Storage equipment for heat-conducting silica gel processing

By designing storage equipment including mixing barrels, detection barrels and forced feeding components, the problems of solidification and bubbles in thermally conductive silicone storage and processing are solved, uniform stirring and efficient exhaust of materials are achieved, and production efficiency and product quality are improved.

CN223267485UActive Publication Date: 2025-08-26ZHONGQING AVIATION TECHNOLOGY (JIANGSU) TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422713428.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-07
Publication Date
2025-08-26
Estimated Expiration
2034-11-07

AI Technical Summary

Technical Problem

There are material solidification and bubble problems during the storage and processing of existing thermally conductive silicones, which affect the use effect and production efficiency.

Method used

A storage device including a stirring barrel, a detection barrel and a forced feeding assembly is designed. Through the coordination of the stirring structure and the detection device, the thermally conductive silicone is uniformly stirred, gas is discharged, and the material is extruded through the forced feeding assembly to prevent solidification and bubble generation.

Benefits of technology

Effectively prevent thermally conductive silicone from solidifying and producing bubbles during storage and use, ensure material quality, reduce unqualified product rates, and improve production efficiency and processing effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses storage equipment for heat-conducting silica gel processing, which belongs to the technical field of storage equipment and comprises a stirring barrel and a support frame, a detection barrel is fixedly mounted on the support frame, the stirring barrel is fixedly mounted at the top end of the detection barrel, a top cover is fixedly mounted at the top end of the stirring barrel, and a second motor is fixedly mounted at the top end of the top cover. A rotating disc is fixedly installed at the output end of the second motor, a plurality of pinions are rotatably installed at the top end of the rotating disc, second stirring rods are fixedly installed at the bottom ends of the pinions, a large gear is fixedly installed at the bottom end of the top cover, the pinions are all meshed with the large gear, and first stirring rods are fixedly installed at the bottom end of the rotating disc. The stirring structure is matched with the detection device, so that the heat-conducting silica gel is effectively prevented from being solidified and generating bubbles in the storage and use processes, uniform stirring of the heat-conducting silica gel is ensured, the flowability is improved, redundant gas in a material is discharged, the rate of unqualified products is reduced, and the production cost is reduced. And the forced feeding assembly extrudes the heat-conducting silica gel out of the forced feeding device.
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Description

Technical Field

[0001] The utility model relates to the technical field of storage equipment, in particular to a storage equipment for processing heat-conducting silica gel. Background Art

[0002] A storage device for processing thermally conductive silicone rubber primarily addresses the characteristics, applications, and storage requirements of thermally conductive silicone rubber. Thermally conductive silicone rubber is a high-end thermally conductive compound with excellent thermal conductivity. This material does not solidify or conduct electricity, avoiding risks such as short circuits. Thermally conductive silicone rubber is widely used in electronic equipment, primarily to improve heat transfer from electronic components and PCBs to heat sinks or other metal plates, thereby increasing equipment efficiency and extending its service life. In addition to electronic equipment, thermally conductive silicone rubber is also widely used in areas requiring heat dissipation, such as LEDs and power supplies. Its high-end thermally conductive compound, as well as its properties of not solidifying and conducting electricity, avoid risks such as short circuits. Thermally conductive adhesive sealing silicone rubber is a single-component, heat-conductive, room-temperature curing silicone adhesive sealant. During thermally conductive silicone rubber processing, the raw materials must be stirred in a stirring kettle.

[0003] Thermally conductive silicone is widely used in the electronics field for heat dissipation. Due to its non-curing and non-conductive properties, it plays an important role in preventing circuit short circuits. However, most existing thermally conductive silicones have problems such as material solidification and bubbles during storage and processing. These problems seriously affect the use effect and production efficiency of thermally conductive silicone. Therefore, we propose a storage device for thermally conductive silicone processing to solve this problem. Utility Model Content

[0004] The purpose of the present invention is to provide a storage device for processing thermally conductive silicone rubber to solve the problems raised in the above-mentioned background technology.

[0005] In order to achieve the above purpose, the present invention adopts the following technical solutions:

[0006] A storage device for processing thermal conductive silicone comprises: a stirring barrel and a support frame, a detection barrel is fixedly mounted on the support frame, the stirring barrel is fixedly mounted on the top of the detection barrel, a top cover is fixedly mounted on the top of the stirring barrel, a second motor is fixedly mounted on the top of the top cover, a rotating disk is fixedly mounted on the output end of the second motor, a plurality of small gears are rotatably mounted on the top of the rotating disk, a second stirring rod is fixedly mounted on the bottom end of the small gears, a large gear is fixedly mounted on the bottom end of the top cover, the plurality of small gears are all meshed with the large gear, a first stirring rod is fixedly mounted on the bottom end of the rotating disk, a stirring disk is fixedly mounted on the bottom end of the first stirring rod, and a forced feeding component is provided at the bottom end of the detection barrel.

[0007] Preferably, the forced feeding assembly includes: a forced feeding device and a motor 1, the forced feeding device is fixedly installed at the bottom end of the detection barrel, the motor 1 is fixedly installed on one side of the forced feeding device, a fixed plate is fixedly installed at the output end of the motor 1, a spiral sheet is fixedly installed on the fixed plate, and a discharge pipe is fixedly installed at the bottom end of the forced feeding device.

[0008] Preferably, a detection device is fixedly installed in the detection barrel, a control valve 1 is fixedly installed in the detection barrel, a connecting groove matching the control valve 1 is provided in the detection barrel, a control valve 2 is fixedly installed at the bottom of the mixing barrel, and an installation groove matching the control valve 2 is provided on the detection barrel.

[0009] Preferably, a rotating groove is provided at the bottom end of the top cover, the large gear is fixedly mounted on the top of the inner wall of the rotating groove, a rotating ring groove matching the rotating disk is provided inside the rotating groove, and the rotating disk is rotatably mounted in the rotating ring groove.

[0010] Preferably, a rotating groove matching the fixed plate is provided in the forced feeding device, a fixed concave hole matching the discharge pipe is provided on the forced feeding device, and a feeding circular hole is provided at the top of the forced feeding device.

[0011] Preferably, a feed pipe is integrally formed on the mixing barrel, a threaded ring is fixedly mounted on the feed pipe, and feed holes are provided on both the feed pipe and the mixing barrel.

[0012] In the utility model, the thermally conductive silica gel processing storage device is described, the thermally conductive silica gel to be processed is injected into the mixing barrel through the feeding pipe, and the motor 2 fixedly installed on the top cover of the top of the mixing barrel is started, so that the motor 2 drives the rotating disk fixedly installed on its output end to rotate, and the rotating disk drives the multiple small gears rotatably installed on its top end to move while the rotating disk rotates, and the stirring rod 2 fixedly installed on its bottom end is driven to move together while the small gears move, and the small gears are meshed with the large gears, thereby driving the small gears to move and rotate, driving the stirring rod 2 to rotate, and the stirring rod 1 fixedly installed on the bottom end of the rotating disk rotates together, and the stirring rod 1 and the stirring rod 2 cooperate to stir, thereby ensuring that the thermally conductive silica gel is evenly stirred, improving fluidity, and at the same time, exhausting excess gas in the material, thereby reducing the defective product rate;

[0013] In the utility model, a storage device for processing thermally conductive silicone rubber is described, which opens the second control valve fixedly installed at the bottom of the mixing barrel after stirring is completed, allowing the stirred material to flow into the detection barrel, and at the same time starts the detection device fixedly installed in the detection barrel to observe the internal situation of the thermally conductive silicone rubber for detection. After the detection is completed and the material is qualified, the first control valve is started again to allow the material to fall into the forced feeding device, and then the first motor fixedly installed on one side of the forced feeding device is started, so that the first motor drives the fixed plate fixedly installed at its output end to rotate, and the fixed plate drives the spiral piece fixedly installed thereon to rotate together, thereby squeezing the thermally conductive silicone rubber in the forced feeding device from one side to the other side, so that the thermally conductive silicone rubber is discharged from the discharge pipe. Through the cooperation of the stirring, extruding, detecting and other structures, the quality and processing effect of the thermally conductive silicone rubber are effectively guaranteed;

[0014] The utility model has a reasonable structural design. Through the cooperation of the stirring structure and the detection device, the thermal conductive silica gel is effectively prevented from solidifying and generating bubbles during storage and use, ensuring that the thermal conductive silica gel is evenly stirred and the fluidity is improved. At the same time, the excess gas in the material is discharged, and the defective product rate is reduced. The thermal conductive silica gel is then squeezed out of the forced feeding device by the forced feeding component. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a schematic diagram of the three-dimensional structure of a storage device for thermal conductive silicone processing proposed by the present invention;

[0016] Figure 2 This is a schematic cross-sectional view of a storage device for thermally conductive silicone processing proposed by the present invention;

[0017] Figure 3 This is a partial structural schematic diagram of a storage device for thermally conductive silicone processing proposed by the present invention;

[0018] Figure 4 The utility model provides a schematic cross-sectional view of the local structure of a storage device for processing thermally conductive silicone.

[0019] In the figure: 1. mixing barrel; 2. detection barrel; 3. support frame; 4. forced feeding device; 5. motor 1; 6. motor 2; 7. top cover; 8. feed pipe; 9. spiral blade; rotating disk 10, rotating disk; stirring rod 1 11, stirring rod 1; stirring rod 2 12, stirring rod 2; discharge pipe 13, discharge pipe; control valve 1 14, control valve 1; threaded ring 15, threaded ring; large gear 16, large gear; small gear 17, small gear; control valve 2 18, control valve 2; stirring disk 19, stirring disk; fixed plate 20, fixed plate; detection device 21, detection device. DETAILED DESCRIPTION

[0020] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0021] Reference Figure 1-4 A storage device for processing thermal conductive silicone comprises: a mixing barrel 1 and a support frame 3, a detection barrel 2 is fixedly mounted on the support frame 3, the mixing barrel 1 is fixedly mounted on the top of the detection barrel 2, a top cover 7 is fixedly mounted on the top of the mixing barrel 1, a motor 2 6 is fixedly mounted on the top of the top cover 7, a rotating disk 10 is fixedly mounted on the output end of the motor 2 6, a plurality of small gears 17 are rotatably mounted on the top of the rotating disk 10, a stirring rod 2 12 is fixedly mounted on the bottom end of the small gear 17, a large gear 16 is fixedly mounted on the bottom end of the top cover 7, a plurality of small gears 17 are meshed with the large gear 16, a stirring rod 11 is fixedly mounted on the bottom end of the rotating disk 10, a stirring disk 19 is fixedly mounted on the bottom end of the stirring rod 11, and a forced feeding component is provided at the bottom end of the detection barrel 2.

[0022] In this embodiment, the forced feeding assembly includes: a forced feeding device 4 and a motor 5. The forced feeding device 4 is fixedly installed at the bottom end of the detection barrel 2, and the motor 5 is fixedly installed on one side of the forced feeding device 4. A fixed plate 20 is fixedly installed at the output end of the motor 5, and a spiral piece 9 is fixedly installed on the fixed plate 20. A discharge pipe 13 is fixedly installed at the bottom end of the forced feeding device 4, which can ensure that the silica gel is delivered quickly and stably when needed, which is convenient for subsequent processing or storage.

[0023] In this embodiment, a detection device 21 is fixedly installed in the detection barrel 2, a control valve 14 is fixedly installed in the detection barrel 2, a connecting groove matching the control valve 14 is provided in the detection barrel 2, a control valve 2 18 is fixedly installed at the bottom of the mixing barrel 1, and an installation groove matching the control valve 2 18 is provided on the detection barrel 2, so that the equipment can automatically adjust the working state according to the detection results, thereby improving production efficiency and product quality.

[0024] In this embodiment, a rotating groove is provided at the bottom end of the top cover 7, and a large gear 16 is fixedly installed on the top of the inner wall of the rotating groove. A rotating ring groove matching the rotating disk 10 is provided inside the rotating groove, and the rotating disk 10 is rotatably installed in the rotating ring groove to better install the large gear 16 and support the rotating disk 10, thereby ensuring stable operation of the stirring mechanism.

[0025] In this embodiment, a rotating groove matching the fixed plate 20 is provided in the forced feeding device 4, a fixed recess matching the discharge pipe 13 is provided on the forced feeding device 4, and a feeding circular hole is provided at the top of the forced feeding device 4 to facilitate the addition and sealing of silica gel to prevent leakage. A feed pipe 8 is integrally formed on the mixing barrel 1, and a threaded ring 15 is fixedly installed on the feed pipe 8. Feed holes are provided on both the feed pipe 8 and the mixing barrel 1 to ensure that the spiral blade 9 can rotate smoothly and discharge silica gel smoothly.

[0026] In this embodiment, when in use, the thermally conductive silicone rubber to be processed is injected into the mixing barrel 1 through the feeding pipe 8, and the motor 2 6 fixedly mounted on the top cover 7 at the top of the mixing barrel 1 is started to drive the rotating disk 10 fixedly mounted on its output end to rotate. When the rotating disk 10 rotates, it drives multiple small gears 17 rotatably mounted on its top to move. When the small gears 17 move, it drives the stirring rod 2 12 fixedly mounted on its bottom end to move together. At the same time, the small gears 17 are engaged with the large gear 16, thereby driving the small gears 17 to move and rotate, driving the stirring rod 2 12 to rotate, and at the same time, the stirring rod 11 fixedly mounted on the bottom of the rotating disk 10 rotates together, and the stirring rod 11 and the stirring rod 2 12 cooperate to stir, thereby ensuring that the thermally conductive silicone is evenly stirred, improving fluidity, and discharging excess gas in the material. , reducing the rate of unqualified products, after the stirring is completed, open the control valve 2 18 fixedly installed at the bottom of the stirring barrel 1, let the stirred material flow into the detection barrel 2, and at the same time start the detection device 21 fixedly installed in the detection barrel 2 to observe the internal situation of the thermal conductive silica gel for detection, and start the control valve 14 after the detection is completed and the material is qualified, so that the material falls into the forced feeding device 4, and then start the motor 5 fixedly installed on one side of the forced feeding device 4, so that the motor 5 drives the fixed plate 20 fixedly installed at its output end to rotate, and the fixed plate 20 drives the spiral piece 9 fixedly installed thereon to rotate together, thereby squeezing the thermal conductive silica gel in the forced feeding device 4 from one side to the other side, so that the thermal conductive silica gel is discharged from the discharge pipe 13, and the coordination of the stirring, extrusion, detection and other structures effectively guarantees the quality and processing effect of the thermal conductive silica gel.

[0027] The above is a detailed introduction to the thermally conductive silicone storage device provided by the present invention. This article uses specific examples to illustrate the principles and implementation methods of the present invention. The description of the above examples is only intended to help understand the method and core concept of the present invention. It should be noted that for those skilled in the art, various improvements and modifications can be made to the present invention without departing from the principles of the present invention, and such improvements and modifications also fall within the scope of protection of the claims of the present invention.

Claims

1. A storage device for thermally conductive silica gel processing, characterized in that: include: A stirring barrel (1) and a support frame (3) are provided, wherein a detection barrel (2) is fixedly mounted on the support frame (3), the stirring barrel (1) is fixedly mounted on the top of the detection barrel (2), a top cover (7) is fixedly mounted on the top of the stirring barrel (1), a motor 2 (6) is fixedly mounted on the top of the top cover (7), a rotating disk (10) is fixedly mounted on the output end of the motor 2 (6), a plurality of small gears (17) are rotatably mounted on the top of the rotating disk (10), a stirring rod 2 (12) is fixedly mounted on the bottom end of the small gears (17), a large gear (16) is fixedly mounted on the bottom end of the top cover (7), and the plurality of small gears (17) are all meshed with the large gear (16), a stirring rod 1 (11) is fixedly mounted on the bottom end of the rotating disk (10), a stirring disk (19) is fixedly mounted on the bottom end of the stirring rod 1 (11), and a forced feeding component is provided at the bottom end of the detection barrel (2).

2. A thermally conductive silica gel processing storage device according to claim 1, characterized in that: The forced feeding assembly comprises: a forced feeding device (4) and a motor (5), wherein the forced feeding device (4) is fixedly mounted on the bottom end of the detection barrel (2), the motor (5) is fixedly mounted on one side of the forced feeding device (4), a fixed plate (20) is fixedly mounted on the output end of the motor (5), a spiral plate (9) is fixedly mounted on the fixed plate (20), and a discharge pipe (13) is fixedly mounted on the bottom end of the forced feeding device (4).

3. The storage device for thermally conductive silicone processing according to claim 1, characterized in that: A detection device (21) is fixedly installed in the detection barrel (2), a control valve (14) is fixedly installed in the detection barrel (2), a connecting groove matching the control valve (14) is provided in the detection barrel (2), a control valve (18) is fixedly installed at the bottom end of the stirring barrel (1), and a mounting groove matching the control valve (18) is provided on the detection barrel (2).

4. The thermally conductive silica gel processing storage device according to claim 1, characterized in that: A rotating groove is provided at the bottom end of the top cover (7), the large gear (16) is fixedly mounted on the top end of the inner wall of the rotating groove, a rotating ring groove matching the rotating disk (10) is provided in the rotating groove, and the rotating disk (10) is rotatably mounted in the rotating ring groove.

5. The storage device for thermally conductive silicone processing according to claim 2, characterized in that: The forced feeding device (4) is provided with a rotating groove matching the fixed plate (20), the forced feeding device (4) is provided with a fixed concave hole matching the discharge pipe (13), and the top of the forced feeding device (4) is provided with a feeding circular hole.

6. The thermally conductive silica gel processing storage device according to claim 1, characterized in that: A feed pipe (8) is integrally formed on the mixing barrel (1), a threaded ring (15) is fixedly mounted on the feed pipe (8), and feed holes are provided on both the feed pipe (8) and the mixing barrel (1).