TPE (thermoplastic elastomer) waste recycling and regenerating mixing equipment
By introducing a waste heat recovery structure and a vibration structure into the TPE waste recycling and regeneration mixing equipment, the problem of waste heat waste has been solved, the waste heat has been utilized in stages, the energy consumption of the cleaning and drying processes has been reduced, and the cleaning efficiency and the quality of TPE waste have been improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-09
- Publication Date
- 2026-03-13
AI Technical Summary
Traditional TPE waste recycling and regeneration mixing equipment is inconvenient to recover the waste heat generated during heating and melting, resulting in waste heat.
A TPE waste recycling and regeneration mixing device was designed, which includes a waste heat recovery structure and a vibration structure. The waste heat of the melting box is recovered through heat-conducting plates and heat exchange rings, the cleaning water is heated by heat exchange, and water stains are removed by automatic temperature control of paraffin and vibration structure, so as to realize the cascade utilization of waste heat.
It effectively recovers and utilizes the waste heat during the melting process, reduces energy consumption in the cleaning and drying processes, improves cleaning efficiency and the quality of TPE waste, reduces impurity residue, and lowers usage costs.
Smart Images

Figure CN121650140A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of plastic waste recycling technology, and in particular to a TPE waste recycling and regeneration mixing device. Background Technology
[0002] Thermoplastic elastomer (TPE) is a thermoplastic material that can be repeatedly heated and reshaped. Waste materials can be reused after simple treatment. The core value of TPE waste recycling lies in achieving resource recycling through reasonable treatment, reducing costs and environmental pressure. TPE waste has good recyclability and can be remade into products or used as raw materials after professional treatment. The mainstream treatment method is to physically crush and clean the waste, then mix it with melting equipment for reuse as needed. A TPE waste recycling and regeneration mixing equipment is used when recycling and regenerating TPE waste. However, traditional TPE waste recycling and mixing equipment still has some problems in use. During the TPE waste melting process, the equipment needs to heat the material to 150-200℃ to achieve complete melting and mixing. During this process, the outer wall of the barrel will release a lot of waste heat due to the internal heating and melting. However, traditional TPE waste recycling and mixing equipment is inconvenient to recover this waste heat during use, resulting in a large amount of waste heat. Therefore, a new TPE waste recycling and mixing equipment is needed to solve the above problems. Summary of the Invention
[0003] The purpose of this invention is to provide a TPE waste recycling and regeneration mixing device to solve the problem that existing TPE waste recycling and regeneration mixing devices are inconvenient to recover the waste heat generated during heating and melting, resulting in a large amount of waste heat wastage.
[0004] To solve the above-mentioned technical problems, the present invention provides the following technical solution: a TPE waste recycling and regeneration mixing device, comprising a melting box installed on one side of the top of the base, a support frame installed on the other side of the top of the base, a vibration structure provided on one side of the top of the support frame, a cleaning tank provided at the top of the vibration structure, a cleaning frame installed inside the cleaning tank, an inner cavity opened in the inner wall of the cleaning tank, and a waste heat recovery structure provided inside the inner cavity; The waste heat recovery structure includes a heat exchange ring installed inside the inner cavity. A regulator is installed on one side of the bottom of the cleaning tank, and a valve core is installed on one side inside the regulator. A heat inlet pipe is installed at one end of the regulator, and a second heat outlet pipe is installed on one side of the bottom of the regulator. A first heat outlet pipe is installed on the other side of the bottom of the regulator, and a drying head is installed at one end of the first heat outlet pipe. A fixed shell is installed on the other side of the regulator, and a heat conduction head is installed on one side inside the fixed shell. The top end of the heat conduction head is connected to the bottom of the cleaning tank. A circular plate is installed on one side inside the fixed shell, and a connecting rod is installed at one end of the circular plate. One end of the connecting rod is connected to the valve core. A return spring is installed on one side of the circular plate, and the other side inside the fixed shell is filled with paraffin wax.
[0005] Preferably, a heat-conducting plate is installed on the outside of the melting box, a blower is installed at one end of the outside of the melting box, a heat insulation cover is sleeved on the outside of the heat-conducting plate, one end of the heat insulation cover is connected to the heat inlet pipe, and a return pipe is installed at the outlet end of the heat exchange ring, one end of the return pipe is connected to the top end of the heat inlet pipe.
[0006] Preferably, the two ends of the return spring are connected to one side of the circular plate and one side of the inside of the fixed shell, respectively, and the circular plate and the return spring form a telescopic structure.
[0007] Preferably, the heat-conducting sheet is provided in multiple sets, and the multiple sets of heat-conducting sheets are distributed in a ring on the outside of the melting box.
[0008] Preferably, a plurality of spray holes are provided on one side of the drying head, and the plurality of spray holes are arranged at equal intervals on one side of the drying head.
[0009] Preferably, one end of the valve core is inserted into the interior of the regulator, and the valve core and the regulator form a sliding connection.
[0010] Preferably, a feed inlet is installed on one side of the top of the melting tank, a melting screw is installed inside the melting tank, a cleaning rack is installed inside the cleaning tank, a discharge port is installed at the middle position of the bottom of the cleaning tank, a drain port is installed on one side of the bottom of the cleaning tank, a collection port is opened at the bottom of the inside of the cleaning tank, and an impurity collection box is installed at the bottom of the collection port.
[0011] Preferably, the vibration structure includes a fixing block, which is installed on one side of the top of the support frame. A vibration plate is installed on the top of the fixing block, a screening screen is installed in the middle of the vibration plate, fixing plates are installed on both sides of the vibration plate, a drying head is installed inside one side of the fixing plate, and a vibrator is installed on one side of the bottom of the vibration plate.
[0012] Preferably, a plurality of stirring rods are provided on the outer side of the cleaning rack, and the plurality of stirring rods are arranged in a ring on the outer side of the cleaning rack.
[0013] Preferably, there are two sets of collection ports, which are symmetrically distributed at the bottom of the cleaning tank.
[0014] The present invention provides a TPE waste recycling and regeneration mixing device, the advantages of which are: By incorporating a waste heat recovery structure, a large amount of waste heat will overflow from the surface of the melting box during the melting process. At this time, the use of heat-conducting plates can increase the contact area between the air and the waste heat, thereby improving the heat exchange efficiency. Furthermore, by using heat exchange rings, the heat transfer oil can be heated through heat exchange, indirectly using the heat transfer oil to heat the clean water inside the cleaning tank. This enhances the clean water and accelerates the dissolution and removal of impurities such as dust and residual additives on the surface of TPE waste. Compared to cold water, hot water cleaning can remove stubborn stains more effectively and reduce the residue of impurities. By recovering the molten waste heat through heat exchange to heat the cleaning water, there is no need to consume additional electricity, gas, or other energy sources, which can directly reduce the energy cost of the cleaning process. At the same time, this process realizes the tiered utilization of high-temperature waste heat to medium-temperature cleaning heat, turning the originally wasted heat into economic value and reducing the operating cost. Furthermore, when heating clean water, to maintain the water temperature between 40℃ and 60℃, paraffin wax is used. Utilizing the thermal expansion property of paraffin wax, when the water temperature reaches 40℃-60℃, it pushes the valve core on one side of the connecting rod to move, blocking the inlet of the second heating pipe and preventing hot air from passing through. When the water temperature drops, the paraffin wax stops expanding, and under the action of the return spring, the valve core moves back, reopening the inlet of the second heating pipe. This achieves automatic resetting and opening of the second heating pipe when the water temperature reaches the target, without manual intervention. This avoids the problem of high temperatures causing TPE materials to stick during cleaning, or low temperatures affecting the softening effect. It eliminates the need for PLCs, electric valves, sensors, and other electrical control components, and requires no additional power. Automatic temperature control is achieved directly through the thermal expansion and contraction of paraffin wax, reducing investment costs. Furthermore, when the inlet of the second heat pipe is blocked, hot air will only exit from the inside of the first heat pipe through a nozzle on one side of the drying head to dry the TPE waste. This allows the hot air to penetrate the gaps in the waste material and directly act on the surface of each particle during the dewatering process, accelerating the evaporation of residual moisture. Combined with vibration, this enhances the dewatering effect, thus completing the drying process. By incorporating a vibrating structure, the TPE waste is vibrated during the removal of surface water stains through the combined use of a vibrator and a vibrating plate. This causes the TPE waste to tumble and disperse continuously, resulting in the surface water stains being shaken off and making the water stain removal more effective. Attached Figure Description
[0015] Figure 1 This is a frontal three-dimensional structural schematic diagram of the present invention; Figure 2 This is a rear-view three-dimensional structural diagram of the present invention; Figure 3 This is a three-dimensional structural diagram of the present invention viewed from below; Figure 4 This is a three-dimensional structural schematic diagram of the melting box of the present invention, viewed from the front. Figure 5 This is a three-dimensional structural schematic diagram of the side cross-section of the melting box of the present invention; Figure 6 This is a three-dimensional structural diagram of the cleaning tank of the present invention, viewed from below. Figure 7 This is a side view of the three-dimensional structure of the melting box of the present invention; Figure 8 This is a top-view three-dimensional structural diagram of the cleaning tank of the present invention; Figure 9 This is a frontal cross-sectional three-dimensional structural schematic diagram of the present invention; Figure 10 This is a frontal three-dimensional structural schematic diagram of the heat exchange ring of the present invention; Figure 11 This is a three-dimensional structural diagram of the heat exchange ring of the present invention, viewed from below. Figure 12 This is a side view of the three-dimensional structure of the heat exchange ring of the present invention; Figure 13 This is a three-dimensional structural schematic diagram of the regulator of the present invention in frontal cross-section; Figure 14 for Figure 13 A magnified view of the structure at point A in the middle; Figure 15 This is a three-dimensional structural schematic diagram of the regulator of the present invention, viewed from the side.
[0016] The following are the annotations in the diagram: 1. Base; 2. Melting tank; 3. Feed inlet; 4. Vibration structure; 401. Fixing plate; 402. Vibrator; 403. Vibrating plate; 404. Screen; 405. Fixing block; 5. Cleaning tank; 6. Cleaning rack; 7. Support frame; 8. Waste heat recovery structure; 801. Heat inlet pipe; 802. Air blower; 803. Heat insulation cover; 804. Heat-conducting plate; 805. First heat outlet pipe; 80 6. Heat exchange ring; 807. Drying head; 808. Return pipe; 809. Second heat outlet pipe; 8010. Regulator; 8011. Valve core; 8012. Fixed shell; 8013. Heat conduction head; 8014. Paraffin wax; 8015. Connecting rod; 8016. Return spring; 8017. Circular plate; 9. Impurity collection box; 10. Discharge port; 11. Melting screw; 12. Drain outlet; 13. Collection port; 14. Inner cavity. Detailed Implementation
[0017] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0018] Please see Figures 1-15 The present invention provides a TPE waste recycling and regeneration mixing device, including a melting box 2 installed on one side of the top of the base 1, a support frame 7 installed on the other side of the top of the base 1, a vibration structure 4 provided on one side of the top of the support frame 7, a cleaning tank 5 provided at the top of the vibration structure 4, a cleaning rack 6 installed inside the cleaning tank 5, an inner cavity 14 opened in the inner wall of the cleaning tank 5, and a waste heat recovery structure 8 provided inside the inner cavity 14. The waste heat recovery structure 8 includes a heat exchange ring 806, which is installed inside the inner cavity 14. A regulator 8010 is installed on one side of the bottom of the cleaning tank 5. A valve core 8011 is installed on one side inside the regulator 8010. A heat inlet pipe 801 is installed at one end of the regulator 8010. A second heat outlet pipe 809 is installed on one side of the bottom of the regulator 8010. A first heat outlet pipe 805 is installed on the other side of the bottom of the regulator 8010. A drying head 807 is installed at one end of the first heat outlet pipe 805. On the other side of 010, a fixed shell 8012 is installed. A heat-conducting head 8013 is installed on one side inside the fixed shell 8012. The top of the heat-conducting head 8013 is connected to the bottom of the cleaning tank 5. A circular plate 8017 is installed on one side inside the fixed shell 8012. A connecting rod 8015 is installed on one end of the circular plate 8017. One end of the connecting rod 8015 is connected to the valve core 8011. A return spring 8016 is installed on one side of the circular plate 8017. The other side inside the fixed shell 8012 is filled with paraffin wax 8014. A heat-conducting plate 804 is installed on the outside of the melting box 2. A blower head 802 is installed at one end of the outside of the melting box 2. A heat insulation cover 803 is sleeved on the outside of the heat-conducting plate 804. One end of the heat insulation cover 803 is connected to the heat inlet pipe 801. A return pipe 808 is installed at the outlet end of the heat exchange ring 806. One end of the return pipe 808 is connected to the top end of the heat inlet pipe 801. The two ends of the return spring 8016 are connected to one side of the circular plate 8017 and one side inside the fixed shell 8012, respectively, and the circular plate 8017 and the return spring 8016 form a telescopic structure. Multiple sets of heat-conducting plates 804 are provided, and the multiple sets of heat-conducting plates 804 are distributed in a ring on the outside of the melting box 2; A number of spray holes are provided on one side of the drying head 807, and the spray holes are arranged at equal intervals on one side of the drying head 807; One end of the valve core 8011 is inserted into the interior of the regulator 8010, and a sliding connection is formed between the valve core 8011 and the regulator 8010. A feed inlet 3 is installed on one side of the top of the melting tank 2. A melting screw 11 is installed inside the melting tank 2. A cleaning rack 6 is installed inside the cleaning tank 5. A discharge port 10 is installed at the middle position of the bottom of the cleaning tank 5. A drain port 12 is installed on one side of the bottom of the cleaning tank 5. A collection port 13 is opened at the bottom of the inside of the cleaning tank 5. An impurity collection box 9 is installed at the bottom of the collection port 13. The vibration structure 4 includes a fixing block 405, which is installed on one side of the top of the support frame 7. A vibration plate 403 is installed on the top of the fixing block 405. A screening screen 404 is installed in the middle of the vibration plate 403. Fixing plates 401 are installed on both sides of the vibration plate 403. A drying head 807 is installed inside one side of the fixing plate 401. A vibrator 402 is installed on one side of the bottom of the vibration plate 403. Several stirring rods are arranged on the outside of the cleaning rack 6, and the stirring rods are arranged in a ring on the outside of the cleaning rack 6. There are two sets of collection ports 13, which are symmetrically distributed at the bottom of the cleaning tank 5.
[0019] Specifically, in this embodiment, when recycling and mixing TPE waste, the crushed TPE waste is transported into the cleaning tank 5. After transportation, clean water is injected to clean the impurities and dust on the surface of the TPE waste. During cleaning, an external power source starts the motor to drive the cleaning rack 6 to rotate and stir the TPE waste, making it cleaner and resulting in better quality during subsequent mixing. While cleaning in the cleaning tank 5, the melting screw 11 and heater inside the melting box 2 are started to clean the TPE waste inside the melting box 2. PE waste is melted to recycle and mix with TPE waste. The recycled and mixed TPE waste is discharged through one end of the melting tank 2, completing the recycling and mixing of TPE waste. When the melting tank 2 is melting, a large amount of residual heat will be dissipated from its surface. At this time, an external fan is connected to the blower head 802 to inject air into the interior of the heat insulation cover 803 through the blower head 802. The use of heat-conducting plates 804 can increase the contact area between the air and the residual heat, accelerate the heat exchange effect, and allow the air to quickly exchange heat with the residual heat. In the next step, heated air flows into the regulator 8010 through the heat inlet pipe 801. The air from the regulator 8010 then flows out through the second heat outlet pipe 809 and the first heat outlet pipe 805. The air flowing out through the second heat outlet pipe 809 flows into the heat exchange ring 806. The inner cavity 14 is filled with heat transfer oil. As the hot air passes through the heat exchange ring 806, it heats the heat transfer oil through heat exchange. The heat transfer oil then heats the clean water inside the cleaning tank 5 through heat exchange. Heated water can enhance and accelerate the dissolution and removal of impurities such as dust and residual additives on the surface of TPE waste. Compared with cold water, hot water cleaning can remove stubborn stains more effectively, reduce the residue of impurities, and make the subsequent melting process more effective. The residual heat of the molten material is recovered through heat exchange to heat the cleaning water, eliminating the need for additional energy consumption such as electricity and gas, which can directly reduce the energy cost of the cleaning process. At the same time, this process realizes the cascade utilization of high-temperature waste heat to medium-temperature cleaning heat, turning the originally wasted heat into economic value and reducing the cost of use. When heating the clean water, the temperature is maintained between 40℃ and 60℃ for better cleaning results. To ensure the water temperature remains consistently between 40℃ and 60℃, the heat is transferred from the cleaning tank 5 to the paraffin wax 8014 inside the fixed shell 8012 via the heat conduction head 8013. Since the top of the heat conduction head 8013 is directly installed inside the bottom of the base 1, it can directly sense the water temperature. The paraffin wax 8014 is industrial-grade narrow-temperature phase change paraffin wax with a phase change range of 52℃-58℃. At 58℃, the paraffin wax pushes to its limit, corresponding to an actual water temperature of 40℃-60℃, thus meeting the cleaning temperature requirements. When the water temperature is below 40℃, the paraffin wax 8014 is in a contracted state, and the valve core 8011 remains in place. When the water temperature reaches 40℃-60℃, the paraffin wax 8014 expands due to heat, pushing the valve core on one side of the connecting rod 8015. When 8011 moves, the space between the circular plate 8017 and the fixed shell 8012 is exactly the distance that the circular plate 8017 pushes the valve core 8011 to block the inlet of the second heat outlet pipe 809, preventing hot air from flowing through the inside of the second heat outlet pipe 809. When the water temperature drops, the paraffin wax 8014 stops expanding. At this time, under the action of the reset spring 8016, the valve core 8011 moves back, opening the inlet of the second heat outlet pipe 809. This achieves the effect of sealing the inlet of the second heat outlet pipe 809 when the water temperature reaches the standard and automatically resetting and opening the inlet of the second heat outlet pipe 809 when the water temperature is insufficient, without manual intervention. This avoids the TPE material sticking during cleaning due to excessively high water temperature or the cleaning effect being affected by excessively low temperature. It does not require PLC, electric valves, sensors, or other electrical control components, nor does it require additional power consumption. It directly relies on the thermal expansion and contraction of paraffin wax to achieve automatic temperature control, reducing investment costs. When the inlet of the second heat pipe 809 is blocked, hot air will only pass through the inside of the first heat pipe 805. During the cleaning of TPE waste, the impurities washed off will move along the bottom wall of the cleaning tank 5 due to centrifugal force. The collection port 13, equipped with a screen to prevent TPE waste from falling into it, is used to collect these impurities. After cleaning the TPE waste, the drain port 12 is opened to drain the cleaning water. After the washing water is drained, open the discharge port 10 to discharge the TPE waste. The discharged TPE waste will fall onto the top of the vibrating plate 403. When the TPE waste falls onto the top of the vibrating plate 403, start the vibrator 402 to drive the vibrating plate 403 to vibrate. Before the vibrating plate 403 vibrates, place the collection box at the bottom of the vibrating plate 403 to collect the water that is shaken down. When the vibrating plate 403 vibrates, it will vibrate the TPE waste, thereby cleaning the water stains on the surface of the TPE waste. When the TPE waste vibrates, the hot air discharged from the first heating pipe 805 is released into the interior of the drying head 807 and sprayed out through the nozzle on one side of the drying head 807 to dry the TPE waste. This achieves the drying work during the vibration and dewatering of the TPE waste, reducing the residual water stains on the surface of the TPE waste and preventing water stains from affecting the subsequent melting and mixing effect. During the vibration, the TPE waste will continuously roll and disperse, and the surface water stains will be thrown off under the action of vibration, achieving the initial dewatering effect. During the dewatering process, the jumping TPE waste will cause hot air to penetrate through the gaps in the waste and act directly on the surface of each particle, accelerating the evaporation of residual moisture. Combined with vibration, this makes the dewatering effect even better. The drying hot air comes from the surplus waste heat of the melting equipment, without the need for additional electricity or gas heating, directly saving the heating energy consumption of the drying process, realizing the closed loop of waste heat utilization: melting waste heat → washing water heating → drying, maximizing the utilization of waste heat, and realizing the waste heat recovery work of the melting box 2 during melting and recycling mixing.
[0020] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A TPE waste recycling and regeneration mixing device, characterized in that: The base (1) includes a melting box (2) installed on one side of the top end, a support frame (7) installed on the other side of the top end, a vibration structure (4) provided on one side of the top end of the support frame (7), a cleaning tank (5) provided on the top end of the vibration structure (4), a cleaning rack (6) installed inside the cleaning tank (5), an inner cavity (14) opened in the inner wall of the cleaning tank (5), and a waste heat recovery structure (8) provided inside the inner cavity (14). The waste heat recovery structure (8) includes a heat exchange ring (806), which is installed inside the inner cavity (14). A regulator (8010) is installed on one side of the bottom of the cleaning tank (5). A valve core (8011) is installed on one side inside the regulator (8010). A heat inlet pipe (801) is installed at one end of the regulator (8010). A second heat outlet pipe (809) is installed on one side of the bottom of the regulator (8010). A first heat outlet pipe (805) is installed on the other side of the bottom of the regulator (8010). A drying head (807) is installed at one end of the first heat outlet pipe (805). A fixed shell (8012) is installed on the other side of the device (8010). A heat-conducting head (8013) is installed on one side inside the fixed shell (8012). The top of the heat-conducting head (8013) is connected to the bottom of the cleaning tank (5). A circular plate (8017) is installed on one side inside the fixed shell (8012). A connecting rod (8015) is installed on one end of the circular plate (8017). One end of the connecting rod (8015) is connected to the valve core (8011). A reset spring (8016) is installed on one side of the circular plate (8017). The other side inside the fixed shell (8012) is filled with paraffin wax (8014).
2. The TPE waste recycling and regeneration mixing equipment according to claim 1, characterized in that: A heat-conducting plate (804) is installed on the outside of the melting box (2). A blower head (802) is installed at one end of the outside of the melting box (2). A heat insulation cover (803) is fitted on the outside of the heat-conducting plate (804). One end of the heat insulation cover (803) is connected to the heat inlet pipe (801). A return pipe (808) is installed at the outlet end of the heat exchange ring (806). One end of the return pipe (808) is connected to the top end of the heat inlet pipe (801).
3. The TPE waste recycling and regeneration mixing equipment according to claim 1, characterized in that: The two ends of the return spring (8016) are respectively connected to one side of the circular plate (8017) and one side of the interior of the fixed shell (8012), and the circular plate (8017) and the return spring (8016) form a telescopic structure.
4. The TPE waste recycling and regeneration mixing equipment according to claim 2, characterized in that: The heat-conducting sheet (804) is provided in multiple sets, and the multiple sets of heat-conducting sheet (804) are distributed in a ring on the outside of the melting box (2).
5. The TPE waste recycling and regeneration mixing equipment according to claim 1, characterized in that: The drying head (807) has a plurality of spray holes on one side, and the plurality of spray holes are arranged at equal intervals on one side of the drying head (807).
6. The TPE waste recycling and regeneration mixing equipment according to claim 1, characterized in that: One end of the valve core (8011) is inserted into the interior of the regulator (8010), and the valve core (8011) and the regulator (8010) form a sliding connection.
7. The TPE waste recycling and regeneration mixing equipment according to claim 1, characterized in that: A feed inlet (3) is installed on one side of the top of the melting tank (2). A melting screw (11) is installed inside the melting tank (2). A cleaning rack (6) is installed inside the cleaning tank (5). A discharge port (10) is installed at the middle position of the bottom of the cleaning tank (5). A drain port (12) is installed on one side of the bottom of the cleaning tank (5). A collection port (13) is opened at the bottom of the inside of the cleaning tank (5). An impurity collection box (9) is installed at the bottom of the collection port (13).
8. The TPE waste recycling and regeneration mixing equipment according to claim 1, characterized in that: The vibration structure (4) includes a fixing block (405), which is installed on one side of the top of the support frame (7). A vibration plate (403) is installed on the top of the fixing block (405). A screening screen (404) is installed in the middle of the vibration plate (403). Fixing plates (401) are installed on both sides of the vibration plate (403). A drying head (807) is installed inside one side of the fixing plate (401). A vibrator (402) is installed on one side of the bottom of the vibration plate (403).
9. The TPE waste recycling and regeneration mixing equipment according to claim 1, characterized in that: Several stirring rods are arranged on the outside of the cleaning rack (6), and the stirring rods are arranged in a ring on the outside of the cleaning rack (6).
10. A TPE waste recycling and regeneration mixing device according to claim 7, characterized in that: The collection port (13) is provided in two sets, and the two sets of collection ports (13) are symmetrically distributed at the bottom of the cleaning tank (5).