaporation of moisture. Finally, the material rolls out from the lower end of the drying slide. S5. The gas ejected from the jet hole will be sucked into the waterproof fan and then transported through the first air conveying pipe, so that the gas can enter the jet frame and then be ejected. The ejected gas can blow the clumped waste or disassembled material to the side closer to the drying slide, which will help the rotating pressure rod to press the clumped waste into the water and assist in the discharge of the disassembled material. S6. After the clumped waste is broken down, some impurities will settle downwards. Then, by rotating the pressure rod, the impurity particles can fall into the collection frame. Due to the inclined setting of the guide plate, the impurities will eventually gather at the end near the connection end. The user opens the control valve by rotating the control handle, so that the water in the recycling tank can be discharged from the slag discharge pipe. The gathered impurities can be discharged immediately, thereby cleaning the impurities without excessive discharge of water from the recycling tank.

[0019] Compared with the prior art, the present invention improves the filtration effect of raw materials for ton bags by setting up corresponding mechanisms, avoids impurities from entering the subsequent processing process and avoids waste of raw materials, thereby reducing production costs without affecting the quality of ton bags. Attached Figure Description

[0020] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0021] Figure 1 This is a perspective view of a waste recycling device for ton bag production according to an embodiment of the present invention; Figure 2 This is a schematic diagram of the disassembled base platform in one embodiment of the present invention; Figure 3 This is a front cross-sectional view of a waste recycling device for ton bag production according to an embodiment of the present invention; Figure 4 for Figure 3 The structural diagram shown at point A in the middle; Figure 5 for Figure 3 The structural diagram shown at point B in the middle; Figure 6 for Figure 3 The structural diagram shown at point C is as follows; Figure 7 This is another cross-sectional view of a waste recycling device for ton bag production according to an embodiment of the present invention; Figure 8 for Figure 7 The structural diagram shown at point D is shown in the middle. Figure 9 This is a schematic diagram of the structure of the disassembled base and rotating pressure bar in one embodiment of the present invention; Figure 10 This is a schematic diagram of the structure of an impurity gathering component in one embodiment of the present invention; Figure 11 for Figure 10 The structural diagram shown at point E in the middle; Figure 12 This is a schematic diagram of the structure of a drying slide in one embodiment of the present invention; Figure 13 This is a partial structural schematic diagram of the air-guiding and water-removing mechanism in one embodiment of the present invention.

[0022] Explanation of key figure labels: 1-Recycling and treatment tank; 101-Outlet; 102-Sealing vertical plate; 103-Supporting connecting rod; 104-Lifting block; 105-Limiting block; 106-Supporting spring; 2-Disassembly and cleaning mechanism; 201-Disassembly base; 202-Rotating main shaft; 203-Rotating pressure rod; 204-Disassembly crossbar; 205-Disassembly slot; 206-Collapsing frame; 207-Guide inclined plate; 208-Groove; 209-Connecting end; 210-Slag discharge pipe; 211-Control valve; 212-Control handle; 3-Separation and drying mechanism. 301-Drying slide, 302-Protrusion frame, 303-Air jet hole, 304-Drainage component, 305-Connecting cover, 306-First air delivery pipe, 307-Air jet frame, 308-Shielding cap, 309-Waterproof fan, 310-Storage collection box, 311-Connecting pipe, 312-Water pump, 313-Water delivery pipe, 4-Air guiding and dehydration mechanism, 401-Air delivery frame, 402-Second air delivery pipe, 403-Heating rod, 404-Air pump, 405-Main delivery pipe, 406-Branch air pipe, 407-Solenoid valve. Detailed Implementation

[0023] To enable those skilled in the art to better understand the technical solutions in this disclosure, the technical solutions in the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this disclosure, and not all embodiments. Based on the embodiments in this disclosure, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of this disclosure.

[0024] like Figures 1-13 As shown, an embodiment of the present invention provides a waste recycling device and method for ton bag production, comprising: a recycling treatment pool 1, a disassembly and cleaning mechanism 2, a separation and drying mechanism 3, and an air guiding and water removal mechanism 4.

[0025] like Figures 1-13 As shown, a pair of water outlets 101 are cut into the recycling tank 1. A flow control mechanism is located on the side wall of the water outlets 101 to block the discharge of water. A disassembly and cleaning mechanism 2 is installed inside the recycling tank 1. The disassembly and cleaning mechanism 2 includes a pair of disassembly bases 201, a rotating main shaft 202, and multiple rotating pressure rods 203. The multiple rotating pressure rods 203 are evenly installed on the rotating main shaft 202. Each pair of disassembly bases 201 has multiple disassembly slots 205 that rotate and cooperate with the rotating pressure rods 203. An impurity collection assembly is located between the pair of disassembly bases 201 to collect the impurities washed off and facilitate their discharge. A pair of separation and drying mechanisms 3 are located on the outside of the recycling tank 1.

[0026] Specifically, the water flow in the recycling tank 1 is blocked by the blocking control mechanism, so that the clumped waste material can be broken up and cleaned after the rotating pressure rod 203 is rotated. The cleaned impurity particles will fall down into the impurity collection component for easy collection and cleaning. Then the treated material is discharged out from the outlet 101.

[0027] like Figures 1-13 As shown, the separating drying mechanism 3 includes a drying slide 301, multiple protrusion frames 302, and a drainage component 304. The multiple protrusion frames 302 are evenly installed inside the drying slide 301. The drying slide 301 is interconnected with the water outlet 101. Multiple evenly spaced air jet holes 303 are drilled on the protrusion frames 302. The air guiding and dehydration mechanism 4 is disposed between a pair of drying slides 301 and is used to deliver hot air into the drying slide 301.

[0028] Specifically, air is blown out through the jet nozzle 303 to remove moisture from the material and heat the blown air, which further facilitates the evaporation of moisture and dries the discharged material. In addition, the blowing and the tilting of the jet nozzle 303 cause the material to tumble and collide during its descent, which further helps to break up clumps of material and improve the waste recycling effect.

[0029] like Figures 1-4 As shown, the drainage control mechanism includes a blocking vertical plate 102 and a lifting blocking block 104. The blocking vertical plate 102 is slidably disposed within the outlet 101. The lifting blocking block 104 is disposed below the blocking vertical plate 102, and a supporting connecting rod 103 is fixedly connected between the blocking vertical plate 102 and the lifting blocking block 104. By blocking the outlet 101 with the blocking vertical plate 102, the clumped waste material will not fall during disassembly and cleaning, and water leakage will be difficult. The lifting blocking block 104 drives the lifting and lowering movement of the supporting connecting rod 103 and the blocking vertical plate 102, thereby achieving the effect of controlled movement.

[0030] Specifically, a pair of limiting blocks 105 are fixed above the lifting block 104 to limit the lifting block 104, preventing it from rising further and achieving the limiting effect. A support spring 106 is fixedly connected between the lifting block 104 and the recycling tank 1, which pulls the lifting block 104 back to its original position, thereby driving the support connecting rod 103 and the sealing vertical plate 102 to descend, allowing the sealing vertical plate 102 to seal the outlet 101 again.

[0031] like Figures 1-9 As shown, a plurality of evenly distributed splitting crossbars 204 are fixedly connected between a pair of splitting bases 201 to connect the pair of splitting bases 201, preventing the pair of sealing vertical plates 102 from shifting, and to cooperate with multiple rotating pressure rods 203 to separate the clumped waste. One end of the rotating main shaft 202 is fixedly connected to 213, which drives the rotating main shaft 202 to rotate, providing power for the separation and cleaning of clumped waste and materials. 213 is fixedly installed on the outer wall of the recycling pool 1.

[0032] In addition, support bearings are fixedly connected to both ends of the rotating main shaft 202 and the recycling tank 1 to fix the rotating main shaft 202, prevent the rotating main shaft 202 from shaking or tilting, improve the stability of the device, and also prevent the rotation of the rotating main shaft 202 from being affected.

[0033] like Figures 1-10 As shown, a collecting frame 206 is also provided between the pair of split bases 201 to collect impurity particles, facilitating their concentrated and rapid discharge, thereby avoiding interference with the use of the device. A guide inclined plate 207 is fixed inside the collecting frame 206, allowing impurity particles to slide towards one end of the collecting frame 206 for convenient and rapid discharge. The collecting frame 206 is chiseled with toothed grooves 208 that cooperate with the rotation of multiple rotating pressure rods 203, preventing interference with the rotation of the rotating pressure rods 203.

[0034] like Figures 1-11 As shown, a connecting end 209 is fixedly installed on the collecting frame 206, and a slag discharge pipe 210 is connected to the connecting end 209. A control valve 211 is installed on the slag discharge pipe 210, and a control handle 212 is installed on the control valve 211. By rotating the control handle 212, the control valve 211 is opened. At this time, the water and impurities in the collecting frame 206 will be discharged outward from the connecting end 209 and the slag discharge pipe 210, thereby achieving the cleaning of impurity particles.

[0035] like Figures 1-12As shown, a connecting cover 305 is provided on the drying slide 301, and a waterproof fan 309 is installed inside the connecting cover 305. An air jet frame 307 is provided on the recycling treatment pool 1. A first conveying air pipe 306 is fixedly connected between the air jet frame 307 and the connecting cover 305. A shielding cap 308 is fixed at the lower end of the connecting cover 305.

[0036] Specifically, the shielding cap 308 blocks the air, and then the waterproof fan 309 is activated to extract the gas. This allows the gas ejected from multiple jet nozzles 303 to enter the connecting cover 305, and then be transported to the jet frame 307 through the first conveying air pipe 306. The ejected gas pushes the suspended agglomerated waste material to the side near the drying slide 301, making it easier for multiple rotating pressure rods 203 to press the agglomerated waste material into the water, thus achieving its separation and cleaning. After separation and cleaning, the gas ejected from the jet frame 307 can also push the material towards the drying slide 301, facilitating its sliding down into the drying slide 301 and achieving material discharge.

[0037] like Figures 1-7 As shown, a storage collection box 310 is provided below the drying slide 301 to collect and store water flow. Multiple connecting pipes 311 are fixedly connected between a pair of storage collection boxes 310 to make the pair of storage collection boxes 310 interconnected and facilitate water flow.

[0038] Specifically, a water pump 312 is installed in one of the storage and collection boxes 310. A water delivery pipe 313 is connected to the water pump 312. The other end of the water delivery pipe 313 is connected to the recycling and treatment pool 1. By starting the water pump 312, water is drawn out of the storage and collection box 310 and then delivered to the recycling and treatment pool 1 through the water delivery pipe 313. This causes the water volume in the recycling and treatment pool 1 to gradually increase, and the water flow continues to be discharged from the outlet 101, thereby carrying away the disassembled and cleaned materials.

[0039] like Figures 1-13 As shown, the air guiding and dehydration mechanism 4 includes a conveying air frame 401, multiple second conveying air pipes 402, and an air pump 404. The conveying air frame 401 is disposed between a pair of drying slides 301. The multiple second conveying air pipes 402 are disposed between the conveying air frame 401 and the pair of drying slides 301, and both ends of the second conveying air pipes 402 are respectively connected to the conveying air frame 401 and the multiple protrusion frames 302. The air pump 404 is disposed below the conveying air frame 401, and a main conveying pipe 405 connects the air pump 404 and the conveying air frame 401.

[0040] Specifically, the gas is drawn in by the air pump 404, and then transported to the conveying air frame 401 through the main conveying pipe 405. After being heated by the heating rod 403, the gas temperature rises, and then it is transported to the protrusion frame 302 through multiple second conveying air pipes 402. Then it is sprayed outward through multiple jet holes 303, impacting the material and washing away the moisture on the material. Increasing the temperature of the gas accelerates the evaporation of moisture, ensuring that the discharged material is dry.

[0041] like Figures 1-13 As shown, a heating rod 403 is installed inside the conveying air frame 401. A branch air pipe 406 is connected between the main conveying pipe 405 and the recycling treatment tank 1. A solenoid valve 407 is installed on the branch air pipe 406. The solenoid valve 407 controls the opening and closing of the branch air pipe 406. After the material in the recycling treatment tank 1 has been separated and cleaned, the solenoid valve 407 is opened, so that the gas in the main conveying pipe 405 can be conveyed to the lower part of the lifting block 104 through the branch air pipe 406, thereby pushing the lifting block 104 to move upward, realizing the function of pushing the sealing vertical plate 102 to rise. At this time, the material can move into the drying slide 301 through the water outlet 101.

[0042] A method for recycling waste materials from the production of ton bag manufacturing includes the following steps: S1. After pouring the clumped waste into the recycling tank 1, start 213. Due to the material of the waste, the waste will float on the water surface in the recycling tank 1. 213 drives the rotating main shaft 202 and multiple rotating pressure rods 203 to rotate. The rotation of the rotating pressure rods 203 will push the clumped waste to move underwater. The multiple rotating pressure rods 203 will also be stuck in multiple splitting slots 205. During the rotation, they will also pass through multiple splitting crossbars 204, which can separate the clumped waste. By pressing the material into the water and stirring the water, the separated material is cleaned. S2. After disassembly and cleaning, the solenoid valve 407 is opened so that the gas drawn in by the air pump 404 can be delivered to the bottom of the lifting block 104 through the branch air pipe 406. Then, as the gas enters, it pushes the lifting block 104, causing the lifting block 104 to drive the support rod 103 and the sealing vertical plate 102 to rise, so that the sealing vertical plate 102 no longer blocks the water outlet 101. At this time, the water in the recycling treatment tank 1 will flow out from the water outlet 101. S3. At the same time, the water pump 312 will start to draw out the water in the storage collection box 310 and transport it to the recycling treatment pool 1 through the water delivery pipe 313. This will ensure that the water in the recycling treatment pool 1 always flows out from the outlet 101, thereby driving the material floating on the water surface to move outward through the water flow, so that the material moves into the drying slide 301 and then slides down. S4. During the downward sliding process, the material will hit the jet hole 303, causing it to bounce irregularly. At this time, the gas drawn in by the air pump 404 is transported to the conveying air frame 401 through the main conveying pipe 405, and then heated by the heating rod 403 and transported to the protrusion frame 302 through the second conveying air pipe 402. Then it is sprayed out from multiple jet holes 303, so that the sprayed gas blows onto the rolling material, blowing away the water droplets on the surface of the material. Moreover, the heated gas is more conducive to the evaporation of moisture. Finally, the material rolls out from the lower end of the drying slide 301. S5. The gas ejected from the jet nozzle 303 will be sucked into the waterproof fan 309 and then transported through the first conveying air pipe 306, so that the gas can enter the jet frame 307 and then be ejected. The ejected gas can blow the clumped waste or the disassembled material to the side closer to the drying slide 301, which will help the rotating pressure rod 203 to press the clumped waste into the water and assist in the discharge of the disassembled material. S6. After the clumped waste is broken down, some impurities will sink downwards. Then, by rotating the pressure rod 203, the impurity particles can fall into the collection frame 206. Due to the inclined setting of the guide plate 207, the impurities will eventually gather at the end near the connection end 209. The user opens the control valve 211 by rotating the control handle 212, so that the water in the recycling treatment tank 1 can be discharged outward from the slag discharge pipe 210. The gathered impurities can be discharged immediately, thereby cleaning the impurities without excessively discharging the water in the recycling treatment tank 1.

[0043] It will be apparent to those skilled in the art that this disclosure is not limited to the details of the exemplary embodiments described above, and that this disclosure can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of this disclosure is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this disclosure. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0044] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A waste recovery device for ton bag production, characterized by, It includes: The recovery treatment pool is provided with a pair of water outlets; The blocking control mechanism is arranged on the side wall of the water outlet, and is used for blocking the discharge of water flow; The split cleaning mechanism is arranged in the recovery treatment pool, and includes a pair of split bases, a rotating main shaft and a plurality of rotating pressure rods, the rotating pressure rods are uniformly arranged on the rotating main shaft, and a plurality of split clamping grooves are arranged on the split bases and are matched with the rotating pressure rods; The impurity collecting assembly is arranged between the split bases, and is used for collecting and discharging the impurities washed out; A pair of separation drying mechanisms are arranged outside the recovery treatment pool, and the separation drying mechanism includes a drying slide, a plurality of convex blocks and a drainage device, the convex blocks are uniformly arranged in the drying slide, the drying slide is communicated with the water outlet, and a plurality of uniform air injection holes are arranged in the convex blocks; The air guide and water removal mechanism is arranged between the drying slides, and is used for conveying hot air into the drying slide.

2. A waste recovery device for ton bag production according to claim 1, characterized in that, The blocking control mechanism includes: The blocking vertical plate is slidably arranged in the water outlet; The lifting block is arranged below the blocking vertical plate, and the blocking vertical plate and the lifting block are fixedly connected with the supporting link.

3. A waste recovery device for ton bag production according to claim 2, characterized in that, A pair of limiting blocks are fixedly arranged above the lifting block, and the lifting block and the recovery treatment pool are fixedly connected with the supporting spring.

4. A waste recovery device for ton bag production as claimed in claim 1, wherein, A plurality of uniformly distributed split horizontal rods are fixedly connected between the split bases, one end of the rotating main shaft is fixedly connected with the fixed installation, and the rotating main shaft is fixedly connected with the supporting bearing between the other end and the recovery treatment pool.

5. A waste recovery device for ton bag production as claimed in claim 1, wherein, A folding frame is further arranged between the split bases, a guide inclined plate is fixedly arranged in the folding frame, a tooth groove matched with the rotating pressure rods is arranged in the folding frame, a connecting end is fixedly arranged on the folding frame, a residue discharging pipe is connected with the connecting end, a control valve is arranged on the residue discharging pipe, and a control handle is arranged on the control valve.

6. A waste recovery device for ton bag production as claimed in claim 1, wherein, The drying slide is provided with a connecting cover, a waterproof fan is arranged in the connecting cover, a gas injection frame is arranged on the recovery treatment pool, a first gas conveying pipe is fixedly connected between the connecting cover and the gas injection frame, and a shielding cap is fixedly arranged at the lower end of the connecting cover.

7. A waste recovery device for ton bag production as claimed in claim 1, wherein, A storage collecting box is arranged below the drying slide, a plurality of communication pipes are fixedly connected between a pair of storage collecting boxes, a water pump is arranged in one of the storage collecting boxes, a water conveying pipe is connected with the water pump, and the other end of the water conveying pipe is communicated with the recovery treatment pool.

8. A waste recovery device for ton bag production as claimed in claim 1, wherein, The air guide and water removal mechanism includes: The conveying gas frame is arranged between a pair of drying slides; A plurality of second gas conveying pipes are arranged between the conveying gas frame and a pair of drying slides, and the two ends of the second gas conveying pipes are respectively communicated with the conveying gas frame and the convex blocks; The gas pump is arranged below the conveying gas frame, and the gas pump and the conveying gas frame are connected with the main conveying pipe.

9. A waste recovery device for ton bag production according to claim 8, characterized in that, The heating rod is arranged in the conveying gas frame, the branch gas pipe is connected between the main conveying pipe and the recovery treatment pool, and the electromagnetic valve is arranged on the branch gas pipe.

10. A method of recovering waste material from the production of ton bags according to any one of claims 1-9, characterized in that, The method includes the following steps: S1, the caked waste is poured into the recycling treatment tank and started, due to the material of the waste, the waste will float on the water surface in the recycling treatment tank, by driving the rotating main shaft and the rotating pressure rod, the rotating pressure rod will push the caked waste to move underwater, and the rotating pressure rod will also be clamped in the split clamping slot, and the rotating process will also be inserted through the split horizontal rod, so as to split the caked waste, and the material is pressed into the water body, and the water body is stirred, so as to clean the split material; S2, then after splitting and cleaning, the electromagnetic valve is opened, so that the gas pumped by the air pump can be transported to the lower side of the lifting block through the branch air pipe, and then the lifting block is pushed up by the entering gas, so that the lifting block drives the supporting connecting rod and the blocking vertical plate to rise, so that the blocking vertical plate no longer blocks the water outlet, at this time the water flow in the recycling treatment tank will flow out from the water outlet; S3, at the same time, the water pump will start to pump the water flow in the storage collection box out through the water conveying pipe to the recycling treatment tank, so that the water flow in the recycling treatment tank always flows out from the water outlet, so that the material floating on the water surface is moved outward by the water flow, and the material is moved to the drying slide and then slides downward; S4, and the downward sliding process will hit the air injection hole, so that the material is irregularly bounced up, at this time the gas pumped by the air pump is transported to the conveying gas frame through the main conveying pipe, and then transported to the protrusion frame through the second conveying gas pipe after being heated by the heating rod, and then sprayed out from the plurality of air injection holes, so that the sprayed gas blows on the rolled material, blows away the water droplets on the surface of the material, and the heated gas is more conducive to the evaporation of water, finally the material rolls out from the lower end of the drying slide; S5, the gas sprayed from the air injection hole is also sucked by the waterproof fan, and then conveyed through the first conveying gas pipe, so that the gas can enter the air injection frame and then be sprayed out, and the sprayed gas can blow the caked waste or the split material to the side close to the drying slide, so as to facilitate the rotating pressure rod to press the caked waste into the water body and assist the split material to be discharged; S6, after the caked waste is split, some impurities will sink downward, and then the impurity particles can fall into the folding frame by the pushing of the rotating pressure rod, and because the guide inclined plate is inclinedly arranged, the impurities will finally gather at one end close to the connecting end, the user opens the control valve by rotating the control knob, so that the water flow in the recycling treatment tank can be discharged outward from the deslagging pipe, and the gathered impurities can be discharged in the first time, so as to realize the cleaning of the impurities, and the water flow in the recycling treatment tank will not be excessively discharged.