Organic silicon resin preparation device for Mini LED organic silicon lens optical cement

By designing a Mini LED silicone resin preparation device with multi-layer stirring paddles and auxiliary stirring mechanisms, the problems of uneven stirring and temperature gradient in the prior art are solved, and higher mixing uniformity and product quality stability are achieved.

CN120022778AActive Publication Date: 2025-05-23深圳市晨日科技股份有限公司 +1
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Patent Information

Application Number
CN202510506424.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-22
Publication Date
2025-05-23
Estimated Expiration
2045-04-22

AI Technical Summary

Technical Problem

The existing silicone resin preparation device has problems such as uneven stirring, different reaction rates caused by poor temperature gradients, and poor product quality stability and uniformity in terms of raw material mixing.

Method used

A silicone resin preparation device for optical glue for Mini LED silicone lenses was designed, and a multi-layer stirring paddle design (upper layer, middle layer, lower layer stirring paddle) and auxiliary stirring mechanisms (such as thermal conduction sleeves, rotating sheets, memory alloy adjustment components) were designed to achieve multi-directional and multi-layer stirring and homogenization through complex mechanical structures and motor drives.

Benefits of technology

It significantly improves the mixing uniformity of raw materials, reduces the temperature gradient difference, enhances the uniform consistency of materials in the mixing tank, and thus improves the stability and optical performance of product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an organic silicon resin preparation device for Mini LED organic silicon lens optical cement, and relates to the related technical field of organic silicon resin mixing equipment.The organic silicon resin preparation device comprises a stirring tank used for containing organic silicon resin and a cover plate arranged on the stirring tank, a hollow shaft is rotationally installed on the cover plate, and a stirring shaft is rotationally installed in the hollow shaft; a driving motor is fixedly installed on the cover plate, the output end of the driving motor is fixedly connected with the top end of the stirring shaft, an upper stirring assembly is arranged on the hollow shaft, and an upper-layer stirring paddle is arranged through the upper stirring assembly; a connecting shaft is rotationally mounted at the bottom end of the stirring shaft, and middle-layer stirring paddles are fixedly mounted at the two ends of the connecting shaft; according to the invention, all component materials can be further refined, and the mixing uniformity is improved, so that all component materials are more sufficiently and mutually infiltrated and interwoven, the mixing quality is obviously improved, and the reduction of optical performance defects caused by non-uniform mixing of raw materials is facilitated.
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Description

Technical Field

[0001] The present invention relates to the technical field related to silicone resin mixing equipment, specifically a silicone resin preparation device for Mini LED silicone lens optical adhesive. Background Art

[0002] With the rapid development of Mini LED technology, its application in the display field is becoming more and more extensive. Mini LED silicone lens optical adhesive uses silicone resin as a key material, which plays a decisive role in product performance. In the existing technology, the preparation of silicone resin faces many challenges.

[0003] In terms of raw material mixing, most of the existing silicone resin preparation devices have a single stirring blade design, which cannot meet the diverse needs of mixing degree. The stirring method is relatively simple, and it is difficult to effectively and quickly disperse the input raw materials. The movement mode of materials in various places in the stirring tank is relatively simple, resulting in uneven mixing of the raw materials and poor uniformity. In addition, many devices only rely on simple temperature control systems, which are inconvenient to effectively regulate the temperature gradient in the stirring tank. Local overheating or overcooling phenomena frequently occur. There is a temperature gradient difference between the upper and lower materials, which leads to different reaction rates between the upper and lower materials, resulting in differences in product composition in the upper and lower parts, which ultimately affects the stability and uniformity of product quality. In addition, it is difficult to ensure that the temperature of each area in the stirring tank is uniform, which further aggravates the difference in product quality. Summary of the invention

[0004] In order to solve the defects of the prior art, the present invention provides a device for preparing silicone resin for Mini LED silicone lens optical adhesive.

[0005] In order to solve the above technical problems, the present invention provides the following technical solutions: The present invention discloses a device for preparing a silicone resin for a Mini LED silicone lens optical adhesive, comprising a stirring tank for containing the silicone resin and a cover plate arranged on the stirring tank, wherein a hollow shaft is rotatably mounted on the cover plate and a stirring shaft is rotatably mounted in the hollow shaft, a driving motor is fixedly mounted on the cover plate, and the output end of the driving motor is fixedly connected to the top end of the stirring shaft, an upper stirring assembly is arranged on the hollow shaft and an upper stirring paddle is arranged through the upper stirring assembly, a connecting shaft is rotatably mounted on the bottom end of the stirring shaft and middle stirring paddles are fixedly mounted on both ends of the connecting shaft, a cavity is provided in the stirring shaft and an adjustment assembly for adaptively adjusting the angle of the middle stirring paddle is provided in the cavity, a lower stirring assembly used in conjunction with the upper stirring assembly is provided on the lower surface of the cover plate, a feed inlet is provided on the cover plate, and a discharge outlet is provided on the stirring tank.

[0006] As a preferred technical solution of the present invention, the upper stirring assembly includes a support frame fixedly mounted on the cover plate, an idler wheel is rotatably mounted on the support frame, a first bevel gear and a second bevel gear are fixedly mounted on the outer surfaces of the stirring shaft and the hollow shaft respectively, the first bevel gear and the second bevel gear are symmetrically arranged and both mesh with the idler wheel, the upper stirring paddle is fixedly mounted on the bottom end of the hollow shaft, and a plurality of fins are rotatably mounted on both sides of the upper stirring paddle.

[0007] As a preferred technical solution of the present invention, the lower layer stirring assembly includes a sun gear fixedly mounted on a hollow shaft, a gear ring is fixedly mounted on the lower surface of the cover plate, a plurality of planetary gears are meshed on the sun gear, and the plurality of planetary gears are meshed with the gear ring, a rotating shaft is fixedly mounted on each of the planetary gears, an auxiliary stirring mechanism is provided on each of the rotating shafts, a lower layer stirring paddle is rotatably mounted on the bottom end of each of the stirring shafts, and the plurality of lower layer stirring paddles are rotatably connected to the stirring shaft.

[0008] As a preferred technical solution of the present invention, the auxiliary stirring mechanism includes a heat-conducting sleeve rotatably mounted on a rotating shaft, an eccentric block is fixedly mounted on the outer surface of the rotating shaft, and no less than two oscillation units are arranged in the heat-conducting sleeve. The oscillation unit includes a plurality of reset springs fixedly mounted on the inner wall of the heat-conducting sleeve, and the same connecting plate is fixedly mounted on the plurality of reset springs, the connecting plate is used in conjunction with the eccentric block, and a plurality of striking rods are fixedly mounted on the connecting plate.

[0009] As a preferred technical solution of the present invention, a rotating sheet is fixedly mounted on the outer surface of the heat-conducting sleeve, and both the rotating sheet and the heat-conducting sleeve are made of copper.

[0010] As a preferred technical solution of the present invention, a telescopic rod is arranged in the reset spring, and two ends of the telescopic rod are fixedly connected to the inner wall of the heat-conducting sleeve and the connecting plate respectively.

[0011] As a preferred technical solution of the present invention, the adjusting component includes a worm wheel fixedly mounted on the connecting shaft, a worm screw meshing with the worm wheel is rotatably mounted in the stirring shaft, a heat-conducting rod is fixedly mounted on one end of the stirring shaft close to the upper stirring paddle and one end close to the lower stirring paddle, a transmission gear is fixedly mounted on the worm screw, a tooth plate meshing with the transmission gear is slidably mounted in the stirring shaft, memory alloys are fixedly mounted on both ends of the tooth plate, and the memory alloy is fixedly connected to the heat-conducting rod on the same side.

[0012] As a preferred technical solution of the present invention, a plurality of hemispherical grooves are evenly formed on the lower surface of the lower stirring paddle.

[0013] As a preferred technical solution of the present invention, a sampling tube is provided on the stirring tank.

[0014] The beneficial effects of the present invention are: 1. The organic silicone resin preparation device for Mini LED organic silicone lens optical adhesive is provided with an upper stirring paddle, a middle stirring paddle, a lower stirring paddle, an upper stirring assembly and a lower stirring assembly. A driving motor drives the stirring shaft and the middle stirring paddle to rotate. While the stirring shaft rotates, the upper stirring paddle is driven to rotate in the opposite direction through the first bevel gear, the idler gear and the second bevel gear. While the stirring shaft rotates, the lower stirring paddle is driven to follow the rotation by driving the sun gear, the gear ring and the planetary gear. That is, the middle stirring paddle stirs and mixes the materials in the stirring tank in a direction different from that of the upper stirring paddle and the lower stirring paddle, thereby forming a strong shear force field between the upper stirring paddle and the middle stirring paddle and between the middle stirring paddle and the lower stirring paddle. The upper stirring paddle and the lower stirring paddle push the materials to move in one direction, while the middle stirring paddle pushes in the opposite direction. The materials are repeatedly sheared in these two areas, which can further refine the components, improve the uniformity of the mixing, and make the components more fully penetrate and interweave with each other, significantly improve the mixing quality, and help reduce the optical performance defects caused by uneven mixing of raw materials.

[0015] 2. The silicone resin preparation device for Mini LED silicone lens optical adhesive is provided with a lower stirring component. When the rotating shaft rotates, the eccentric block is driven to rotate accordingly. During the rotation, the eccentric block will reciprocately squeeze the connecting plate and compress the reset spring. The connecting plate is compressed and drives the striking rod to move to one side of the heat conducting sleeve, and the striking rod strikes the inner wall of the heat conducting sleeve to cause the surface of the heat conducting sleeve to vibrate. Therefore, when the heat conducting sleeve moves with the rotating shaft, the vibration of the heat conducting sleeve can eliminate the gaps and bubbles between the materials, so that the materials in the stirring tank are more uniform. At the same time, the vibration of the heat conducting sleeve can break the boundary layer between the heat conducting sleeve and the material, thereby further improving the heat transfer effect of the heat conducting sleeve.

[0016] 3. The silicone resin preparation device for Mini LED silicone lens optical adhesive is provided with a rotating plate, so that the thermal sleeve can rotate along with the rotating shaft while the thermal sleeve is impacted by the flow of materials in the stirring tank, thereby stirring the materials in the stirring tank in multiple levels and directions, thereby improving the uniformity of mixing between the various component materials. By providing the rotating plate, the contact area between the thermal sleeve and the material is greatly increased, thereby improving the heat exchange rate of the thermal sleeve and the oscillation effect of the thermal sleeve.

[0017] 4. The silicone resin preparation device for Mini LED silicone lens optical adhesive is equipped with an angle adjustment component. When the temperature of the lower layer material in the stirring tank is high, the memory alloy below is deformed and elongated, and pushes the middle layer stirring paddle to tilt upward, so that when the middle layer stirring paddle rotates, the material at the bottom of the stirring tank is transported upward and better mixed with the upper layer material, thereby enhancing the overall mixing effect, reducing the gradient difference between the upper and lower layer materials, and avoiding the temperature gradient difference between the upper and lower layer materials, which leads to different reaction rates between the upper and lower layer materials, resulting in differences in product composition in the upper and lower parts, and ultimately affecting the stability and uniformity of product quality.

[0018] 5. The silicone resin preparation device for Mini LED silicone lens optical adhesive is provided with fins and hemispherical grooves. When the upper stirring paddle rotates, the fins produce irregular swings under the flow impact of the material, so that the material can be more finely cut and dispersed in the initial mixing stage, so that the various component materials are fully mixed, and the mixing effect between the various component materials is further improved; when the lower stirring paddle stirs the material at the bottom of the stirring tank, the hemispherical groove can form a local vortex, which will re-roll the material settled at the bottom of the stirring tank and enhance the stirring effect.

[0019] 6. The silicone resin preparation device for Mini LED silicone lens optical adhesive is provided with a heat-conducting sleeve. The rotating shaft revolves while driving the heat-conducting sleeve to rotate. The revolution of the heat-conducting sleeve can fully contact the materials in various places in the stirring tank, and utilize the excellent heat conduction effect of the heat pipe to achieve heat equalization between the upper and lower materials in the stirring tank, thereby avoiding the problem of different reaction rates between the upper and lower materials due to the temperature gradient difference between the upper and lower materials, resulting in differences in product components in the upper and lower parts, and ultimately affecting the stability and uniformity of product quality. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings: Figure 1 It is a schematic diagram of the overall structure of a device for preparing a silicone resin for a Mini LED silicone lens optical adhesive according to the present invention; Figure 2 It is a schematic diagram of the cross-sectional structure of a stirring tank of a device for preparing a silicone resin for a Mini LED silicone lens optical adhesive according to the present invention; Figure 3 This is a schematic diagram of the structure of the lower stirring component of a device for preparing silicone resin for Mini LED silicone lens optical adhesive according to the present invention; Figure 4This is a schematic diagram of the stirring shaft structure of a device for preparing silicone resin for Mini LED silicone lens optical adhesive of the present invention; Figure 5 It is a schematic diagram of the cross-sectional structure of a stirring shaft of a device for preparing a silicone resin for a Mini LED silicone lens optical adhesive according to the present invention; Figure 6 It is a schematic diagram of the structure of an adjustment component of a device for preparing silicone resin for Mini LED silicone lens optical adhesive according to the present invention; Figure 7 This is a schematic diagram of the structure of an auxiliary stirring mechanism of a device for preparing silicone resin for Mini LED silicone lens optical adhesive according to the present invention; Figure 8 It is a schematic diagram of the cross-sectional structure of a heat-conducting sleeve of a device for preparing silicone resin for Mini LED silicone lens optical adhesive according to the present invention; Fig. 9 yes Figure 8 A schematic diagram of the enlarged structure in the middle.

[0021] In the figure: 1, stirring tank; 2, cover plate; 3, hollow shaft; 4, stirring shaft; 5, driving motor; 6, upper stirring assembly; 61, upper stirring paddle; 62, support frame; 63, idler; 64, first bevel gear; 65, second bevel gear; 66, fin; 7, connecting shaft; 8, middle stirring paddle; 9, adjusting assembly; 91, worm gear; 92, worm; 93, heat conducting rod; 94, transmission gear; 95, tooth plate; 96, memory alloy; 10, lower Layer stirring assembly; 101, sun gear; 102, gear ring; 103, planetary gear; 104, rotating shaft; 105, auxiliary stirring mechanism; 1051, heat conduction sleeve; 1052, eccentric block; 1053, return spring; 1054, connecting plate; 1055, striking rod; 1056, rotating sheet; 1057, telescopic rod; 106, lower stirring paddle; 107, hemispherical groove; 11, feed inlet; 12, discharge outlet; 13, sampling tube. DETAILED DESCRIPTION

[0022] The preferred embodiments of the present invention are described below in conjunction with the accompanying drawings. It should be understood that the preferred embodiments described herein are only used to illustrate and explain the present invention, and are not used to limit the present invention.

[0023] Example: Figures 1 to 9As shown, the present invention provides a device for preparing silicone resin for MiniLED silicone lens optical adhesive, comprising a stirring tank 1 for containing silicone resin and a cover plate 2 arranged on the stirring tank 1, a hollow shaft 3 is rotatably mounted on the cover plate 2 and a stirring shaft 4 is rotatably mounted in the hollow shaft 3, a driving motor 5 is fixedly mounted on the cover plate 2, and the output end of the driving motor 5 is fixedly connected to the top of the stirring shaft 4, an upper stirring component 6 is arranged on the hollow shaft 3 and an upper stirring paddle 61 is arranged through the upper stirring component 6, a connecting shaft 7 is rotatably mounted on the bottom end of the stirring shaft 4 and middle stirring paddles 8 are fixedly mounted at both ends of the connecting shaft 7, a cavity is provided in the stirring shaft 4 and an adjusting component 9 for adaptively adjusting the angle of the middle stirring paddle 8 is provided in the cavity, a lower stirring component 10 used in conjunction with the upper stirring component 6 is provided on the lower surface of the cover plate 2, a feeding port 11 is provided on the cover plate 2, and a discharging port 12 is provided on the stirring tank 1.

[0024] Among them, Figure 1 , Figure 2 , Figure 4 and Figure 5 As shown, the upper stirring assembly 6 includes a support frame 62 fixedly mounted on the cover plate 2, an idler wheel 63 is rotatably mounted on the support frame 62, a first bevel gear 64 and a second bevel gear 65 are fixedly mounted on the outer surfaces of the stirring shaft 4 and the hollow shaft 3, respectively, the first bevel gear 64 and the second bevel gear 65 are symmetrically arranged and both mesh with the idler wheel 63, an upper stirring paddle 61 is fixedly mounted on the bottom end of the hollow shaft 3, and a plurality of fins 66 are rotatably mounted on both sides of the upper stirring paddle 61.

[0025] Specifically, when each component material is put into the stirring tank 1 in proportion, the driving motor 5 is started, and the driving motor 5 drives the stirring shaft 4 and the middle stirring paddle 8 to stir and mix the materials in the stirring tank 1. When the stirring shaft 4 rotates, the first bevel gear 64 is driven to rotate accordingly. When the first bevel gear 64 rotates, the second bevel gear 65 and the hollow shaft 3 are driven to rotate in the opposite direction through the idler gear 63. The hollow shaft 3 rotates in the opposite direction and drives the upper stirring paddle 61 to rotate accordingly. When the upper stirring paddle 61 rotates, the fins 66 swing irregularly under the flow impact of the materials, so that the materials can be cut and dispersed more finely in the initial mixing stage, so that each component material can be mixed with the stirring paddle 61. The upper stirring paddle 61 and the middle stirring paddle 8 stir and mix the materials in the stirring tank 1 in different directions, thereby forming a strong shear force field between the upper stirring paddle 61 and the middle stirring paddle 8. The upper stirring paddle 61 pushes the material to move in one direction, while the middle stirring paddle 8 pushes it in the opposite direction. The material is repeatedly sheared in this area, which can further refine the component materials, improve the uniformity of mixing, and make the component materials more fully penetrate and interweave with each other, significantly improve the mixing quality, and help reduce optical performance defects caused by uneven mixing of raw materials.

[0026] Among them, Figure 2 , Figure 3 , Figure 4 , Figure 7 , Figure 8 and Fig. 9 As shown, the lower stirring assembly 10 includes a sun gear 101 fixedly mounted on the hollow shaft 3, a gear ring 102 fixedly mounted on the lower surface of the cover plate 2, a plurality of planetary gears 103 meshing on the sun gear 101, and the plurality of planetary gears 103 are all meshing with the gear ring 102, a rotating shaft 104 is fixedly mounted on each planetary gear 103, an auxiliary stirring mechanism 105 is provided on each rotating shaft 104, a lower stirring paddle 106 is rotatably mounted on the bottom end of each stirring shaft 4, and the plurality of lower stirring paddles 106 are rotatably connected to the stirring shaft 4.

[0027] Specifically, when the stirring shaft 4 rotates, it drives the sun gear 101 to rotate along with it. The sun gear 101 rotates and cooperates with the gear ring 102 to drive the planetary gears 103 and the rotating shaft 104 to revolve around the stirring shaft 4 as the axis while rotating around itself. The rotation of the rotating shaft 104 drives the lower stirring paddle 106 to rotate along with it. The lower stirring paddle 106 rotates to stir the material at the bottom of the stirring tank 1 to prevent the material in the stirring tank 1 from settling. At the same time, since the rotation direction of the lower stirring paddle 106 is consistent with the rotation direction of the upper stirring paddle 61, that is, the rotation direction of the lower stirring paddle 106 is opposite to the rotation direction of the middle stirring paddle 8, the component materials can be further refined to improve the uniformity of mixing. At the same time, when the rotating shaft 104 rotates, the material at the side wall of the stirring tank 1 can be stirred and mixed to prevent the material in the stirring tank 1 from accumulating on the side wall of the stirring tank 1, so that the component materials can be better evenly mixed.

[0028] Further, such as Figure 2 , Figure 3 , Figure 7 , Figure 8 and Fig. 9 As shown, the auxiliary stirring mechanism 105 includes a heat-conducting sleeve 1051 rotatably mounted on the rotating shaft 104, an eccentric block 1052 is fixedly mounted on the outer surface of the rotating shaft 104, and no less than two oscillation units are arranged in the heat-conducting sleeve 1051. The oscillation units include a plurality of return springs 1053 fixedly mounted on the inner wall of the heat-conducting sleeve 1051, and a same connecting plate 1054 is fixedly mounted on the plurality of return springs 1053. The connecting plate 1054 is used in conjunction with the eccentric block 1052, and a plurality of striking rods 1055 are fixedly mounted on the connecting plate 1054.

[0029] Specifically, the rotating shaft 104 revolves while driving the heat-conducting sleeve 1051 to rotate accordingly. The heat-conducting sleeve 1051 can fully contact the materials in various places in the stirring tank 1 by revolving. The excellent heat conduction effect of the heat pipe is utilized to achieve heat equalization operation between the upper and lower materials in the stirring tank 1, thereby avoiding the problem that the temperature gradient difference between the upper and lower materials causes different reaction rates between the upper and lower materials, resulting in differences in product components in the upper and lower parts, which ultimately affects the stability and uniformity of product quality.

[0030] When further explanation is needed, the rotating shaft 104 rotates and drives the eccentric block 1052 to rotate accordingly. During the rotation, the eccentric block 1052 will reciprocately squeeze the connecting plate 1054 and compress the reset spring 1053. The connecting plate 1054 is compressed and drives the striking rod 1055 to move one side of the heat-conducting sleeve 1051, and the striking rod 1055 strikes the inner wall of the heat-conducting sleeve 1051 to cause the surface of the heat-conducting sleeve 1051 to vibrate. Therefore, while the heat-conducting sleeve 1051 moves with the rotating shaft 104, the vibration of the heat-conducting sleeve 1051 can eliminate the gaps and bubbles between the materials, so that the materials in the stirring tank 1 are more uniform. At the same time, the vibration of the heat-conducting sleeve 1051 can break the boundary layer between the heat-conducting sleeve 1051 and the materials, thereby further improving the heat transfer effect of the heat-conducting sleeve 1051.

[0031] Further, such as Figure 7 , Figure 8 and Fig. 9 As shown, a rotating sheet 1056 is fixedly installed on the outer surface of the heat-conducting sleeve 1051. The rotating sheet 1056 and the heat-conducting sleeve 1051 are both made of copper. By setting the rotating sheet 1056, the heat-conducting sleeve 1051 can rotate under the impact of the flow of materials in the stirring tank 1 while following the revolution of the rotating shaft 104, so that the rotating sheet 1056 of the heat-conducting sleeve 1051 can be driven to rotate, thereby stirring the materials in the stirring tank 1 in multiple levels and directions, improving the uniformity of mixing between the various component materials, and by setting the rotating sheet 1056, the contact area between the heat-conducting sleeve 1051 and the material is greatly increased, thereby improving the heat exchange rate of the heat-conducting sleeve 1051 and the oscillation effect of the heat-conducting sleeve 1051.

[0032] Among them, Figure 7 , Figure 8 and Fig. 9 As shown, a telescopic rod 1057 is provided in the reset spring 1053, and both ends of the telescopic rod 1057 are fixedly connected to the inner wall of the heat-conducting sleeve 1051 and the connecting plate 1054 respectively. By providing the telescopic rod 1057, the movement of the reset spring 1053 can be supported and limited, thereby ensuring the stability of the reset spring 1053 during the telescopic process.

[0033] Among them, Figure 5 and Figure 6 As shown, the adjustment component 9 includes a worm gear 91 fixedly mounted on the connecting shaft 7, a worm 92 meshing with the worm gear 91 is rotatably mounted in the stirring shaft 4, a heat-conducting rod 93 is fixedly mounted on one end of the stirring shaft 4 close to the upper stirring paddle 61 and one end close to the lower stirring paddle 106, a transmission gear 94 is fixedly mounted on the worm gear 92, a tooth plate 95 meshing with the transmission gear 94 is slidably mounted in the stirring shaft 4, and memory alloys 96 are fixedly mounted on both ends of the tooth plate 95, and the memory alloy 96 is fixedly connected to the heat-conducting rod 93 on the same side.

[0034] Specifically, when the temperature difference between the upper layer material and the lower layer material in the stirring tank 1 is too large, when the temperature of the lower layer material in the stirring tank 1 is higher, the memory alloy 96 below is deformed and elongated, and pushes the tooth plate 95 to move upward, and the tooth plate 95 moves upward to drive the worm 92 to rotate through the transmission gear 94, and the rotation of the worm 92 drives the connecting shaft 7 and the middle layer stirring paddle 8 to rotate through the worm gear 91, so that the middle layer stirring paddle 8 is tilted upward. According to the principle of fluid mechanics, when the middle layer stirring paddle 8 rotates, the material will move upward along the inclined surface of the middle layer stirring paddle 8 under the action of this thrust, and the material at the bottom of the stirring tank 1 will be transported upward to be better mixed with the upper layer material, thereby enhancing the overall The mixing effect of the body is improved, and the gradient difference between the upper and lower materials is reduced. On the contrary, when the temperature of the lower material in the stirring tank 1 is low, the upper memory alloy 96 is deformed and elongated, and pushes the tooth plate 95 to move downward, so that the middle stirring paddle 8 tilts downward, and the upper material is transported downward, thereby accelerating the output mixing rate between the upper and lower materials, reducing the gradient difference between the upper and lower materials in the stirring tank 1, ensuring sufficient mixing between the materials in the stirring tank 1, and avoiding the temperature gradient difference between the upper and lower materials, which leads to different reaction rates between the upper and lower materials, resulting in differences in product components in the upper and lower parts, and ultimately affecting the stability and uniformity of product quality.

[0035] Among them, Figure 3 As shown, a plurality of hemispherical grooves 107 are evenly provided on the lower surface of the lower stirring paddle 106. When the lower stirring paddle 106 stirs the material at the bottom of the stirring tank 1, the hemispherical grooves 107 can form a local vortex to re-roll the material settled at the bottom of the stirring tank 1, thereby enhancing the stirring effect.

[0036] Among them, Figure 1 As shown, a sampling tube 13 is provided on the mixing tank 1 to facilitate sampling and testing of the material in the mixing tank 1 .

[0037] During operation, each component material is put into the stirring tank 1 in proportion, and the driving motor 5 is started. The driving motor 5 drives the stirring shaft 4 and the middle stirring paddle 8 to stir and mix the materials in the stirring tank 1. When the stirring shaft 4 rotates, the first bevel gear 64 is driven to rotate accordingly. When the first bevel gear 64 rotates, the second bevel gear 65 and the hollow shaft 3 are driven to rotate in the opposite direction through the idler gear 63. The hollow shaft 3 rotates in the opposite direction and drives the upper stirring paddle 61 to rotate accordingly. When the upper stirring paddle 61 rotates, the fins 66 swing irregularly under the flow impact of the materials, so that the materials can be cut and dispersed more finely in the preliminary mixing stage, so that the components are fully mixed, and the mixing effect between the components is further improved. The stirring shaft 4 drives the sun gear 101 to rotate along with it while rotating. The sun gear 101 rotates and cooperates with the gear ring 102 to drive the planetary gears 103 and the rotating shaft 104 to revolve around the stirring shaft 4 as the axis while rotating around itself as the axis. The rotation of the rotating shaft 104 drives the lower stirring paddle 106 to rotate along with it. The lower stirring paddle 106 rotates to stir the material at the bottom of the stirring tank 1 to prevent the material in the stirring tank 1 from settling. At the same time, since the rotation direction of the lower stirring paddle 106 is consistent with the rotation direction of the upper stirring paddle 61, that is, the rotation direction of the lower stirring paddle 106 is opposite to the rotation direction of the middle stirring paddle 8, the middle stirring paddle 8 The materials in the stirring tank 1 are stirred and mixed in a direction different from the rotation direction of the upper stirring paddle 61 and the lower stirring paddle 106, so that a strong shear force field is formed between the upper stirring paddle 61 and the middle stirring paddle 8, and between the middle stirring paddle 8 and the lower stirring paddle 106. The upper stirring paddle 61 and the lower stirring paddle 106 push the materials to move in one direction, while the middle stirring paddle 8 pushes in the opposite direction. The materials are repeatedly sheared in these two areas, which can further refine the components of the materials, improve the uniformity of the mixing, and make the components of the materials more fully penetrate and interweave with each other, significantly improve the mixing quality, and help reduce the optical performance defects caused by uneven mixing of raw materials; When the rotating shaft 104 rotates, the eccentric block 1052 is driven to rotate accordingly. During the rotation process, the eccentric block 1052 will reciprocately squeeze the connecting plate 1054 and compress the reset spring 1053. The connecting plate 1054 is pressed and drives the striking rod 1055 to move to one side of the heat-conducting sleeve 1051, and the striking rod 1055 strikes the inner wall of the heat-conducting sleeve 1051 to cause the surface of the heat-conducting sleeve 1051 to vibrate. Therefore, when the heat-conducting sleeve 1051 moves with the rotating shaft 104, the vibration of the heat-conducting sleeve 1051 can eliminate the gaps and bubbles between the materials, so that the mixing tank 1 is more uniform, and the vibration of the heat-conducting sleeve 1051 can break the boundary layer between the heat-conducting sleeve 1051 and the material, further improving the heat transfer effect of the heat-conducting sleeve 1051; while the heat-conducting sleeve 1051 revolves with the rotating shaft 104, the flow of the material in the stirring tank 1 will impact the rotating sheet 1056, causing the heat-conducting sleeve 1051 and the rotating sheet 1056 to rotate, thereby stirring the material in the stirring tank 1 in multiple levels and directions, improving the uniformity of mixing between the components, the heat exchange rate of the heat-conducting sleeve 1051, and the oscillation effect of the heat-conducting sleeve 1051; The rotating shaft 104 revolves while driving the heat-conducting sleeve 1051 to rotate accordingly. The heat-conducting sleeve 1051 revolves so as to be in full contact with the materials at various locations in the mixing tank 1. The excellent heat-conducting effect of the heat-conducting pipe is utilized to achieve a heat-equalizing operation between the upper and lower materials in the mixing tank 1, thereby avoiding the problem that the temperature gradient difference between the upper and lower materials causes different reaction rates between the upper and lower materials, resulting in differences in product components in the upper and lower parts, and ultimately affecting the stability and uniformity of product quality. During the stirring operation, when the temperature difference between the upper layer material and the lower layer material in the stirring tank 1 is too large, when the temperature of the lower layer material in the stirring tank 1 is higher, the memory alloy 96 below is deformed and elongated, and pushes the tooth plate 95 to move upward, and the tooth plate 95 moves upward and drives the worm 92 to rotate through the transmission gear 94, and the rotation of the worm 92 drives the connecting shaft 7 and the middle layer stirring paddle 8 to rotate through the worm gear 91, so that the middle layer stirring paddle 8 is tilted upward. According to the principle of fluid mechanics, when the middle layer stirring paddle 8 rotates, the material will move upward along the inclined surface of the middle layer stirring paddle 8 under the action of this thrust, so that the material at the bottom of the stirring tank 1 is transported upward, and is better mixed with the upper layer material, thereby enhancing The overall mixing effect reduces the gradient difference between the upper and lower materials. On the contrary, when the temperature of the lower material in the stirring tank 1 is low, the upper memory alloy 96 deforms and elongates, and pushes the tooth plate 95 to move downward, so that the middle stirring paddle 8 tilts downward, and the upper material is transported downward, thereby accelerating the output mixing rate between the upper and lower materials, reducing the gradient difference between the upper and lower materials in the stirring tank 1, ensuring sufficient mixing of the materials in the stirring tank 1, and avoiding the temperature gradient difference between the upper and lower materials, which leads to different reaction rates between the upper and lower materials, resulting in differences in product composition in the upper and lower parts, and ultimately affecting the stability and uniformity of product quality.

[0038] Finally, it should be noted that the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or replace some of the technical features therein by equivalents. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A device for preparing a silicone resin for Mini LED silicone lens optical adhesive, comprising a stirring tank (1) for containing the silicone resin and a cover plate (2) arranged on the stirring tank (1), characterized in that: A hollow shaft (3) is rotatably mounted on the cover plate (2), and a stirring shaft (4) is rotatably mounted inside the hollow shaft (3); a driving motor (5) is fixedly mounted on the cover plate (2), and the output end of the driving motor (5) is fixedly connected to the top end of the stirring shaft (4); an upper stirring assembly (6) is arranged on the hollow shaft (3), and an upper stirring paddle (61) is arranged through the upper stirring assembly (6); a connecting shaft (7) is rotatably mounted on the bottom end of the stirring shaft (4), and middle stirring paddles (8) are fixedly mounted at both ends of the connecting shaft (7); a cavity is provided inside the stirring shaft (4), and an adjustment assembly (9) for adaptively adjusting the angle of the middle stirring paddle (8) is provided inside the cavity; a lower stirring assembly (10) for use with the upper stirring assembly (6) is provided on the lower surface of the cover plate (2); a material feed port (11) is provided on the cover plate (2), and a material discharge port (12) is provided on the stirring tank (1).

2. The device for preparing a silicone resin for Mini LED silicone lens optical adhesive according to claim 1, characterized in that: The upper stirring assembly (6) comprises a support frame (62) fixedly mounted on the cover plate (2), an idler wheel (63) being rotatably mounted on the support frame (62), a first bevel gear (64) and a second bevel gear (65) being fixedly mounted on the outer surfaces of the stirring shaft (4) and the hollow shaft (3), respectively, the first bevel gear (64) and the second bevel gear (65) being symmetrically arranged and both meshing with the idler wheel (63), the upper stirring paddle (61) being fixedly mounted on the bottom end of the hollow shaft (3), and a plurality of fins (66) being rotatably mounted on both sides of the upper stirring paddle (61).

3. The device for preparing a silicone resin for Mini LED silicone lens optical adhesive according to claim 2, characterized in that: The lower layer stirring assembly (10) comprises a sun gear (101) fixedly mounted on a hollow shaft (3); a gear ring (102) is fixedly mounted on the lower surface of the cover plate (2); a plurality of planetary gears (103) are meshed on the sun gear (101); the plurality of planetary gears (103) are meshed with the gear ring (102); a rotating shaft (104) is fixedly mounted on each of the planetary gears (103); an auxiliary stirring mechanism (105) is provided on each of the rotating shafts (104); a lower layer stirring paddle (106) is rotatably mounted on the bottom end of each of the stirring shafts (4); and the plurality of lower layer stirring paddles (106) are rotatably connected to the stirring shaft (4).

4. The device for preparing a silicone resin for Mini LED silicone lens optical adhesive according to claim 3, characterized in that: The auxiliary stirring mechanism (105) comprises a heat-conducting sleeve (1051) rotatably mounted on a rotating shaft (104); an eccentric block (1052) is fixedly mounted on the outer surface of the rotating shaft (104); at least two oscillation units are arranged in the heat-conducting sleeve (1051); the oscillation units comprise a plurality of return springs (1053) fixedly mounted on the inner wall of the heat-conducting sleeve (1051); a same connecting plate (1054) is fixedly mounted on the plurality of return springs (1053); the connecting plate (1054) is used in conjunction with the eccentric block (1052); and a plurality of striking rods (1055) are fixedly mounted on the connecting plate (1054).

5. The device for preparing a silicone resin for Mini LED silicone lens optical adhesive according to claim 4, characterized in that: A rotating sheet (1056) is fixedly mounted on the outer surface of the heat-conducting sleeve (1051); the rotating sheet (1056) and the heat-conducting sleeve (1051) are both made of copper.

6. The device for preparing a silicone resin for Mini LED silicone lens optical adhesive according to claim 4, characterized in that: A telescopic rod (1057) is arranged inside the return spring (1053), and two ends of the telescopic rod (1057) are respectively fixedly connected to the inner wall of the heat-conducting sleeve (1051) and the connecting plate (1054).

7. The device for preparing a silicone resin for Mini LED silicone lens optical adhesive according to claim 3, characterized in that: The adjustment assembly (9) comprises a worm wheel (91) fixedly mounted on the connecting shaft (7); a worm (92) meshing with the worm wheel (91) is rotatably mounted in the stirring shaft (4); a heat-conducting rod (93) is fixedly mounted on one end of the stirring shaft (4) close to the upper stirring paddle (61) and one end close to the lower stirring paddle (106); a transmission gear (94) is fixedly mounted on the worm wheel (92); a tooth plate (95) meshing with the transmission gear (94) is slidably mounted in the stirring shaft (4); memory alloys (96) are fixedly mounted at both ends of the tooth plate (95); and the memory alloys (96) are fixedly connected to the heat-conducting rod (93) on the same side.

8. The device for preparing a silicone resin for Mini LED silicone lens optical adhesive according to claim 4, characterized in that: A plurality of hemispherical grooves (107) are evenly arranged on the lower surface of the lower stirring paddle (106).

9. The device for preparing a silicone resin for Mini LED silicone lens optical adhesive according to claim 1, characterized in that: The stirring tank (1) is provided with a sampling tube (13).

Citation Information

Patent Citations

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