Cooling auxiliary device based on photoelectric product forming processing
By designing a cooling auxiliary device for the molding and processing of optoelectronic products, the problem of uneven cooling of optoelectronic products is solved, uniform spraying of coolant and flipping and moving of optoelectronic products is achieved, and the molding accuracy and overall performance of the product are improved.
Patent Information
- Application Number
- CN202510329546.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2025-05-13
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The cooling of optoelectronic products during molding and processing is uneven, resulting in slower temperature drops and thermal stresses, affecting product performance and reliability.
A cooling auxiliary device for forming and processing of optoelectronic products is designed, including a water collecting tank, a nozzle, a conveying device, a rotating cylinder, an electric push rod and an induction device. Through the coordinated work of these components, uniform spraying of coolant and flipping and moving of optoelectronic products are achieved, ensuring that the coolant fully contacts the product surface.
The cooling uniformity of optoelectronic products is achieved, dimensional deviation and shape distortion caused by uneven cooling are avoided, and the molding accuracy and overall performance of the product are improved.
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Figure CN119983695A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of optoelectronic product cooling, and in particular to a cooling auxiliary device for optoelectronic product molding processing. Background Art
[0002] Optoelectronic products are a common type of luminous products. They can be widely used in display, lighting and other fields by converting electrical energy into light energy. In the manufacturing process of optoelectronic products, molding processing is a crucial link. When optoelectronic products are being molded, the surface of the product needs to be cooled to maintain the stable shape of the product, thereby improving the accuracy and stability of the product.
[0003] When cooling optoelectronic products, due to the irregular shape of the products, the coolant can easily flow through the surface of the product, making it difficult for some areas to contact the coolant, resulting in a slow temperature drop, while other areas drop quickly, causing uneven cooling of the product. This uneven cooling can cause thermal stress inside the product, thus affecting the overall performance and reliability of the product.
[0004] Therefore, the present invention proposes a cooling auxiliary device for optoelectronic product molding processing to make up for and improve the shortcomings of the prior art. Summary of the invention
[0005] In view of the defects existing in the prior art, the present invention provides a cooling auxiliary device for photoelectric product molding processing, which can effectively solve the above-mentioned technical problems.
[0006] The technical implementation scheme of the present invention is: a cooling auxiliary device based on optoelectronic product molding processing, including a water collecting tank, a plurality of air outlets are opened through the wall of the water collecting tank, a plurality of nozzles are fixedly connected in a straight line and equidistantly on one side of the top of the water collecting tank, the tops of the nozzles are connected through a conveying device, the bottoms of the conveying devices are connected through a side of the water collecting tank, both sides of the water collecting tank are rotatably connected to a first rotating cylinder, a plurality of first belts are transmission-connected between the outer surfaces of the first rotating cylinders, a motor is fixedly connected to the outer surface of one side of the water collecting tank, the output end of the motor is fixedly connected to one end of one of the first rotating cylinders, one side of the nozzles is fixedly connected to an induction device, a first electric push rod is fixedly connected in a straight line and equidistantly on one side of the upper surface of the water collecting tank, and the output end of the first electric push rod is fixedly connected to a friction member.
[0007] More preferably, the interior of the sensing device is electrically connected to the interior of the first electric push rod.
[0008] More preferably, both ends of one of the first rotating cylinders are fixedly connected to a first transmission wheel, the outer surface of the first transmission wheel is transmission-connected to a second belt, the other end of the second belt is transmission-connected to a second transmission wheel, the sides of the second transmission wheels that are close to each other are rotatably connected to support bars, the bottoms of the support bars are fixedly connected to an upper surface of one end of a water collecting tank, the side of the second transmission wheel that is away from the support bars is fixedly connected to a missing gear, the outer surface of the missing gear is meshed with a first rack, the upper surface of the first rack is fixedly connected to a fixing rod, the top of the fixing rod is fixedly connected to a first sliding member, both ends of the first sliding member are slidably connected to the first fixing member, and the bottom of the first fixing member is fixedly connected to the upper surface of the support bar.
[0009] More preferably, a spring is fixedly sleeved on the inner side of each of the first fixing members, and the bottoms of the springs are fixedly connected to the upper surface of the first sliding member.
[0010] More preferably, the upper surface of one side of the water collecting tank is fixedly connected with a plurality of second fixing members in a straight line and equidistantly, the inner side of the top of the second fixing member is slidably connected with a second sliding member, the bottom of the second sliding member is rotatably connected with a roller assembly, the side of the second sliding member close to the second fixing member is threadedly connected with a reciprocating screw, the bottom of the reciprocating screw rod passes through an end of the second sliding member close to the second fixing member, the bottom of the reciprocating screw rod is fixedly connected with a rotating rod, the outer surface of the rotating rod is rotatably connected to one side of the second fixing member, the bottom of the rotating rod is fixedly connected with a one-way gear, the outer surface of the one-way gear is meshed with a second rack, the side of the second rack away from the one-way gear is fixedly connected with a fixed block, and the end of the fixed block away from the second rack is fixedly connected to the outer surface of the output end of the first electric push rod.
[0011] More preferably, the roller assembly is composed of two rollers, and the two rollers are in opposite directions, and the outer surface of the roller assembly is made of non-slip soft material.
[0012] More preferably, the one-way gear can only idle counterclockwise.
[0013] More preferably, the upper surface of the water collecting tank is straight and detachably connected with multiple filters, the inner side of the water collecting tank is fixedly connected with multiple heat insulation plates, one side of the water collecting tank is straight and equidistantly fixedly connected with multiple second electric push rods, the output ends of the second electric push rods are fixedly connected with extrusion pieces, the side of the extrusion pieces close to the second electric push rods is fixedly connected with sponge blocks, the side of the extrusion pieces away from the second electric push rods is fixedly connected with a water retaining cloth, the end of the water retaining cloth away from the extrusion piece is fixedly wrapped with a second rotating cylinder, and both ends of the second rotating cylinder are wrapped around one side of the water collecting tank.
[0014] More preferably, both ends of the second rotating cylinder are fixedly wound with torsion springs, and the other side of the torsion springs is fixedly connected to one side of the water collecting tank.
[0015] More preferably, the extrusion member and the sponge block are extrusion-fitted.
[0016] Compared with the prior art, the present invention has the following advantages:
[0017] 1. The present invention can flip the optoelectronic product when the friction member is driven to move back and forth by the first electric push rod, so that the coolant can evenly and fully contact various surfaces of the optoelectronic product, so that the areas that are originally difficult to contact can be fully cooled, thereby improving the cooling uniformity of the entire product, and also avoiding the dimensional deviation and shape distortion caused by uneven cooling, thereby improving the molding accuracy of the product.
[0018] 2. The present invention can separate the optoelectronic products during cooling by reciprocating the first sliding member up and down, so that the optoelectronic devices can be cooled in sequence, each part of the optoelectronic product can get sufficient cooling time, and the heat accumulation between the optoelectronic devices can be reduced, so that the surface temperature distribution of the entire product is more uniform, and the generation of thermal stress is reduced, thereby protecting the integrity of the product.
[0019] 3. When the roller assembly is driven to move back and forth by the second sliding member of the present invention, the optoelectronic product can be lifted up, thereby avoiding excessive friction between the optoelectronic product and the first belt, thereby reducing the wear and scratches on the outer surface of the optoelectronic product caused by friction, and helping to maintain the appearance quality and integrity of the optoelectronic product.
[0020] 4. In the present invention, when the coolant moves downward and can flow into the interior of the sponge block, the coolant stays inside the sponge block so that the heat of the coolant can be quickly dispersed. When the sponge block is squeezed by the extrusion piece, the coolant after heat dissipation can directly flow into the interior of the water collecting tank for recycling. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0022] Figure 2 It is a schematic diagram of the three-dimensional structure of the conveying device, the first rotating drum, the first belt and other components of the present invention.
[0023] Figure 3 It is a schematic diagram of the three-dimensional structure of the sensing device, the first electric push rod, the friction member and other components of the present invention.
[0024] Figure 4 It is a schematic diagram of the three-dimensional structure of the second belt, the first sliding member, the first fixing member and other components of the present invention.
[0025] Figure 5 It is a schematic diagram of the three-dimensional structure of the roller assembly, the reciprocating screw rod, the second fixing member and other components of the present invention.
[0026] Figure 6 It is a schematic diagram of the three-dimensional structure of the second sliding member, the second fixing member, the rotating rod and other components of the present invention.
[0027] Figure 7 It is a schematic diagram of the three-dimensional structure of the filter element, the heat insulation plate, the second electric push rod and other components of the present invention.
[0028] Figure 8 It is a schematic diagram of the three-dimensional structure of the heat insulation board, the second electric push rod, the sponge block and other components of the present invention.
[0029] Fig. 9 It is a schematic diagram of the three-dimensional structure of the second electric push rod, sponge block, water retaining cloth and other components of the present invention.
[0030] Fig.10 It is a schematic diagram of the three-dimensional structure of the water collecting box, filter element and heat insulation board components of the present invention.
[0031] Fig.11 It is a schematic diagram of the three-dimensional structure of the second rotating cylinder, torsion spring and extrusion component of the present invention.
[0032] The markings of the components in the accompanying drawings are as follows: 1-water collecting tank, 11-nozzle, 12-conveying device, 13-first rotating cylinder, 14-first belt, 15-motor, 2-induction device, 21-first electric push rod, 22-friction member, 3-first transmission wheel, 31-second belt, 311-second transmission wheel, 312-support bar, 32-missing gear, 33-fixing rod, 34-first rack, 35-first sliding member, 36-first fixing member, 37-spring, 4-second sliding member, 41-roller assembly, 42-reciprocating screw, 43-second fixing member, 44-rotating rod, 45-one-way gear, 46-second rack, 47-fixed block, 5-filter, 51-heat insulation board, 52-second electric push rod, 53-sponge block, 54-water retaining cloth, 55-second rotating cylinder, 56-torsion spring, 57-extrusion member. DETAILED DESCRIPTION
[0033] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0034] The present invention will be further described below in conjunction with the embodiments.
[0035] Embodiments of the present invention
[0036] refer to Figures 1 to 3 As shown, a cooling auxiliary device for photoelectric product molding processing includes a water collecting tank 1, the interior of the water collecting tank 1 is used to hold coolant, a plurality of air outlets are opened on the right side of the water collecting tank 1, the air outlets on the right side of the water collecting tank 1 are used to discharge the hot air generated by the coolant, three nozzles 11 are fixedly connected in a straight line and equidistantly on the right side of the top of the water collecting tank 1, the nozzles 11 are used to spray coolant on the surface of the photoelectric product, the tops of the nozzles 11 are connected through a conveying device 12, the bottoms of the conveying devices 12 are connected through the left side of the water collecting tank 1, the conveying device 12 is used to convey the coolant inside the water collecting tank 1 to the inside of the nozzles 11, the front and rear sides of the water collecting tank 1 are rotatably connected with a first rotating cylinder 13, the outer surfaces of the first rotating cylinder 13 are transmission-connected with two first belts 14, the sides of the first belts 14 close to each other are used to convey the photoelectric product, the left end of the rear side of the water collecting tank 1 is fixedly connected with a motor 15, the output of the motor 15 The first end is fixedly connected to the left end of the first rotating cylinder 13 on the rear side, and the output shaft of the motor 15 is used to drive the first rotating cylinder 13 on the rear side to rotate simultaneously. The front side of the nozzle 11 is fixedly connected with a sensing device 2, and the sensing device 2 is used to sense the photoelectric product. The right side of the upper surface of the water collecting tank 1 is fixedly connected with a first electric push rod 21 in a straight line and equidistantly. The interior of the sensing device 2 is electrically connected to the interior of the first electric push rod 21. The sensing device 2 is used to trigger the first electric push rod 21. The output end of the first electric push rod 21 is fixedly connected with a friction member 22, and the output end of the first electric push rod 21 is used to drive the friction member 22 to move simultaneously. When the friction member 22 moves, it is used to drive the photoelectric product to rotate. When the photoelectric product moves and rotates between the sides of the first belt 14 that are close to each other, the coolant can evenly and fully contact various surfaces of the photoelectric product, so that the areas that were originally difficult to reach can be fully cooled, thereby improving the cooling uniformity of the entire product.
[0037] refer to Figure 4As shown, a cooling auxiliary device for photoelectric product molding processing is shown, both ends of the front first rotating cylinder 13 are fixedly connected with the first transmission wheel 3, when the front first rotating cylinder 13 rotates, it is used to drive the first transmission wheel 3 to rotate simultaneously, the outer surface of the first transmission wheel 3 is transmission-connected with the second belt 31, the rear end of the second belt 31 is transmission-connected with the second transmission wheel 311, the first transmission wheel 3 is used to drive the second transmission wheel 311 to rotate simultaneously through the second belt 31, the second transmission wheels 311 are rotatably connected to the sides close to each other with support bars 312, the bottoms of the support bars 312 are fixedly connected to the upper surface of one end of the water collecting tank 1, the support bars 312 are used to limit the second transmission wheel 311 to rotate on the outside of the support bars 312, the second transmission wheel 311 is fixedly connected with the side away from the support bars 312, the second transmission wheel 311 is used to drive the missing gear 32 to rotate simultaneously, the outer surface of the missing gear 32 is meshed with the first rack 34, when the missing gear 32 rotates, it is used to drive the first rack 34 to move upward, the upper surface of the first rack 34 The surfaces are fixedly connected with a fixing rod 33. When the first rack 34 moves upward, it is used to drive the fixing rod 33 to move simultaneously. A first sliding member 35 is fixedly connected between the tops of the fixing rods 33. The first sliding member 35 is used to block the photoelectric product. Both ends of the first sliding member 35 are slidably connected with first fixing members 36. The bottom of the first fixing member 36 is fixedly connected to the upper surface of the support bar 312. When the fixing rod 33 moves upward, it is used to drive the first sliding member 35 to move simultaneously on the inner side of the first fixing member 36. A spring 37 is fixedly sleeved on the inner side of the first fixing member 36. The bottom of the spring 37 is fixedly connected to the upper surface of the first sliding member 35. The spring 37 is used to drive the first sliding member 35 to reset. When the first sliding member 35 reciprocates up and down, the photoelectric product can be separated during cooling, so that the photoelectric device can be cooled in sequence, and each part of the photoelectric product can get sufficient cooling time, and the heat accumulation between the photoelectric devices can be reduced, so that the surface temperature distribution of the entire product is more uniform.
[0038] refer to Figure 5 and Figure 6As shown, a cooling auxiliary device for photoelectric product molding processing is shown, the upper surface of the right side of the water collecting tank 1 is straight and equidistantly fixedly connected with three second fixing members 43, the inner side of the top of the second fixing member 43 is slidably connected with a second sliding member 4, the second fixing member 43 is used to limit the second sliding member 4 from sliding on the inner side of the top of the second fixing member 43, the bottom of the second sliding member 4 is rotatably connected with a roller assembly 41, the second sliding member 4 is used to drive the roller assembly 41 to slide at the same time, the roller assembly 41 is composed of two rollers, and the two rollers are in opposite directions, the rollers The outer surface of the assembly 41 is made of a non-slip soft material. The roller assembly 41 is used to lift the optoelectronic product. The second sliding member 4 is threadedly connected to a reciprocating screw rod 42 on one side close to the second fixing member 43. The bottom of the reciprocating screw rod 42 passes through the end of the second sliding member 4 close to the second fixing member 43. The reciprocating screw rod 42 is used to drive the second sliding member 4 to slide up and down on the inner side of the top of the second fixing member 43. The bottom of the reciprocating screw rod 42 is fixedly connected to a rotating rod 44. The outer surface of the rotating rod 44 is rotatably connected to the left side of the second fixing member 43. The rotating rod 44 is used to In order to drive the reciprocating screw rod 42 to rotate simultaneously, the bottom of the rotating rod 44 is fixedly connected with a one-way gear 45, which is used to drive the rotating rod 44 to rotate simultaneously, and the one-way gear 45 can only rotate counterclockwise. The outer surface of the one-way gear 45 is meshed with a second rack 46. When the second rack 46 moves to the left, the one-way gear 45 can drive the rotating rod 44 to rotate. When the second rack 46 moves to the right, the one-way gear 45 can only rotate idly. The side of the second rack 46 away from the one-way gear 45 is fixedly connected with a fixed block 47, and the fixed block 47 is used to drive the second rack 46 They move at the same time, and one end of the fixed block 47 away from the second rack 46 is fixedly connected to the outer surface of the output end of the first electric push rod 21. When the output end of the first electric push rod 21 moves, it is used to drive the fixed block 47 to move at the same time. When the roller assembly 41 is driven up and down by the second sliding member 4, the roller assembly 41 can drive the optoelectronic product to move up and down, so that the optoelectronic product can avoid excessive friction with the first belt 14 when cooling, thereby reducing the wear and scratches on the outer surface of the optoelectronic product caused by friction, which helps to maintain the appearance quality and integrity of the optoelectronic product.
[0039] refer to Figures 7 to 11As shown, a cooling auxiliary device for photoelectric product molding processing is provided. The upper surface of the water collecting tank 1 is straight and detachably connected with three filter elements 5. The filter element 5 is used to filter the used coolant. Two heat insulation plates 51 are fixedly connected inside the water collecting tank 1. The heat insulation plates 51 are used to separate the coolant inside the water collecting tank 1. Three second electric push rods 52 are fixedly connected in a straight line and equidistantly on the right side of the water collecting tank 1. The output ends of the second electric push rods 52 are fixedly connected with extrusion elements 57. The output ends of the second electric push rods 52 are used to drive the extrusion elements 57 to move left and right. The extrusion elements 57 are fixedly connected with a sponge block 53 on one side close to the second electric push rod 52. The sponge block 53 is used to absorb and cool the used coolant. The extrusion elements 57 are extruded and matched with the sponge block 53. When the extrusion elements 57 move to the right, they are used to extrude the sponge block 53, so that the cooled coolant is re-delivered to the inside of the water collecting tank 1. The extrusion elements 57 are away from the second electric push rods 52. The sides are fixedly connected with a water-blocking cloth 54, and when the extrusion piece 57 moves to the right, it is used to drive the water-blocking cloth 54 to move at the same time. The water-blocking cloth 54 is used to shield the coolant to prevent the used coolant from directly entering the interior of the water collecting tank 1. The end of the water-blocking cloth 54 away from the extrusion piece 57 is fixedly wound with a second rotating cylinder 55, and both ends of the second rotating cylinder 55 are wound around one side of the water collecting tank 1. When the water-blocking cloth 54 moves to the right, it is used to drive the second rotating cylinder 55 to rotate, and both ends of the second rotating cylinder 55 are fixedly wound with a torsion spring 56, and the outer ends of the torsion spring 56 are fixedly connected to the right side of the water collecting tank 1. The torsion spring 56 is used to drive the second rotating cylinder 55 to reset and rotate, and when the coolant flows downward and can fall into the sponge block 53, the coolant stays in the sponge block 53, so that the heat of the coolant can be quickly dispersed, and when the sponge block 53 is squeezed by the extrusion piece 57, the coolant after heat dissipation can directly flow into the interior of the water collecting tank 1 for recycling.
[0040] The complete working principle and steps of the above embodiment are as follows:
[0041] refer to Figures 1 to 3 As shown, when the cooling auxiliary device is in the initial state, the conveying device 12 and the motor 15 are in the closed state, and the first electric push rod 21 is in the retracted state;
[0042] When using the device to cool the photovoltaic product, first pour the coolant into the water collecting tank 1, then start the conveying device 12 and the motor 15, at this time the conveying device 12 can convey the coolant in the water collecting tank 1 to the inside of the nozzle 11, and the coolant can be sprayed downward inside the nozzle 11, and the output shaft of the motor 15 can drive the first rotating cylinder 13 on the left to rotate when it rotates, and the first rotating cylinder 13 on the rear side can drive the first rotating cylinder 13 on the front side to rotate at the same time through the first belt 14, at this time the photovoltaic product can be placed between the two first belts 14 for transportation, and as the first belt 14 When driving the photoelectric product to be transported backward, the sensing device 2 can sense the photoelectric product and prompt the output end of the first electric push rod 21 to move to the left. When the output end of the first electric push rod 21 moves to the left, it will drive the friction member 22 to move at the same time. When the friction member 22 moves to the left, the outer surface of the friction member 22 will contact the outer surface of the photoelectric product, causing the photoelectric product to flip over, prompting the photoelectric product itself to flip over while the coolant is cooling the photoelectric product, so that the coolant can evenly and fully contact various surfaces of the photoelectric product, so that the areas that were originally difficult to contact can be fully cooled, thereby improving the cooling uniformity of the entire product.
[0043] refer to Figure 4 As shown, when the cooling auxiliary device is in the initial state, the second transmission wheel 311 is in meshing state with the missing gear 32, the two ends of the first sliding member 35 are slidably connected to the bottom of the inner side of the first fixing member 36, and the spring 37 is in a naturally relaxed state;
[0044] When the photoelectric product is placed between the first belts 14 on both sides and transported backward, there will be a gap between the photoelectric products. At this time, the outer surface of the photoelectric product on the far left will be blocked by the bottom of the first sliding member 35, and the photoelectric product cannot be transported backward. As the first rotating cylinder 13 on the front side rotates, the first transmission wheels 3 on both sides are driven to rotate simultaneously. When the first transmission wheel 3 rotates, it drives the second transmission wheel 311 to rotate simultaneously through the second belt 31. When the second transmission wheel 311 rotates on the outside of the support bar 312, it can drive the missing gear 32 to rotate simultaneously. When the missing gear 32 rotates, it prompts the first rack 34 to move upward. When the first rack 34 moves upward, it can drive the fixing rod 33 to move simultaneously. When the fixing rod 33 moves upward, it can drive the first sliding member 35 to move simultaneously. As the first sliding member 35 moves upward on the inner side of the first fixing member 36, it prompts the spring 37 to move to The first sliding member 35 is in a compressed state, and when the first sliding member 35 moves upward, it can disengage from the obstruction to the photoelectric product. At this time, the photoelectric product can move backward, and when the leftmost photoelectric product passes the bottom of the first sliding member 35, the second transmission wheel 311 can drive the missing gear 32 to continue to rotate, and the missing gear 32 will disengage from the rear side of the first rack 34 when it rotates. The spring 37 in a compressed state can drive the first sliding member 35 to move downward on the inner side of the first fixing member 36, so that the bottom of the first sliding member 35 can block the photoelectric product on the front side, so that the photoelectric products pass through the bottom of the first sliding member 35 one by one, so that the photoelectric devices can be cooled in turn, and the spacing between the photoelectric products during cooling can be separated, so that each part can get sufficient cooling time, and the heat accumulation between the photoelectric devices can be reduced, so that the surface temperature distribution of the entire product is more uniform.
[0045] refer to Figure 5 and Figure 6As shown, as the photoelectric product is transported backward between the two first belts 14, the outer surface of the bottom of the photoelectric product will contact the outer surface of the roller assembly 41. At this time, when the output end of the first electric push rod 21 moves to the left, it will drive the fixed block 47 to move at the same time. When the fixed block 47 moves to the left, it will drive the second rack 46 to move at the same time. When the second rack 46 moves to the left, it will cause the one-way gear 45 to rotate clockwise. Since the one-way gear 45 can only rotate counterclockwise, when the one-way gear 45 rotates clockwise, it will drive the reciprocating screw 42 to rotate at the same time through the rotating rod 44. Since the outer surface of the reciprocating screw 42 is threadedly connected to the inner side of the right end of the second sliding member 4, the reciprocating screw When the second sliding member 42 rotates, it will drive the second sliding member 4 to slide up and down on the inner side of the second fixing member 43, and when the second sliding member 4 slides up and down, it will drive the optoelectronic product to slide at the same time through the roller assembly 41. Since the outer surface of the roller assembly 41 is made of non-slip soft material, there will be no slipping when the optoelectronic product is turned over, and when the optoelectronic product moves upward, the outer surface of the friction member 22 can continue to drive the optoelectronic product to rotate, and when the optoelectronic product rotates on the inner side of the roller assembly 41, it can avoid excessive friction between the optoelectronic product and the first belt 14, thereby reducing the wear and scratches on the outer surface of the optoelectronic product caused by friction, which helps to maintain the appearance quality and integrity of the optoelectronic product.
[0046] refer to Figure 5 and Figure 6 As shown, when the photovoltaic product is cooled, the heat insulation plate 51 can separate the coolant inside the water collecting tank 1, so that the temperature of the coolant in each area is not consistent, thereby gradually cooling the photovoltaic product, and the used coolant can flow from the surface of the filter 5 to the inside of the sponge block 53, so that the filter 5 can filter the coolant, and the sponge block 53 can keep the coolant inside, so that the heat of the coolant can be quickly dispersed from the air outlet opened on the right side of the water collecting tank 1, avoiding the coolant with a higher temperature from directly entering the inside of the water collecting tank 1 and affecting the temperature of the coolant inside the water collecting tank 1. When the sponge block 53 has dispersed the heat of the coolant, the second electric push rod 52 is started. The output end of the second electric push rod 52 drives the extrusion member 57 to move rightward. When the extrusion member 57 moves rightward, it can drive the sponge block 53 to move at the same time and squeeze the sponge block 53, so that the coolant inside the sponge block 53 returns to the inside of the water collecting tank 1 for recycling. The rightward movement of the extrusion member 57 will drive the water retaining cloth 54 to move at the same time. When the water retaining cloth 54 moves to the right from the outer surface of the second rotating cylinder 55, it will drive the second rotating cylinder 55 to rotate. When the water retaining cloth 54 moves to the right, it can block the upper surface of the water collecting tank 1, thereby preventing the used coolant from directly entering the inside of the water collecting tank 1. When the second rotating cylinder 55 rotates, it will drive the torsion spring 56 to rotate to the power storage state.
[0047] When the sponge block 53 is squeezed, the output end of the second electric push rod 52 will drive the extrusion member 57 to move to the left. When the extrusion member 57 moves to the left, it will drive the sponge block 53 back to the initial state, so that the sponge block 53 can reabsorb the used coolant. When the extrusion member 57 moves to the left, it will drive the water retaining cloth 54 to move at the same time. At this time, the torsion spring 56 in the power storage state can drive the second rotating cylinder 55 to rotate in the opposite direction. As the second rotating cylinder 55 rotates in the opposite direction, it can prompt the water retaining cloth 54 to wrap around the outer surface of the second rotating cylinder 55 again.
[0048] Although the present disclosure has been shown and described with reference to specific exemplary embodiments of the present disclosure, it should be understood by those skilled in the art that various changes in form and details may be made to the present disclosure without departing from the spirit and scope of the present disclosure as defined by the appended claims and their equivalents. Therefore, the scope of the present disclosure should not be limited to the above-mentioned embodiments, but should be determined not only by the appended claims, but also by the equivalents of the appended claims.
Claims
1. A cooling auxiliary device for photoelectric product molding processing, comprising a water collecting box (1), a plurality of air outlets being provided through the water collecting box (1), a plurality of nozzles (11) being fixedly connected in a straight line and equidistantly on one side of the top of the water collecting box (1), the tops of the nozzles (11) being connected through a conveying device (12), the bottoms of the conveying devices (12) being connected through a side of the water collecting box (1), both sides of the water collecting box (1) being rotatably connected to a first rotating cylinder (13), the outer surfaces of the first rotating cylinders (13) being transmission-connected to a plurality of first belts (14), the outer surface of one side of the water collecting box (1) being fixedly connected to a motor (15), the output end of the motor (15) being fixedly connected to one end of one of the first rotating cylinders (13), wherein: One side of the nozzle (11) is fixedly connected to a sensing device (2), one side of the upper surface of the water collecting tank (1) is fixedly connected to a first electric push rod (21) in a straight line and equidistantly, and the output end of the first electric push rod (21) is fixedly connected to a friction member (22).
2. A cooling auxiliary device for photoelectric product molding processing according to claim 1, characterized in that: The interior of the induction device (2) is electrically connected to the interior of the first electric push rod (21).
3. A cooling auxiliary device for photoelectric product molding processing according to claim 2, characterized in that: one Both ends of the first rotating cylinder (13) are fixedly connected to the first transmission wheel (3), the outer surface of the first transmission wheel (3) is transmission-connected to the second belt (31), the other end of the second belt (31) is transmission-connected to the second transmission wheel (311), the sides of the second transmission wheels (311) close to each other are rotationally connected to support bars (312), the bottoms of the support bars (312) are fixedly connected to the upper surface of one end of the water collecting tank (1), and the second transmission wheel (311) is away from the second transmission wheel (311). One side of the support bar (312) is fixedly connected with a missing gear (32), the outer surface of the missing gear (32) is meshed with a first rack (34), the upper surface of the first rack (34) is fixedly connected with a fixing rod (33), the top of the fixing rod (33) is fixedly connected with a first sliding member (35), both ends of the first sliding member (35) are slidably connected with a first fixing member (36), and the bottom of the first fixing member (36) is fixedly connected to the upper surface of the support bar (312).
4. A cooling auxiliary device for photoelectric product molding processing according to claim 3, characterized in that: A spring (37) is fixedly sleeved on the inner side of each of the first fixing members (36), and the bottom of each of the springs (37) is fixedly connected to the upper surface of the first sliding member (35).
5. A cooling auxiliary device for photoelectric product molding processing according to claim 4, characterized in that: The upper surface of one side of the water collecting tank (1) is fixedly connected with a plurality of second fixing members (43) in a straight line and at equal intervals, the inner side of the top of each of the second fixing members (43) is slidably connected with a second sliding member (4), the bottom of each of the second sliding members (4) is rotatably connected with a roller assembly (41), the side of each of the second sliding members (4) close to the second fixing member (43) is threadedly connected with a reciprocating screw rod (42), the bottom of each of the reciprocating screw rods (42) passes through one end of the second sliding member (4) close to the second fixing member (43), and the reciprocating screw rod (42) is threadedly connected to the roller assembly (41). The bottom is fixedly connected with a rotating rod (44), the outer surface of the rotating rod (44) is rotatably connected to one side of the second fixing member (43), the bottom of the rotating rod (44) is fixedly connected with a one-way gear (45), the outer surface of the one-way gear (45) is meshed with a second rack (46), the side of the second rack (46) away from the one-way gear (45) is fixedly connected with a fixing block (47), and the end of the fixing block (47) away from the second rack (46) is fixedly connected to the outer surface of the output end of the first electric push rod (21).
6. A cooling auxiliary device for photoelectric product molding processing according to claim 5, characterized in that: The roller assembly (41) is composed of two rollers, and the two rollers are in opposite directions. The outer surface of the roller assembly (41) is made of a non-slip soft material.
7. A cooling auxiliary device for photoelectric product molding processing according to claim 6, characterized in that: The one-way gear (45) can only rotate idly in the counterclockwise direction.
8. A cooling auxiliary device for photoelectric product molding processing according to claim 7, characterized in that: The upper surface of the water collecting box (1) is detachably connected to a plurality of filter elements (5) in a straight line, the inner side of the water collecting box (1) is fixedly connected to a plurality of heat insulation plates (51), one side of the water collecting box (1) is equidistantly fixedly connected to a plurality of second electric push rods (52) in a straight line, the output ends of the second electric push rods (52) are fixedly connected to an extrusion element (57), the side of the extrusion element (57) close to the second electric push rod (52) is fixedly connected to a sponge block (53), the side of the extrusion element (57) away from the second electric push rod (52) is fixedly connected to a water retaining cloth (54), the end of the water retaining cloth (54) away from the extrusion element (57) is fixedly connected to a second rotating cylinder (55), and both ends of the second rotating cylinder (55) are connected to one side of the water collecting box (1).
9. A cooling auxiliary device for photoelectric product molding processing according to claim 8, characterized in that: Torsion springs (56) are fixedly wound around both ends of the second rotating cylinder (55), and the other side of the torsion spring (56) is fixedly connected to one side of the water collecting tank (1).
10. A cooling auxiliary device for photoelectric product molding processing according to claim 9, characterized in that: The extrusion piece (57) and the sponge block (53) are extrusion-fitted with each other.