Resin particle discharging structure

By designing a resin particle discharge structure and utilizing dispersion and jet cooling methods, the problems of resin particle adhesion and high residual temperature after molding were solved, thereby improving particle quality and efficiency.

CN223948281UActive Publication Date: 2026-02-27LONGZHIYAO (ZHEJIANG) NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202520629892.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-07
Publication Date
2026-02-27
Estimated Expiration
2035-04-07

AI Technical Summary

Technical Problem

Existing resin granules have high residual temperature after molding and are prone to sticking together, which affects the quality of the granules.

Method used

A resin particle discharge structure was designed, comprising a receiving frame, a sieve plate, a drive disc, and a heat dissipation mechanism. The resin particles are dispersed by a dispersing rod and an elliptical roller, and cooled by jets from a nozzle. The structure is further enhanced by an impact block for initial impact, which prevents clumping and improves heat dissipation efficiency.

Benefits of technology

It effectively prevents resin particles from clumping, ensures particle quality, and reduces particle temperature through heat dissipation treatment, thereby improving discharge efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a resin particle discharging structure, and belongs to the technical field of resin particles. The resin particle discharging structure comprises a material receiving frame, a first material receiving plate and a discharging mechanism, the first material receiving plate and a second material receiving plate are installed in an inner cavity of the material receiving frame, the discharging mechanism is installed in the inner cavity of the material receiving frame and used for discharging resin particles, the discharging mechanism comprises a screen plate and a driving disc, and the screen plate is installed at the bottom of the material receiving frame and used for screening the resin particles. And rotating shafts are symmetrically and rotationally installed on the side walls of the material receiving frame, oval rollers are fixedly installed on the surfaces of the rotating shafts and used for fixing the sieve plates, gears are fixedly installed at one ends of the rotating shafts, and rotating handles are fixedly installed on the side walls of the gears. By arranging the discharging mechanism, resin particles enter the material receiving frame, and the driving disc can be driven by the motor to drive the scattering rod to rotate, so that the resin particles falling into the material receiving frame are scattered, the resin particles are prevented from caking, the scattered resin particles are discharged by the sieve plate for blanking, and the particle quality is ensured.
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Description

TECHNICAL FIELD

[0001] The utility model relates to resin particle technical field, specifically, relate to a resin particle discharge structure. BACKGROUND

[0002] Resin is a kind of high molecular material with plasticity or thermosetting characteristics, usually by natural or synthetic monomer synthesis by chemical reaction, is the main raw material of plastic product, common plastics such as polyethylene, polypropylene, polyvinyl chloride etc., are widely used in packaging, building, household supplies etc., resin particle production process mainly includes polymerization, granulation and drying etc.

[0003] The existing resin particles are generally discharged directly by the granulator after forming, but at this time, the residual temperature of the resin particles is relatively high, and part of the resin particles are adhered to each other, which affects the particle quality. UTILITY MODEL CONTENT

[0004] In order to make up for the above shortcomings, the utility model provides a resin particle discharge structure which overcomes the above technical problems or at least partially solves the above problems.

[0005] The utility model is realized as follows:

[0006] The utility model provides a resin particle discharge structure, including receiving frame, first receiving plate and discharge mechanism, first receiving plate and second receiving plate are installed in the inner chamber of receiving frame, the discharge mechanism is installed in the inner chamber of receiving frame, is used for the discharge of resin particle, the discharge mechanism includes:

[0007] The sieve plate is installed at the bottom of the receiving frame and is used for screening the resin particles.

[0008] The driving disc is symmetrically rotatably installed in the inner chamber of the receiving frame, and a scattering rod is fixedly installed between the two driving discs for scattering the agglomerated resin particles.

[0009] In a preferred scheme, the receiving frame sidewall is symmetrically rotatably installed with a rotating shaft, and the rotating shaft surface is fixedly installed with an oval roller for fixing the sieve plate.

[0010] In a preferred scheme, the rotating shaft one end is fixedly installed with a gear, and the gear sidewall is fixedly installed with a rotating handle for rotating the oval roller.

[0011] In a preferred scheme, the side wall of the receiving frame is symmetrically slidably installed with a sliding plate, one end of the sliding plate is fixedly installed with a clamping tooth, the clamping tooth is matched with a gear for positioning the gear, the side wall of the receiving frame is fixedly installed with a spring, the other end of the spring is fixedly connected with the sliding plate for driving the clamping tooth to engage with the gear.

[0012] In a preferred scheme, the side wall of the receiving frame is fixedly installed with a motor, the output end of the motor is fixedly connected with the driving disc for driving the driving disc to rotate.

[0013] In a preferred scheme, the surface of the receiving frame is installed with a heat dissipation mechanism for heat dissipation of the resin particles, the heat dissipation mechanism comprises a mounting plate, a spray pipe and a spray head, the mounting plate is fixedly installed at the bottom of the second receiving plate, the side wall of the mounting plate is fixedly installed with the spray pipe, the side wall of the spray pipe is installed with a plurality of spray heads for air jet heat dissipation of the resin particles.

[0014] In a preferred scheme, the inner wall of the receiving frame is fixedly installed with a plurality of impact blocks for impact and scattering of the resin particles.

[0015] In a preferred scheme, the side wall of the receiving frame is fixedly installed with a cylinder, the inner cavity of the cylinder is slidably installed with a piston, the side wall of the receiving frame is rotatably installed with a rotating wheel, the rotating wheel is fixedly connected with the driving disc, the side wall of the rotating wheel is fixedly installed with an eccentric shaft, the surface of the eccentric shaft is sleeved with a driving frame, the driving frame and the piston are fixedly installed with a connecting rod, the surface of the cylinder is installed with a first one-way valve and a second one-way valve, the second one-way valve and the spray pipe are communicated with an air pipe.

[0016] The resin particle discharging structure has the following beneficial effects:

[0017] 1. The discharging mechanism is arranged, the resin particles enter the receiving frame, the motor can drive the driving disc to drive the scattering rod to rotate, so that the resin particles falling into the receiving frame are scattered, the resin particles are prevented from being clumped, the scattered resin particles are discharged by the sieve plate, and the particle quality is guaranteed.

[0018] 2. The heat dissipation mechanism is arranged, when the motor drives the driving disc to rotate, the rotating wheel is synchronously driven to rotate, the eccentric shaft drives the driving frame and the piston to move up and down, the first one-way valve and the second one-way valve are alternately communicated, air is injected into the spray pipe, and the spray head sprays air to the surface of the resin particles falling from the surface of the second receiving plate, so that the resin particles are heat treated, at the same time, the resin particles are blown to the impact blocks to be initially scattered, and the subsequent scattering efficiency is improved. BRIEF DESCRIPTION OF DRAWINGS

[0019] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings used in the embodiments will be briefly introduced as follows. Obviously, the drawings below only show some of the embodiments of the present application, and therefore should not be considered as limiting the scope, and for those skilled in the art, other related drawings can be obtained without creative labor.

[0020] Figure 1 is a perspective view provided by the embodiments of the present application;

[0021] Figure 2 is a side view cross-sectional structure schematic view provided by the embodiments of the present application;

[0022] Figure 3 is a side view perspective view provided by the embodiments of the present application;

[0023] Figure 4 is a perspective view provided by the embodiments of the present application Figure 3 is an enlarged view of A in the figure;

[0024] Figure 5 is a cylinder cross-sectional view provided by the embodiments of the present application.

[0025] In the figure: 1, a receiving frame; 2, a first receiving plate; 3, a second receiving plate; 4, a discharging mechanism; 401, a sieve plate; 402, a rotating shaft; 403, an oval roller; 404, a gear; 405, a rotating handle; 406, a sliding plate; 407, a clamping tooth; 408, a spring; 409, a driving disc; 410, a scattering rod; 411, a motor; 5, a heat dissipation mechanism; 501, a mounting plate; 502, a spray pipe; 503, a spray head; 504, an impact block; 505, a cylinder; 506, a piston; 507, a rotating wheel; 508, an eccentric shaft; 509, a driving frame; 510, a connecting rod; 511, a first one-way valve; 512, a second one-way valve. DETAILED DESCRIPTION

[0026] In order to make the purpose, technical solutions and advantages of the embodiments of the present application more clear, the technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, and not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0027] Reference Figures 1-5The utility model provides a technical scheme: a resin particle discharging structure, including receiving frame 1, first receiving plate 2 and discharging mechanism 4, first receiving plate 2 and second receiving plate 3 are installed in the inner chamber of receiving frame 1, when using, placing receiving frame 1 at the discharge port of the granulator, after resin particle passes first receiving plate 2 and second receiving plate 3 respectively, enters receiving frame 1, and discharging mechanism 4 is installed in the inner chamber of receiving frame 1 and is used for the discharge of resin particle, and discharging mechanism 4 includes sieve plate 401 and driving disc 409, sieve plate 401 is installed at the bottom of receiving frame 1 and is used for screening resin particle, and the lateral wall of receiving frame 1 is symmetrically rotatably installed with pivot 402, and the surface of pivot 402 is fixedly installed with oval roller 403 and is used for fixing sieve plate 401, and one end of pivot 402 is fixedly installed with gear 404, and the lateral wall of gear 404 is fixedly installed with handle 405 and is used for rotating oval roller 403, and oval roller 403 can be driven to rotate through handle 405, so that the major axis part of oval roller 403 abuts at the lateral wall of sieve plate 401, that is, sieve plate 401 can be installed at the bottom of receiving frame 1, and convenient to use.

[0028] Referring to Figures 1-4 In a preferred embodiment, the lateral wall of receiving frame 1 is symmetrically slidably installed with sliding plate 406, one end of sliding plate 406 is fixedly installed with clamping tooth 407, clamping tooth 407 is matched with gear 404, and is used for positioning gear 404, the lateral wall of receiving frame 1 is fixedly installed with spring 408, the other end of spring 408 is fixedly connected with sliding plate 406, and is used for driving clamping tooth 407 to engage with gear 404 to position gear 404, driving disc 409 is symmetrically rotatably installed in the inner chamber of receiving frame 1, scattering rod 410 is fixedly installed between two driving discs 409, and is used for scattering resin particles in the form of clumps, motor 411 is fixedly installed on the lateral wall of receiving frame 1, the output end of motor 411 is fixedly connected with driving disc 409, and is used for driving driving disc 409 to rotate, driving disc 409 can be driven to rotate by motor 411 to drive scattering rod 410 to rotate, so that resin particles falling into receiving frame 1 are scattered, the clumping of resin particles is prevented, and the scattered resin particles are discharged by sieve plate 401 to perform discharging, and the quality of particles is ensured.

[0029] In a preferred embodiment, when using, placing receiving frame 1 at the discharge port of the granulator, after resin particle passes first receiving plate 2 and second receiving plate 3 respectively, entering receiving frame 1, scattering rod 410 can be driven to rotate by motor 411 to drive driving disc 409, so that resin particles falling into receiving frame 1 are scattered, the clumping of resin particles is prevented, and the scattered resin particles are discharged by sieve plate 401 to perform discharging, and the quality of particles is ensured.

[0030] Referring to Figures 1-5In a preferred implementation, the surface of the receiving frame 1 is provided with a heat dissipation mechanism 5 for dissipating heat from the resin particles. The heat dissipation mechanism 5 includes a mounting plate 501, a spray pipe 502, and a plurality of spray heads 503. The mounting plate 501 is fixedly installed at the bottom of the second receiving plate 3. The spray pipe 502 is fixedly installed on the side wall of the mounting plate 501. The spray heads 503 are installed on the side wall of the spray pipe 502. The spray heads 503 are used to spray air to dissipate heat from the resin particles. A plurality of impact blocks 504 are fixedly installed on the inner wall of the receiving frame 1. The impact blocks 504 are used to impact and scatter the resin particles.

[0031] Referring to Figures 1-5 In a preferred implementation, the side wall of the receiving frame 1 is fixedly provided with a gas cylinder 505. The gas cylinder 505 is slidably provided with a piston 506. A rotating wheel 507 is rotatably installed on the side wall of the receiving frame 1. The rotating wheel 507 is fixedly connected with the driving disc 409. An eccentric shaft 508 is fixedly installed on the non-central position of the rotating wheel 507. The eccentric shaft 508 is sleeved with a driving frame 509. A connecting rod 510 is fixedly installed between the driving frame 509 and the piston 506. When the motor 411 drives the driving disc 409 to rotate, the rotating wheel 507 is driven to rotate synchronously, thereby driving the driving frame 509 and the piston 506 to move up and down reciprocatingly through the eccentric shaft 508. The gas cylinder 505 is provided with a first one-way valve 511 and a second one-way valve 512. The first one-way valve 511 is unidirectionally communicated to the inner wall of the gas cylinder 505 for air inlet. The second one-way valve 512 is unidirectionally communicated to the outer wall of the gas cylinder 505 for air outlet. The second one-way valve 512 is communicated with the spray pipe 502 through an air pipe. When the piston 506 moves reciprocatingly in the gas cylinder 505, the first one-way valve 511 and the second one-way valve 512 are alternately communicated to inject air into the spray pipe 502, which is sprayed by the spray heads 503 to the surface of the resin particles falling from the surface of the second receiving plate 3 for heat dissipation treatment. At the same time, the resin particles are blown to the impact blocks 504 for preliminary impact and scattering, thereby improving the subsequent scattering efficiency.

[0032] In a preferred implementation, when the motor 411 drives the driving disc 409 to rotate, the rotating wheel 507 is driven to rotate synchronously, thereby driving the driving frame 509 and the piston 506 to move up and down reciprocatingly through the eccentric shaft 508. The first one-way valve 511 and the second one-way valve 512 are alternately communicated to inject air into the spray pipe 502, which is sprayed by the spray heads 503 to the surface of the resin particles falling from the surface of the second receiving plate 3 for heat dissipation treatment. At the same time, the resin particles are blown to the impact blocks 504 for preliminary impact and scattering, thereby improving the subsequent scattering efficiency.

[0033] Specifically, the working principle of the resin particle discharging structure is as follows: when in use, the receiving frame 1 is placed at the discharging port of the granulator, the resin particles fall into the receiving frame 1 after passing through the first receiving plate 2 and the second receiving plate 3, the motor 411 drives the driving disc 409 to rotate to drive the dispersing rod 410 to rotate, so that the resin particles falling into the receiving frame 1 are dispersed to prevent the resin particles from being bunched, and the dispersed resin particles are discharged by the sieve plate 401 for subsequent discharging to ensure the quality of the particles.

[0034] When the motor 411 drives the driving disc 409 to rotate, the rotating wheel 507 is synchronously driven to rotate to drive the driving frame 509 and the piston 506 to move up and down reciprocatingly, the first one-way valve 511 and the second one-way valve 512 are alternately connected to inject air into the spray pipe 502, and the air is sprayed from the spray head 503 to the surface of the resin particles falling from the surface of the second receiving plate 3 to perform heat dissipation treatment, and the resin particles are blown to the impact block 504 to be initially impacted and dispersed to improve the subsequent dispersing efficiency.

[0035] The above is only a preferred embodiment of the present application, and is not used to limit the present application, and any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

[0036] It should be noted that the motor 411 is a device or equipment existing in the prior art, or a device or equipment that can be realized in the prior art, and its power supply, specific components and principles are clear to those skilled in the art, so they will not be described in detail.

Claims

1. A resin particle discharge structure characterized by comprising: The system includes a receiving frame (1), a first receiving plate (2), and a discharging mechanism (4). The receiving frame (1) has a first receiving plate (2) and a second receiving plate (3) installed inside. The discharging mechanism (4) is installed inside the receiving frame (1) and is used for discharging resin particles. The discharging mechanism (4) includes: A sieve plate (401) is installed at the bottom of the receiving frame (1) for screening resin particles; A drive disk (409) is symmetrically rotated and installed in the inner cavity of the receiving frame (1). A dispersing rod (410) is fixedly installed between the two drive disks (409) for dispersing the agglomerated resin particles.

2. The resin particle discharge structure according to claim 1, wherein The receiving frame (1) has a rotating shaft (402) symmetrically mounted on its side wall. An elliptical roller (403) is fixedly mounted on the surface of the rotating shaft (402) for fixing the screen plate (401).

3. The resin pellet discharge structure according to claim 2, wherein A gear (404) is fixedly installed at one end of the rotating shaft (402), and a handle (405) is fixedly installed on the side wall of the gear (404) for rotating the elliptical roller (403).

4. The resin particle discharge structure according to claim 3, wherein The receiving frame (1) has a sliding plate (406) symmetrically slidably mounted on its side wall. A locking tooth (407) is fixedly mounted on one end of the sliding plate (406). The locking tooth (407) is adapted to the gear (404) and is used to position the gear (404). A spring (408) is fixedly mounted on the side wall of the receiving frame (1). The other end of the spring (408) is fixedly connected to the sliding plate (406) and is used to drive the locking tooth (407) to mesh with the gear (404).

5. The resin pellet discharge structure according to claim 1, wherein A motor (411) is fixedly installed on the side wall of the receiving frame (1). The output end of the motor (411) is fixedly connected to the drive disk (409) for driving the drive disk (409) to rotate.

6. The resin pellet discharge structure according to claim 1, wherein The receiving frame (1) is equipped with a heat dissipation mechanism (5) for dissipating heat from the resin particles. The heat dissipation mechanism (5) includes a mounting plate (501), a spray pipe (502), and a nozzle (503). The mounting plate (501) is fixedly installed at the bottom of the second receiving plate (3). The spray pipe (502) is fixedly installed on the side wall of the mounting plate (501). Several nozzles (503) are installed on the side wall of the spray pipe (502) for spraying heat from the resin particles.

7. A resin pellet discharge structure according to claim 6, wherein The inner wall of the receiving frame (1) is fixedly equipped with several impact blocks (504) for impacting and breaking up the resin particles.

8. The resin pellet discharge structure according to claim 7, wherein A cylinder (505) is fixedly installed on the side wall of the receiving frame (1). A piston (506) is slidably installed in the inner cavity of the cylinder (505). A rotating wheel (507) is rotatably installed on the side wall of the receiving frame (1). The rotating wheel (507) is fixedly connected to the drive disc (409). An eccentric shaft (508) is fixedly installed on the side wall of the rotating wheel (507). A drive frame (509) is sleeved on the surface of the eccentric shaft (508). A connecting rod (510) is fixedly installed between the drive frame (509) and the piston (506). A first one-way valve (511) and a second one-way valve (512) are installed on the surface of the cylinder (505). An air pipe is connected between the second one-way valve (512) and the nozzle (502).