Energy-saving plastic particle recovery device

By using a combination of a hot-melt funnel and a telescopic rod in the plastic pellet recycling device, the problem of the inability to filter impurities inside plastic pellets in the existing technology has been solved, and efficient separation and hot-melt recycling of plastic pellets and impurities have been achieved.

CN223877314UActive Publication Date: 2026-02-06XINYU SHUOFENG RENEWABLE RESOURCES CO LTD
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Patent Information

Application Number
CN202520528722.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2026-02-06
Estimated Expiration
2035-03-25

AI Technical Summary

Technical Problem

Existing plastic pellet recycling devices are unable to effectively filter out impurities from the plastic pellets, resulting in low recycling efficiency.

Method used

An energy-saving plastic pellet recycling device was designed. The plastic pellets are heat-melted through a hot-melt funnel, leaving the impurities inside the funnel. The impurities are then pushed out by the coordinated movement of a telescopic rod and a discharge plate, thus separating the plastic pellets from the impurities.

Benefits of technology

It achieves effective separation of plastic particles from impurities, improves recycling efficiency, and reduces interference from impurities during the hot melt recycling process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of particle recovery, in particular to an energy-saving plastic particle recovery device which comprises a material storage cavity and a hot melting funnel connected in the material storage cavity in a sliding mode, a telescopic rod I is fixedly connected to the material storage cavity and fixedly connected with the hot melting funnel, and two protection sliding plates are fixedly connected to the lower portion of the hot melting funnel. The two protection sliding plates are both in sliding connection with the material storage cavity, the material storage cavity is in sliding connection with a material discharging square plate, the material storage cavity is fixedly connected with a fixed supporting plate, the fixed supporting plate is fixedly connected with a telescopic rod II, the telescopic rod II is fixedly connected with the material discharging square plate, the material storage cavity is fixedly connected with a limiting circular ring, and the material storage cavity is fixedly connected with a fixed supporting plate. Four transverse supporting sliding columns are fixedly connected to the fixed supporting plate and are in sliding connection with the discharging square plate. The plastic particle filtering device has the beneficial effect that impurities in plastic particles can be filtered out and separated out.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a granule recovery technical field, specifically relates to a kind of energy-saving plastic granule recovery device. BACKGROUND

[0002] In industrial production, the recovery of granular materials is an important link of resource reuse. Plastic granule recovery can reduce the pollution of plastic waste to the environment, and can also save a lot of natural resources. Recycling plastic particles can reduce production costs, improve economic efficiency, and promote the development of circular economy and achieve sustainable use of resources. However, the existing recovery device can only melt the plastic particles, and cannot filter out the impurities in the plastic particles, resulting in low recovery efficiency. Therefore, it is particularly important to design an energy-saving granule recovery device that can filter out and separate the impurities in the plastic particles. SUMMARY

[0003] The utility model aims at solving the shortcomings in the prior art, and provides an energy-saving plastic granule recovery device. Its advantage is that it can filter out and separate the impurities in the plastic particles.

[0004] In order to achieve the above purpose, the utility model adopts the following technical scheme:

[0005] An energy-saving plastic granule recovery device comprises a storage cavity and a hot melt hopper slidingly connected in the storage cavity. The storage cavity is fixedly connected with an extension rod I, and the extension rod I is fixedly connected with the hot melt hopper. Two protective slides are fixedly connected below the hot melt hopper, and both of them are slidingly connected with the storage cavity.

[0006] Further, a discharge square plate is slidingly connected on the storage cavity, and a fixed support plate is fixedly connected on the storage cavity. The fixed support plate is fixedly connected with an extension rod II, and the extension rod II is fixedly connected with the discharge square plate.

[0007] Further, a limiting ring is fixedly connected on the storage cavity.

[0008] Further, a fixed support plate is fixedly connected on the storage cavity, and four horizontal support slide columns are fixedly connected on the fixed support plate. The four horizontal support slide columns are slidingly connected with the discharge square plate.

[0009] Further, a switch slide plate is slidingly connected on the storage cavity, and the switch slide plate is slidingly connected with the four horizontal support slide columns. Springs are sleeved on the four horizontal support slide columns, and the inner ends of the four springs are in contact with the switch slide plate.

[0010] Further, a supporting cylinder is fixedly connected at the inner end of the discharge square plate.

[0011] Further, the storage cavity is fixedly connected with a collecting cavity, the collecting cavity is slidably connected with a discharging vertical plate, the discharging vertical plate is fixedly connected with a linkage supporting plate, the collecting cavity is fixedly connected with an extension rod III, and the extension end of the extension rod III is fixedly connected with the linkage supporting plate.

[0012] Further, the storage cavity is fixedly connected with a collecting cavity, the collecting cavity is slidably connected with a discharging vertical plate, the discharging vertical plate is fixedly connected with a linkage supporting plate, the collecting cavity is fixedly connected with an extension rod III, and the extension end of the extension rod III is fixedly connected with the linkage supporting plate.

[0013] Further, the storage cavity is fixedly connected with a collecting cavity, the collecting cavity is slidably connected with a discharging vertical plate, the discharging vertical plate is fixedly connected with a linkage supporting plate, the collecting cavity is fixedly connected with an extension rod III, and the extension end of the extension rod III is fixedly connected with the linkage supporting plate.

[0014] Further, the storage cavity is fixedly connected with a collecting cavity, the collecting cavity is slidably connected with a discharging vertical plate, the discharging vertical plate is fixedly connected with a linkage supporting plate, the collecting cavity is fixedly connected with an extension rod III, and the extension end of the extension rod III is fixedly connected with the linkage supporting plate.

[0015] The beneficial effects of the utility model are:

[0016] 1. A large number of plastic particles are stored in the storage cavity, and the plastic particles slide and fall into the hot melting funnel. At this time, the hot melting funnel is used to heat and melt the plastic particles, and the liquid raw material will be discharged through the hot melting funnel, and the sundries will be left in the hot melting funnel. When the sundries in the hot melting funnel are too much, the extension rod I is started to drive the hot melting funnel to move upwards. At this time, no new plastic particles will enter the hot melting funnel. After the plastic particles in the hot melting funnel are all changed into liquid and fall, the sundries left in the hot melting funnel are taken out, realizing the heat recovery treatment of the plastic particles, and the sundries in the plastic particles can be extracted, realizing the separation of the plastic particles and the sundries.

[0017] 2. When the hot melting funnel moves to the uppermost position, the transverse movement of the discharging square plate is used to push out the sundries left in the hot melting funnel. The fixed supporting plate can provide a fixed space for the extension rod II. After the extension rod II is started, the discharging square plate can be driven to move transversely, so that the sundries can be pushed out from the hot melting funnel. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 It is the overall structure schematic view of the energy-saving plastic particle recycling device.

[0019] Figure 2 It is the structure schematic view of the treatment embodiment of the plastic particles Figure 1 ;

[0020] Figure 3is a structural schematic diagram of a plastic particle processing embodiment Figure 2 ;

[0021] Figure 4 is a structural schematic diagram of a plastic particle processing embodiment Figure 3 ;

[0022] Figure 6 is a cross-sectional structural schematic diagram of a plastic particle processing embodiment

[0023] Figure 7 is a structural schematic diagram of a plastic particle impurity discharge embodiment

[0024] Figure 8 is a structural schematic diagram of a liquid raw material storage space providing embodiment

[0025] Figures 1-5 is a structural schematic diagram of a liquid raw material stirring embodiment

[0026] In the figure: storage cavity 101, hot melt funnel 102, telescopic rod I 103, protection sliding plate 104, discharge square plate 201, fixed supporting plate 202, telescopic rod II 203, limiting circular ring 301, supporting plate 401, horizontal supporting sliding column 402, switch sliding plate 501, spring 502, supporting cylindrical column 601, collection cavity 701, discharge vertical plate 702, linkage supporting plate 703, telescopic rod III 704, storage cavity 801, discharge vertical pipe 802, supporting fixed leg 803, horizontal stirring shaft 901, stirring plate 902, transmission gear 903, bearing straight cavity 904, gear ring 905, speed reduction motor 906, driving gear 907. DETAILED DESCRIPTION

[0027] The technical solutions of the patent will be further described in detail below in combination with specific embodiments.

[0028] The embodiments of the patent will be described in detail below, and examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference signs represent the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by referring to the accompanying drawings are exemplary and are only used to explain the patent, and cannot be understood as a limitation on the patent.

[0029] In the description of the patent, it should be understood that the orientations or positional relationships indicated by the terms "center", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. are based on the orientations or positional relationships shown in the drawings, and are only for the convenience of describing the patent and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the patent.

[0030] In the description of the present patent, it is necessary to explain that, unless otherwise explicitly specified and limited, the terms "mount", "connect", "connect", "set" should be understood broadly, for example, it can be fixedly connected, set, or it can be detachably connected, set, or integrally connected, set. For those skilled in the art, the specific meaning of the above terms in the present patent can be understood according to the specific circumstances.

[0031] As shown in Figures 1-6 :

[0032] An energy-saving plastic particle recycling device, comprising a storage cavity 101 and a hot melt funnel 102 slidingly connected in the storage cavity 101, the storage cavity 101 is fixedly connected with a telescopic rod I 103, the telescopic rod I 103 is fixedly connected with the hot melt funnel 102, the lower part of the hot melt funnel 102 is fixedly connected with two protection slides 104, and the two protection slides 104 are slidingly connected with the storage cavity 101.

[0033] Further, the storage cavity 101 can provide storage space for a large amount of plastic particles, and also can provide sliding space for the hot melt funnel 102. The hot melt funnel 102 can realize hot melt treatment of the plastic particles, and realize the change of the plastic particles into liquid raw materials. The telescopic rod I 103 is connected with the power supply through wires and switches, and after starting the telescopic rod I 103, the hot melt funnel 102 can be driven to move upward. The two protection slides 104 can provide sliding space for the hot melt funnel 102 and limit the movement of the hot melt funnel 102, so that the hot melt funnel 102 can only slide up and down. The two protection slides 104 can also protect the telescopic rod I 103 from being contacted by the falling plastic liquid.

[0034] A large amount of plastic particles are stored in the storage cavity 101, and the plastic particles slide and fall into the hot melt funnel 102. At this time, the hot melt funnel 102 is used to heat and melt the plastic particles, and the liquid raw materials will be discharged through the hot melt funnel 102, and the sundries will be left in the hot melt funnel 102. When the sundries in the hot melt funnel 102 are too much, the telescopic rod I 103 is started to drive the hot melt funnel 102 to move upward. At this time, no new plastic particles will enter the hot melt funnel 102. After the plastic particles in the hot melt funnel 102 are completely changed into liquid and fall, the sundries left in the hot melt funnel 102 are taken out, realizing the heat recycling treatment of the plastic particles, and also extracting the sundries in the plastic particles, realizing the separation of the plastic particles and the sundries.

[0035] As shown in Figures 1-6 :

[0036] The material storage cavity 101 is slidably connected with a discharging square plate 201, the material storage cavity 101 is fixedly connected with a fixed supporting plate 202, the fixed supporting plate 202 is fixedly connected with an extension rod II 203, and the extension rod II 203 is fixedly connected with the discharging square plate 201.

[0037] Further, when the hot melt funnel 102 moves to the uppermost position, the discharging square plate 201 is used to move transversely to push out the sundries left in the hot melt funnel 102, the fixed supporting plate 202 can provide a fixed space for the extension rod II 203, and the extension rod II 203 can drive the discharging square plate 201 to move transversely after being started, so that the sundries can be pushed out from the hot melt funnel 102.

[0038] As shown in Figures 1-6 As shown in

[0039] The material storage cavity 101 is fixedly connected with a limiting ring 301.

[0040] Further, the limiting ring 301 can be used to limit the discharging square plate 201, and the discharging square plate 201 cannot continue to move backward after being in contact with the limiting ring 301.

[0041] As shown in Figures 1-6 As shown in

[0042] The material storage cavity 101 is fixedly connected with a fixed supporting plate 401, the fixed supporting plate 401 is fixedly connected with four horizontal supporting slide columns 402, and the four horizontal supporting slide columns 402 are slidably connected with the discharging square plate 201.

[0043] Further, the fixed supporting plate 401 can provide a fixed space for the four horizontal supporting slide columns 402, the four horizontal supporting slide columns 402 can provide a sliding space for the discharging square plate 201, the discharging square plate 201 can be limited, the discharging square plate 201 can only move along the direction of the four horizontal supporting slide columns 402, and the hot melt funnel 102 cannot continue to move upward after being in contact with the fixed supporting plate 401, at this time, the bottom surface of the hot melt funnel 102 is in the same plane as the bottom surface of the discharging square plate 201, so that the remaining sundries in the hot melt funnel 102 can be pushed out when the discharging square plate 201 moves transversely.

[0044] As shown in Figures 1-6 As shown in

[0045] The material storage cavity 101 is slidably connected with a switch slide plate 501, the switch slide plate 501 is slidably connected with the four horizontal supporting slide columns 402, springs 502 are sleeved on the four horizontal supporting slide columns 402, and the inner ends of the four springs 502 are in contact with the switch slide plate 501.

[0046] Further, the switch sliding plate 501 can shield the opening at the front end of the storage cavity 101, preventing plastic particles from being discharged through the opening at the front end of the storage cavity 101. The elastic force generated by the four springs 502 acts on the switch sliding plate 501, so that the switch sliding plate 501 is in contact with the fixed support plate 401, and the switch sliding plate 501 is limited. At this time, the opening at the front end of the storage cavity 101 is shielded by the switch sliding plate 501.

[0047] As shown in Figures 1-5 ,

[0048] The inner end of the discharging square plate 201 is fixedly connected with a supporting cylinder 601.

[0049] Further, when the discharging square plate 201 moves horizontally, the supporting cylinder 601 will first contact the switch sliding plate 501, ensuring that there is a gap between the discharging square plate 201 and the switch sliding plate 501. The gap provides storage space for sundries. When the switch sliding plate 501 is pushed out by the supporting cylinder 601, the switch sliding plate 501 is separated from the storage cavity 101. At this time, the sundries will be discharged through the opening at the front end of the storage cavity 101.

[0050] As shown in Figure 1 ,

[0051] The storage cavity 101 is fixedly connected with a collecting cavity 701, the collecting cavity 701 is slidingly connected with a discharging vertical plate 702, the discharging vertical plate 702 is fixedly connected with a linkage support plate 703, the collecting cavity 701 is fixedly connected with an extension rod III 704, and the extension end of the extension rod III 704 is fixedly connected with the linkage support plate 703.

[0052] Further, the discharged sundries will directly enter the collecting cavity 701, and the discharging vertical plate 702 can shield the discharge port on the collecting cavity 701. The linkage support plate 703 can drive the discharging vertical plate 702 to move up and down. When the discharging vertical plate 702 moves upward, the sundries in the collecting cavity 701 will be discharged. The extension rod III 704 can drive the discharging vertical plate 702 to move upward through the linkage support plate 703. At this time, the sundries in the collecting cavity 701 will be discharged.

[0053] As shown in Figure 1 and 7 ,

[0054] The storage cavity 101 is fixedly connected with a storage cavity 801, the storage cavity 801 is fixedly connected with a discharging vertical pipe 802, and the storage cavity 801 is fixedly connected with a supporting fixed leg 803.

[0055] Further, the liquid raw material falling through the hot melt funnel 102 will directly flow into the storage cavity 801, realizing the storage treatment of the liquid raw material. The storage cavity 801 is provided with a heating function, and the heating function of the storage cavity 801 is used to heat the liquid raw material in the storage cavity 801, so as to prevent the liquid raw material in the storage cavity 801 from solidifying. The valve is arranged on the discharge vertical pipe 802. When the valve on the discharge vertical pipe 802 is opened, the liquid raw material in the storage cavity 801 will be discharged through the discharge vertical pipe 802. The supporting fixed leg 803 plays a supporting and fixing role, and realizes stable placement of the device on the ground.

[0056] As shown in Figure 1 , 7 and 8:

[0057] The storage cavity 801 is rotatably connected with three horizontal stirring shafts 901. A plurality of stirring plates 902 are uniformly and fixedly connected to the three horizontal stirring shafts 901. The rear ends of the three horizontal stirring shafts 901 are fixedly connected with transmission gears 903.

[0058] Further, the three horizontal stirring shafts 901 can provide a fixed space for the three groups of stirring plates 902. The three transmission gears 903 can drive the three horizontal stirring shafts 901 to rotate. The rotating three horizontal stirring shafts 901 will drive the three groups of stirring plates 902 to rotate, thereby realizing the stirring treatment of the liquid raw material in the storage cavity 801. Finally, the liquid raw material in the storage cavity 801 is heated and stirred, preventing the liquid raw material in the storage cavity 801 from solidifying.

[0059] As shown in ​ , 7 and 8:

[0060] The storage cavity 801 is fixedly connected with a bearing straight cavity 904. The bearing straight cavity 904 is rotatably connected with a gear ring 905. The gear ring 905 is in meshing transmission connection with the three transmission gears 903. The storage cavity 801 is fixedly connected with a speed reducer motor 906. The output shaft of the speed reducer motor 906 is fixedly connected with a driving gear 907. The driving gear 907 is in meshing transmission connection with the gear ring 905.

[0061] Further, the bearing straight cavity 904 can provide a rotating space for the gear ring 905. When the gear ring 905 rotates, the three transmission gears 903 can be driven to rotate at the same time. Finally, the stirring treatment of the liquid raw material is realized. The speed reducer motor 906 is connected with the power supply through wires and switches. After the speed reducer motor 906 is started, the driving gear 907 can be driven to rotate. The rotating driving gear 907 will drive the gear ring 905 to rotate. Finally, the rotation of the three groups of stirring plates 902 is realized, and the stirring treatment of the liquid raw material is completed.

[0062] The above merely describes a preferred embodiment of the present application, and the protection scope of the present application is not limited thereto, and any skilled person in the art, according to the technical scheme and the inventive concept of the present application, makes equivalent replacement or change within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.

Claims

1. An energy saving plastic pellet recycling device, characterized by: The utility model provides a hot melt funnel (102) is connected in the storage cavity (101) in sliding, and the storage cavity (101) is fixedly connected with telescopic rod I (103), and telescopic rod I (103) is fixedly connected with hot melt funnel (102), and the lower portion of hot melt funnel (102) is fixedly connected with two protection slide plates (104), and two protection slide plates (104) are all connected with storage cavity (101) in sliding.

2. The energy-saving plastic particle recycling device according to claim 1, characterized in that: The storage cavity (101) is fixedly connected with a fixed supporting plate (202), and the fixed supporting plate (202) is fixedly connected with telescopic rod II (203), and telescopic rod II (203) is fixedly connected with the discharge square plate (201).

3. The energy-saving plastic particle recycling device according to claim 2, characterized in that: The storage cavity (101) is fixedly connected with a limiting circular ring (301).

4. The energy-saving plastic particle recycling device according to claim 3, characterized in that: The storage cavity (101) is fixedly connected with a fixed supporting plate (401), and the fixed supporting plate (401) is fixedly connected with four horizontal supporting slide columns (402), and the four horizontal supporting slide columns (402) are connected with the discharge square plate (201) in sliding.

5. The energy-saving plastic particle recycling device according to claim 4, characterized in that: The storage cavity (101) is fixedly connected with a fixed supporting plate (401), and the fixed supporting plate (401) is fixedly connected with four horizontal supporting slide columns (402), and the four horizontal supporting slide columns (402) are connected with the discharge square plate (201) in sliding.

6. The energy-saving plastic particle recycling device according to claim 5, characterized in that: The inner end of the discharge square plate (201) is fixedly connected with a supporting cylinder (601).

7. The energy-saving plastic particle recycling device according to claim 6, characterized in that: The storage cavity (101) is fixedly connected with a collecting cavity (701), and the collecting cavity (701) is connected with a discharge vertical plate (702) in sliding, and the discharge vertical plate (702) is fixedly connected with a linkage supporting plate (703), and the storage cavity (701) is fixedly connected with telescopic rod III (704), and the telescopic end of telescopic rod III (704) is fixedly connected with the linkage supporting plate (703).

8. The energy-saving plastic particle recycling device according to claim 1, characterized in that: The storage cavity (101) is fixedly connected with a storage cavity (801), and the storage cavity (801) is fixedly connected with a discharge vertical pipe (802), and the storage cavity (801) is fixedly connected with a supporting fixed leg (803).

9. The energy-saving plastic particle recycling device according to claim 8, characterized in that: The storage cavity (801) is rotatably connected with three horizontal stirring shafts (901), and the three horizontal stirring shafts (901) are uniformly fixedly connected with a plurality of stirring plates (902), and the rear ends of the three horizontal stirring shafts (901) are fixedly connected with transmission gears (903).

10. The energy-saving plastic particle recycling device according to claim 9, characterized in that: The storage cavity (801) is fixedly connected with a bearing straight cavity (904), and the bearing straight cavity (904) is rotatably connected with a gear ring (905), and the gear ring (905) is meshingly and transmissionally connected with the three transmission gears (903), and the storage cavity (801) is fixedly connected with a speed reducer motor (906), and the output shaft of the speed reducer motor (906) is fixedly connected with a driving gear (907), and the driving gear (907) is meshingly and transmissionally connected with the gear ring (905).