Device for effectively improving surface thermal conductivity of organic polymer material
By designing a device for rotating rolling and spraying coatings, the problem of uneven coating of organic polymer materials is solved, the thermal conductivity is improved and the material is smoothly discharged, and the efficiency of the device is improved.
Patent Information
- Application Number
- CN202421520218.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-28
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-06-28
AI Technical Summary
The prior art lacks the comprehensive spraying function of flip-coating organic polymer materials, and lacks the conveying auxiliary function for the inlet and out of the material, resulting in insufficient improvement of thermal conductivity.
A device is designed, including a rotating frame, a transmission motor, a conveying pump and a spray port. By rotating and tumbling and spraying thermally conductive coating, the material is uniformly coated, and the servo motor and electric cylinder are combined to achieve smooth discharge and transport of the material.
The uniform coating of the surface of organic polymer materials is achieved, the thermal conductivity is improved, and the material discharge and transportation is facilitated, and the efficiency and effect of the device are improved.
Smart Images

Figure CN223144978U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of material improvement. More specifically, it particularly relates to a device for effectively improving the surface thermal conductivity of organic polymer materials. Background Technique
[0002] Organic polymer materials are generally granular. The surface thermal conductivity of organic polymer materials is mainly improved by increasing the thermal conductive coating. A spraying device needs to be used to spray the surface of organic polymer materials. However, the organic polymer materials block each other, resulting in dead corners, which is not conducive to comprehensive coating.
[0003] Based on the above, the current devices for improving the thermal conductivity of organic polymer materials lack the comprehensive spraying function of flipping and coating the materials, are inconvenient for improving the performance of organic polymer materials, and lack the conveying auxiliary function for controlling the entry and exit of organic polymer materials. Content of the Utility Model
[0004] In order to solve the above technical problems, the utility model provides a device for effectively improving the surface thermal conductivity of organic polymer materials, so as to solve the problems that the current devices for improving the thermal conductivity of organic polymer materials lack the comprehensive spraying function of flipping and coating the materials, are inconvenient for improving the performance of organic polymer materials, and lack the conveying auxiliary function for controlling the entry and exit of organic polymer materials as put forward in the above background technique.
[0005] The purpose and effect of a device for effectively improving the surface thermal conductivity of organic polymer materials of the utility model are achieved by the following specific technical means:
[0006] A device for effectively improving the surface thermal conductivity of organic polymer materials includes a base. A rotating frame is fixedly arranged in the middle of the top of the base. An H-shaped mounting roller is rotatably arranged in the rotating frame. A driving motor is fixedly arranged on the top of the base. An intermediate channel is fixedly arranged on the top of the base by a fixed frame. A material box is fixedly arranged at one end of the top of the base. An outer rotating bin, a flange is integrally arranged in the middle of the outside of the outer rotating bin, and the flange is rotatably arranged between the mounting rollers. An input hopper pipe is fixedly arranged on the top of the material box, and the outlet of the input hopper pipe is located in the outer rotating bin. A U-shaped frame is fixedly arranged at the rear end of the base.
[0007] Further, an electric cylinder is fixedly arranged on the front side inside the intermediate channel. A rack is slidably arranged below the inside of the intermediate channel. The telescopic end of the electric cylinder is fixedly connected with the rack. A rotating plate is rotatably arranged at the bottom of the intermediate channel. A control gear is fixedly arranged at the top end of the intermediate channel. The intermediate channel is meshed with the rack.
[0008] Furthermore, a delivery pump is connected to the top of the material box, and a suction pipe is provided at the bottom of the delivery pump and connected to the bottom of the material box; a pipeline is connected to the top of the delivery pump, and the pipeline extends into the middle channel and passes through the middle channel to be fixedly provided with a spray port.
[0009] Furthermore, a gear ring is fixedly provided on the outside of the outer rotating bin, and a gear is provided on the shaft end of the transmission motor to mesh with the gear ring.
[0010] Furthermore, two groups of intermediate guide rods are fixedly arranged in the middle of the U-shaped frame, and a supporting frame is slidably arranged outside the two groups of intermediate guide rods; an intermediate lead screw is rotatably arranged in the middle of the U-shaped frame, a servo motor is fixedly arranged at the rear end of the U-shaped frame, and the intermediate lead screw is transmission-connected to the servo motor.
[0011] Furthermore, the top of the support frame is turned forward and fixed with a roller ring, a support wheel is rotatably arranged inside the roller ring, a baffle is rotatably arranged in the support wheel, a connecting rod is arranged at the front end edge of the baffle, and the connecting rod is slidably connected to the outer rotating bin.
[0012] Furthermore, a conveyor belt is installed on the top of the base at the rear end of the outer transfer bin.
[0013] Compared with the prior art, the utility model has the following beneficial effects:
[0014] The spray port is provided to provide a coating improvement function. The preset thermal conductive coating in the material box is extracted by a delivery pump, output from the spray port through a pipeline, and sprayed on the surface of the material for uniform coating. At the same time, the transmission motor drives the gear ring to rotate, so that the outer rotating bin rotates continuously as a whole, and the material also rotates and tumbles synchronously, which can achieve uniform and continuous coating improvement and increase the thermal conductivity of the material.
[0015] The rear of the outer rotating bin is an open structure to facilitate material discharge. The servo motor drives the middle lead screw to rotate, and the support frame is moved backward through threaded transmission to separate the baffle from the outer rotating bin. At this time, the connecting rod is exposed, and the outlet of the outer rotating bin is exposed for subsequent material discharge. The roller ring and the support wheel provide auxiliary support functions to support the baffle to maintain stable rotation.
[0016] The rotating plate is set to provide an auxiliary discharge function. The electric cylinder is started to advance the rack, and the rack is used to drive the control gear to rotate to rotate the rotating plate. The rotating plate is tilted, and the outer transfer bin continues to rotate. The rotating plate will provide guiding force to discharge the organic polymer material from the outer transfer bin and make it fall on the top of the conveyor belt. The conveyor belt is used for transportation and collection, which is easy to control. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a three-dimensional structural schematic diagram of the utility model.
[0018] Figure 2 It is an isometric structural schematic diagram of the present utility model.
[0019] Figure 3 It is a three-dimensional sectional structural schematic diagram of the present utility model.
[0020] Figure 4 is the present utility model Figure 3 structural schematic diagram from another angle.
[0021] Figure 5 It is a structural schematic diagram of the discharging state of the present utility model.
[0022] In the figure, the corresponding relationship between the component names and the drawing reference numbers is as follows:
[0023] 1. Base; 101. Rotating frame; 102. Mounting roller; 103. Driving motor; 2. Intermediate channel; 201. Electric cylinder; 202. Rack; 203. Rotating plate; 204. Control gear; 3. Material box; 301. Delivery pump; 302. Pipeline; 303. Spray port; 4. Outer rotating bin; 401. Flange; 402. Tooth ring; 5. Input hopper pipe; 6. U-shaped frame; 601. Intermediate guide rod; 602. Intermediate lead screw; 603. Servo motor; 7. Supporting frame; 701. Roller ring; 702. Supporting wheel; 703. Baffle; 704. Connecting rod; 8. Conveyor belt. Detailed implementation mode
[0024] The following further describes the implementation mode of the present utility model in detail in conjunction with the drawings and embodiments.
[0025] Embodiment 1:
[0026] As shown in the attached Figure 1 to the attached Figure 5 shown:
[0027] The present utility model provides a device for effectively improving the surface thermal conductivity of organic polymer materials, including a base 1, a rotating frame 101 is fixedly arranged in the middle of the top of the base 1, an H-shaped mounting roller 102 is rotatably arranged in the rotating frame 101; a driving motor 103 is fixedly arranged on the top of the base 1; an intermediate channel 2 is fixedly arranged on the top of the base 1; a material box 3 is fixedly arranged at one end of the top of the base 1; an outer rotating bin 4, a flange 401 is integrally arranged in the middle of the outside of the outer rotating bin 4, and the flange 401 is rotatably arranged between the mounting rollers 102; an input hopper pipe 5 is fixedly arranged on the top of the material box 3, and the outlet of the input hopper pipe 5 is located in the outer rotating bin 4; a U-shaped frame 6 is fixedly arranged at the rear end of the base 1.
[0028] Among them, an electric cylinder 201 is fixedly arranged on the inner front side of the middle channel 2; a rack 202 is slidably arranged below the inner part of the middle channel 2, and the telescopic end of the electric cylinder 201 is fixedly connected to the rack 202; a rotating plate 203 is rotatably arranged at the bottom of the middle channel 2, a control gear 204 is fixedly arranged at the top end of the middle channel 2, and the middle channel 2 meshes with the rack 202.
[0029] Among them, a delivery pump 301 is connected to the top of the material box 3, and a suction pipe is arranged at the bottom of the delivery pump 301 and connected to the bottom of the material box 3; a pipe 302 is connected to the top of the delivery pump 301, and the pipe 302 extends into the middle channel 2 and passes through the middle channel 2 to be fixedly provided with a spray port 303.
[0030] Among them, a toothed ring 402 is fixedly arranged outside the outer rotating bin 4, and a gear is arranged at the shaft end of the transmission motor 103 and meshes with the toothed ring 402.
[0031] Among them, two groups of middle guide rods 601 are fixedly arranged in the middle of the U-shaped frame 6, and a support frame 7 is slidably arranged outside the two groups of middle guide rods 601; a middle lead screw 602 is rotatably arranged in the middle of the U-shaped frame 6, a servo motor 603 is fixedly arranged at the rear end of the U-shaped frame 6, and the middle lead screw 602 is in transmission connection with the servo motor 603.
[0032] Among them, the top of the support frame 7 turns forward and is fixedly provided with a roller ring 701, a support wheel 702 is rotatably arranged in the roller ring 701, a baffle 703 is rotatably arranged in the support wheel 702, a connecting rod 704 is arranged at the front edge of the front end of the baffle 703, and the connecting rod 704 is slidably connected to the outer rotating bin 4.
[0033] Among them, a conveyor belt 8 is installed at the top of the base 1 at the position behind the outer rotating bin 4.
[0034] As Figures 1-3 shown, the material is continuously input into the outer rotating bin 4 through the input hopper pipe 5, the transmission motor 103 is started to drive the toothed ring 402 to rotate, so that the outer rotating bin 4 rotates continuously as a whole, and the material also rotates and tumbles continuously;
[0035] The heat-conducting coating preset in the material box 3 is pumped out by the delivery pump 301, passes through the pipe 302 and is output from the spray port 303, and is sprayed on the surface of the material for uniform coating.
[0036] Example 2:
[0037] On the basis of Example 1, as Figures 4-5As shown, the roller ring 701 and the supporting wheel 702 provide an auxiliary supporting function to keep the baffle 703 rotating; when it is necessary to discharge materials, the driving servo motor 603 drives the intermediate lead screw 602 to rotate, and through screw transmission, the supporting frame 7 moves backward, disengaging the baffle 703 from the outer rotating bin 4. At this time, the connecting rod 704 is exposed, and the outlet of the outer rotating bin 4 is opened;
[0038] Start the electric cylinder 201 to push the rack 202, use the rack 202 to drive the control gear 204 to rotate and make the rotating plate 203 rotate. The rotating plate 203 tilts. At this time, the outer rotating bin 4 continues to rotate, and the rotating plate 203 will provide a guiding force to discharge the organic polymer material from the outer rotating bin 4, making it fall on the top of the conveyor belt 8, and using the conveyor belt 8 for conveying and collecting.
[0039] The specific usage method and function of this embodiment:
[0040] In the present utility model, when in use, the material is continuously input into the outer rotating bin 4 through the input hopper pipe 5. Start the transmission motor 103 to drive the gear ring 402 to rotate, so that the outer rotating bin 4 rotates continuously as a whole, and the material also rotates and tumbles synchronously;
[0041] During this period, use the transfer pump 301 to extract the preset heat-conducting coating in the material box 3, pass it through the pipeline 302 and output it from the spray port 303, and spray it on the surface of the material for uniform coating;
[0042] After the coating is completed, drive the servo motor 603 to drive the intermediate lead screw 602 to rotate, and through screw transmission, move the support frame 7 backward, disengaging the baffle 703 from the outer rotating bin 4. At this time, the connecting rod 704 is exposed, as in Figures 4-5 In the state shown, the outlet of the outer rotating bin 4 will become open; the roller ring 701 and the supporting wheel 702 provide an auxiliary supporting function;
[0043] Start the electric cylinder 201 to push the rack 202, use the rack 202 to drive the control gear 204 to rotate and make the rotating plate 203 rotate. The rotating plate 203 tilts to become the state in Figure 5 At this time, the outer rotating bin 4 continues to rotate, and the rotating plate 203 will provide a guiding force to discharge the organic polymer material from the outer rotating bin 4, making it fall on the top of the conveyor belt 8, and using the conveyor belt 8 for conveying and collecting.
Claims
1. A device for effectively improving the surface thermal conductivity of organic polymer materials, characterized in that Including: A base (1), a rotating frame (101) is fixedly arranged in the middle of the top of the base (1), and an H-shaped mounting roller (102) is rotatably arranged in the rotating frame (101); a transmission motor (103) is fixedly arranged on the top of the base (1); an intermediate channel (2) is fixedly arranged on the top of the base (1) by a fixed frame; a material box (3) is fixedly arranged at one end of the top of the base (1); an outer rotating bin (4), a flange (401) is integrally arranged in the middle of the outside of the outer rotating bin (4), and the flange (401) is rotatably arranged between the mounting rollers (102); an input hopper pipe (5) is fixedly arranged on the top of the material box (3), and the outlet of the input hopper pipe (5) is located in the outer rotating bin (4); a U-shaped frame (6) is fixedly arranged at the rear end of the base (1).
2. The device for effectively improving the surface thermal conductivity of an organic polymer material according to claim 1, wherein: An electric cylinder (201) is fixedly arranged on the front side inside the intermediate channel (2); a rack (202) is slidably arranged below the inside of the intermediate channel (2), and the telescopic end of the electric cylinder (201) is fixedly connected to the rack (202); a rotating plate (203) is rotatably arranged at the bottom of the intermediate channel (2), a control gear (204) is fixedly arranged at the top end of the intermediate channel (2), and the intermediate channel (2) is meshed with the rack (202).
3. The device for effectively improving the surface thermal conductivity of an organic polymer material according to claim 1, characterized in that: A delivery pump (301) is connected and arranged on the top of the material box (3), a suction pipe is arranged at the bottom of the delivery pump (301) and connected to the bottom of the material box (3); a pipeline (302) is connected and arranged at the top of the delivery pump (301), and the pipeline (302) extends into the intermediate channel (2) and passes through the intermediate channel (2) and is fixedly provided with a spray port (303).
4. The device for effectively improving the surface thermal conductivity of an organic polymer material according to claim 1, wherein: A toothed ring (402) is fixedly arranged on the outside of the outer rotating bin (4), and a gear is arranged at the shaft end of the transmission motor (103) and meshed with the toothed ring (402).
5. The device for effectively improving the surface thermal conductivity of an organic polymer material according to claim 1, characterized in that: Two groups of intermediate guide rods (601) are fixedly arranged in the middle of the U-shaped frame (6), and a supporting frame (7) is slidably arranged outside the two groups of intermediate guide rods (601); an intermediate lead screw (602) is rotatably arranged in the middle of the U-shaped frame (6), a servo motor (603) is fixedly arranged at the rear end of the U-shaped frame (6), and the intermediate lead screw (602) is in transmission connection with the servo motor (603).
6. The device for effectively improving the surface thermal conductivity of an organic polymer material according to claim 1, wherein: The top of the supporting frame (7) turns forward and is fixedly provided with a roller ring (701), a supporting roller (702) is rotatably arranged in the roller ring (701), a baffle (703) is rotatably arranged in the supporting roller (702), a connecting rod (704) is arranged at the front edge of the baffle (703), and the connecting rod (704) is slidably connected to the outer rotating bin (4).
7. The device for effectively improving the surface thermal conductivity of an organic polymer material according to claim 1, wherein: A conveyor belt (8) is installed at the position on the top of the base (1) at the rear end of the outer rotating bin (4).