Optical lens heat capacity coating device and method

By designing an automated optical lens heat-capacity coating device, the automatic transmission and assembly of lenses is achieved using motor drive and transmission components, the problem of waste of manpower and time during lens assembly is solved and the coating efficiency is improved.

CN120060809AInactive Publication Date: 2025-05-30JIANGXI LANJING PHOTOELECTRIC TECH CO LTD
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Patent Information

Application Number
CN202510223313.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-27
Publication Date
2025-05-30
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the optical lens production process, the lens assembly process requires manual operation, resulting in waste of manpower and time.

Method used

An optical lens heat-capacity coating device is designed, and a motor drives the support frame to rotate, drive components such as large gears, first rotating parts and second belts to automatically transmit and assemble the lens through transmission components and buffer components, reducing manual operation.

Benefits of technology

It realizes automation of the lens assembly process, saves manpower and time, and improves coating efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of lens coating, in particular to an optical lens heat capacity coating device and method.The optical lens heat capacity coating device comprises a coating machine and a lens tray, the lens tray is placed in the coating machine, the optical lens heat capacity coating device further comprises a supporting frame, the supporting frame is fixedly connected to a base plate, a first rotating part is arranged on the top of the supporting frame, and a clamping groove is formed in the first rotating part; the first rotating part is slidably connected with the supporting frame, the motor is fixedly connected to the supporting frame, and an output shaft of the motor is fixedly connected with the first rotating part, the motor drives the supporting frame to rotate, and the supporting frame drives the large gear, the first rotating disc, the second rotating column, the first belt, the second belt and other components to rotate; the lens can be conveyed by the second belt and slide into the telescopic piece, and finally slide into the lens hole in the lens tray, and the lens does not need to be manually placed into the lens hole in the lens tray by a worker in the process, so that the manpower and time in the film coating process are saved.
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Description

Technical Field

[0001] The present invention relates to the technical field of lens coating, and particularly to an optical lens heat capacity coating device and method. Background Art

[0002] In the production process of optical lenses, in order to reduce light reflection and filter sunlight, it is necessary to coat a thin film with heat capacity properties on the lenses, so that the human eye can observe objects more clearly through the glasses and reduce the damage of ultraviolet rays to the eyes.

[0003] Before coating, the lens needs to be assembled into the lens tray, and then the lens tray is placed into the coating machine. To assemble the lens, first, the staff needs to wear clean gloves, and then hold the lens by hand and place the lens into the lens tray. This assembly process is very labor-consuming. Therefore, it is necessary to design an optical lens heat capacity coating device and method, which can save manpower and time in the assembly process. Summary of the Invention

[0004] The present invention provides an optical lens heat capacity coating device and method, which can save manpower and time in the assembly process and overcome the disadvantage of labor consumption in the lens assembly process.

[0005] The technical implementation scheme of the present invention is: an optical lens heat capacity coating device, including a coating machine and a lens tray. The lens tray is placed inside the coating machine. It also includes a light support frame. The support frame is fixedly connected to the chassis. A first rotating member is arranged at the top of the support frame. The first rotating member is provided with a card slot. The first rotating member is slidably connected to the support frame. A motor is fixedly connected to the support frame. The output shaft of the motor is fixedly connected to the first rotating member. The lens tray is clamped to the top of the first rotating member through the card slot. Two circles of lens holes are arranged on the lens tray. A large gear is fixedly connected to the first rotating member. A transmission assembly is arranged on the chassis for transmitting the lens to the lens tray. A buffer assembly is arranged on the side of the transmission assembly close to the lens tray for buffering the lens.

[0006] Furthermore, the transmission assembly includes a first rotating disk, the first rotating disk is rotatably connected to the chassis, the top of the first rotating disk is provided with first cylinders at equal intervals along the circumferential direction, the pinion is fixedly connected to the outer ring of the first rotating disk, the pinion and the large gear are meshed with each other, a connecting frame is fixedly connected to the chassis near the support frame, the other connecting frame is fixedly connected to the chassis away from the support frame, the first rotating column is rotatably connected to the connecting frame near the support frame, the second rotating column is rotatably connected to the connecting frame away from the support frame, the second rotating disk is fixedly connected to the first rotating column, and the second cylinders are evenly and evenly spaced on the side of the second rotating disk close to the pinion. The first cylinder is squeezed and fitted with the second cylinder, the first belt is wound between the first rotating column and the second rotating column through the first transmission wheel, at least two fixing frames are fixedly connected to the connecting frame close to the lens tray, the third rotating column is rotatably connected between the fixing frames, the second belt is wound between the third rotating column and the second rotating column through the second transmission wheel, the connecting members symmetrically arranged front and back are fixedly connected to the connecting frame close to the lens tray, the side of the connecting member close to the fixed frame is rotatably connected to the second rotating member, the connecting rod is fixedly connected between the sides of the second rotating member close to each other, the elastic telescopic member is fixedly connected to the middle position of the connecting rod, and a spring is provided inside the elastic telescopic member.

[0007] Furthermore, the buffer assembly includes a buffer plate, a side of the buffer plate close to the lens tray is rotatably connected to the elastic telescopic member, and a pressure spring is fixedly connected between the elastic telescopic member and the buffer plate.

[0008] Furthermore, it also includes a torsion spring, which is wound on the second rotating member, and one end of the torsion spring away from the connecting rod is fixedly connected to the connecting rod, and one end of the torsion spring away from the connecting rod is fixedly connected to the connecting member, and circular baffles with large diameter and small diameter are fixedly connected to the lens tray, the circular baffles with large diameter are distributed at the outer edge of the tray, and the circular baffles with small diameter are located on the inner side of the circular baffles with large diameter, and the two circular baffles separate the lens tray into two layers, and a stopper is fixedly connected to one end of the lens tray below the elastic telescopic member, and the stopper is squeezed and fitted with the circular baffle.

[0009] Furthermore, a notch is provided on one side of the circular baffle with a small diameter close to the elastic telescopic member.

[0010] Furthermore, it also includes a first telescopic member, which is slidably connected to the connecting rod, and a toggle member arranged laterally symmetrically is rotatably connected to a side of the first telescopic member close to the lens tray, a force storage spring is wound on the first telescopic member, one end of the force storage spring is fixedly connected to the toggle member, and the other end of the force storage spring is fixedly connected to the first telescopic member, and a driving component is clamped on one end of the first telescopic member away from the toggle member, and the driving component is used to drive the toggle member to move.

[0011] Furthermore, the driving assembly includes a guide column, which is fixedly connected to the fixed frame, a connecting block is slidably connected to the guide column, a transversely symmetrically arranged bidirectional screw is fixedly connected to both ends of the third rotating column, a fixing ring is threadedly connected to the bidirectional screw, the fixing ring is slidably connected to the guide column, the fixing ring is fixedly connected to the connecting block, a guide ring symmetrically arranged along the third rotating column is fixedly connected to both sides of the connecting block, and an end of the first telescopic member away from the toggle member is clamped between two adjacent guide rings.

[0012] Furthermore, it also includes a fixing rod, which is symmetrically arranged along the connecting rod and fixedly connected to the first telescopic member, and the second telescopic member is fixedly connected to an end of the fixing rod away from the first telescopic member.

[0013] Furthermore, it also includes a soft pad, which is fixedly connected to the second telescopic member on a side away from the first telescopic member.

[0014] A method for using a heat capacity coating device for an optical lens, the specific steps are as follows:

[0015] S1: stretch the elastic telescopic member so that the stopper below it is locked with the small-diameter circular baffle, start the motor, and the rotation of the motor drives the first rotating member and the lens tray to rotate. The rotation of the first rotating member will continue to drive the large gear, the small gear, the first belt and the second belt component to rotate, and then put the lens on the right end of the second belt;

[0016] S2: Under the transmission action of the belt, the lens will move from the right end of the second belt to the left end of the second belt, and slide from the second belt to the buffer plate, and then the lens will continue to slide from the buffer plate to the elastic telescopic member, and then the lens will slide from the buffer plate to the elastic telescopic member;

[0017] S3: When the lens is being transported, the torsion spring is always in a state of storing force, so that the outer end of the elastic telescopic member is closely attached to the lens tray;

[0018] S4: The second belt rotates to drive the third rotating column, and the fixed ring slides on the bidirectional screw in a threaded manner, driving the guide ring and the first telescopic member to move inward, and also driving the fixed rod and the second telescopic member to move inward first, and the second telescopic member squeezes the lens that slides down onto the elastic telescopic member and squeezes the lens into the lens hole;

[0019] S5: The first telescopic member moves inward, and at the same time drives the toggle lever to move inward, and the toggle lever will toggle the lens that is not fully assembled into the lens hole so that it is fully assembled into the lens hole;

[0020] S6: After the inner lens hole is assembled, the stopper is separated from the notch of the small diameter circular baffle, driving the elastic telescopic member to contract and assemble the outer lens hole;

[0021] S7: After all lens holes on the lens tray are assembled, the lens tray is removed from the first rotating member and placed in a coating machine for coating.

[0022] The present invention has the following advantages: 1. The present invention drives the support frame to rotate through a motor, and the support frame drives the large gear, the first rotating disk, the second rotating column, the first belt, the second belt and other components to rotate. The lens can be transmitted by the second belt and slide onto the telescopic member, and finally slide into the lens hole on the lens tray. This process does not require the staff to manually place the lens into the lens hole of the lens tray, saving manpower and time in the coating process.

[0023] 2. The present invention sets a torsion spring to press the first telescopic member downward so that the telescopic member is close to the lens tray, which is convenient for the lens to slide smoothly into the lens hole. The circular baffle and the block are engaged with each other. After the inner ring lens tray is assembled, the block will pass through the gap of the small diameter circular baffle, and the elastic telescopic member will shrink to the outer ring position of the lens tray, and the lens will be assembled on the outer ring. In this way, the purpose of automatically assembling lenses in all lens holes on the lens tray can be achieved.

[0024] 3. The present invention rotates the bidirectional screw to drive the fixed ring to slide. The sliding of the fixed ring will drive the first telescopic member and the toggle member to move inward. The toggle member will squeeze and toggle the lens that has not been assembled to the appropriate position, so that the lens can be completely fitted into the lens hole.

[0025] 4. The present invention moves the first telescopic member inwardly, and the first telescopic member drives the second telescopic member and the cushion inwardly, and the second telescopic member squeezes the lens on the elastic telescopic member into the lens hole, thereby preventing the lens from sliding down on the elastic telescopic member. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.

[0027] Figure 2 It is a sectional view of the three-dimensional structure of the large gear, chassis and elastic telescopic member of the present invention.

[0028] Figure 3 It is a schematic diagram of the three-dimensional structure of the lens tray, motor, first rotating member and other components of the present invention.

[0029] Figure 4 It is a three-dimensional cross-sectional schematic diagram of the first rotating member of the present invention.

[0030] Figure 5 It is a three-dimensional structural schematic diagram of the large gear, small gear, motor and other components of the present invention.

[0031] Figure 6It is a schematic diagram of the three-dimensional structure of the first belt, the connecting frame, the second belt and other components of the present invention.

[0032] Figure 7 It is a schematic diagram of the three-dimensional structure of the buffer plate, the second belt, the pressure spring and other components of the present invention.

[0033] Figure 8 It is a schematic diagram of the three-dimensional structure of the second rotating member and the connecting member of the present invention.

[0034] Figure 9 It is a schematic diagram of the first rotating member, the second rotating member and the torsion spring structure of the present invention.

[0035] Figure 10 It is a schematic diagram of the three-dimensional structure of the second belt, torsion spring, connecting rod and other components of the present invention.

[0036] Figure 11 It is a sectional view of the three-dimensional structure of the elastic telescopic member, circular baffle, baffle and other components of the present invention.

[0037] Figure 12 It is a cross-sectional view of the three-dimensional structure of the elastic telescopic member of the present invention.

[0038] Figure 13 It is a schematic diagram of the three-dimensional structure of components such as the bidirectional screw, the guide ring and the elastic telescopic member of the present invention.

[0039] Figure 14 It is a schematic diagram of the three-dimensional structure of the toggle member, circular baffle plate, toggle member and other components of the present invention.

[0040] Figure 15 It is a sectional view of the three-dimensional structure of the connecting block, guide ring, guide column and other components of the present invention.

[0041] Figure 16 It is a schematic diagram of the three-dimensional structure of the connecting rod, the soft cushion, the circular baffle and other components of the present invention.

[0042] The meanings of the reference numerals in the figure are: 1-support frame, 11-first rotating member, 12-motor, 13-lens tray, 14-large gear, 15-small gear, 16-first rotating disk, 17-second rotating disk, 18-first belt, 19-connecting frame, 110-second belt, 111-connecting member, 112-second rotating member, 113-elastic telescopic member, 114-buffer plate, 115-pressure spring, 116-connecting rod, 11 7-chassis, 118-first rotating column, 119-second rotating column, 120-fixed frame, 121-third rotating column, 122-coating machine, 2-torsion spring, 21-circular baffle, 22-block, 3-bidirectional screw, 31-fixing ring, 32-connecting block, 33-guide ring, 34-first telescopic member, 35-force storage spring, 36-toggle member, 37-guide column, 4-fixed rod, 41-cushion, 42-second telescopic member. DETAILED DESCRIPTION

[0043] Reference to an embodiment herein means that a particular feature, structure, or characteristic described in conjunction with the embodiment may be included in at least one embodiment of the present invention. The appearance of the phrase in various locations in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that is mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0044] Embodiment 1: An optical lens thermal capacitance coating device and method, such as Figures 1 - 8As shown in the figure, it includes a support frame 1, a motor 12, a lens tray 13, a large gear 14, a small gear 15, a first rotating disk 16, a second rotating disk 17, a first belt 18, a connecting frame 19, a second belt 110, a connecting piece 111, a second rotating piece 112, an elastic telescopic piece 113, a buffer plate 114, a pressure spring 115, a connecting rod 116, a chassis 117, a first rotating column 118, a second rotating column 119, a fixing frame 120, a third rotating column 121 and a coating machine 122. The support frame 1 is fixedly connected above the chassis 117. The first rotating piece 11 is arranged above the support frame 1. The first rotating piece 11 is provided with a card slot, and the first rotating piece 11 is slidably connected with the support frame 1. The motor 12 is fixedly connected to the support frame 1, and the output shaft of the motor 12 is fixedly connected to the first rotating piece 11. The lens tray 13 is clamped above the first rotating piece 11 through the card slot. There are two circles of lens holes on the lens tray 13. The coating machine 122 is arranged on the left side of the chassis 117. The assembled lens tray 13 can be placed inside the coating machine 122 for coating the lens. The large gear 14 is fixedly connected to the first rotating piece 11, and the first rotating piece 11 is located inside the large gear 14. The first rotating disk 16 is rotatably connected directly above the chassis 117. The first rotating disk 16 is located on the right side of the support frame 1. The top of the first rotating disk 16 is provided with first cylinders at equal intervals along the circumferential direction. The small gear 15 is fixedly connected to the outer ring of the first rotating disk 16, and the small gear 15 meshes with the large gear 14. Two connecting frames 19 are respectively fixedly connected above the chassis 117, and both two connecting frames 19 are located on the right side of the support frame 1. The first rotating column 118 is rotatably connected to the connecting frame 19 close to the support frame 1. The second rotating column 119 is rotatably connected to the connecting frame 19 far from the support frame 1. The second rotating disk 17 is fixedly connected to the rear end of the first rotating column 118. The front part of the second rotating disk 17 is evenly provided with second cylinders at equal intervals. The first cylinders and the second cylinders are in pressing fit. The first belt 18 is wound around the first rotating column 118 and the second rotating column 119 through a first transmission wheel. Two fixing frames 120 are respectively fixedly connected to the connecting frame 19 close to the lens tray 13. The third rotating column 121 is rotatably connected between the fixing frames 120. The second belt 110 is wound around the third rotating column 121 and the second rotating column 119 through a second transmission wheel. Two are fixedly connected to the connecting frame 19 close to the lens tray 13. Two connecting pieces 111 are arranged symmetrically front and back. The fixing frame 120 is located between the two connecting pieces 111. A second rotating piece 112 is rotatably connected to one side of each connecting piece 111 close to the fixing frame 120. The connecting rod 116 is fixedly connected between the sides of the second rotating pieces 112 close to each other. The connecting rod 116 is located below the left of the third rotating column 121. The elastic telescopic piece 113 is fixedly connected to the middle position of the connecting rod 116. There is a spring inside the elastic telescopic piece 113. The elastic telescopic piece 113 is located above the lens tray 13.One side of the buffer plate 114 close to the lens tray 13 is rotatably connected to the elastic telescopic member 113. The compression spring 115 is fixedly connected between the elastic telescopic member 113 and the buffer plate 114. The buffer plate 114 and the compression spring 115 jointly act to buffer the lens.

[0045] When people need to coat the lens, first assemble the lens onto the lens tray 13, start the motor 12. Under the action of the motor 12, the first rotating member 11 starts to rotate. The rotation of the first rotating member 11 drives the lens tray 13 to start rotating. The rotation of the first rotating member 11 also drives the large gear 14 to start rotating. The large gear 14 drives the small gear 15, and the small gear 15 drives the first rotating disk 16 to rotate together. Then the first rotating disk 16 drives the second cylinder to rotate through the first cylinder above it. Thus, the rotation of the second cylinder drives the rotating disk to rotate. The second rotating disk 17 drives the first rotating column 118 to rotate. The rotation of the first rotating column 118 drives the first belt 18 to rotate at the same time. The rotation of the first belt 18 drives the second rotating column 119 to rotate together. The rotation of the second rotating column 119 drives the second belt 110 to rotate. After the second belt 110 starts to rotate, the operator can place the lens at the right end of the second belt 110. The lens will reach the left end of the second belt 110 driven by the right end of the second belt 110. The lens will slide from the left end of the second belt 110 onto the elastic telescopic member 113. When the lens slides onto the elastic telescopic member 113, the compression spring 115 is compressed. Then the lens will slide from the compression spring 115 onto the upper part of the elastic telescopic member 113. At this time, the compressed compression spring 115 naturally extends. The lens will continue to slide to the position of the lens hole above the lens tray 13 for assembly. After the lens assembly is completed, turn off the motor 12, and the first rotating member 11 stops rotating. Components such as the large gear 14, the first rotating disk 16, the second rotating disk 17, the first belt 18, and the second belt 110 will also stop rotating. The lens will no longer slide onto the elastic telescopic member 113. After all the lenses are assembled onto the lens tray 13, the staff can remove the assembled lens tray 13 and place the lens tray 13 into the coating machine 122 to coat the lens. In this way, the workload of lens assembly can be reduced and the coating efficiency can be improved.

[0046] Embodiment 2: On the basis of Embodiment 1, as Figures 9 - 12As shown, it further includes a torsion spring 2, a circular baffle 21 and a stopper 22. The torsion spring 2 is respectively wound around the second rotating member 112. One end of the torsion spring 2 away from the connecting rod 116 is fixedly connected to the connecting rod 116, and one end of the torsion spring 2 away from the connecting rod 116 is fixedly connected to the connecting member 111. The two circular baffles 21 are respectively fixedly connected to the tray. The inner diameter of the circle formed by one of the circular baffles 21 is larger than that of the other. The circular baffle 21 with a large diameter is distributed at the outer edge position of the tray, and the circular baffle 21 with a small diameter is located inside the circular baffle 21 with a large diameter. The two circular baffles 21 divide the lens tray 13 into two layers. There is a notch on the right side of the circular baffle 21 with a small diameter. The stopper 22 is fixedly connected to one end of the elastic telescopic member close to the lens tray 13 below, and the stopper 22 is in pressing fit with the circular baffle 21.

[0047] During the delivery process of the lens, since the connecting rod 116 is fixedly connected to the second rotating member 112, and the connecting rod 116 is fixedly connected to the elastic telescopic member 113, under the gravity of the connecting rod 116 and the elastic telescopic member 113, the torsion spring 2 will always be in a state of storing energy, so that the elastic telescopic member 113 can closely adhere to the lens tray 13. In the initial state, the stopper 22 contacts the inner side of the circular baffle 21 with a small diameter. At this time, the elastic telescopic member 113 is stretched. When the lens is continuously transported to the lens hole position in the inner circle of the lens tray 13 through the elastic telescopic member 113, the lens will be successively stuck into the lens holes. During the process of assembling the lens into the lens holes in the inner circle of the lens tray 13, the lens tray 13 continuously rotates, and the rotation of the lens tray 13 will drive the circular baffle 21 to rotate. When the circular baffle 21 rotates one week, the notch of the circular baffle 21 in the inner circle of the lens tray 13 will overlap with the stopper 22. At this time, the spring in the elastic telescopic member 113 will change from the original extended state to the contracted state, so that the elastic telescopic member 113 automatically contracts. The elastic telescopic member 113 contracts and drives the stopper 22 to move to the right. When the stopper 22 moves to the circular baffle 21 with a large diameter, the stopper 22 will be blocked by the circular baffle 21 with a large diameter, so that the left end of the elastic telescopic member 113 faces the lens hole position. The lens continues to slide from the elastic telescopic member 113 into the lens holes in the outer circle, and the lens is assembled into the lens holes in the outer circle of the lens tray 13. In this way, the lens can be assembled into all the lens holes of the lens tray 13.

[0048] As Figures 13 - 15As shown, it also includes a bidirectional screw 3, a fixing ring 31, a connecting block 32, a guide ring 33, a first telescopic member 34, a force storage spring 35, a toggle member 36 and a guide column 37. The first telescopic member 34 is slidably connected to the connecting rod 116, and the two toggle members 36 are respectively rotatably connected to one end of the first telescopic member 34 close to the lens tray 13. The force storage spring 35 is wound on the first telescopic member 34, one end of the force storage spring 35 is fixedly connected to the toggle member 36, and the other end of the force storage spring 35 is fixed to the first telescopic member 34. The guide column 37 is fixedly connected to the fixing frame 120, the connecting block 32 is slidably connected to the guide column 37, the bidirectional screw 3 is respectively fixedly connected to the two ends of the third rotating column 121, the fixing ring 31 is threadedly connected to the bidirectional screw 3, the fixing ring 31 is slidably connected to the guide column 37, the fixing ring 31 and the connecting block 32 are fixedly connected, the two guide rings 33 are respectively fixedly connected to the front and rear sides of the connecting block 32, and the right side of the first telescopic member 34 is respectively clamped between the two adjacent guide rings 33.

[0049] After the last lens is assembled, the second belt 110 continues to rotate, and the rotation of the second belt 110 drives the third rotating column 121 to rotate. The rotation of the third rotating column 121 drives the bidirectional screw 3 to rotate, and the rotation of the bidirectional screw 3 causes the fixing ring 31 to slide outward, and the fixing ring 31 drives the connecting block 32 to move outward. Because the connecting block 32 is fixedly connected to the guide ring 33, the connecting block 32 moves outward while driving the guide ring 33 to move outward. Because the guide ring 33 is engaged with the first telescopic member 34, the guide ring 33 drives the first telescopic member 34 to move outward, and the first telescopic member 34 drives the toggle member 36 to move outward and disengage from the last assembled lens. When the lens slides from the elastic telescopic member 113 into the lens hole of the lens tray 13, the lens may not be aligned with the lens hole. The fully engaged state, at this time, the rotation of the second belt 110 drives the third rotating column 121 to rotate, the rotation of the third rotating column 121 will drive the fixing ring 31 to move inward, the fixing ring 31 moving inward will drive the guide ring 33, the first telescopic member 34, and the toggle member 36 to move inward, and in the process of the toggle member 36 moving inward, the toggle member 36 will contact the lens, and the toggle member 36 will squeeze and toggle the lens, so that the lens is completely engaged in the lens hole. During the whole process, the storage spring 35 is always in the storage state, so that the toggle member 36 close to the end of the lens tray 13 can contact the lens more fully, so as to better toggle and adjust the lens.

[0050] like Figure 16As shown in the figure, it further includes a fixed rod 4, a soft pad 41 and a second telescopic member 42. The two fixed rods 4 are fixedly connected above the first telescopic member 34. The two second telescopic members 42 are respectively fixedly connected to one end of the fixed rod 4 away from the first telescopic member 34. The second telescopic member 42 is directly above the elastic telescopic member 113. The soft pads 41 are fixedly connected to the side of the second telescopic member 42 away from the first telescopic member, for preventing the lens from being worn.

[0051] When the lens slides onto the elastic telescopic member 113, it may not be able to slide down. When the first telescopic member 34 moves towards the lens, the first telescopic member 34 will drive the fixed rod 4 to also move towards the lens. At the same time, the fixed rod 4 drives the second telescopic member 42 to move towards the lens. During the movement, the soft pad 41 will contact the lens, and the second telescopic member 42 will push the soft pad 41 to squeeze the lens. Under the squeezing action, the lens will smoothly slide from the elastic telescopic member 113 into the lens hole position of the lens tray 13. After completing the assembly of the lens, the fixed rod 4 moves away from the lens, and the fixed rod 4 will drive the soft pad 41 to move away from the lens. When the lens is above the elastic telescopic member 113, repeat the above process to squeeze the next lens, so as to avoid the situation that the lens cannot slide off the elastic telescopic member 113.

[0052] Embodiment 3: On the basis of Embodiment 2, an automatic feeding method for crayfish breeding is as follows:

[0053] S1: Stretch the elastic telescopic member 113 so that the stopper 22 below it is buckled with the small-diameter circular baffle 21. Start the motor 12. The motor 12 rotates to drive the first rotating member 11 and the lens tray 13 to rotate. The rotation of the first rotating member 11 will continue to drive the components of the large gear 14, the small gear 15, the first belt 18 and the second belt 110 to rotate. Then place the lens at the right end of the second belt 110.

[0054] S2: Under the driving action of the belt, the lens will reach the left end of the second belt 110 from the right end of the second belt 110; and slide off the second belt 110 onto the buffer plate 114, and continue to slide from the buffer plate 114 onto the elastic telescopic member 113. The lens will slide from the buffer plate 114 onto the elastic telescopic member 113.

[0055] S3: When the lens is being transported, the torsion spring 2 is always in a state of storing energy, so that the outer end of the elastic telescopic member 113 is closely attached to the lens tray 13.

[0056] S4: The second belt 110 rotates to drive the third rotating column 121, and the fixing ring 31 slides on the bidirectional screw 3 in a threaded manner, driving the guide ring 33 and the first telescopic member 34 to move inward, and also driving the fixing rod 4 and the second telescopic member 42 to move inward first, and the second telescopic member 42 squeezes the lens that slides down onto the elastic telescopic member 113, and squeezes the lens into the lens hole;

[0057] S5: The first telescopic member 34 moves inwardly, and at the same time drives the toggle rod to move inwardly, and the toggle rod will toggle the lens that is not fully assembled into the lens hole so that it is fully assembled into the lens hole;

[0058] S6: After completing the assembly of the inner circle lens holes, the block 22 is disengaged from the notch of the small diameter circular baffle 21, driving the elastic telescopic part 113 to contract to assemble the outer circle lens holes; S7: After completing the assembly of all the lens holes on the lens tray 13, the lens tray 13 is removed from the first rotating part 11 and placed in the coating machine 122 for coating.

[0059] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of the present invention rather than to limit the scope of protection of the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solution of the present invention can be modified or replaced by equivalents without departing from the essence and scope of the technical solution of the present invention.

Claims

1. An optical lens thermal capacity coating device, comprising a coating machine (122) and a lens tray (13), wherein the lens tray (13) is placed inside the coating machine (122), and wherein: The invention also comprises a support frame (1), wherein the support frame (1) is fixedly connected to the chassis (117), a first rotating member (11) is arranged at the top of the support frame (1), a slot is provided on the first rotating member (11), the first rotating member (11) is slidably connected to the support frame (1), a motor (12) is fixedly connected to the support frame (1), an output shaft of the motor (12) is fixedly connected to the first rotating member (11), a lens tray (13) is connected to the top of the first rotating member (11) via the slot, two circles of lens holes are provided on the lens tray (13), a large gear (14) is fixedly connected to the first rotating member (11), a transmission component is arranged on the chassis (117) and is used to transmit the lens to the lens tray (13), and a buffer component is arranged on a side of the transmission component close to the lens tray (13) and is used to buffer the lens.

2. The thermal capacity coating device for optical lenses according to claim 1, characterized in that: The transmission assembly comprises a first rotating disk (16), the first rotating disk (16) is rotatably connected to the upper part of the chassis (117), the top of the first rotating disk (16) is provided with first cylinders at equal intervals along the circumferential direction, a pinion (15) is fixedly connected to the outer ring of the first rotating disk (16), the pinion (15) and the large gear (14) are meshed with each other, a connecting frame (19) is fixedly connected to the chassis (117) near the support frame (1), and another connecting frame (19 ) is fixedly connected to a chassis (117) at a position away from the support frame (1), a first rotating column (118) is rotatably connected to a connecting frame (19) close to the support frame (1), a second rotating column (119) is rotatably connected to the connecting frame (19) away from the support frame (1), a second rotating disk (17) is fixedly connected to the first rotating column (118), a second cylinder is evenly and evenly spaced on one side of the second rotating disk (17) close to the pinion (15), and the first cylinder and the second cylinder are connected to each other. The two cylinders are extruded and matched, the first belt (18) is wound between the first rotating column (118) and the second rotating column (119) through the first transmission wheel, at least two fixed frames (120) are fixedly connected to the connecting frame (19) close to the lens tray (13), the third rotating column (121) is rotatably connected between the fixed frames (120), the second belt (110) is wound between the third rotating column (121) and the second rotating column (119) through the second transmission wheel, the connecting member (111) symmetrically arranged front and back is fixedly connected to the connecting frame (19) close to the lens tray (13), the side of the connecting member (111) close to the fixed frame (120) is rotatably connected to the second rotating member (112), the connecting rod (116) is fixedly connected between the sides of the second rotating member (112) close to each other, the elastic telescopic member (113) is fixedly connected to the middle position of the connecting rod (116), and a spring is arranged inside the elastic telescopic member (113).

3. The thermal capacity coating device for optical lenses according to claim 2, characterized in that The buffer assembly comprises a buffer plate (114), wherein one side of the buffer plate (114) close to the lens tray (13) is rotatably connected to the elastic telescopic member (113), and a pressure spring (115) is fixedly connected between the elastic telescopic member (113) and the buffer plate (114).

4. The thermal capacity coating device for optical lenses according to claim 3, characterized in that: The invention also comprises a torsion spring (2), which is wound on the second rotating member (112), one end of the torsion spring (2) away from the connecting rod (116) is fixedly connected to the connecting rod (116), one end of the torsion spring (2) away from the connecting rod (116) is fixedly connected to the connecting member (111), a large diameter and a small diameter circular baffle (21) are fixedly connected to the lens tray (13), the large diameter circular baffle (21) is distributed at the outer edge of the tray, the small diameter circular baffle (21) is located inside the large diameter circular baffle (21), the two circular baffles (21) separate the lens tray (13) into two layers, and a baffle (22) is fixedly connected to one end of the lens tray (13) below the elastic telescopic member (113), and the baffle (22) is squeezed and matched with the circular baffle (21).

5. The thermal capacity coating device for optical lenses according to claim 4, characterized in that: A notch is provided on one side of the circular baffle (21) with a small diameter close to the elastic telescopic member (113).

6. The thermal capacity coating device for optical lenses according to claim 5, characterized in that: It also includes a first telescopic member (34), the first telescopic member (34) is slidably connected to the connecting rod (116), a toggle member (36) is rotatably connected to the side of the first telescopic member (34) close to the lens tray (13), a force storage spring (35) is wound on the first telescopic member (34), one end of the force storage spring (35) is fixedly connected to the toggle member (36), and the other end of the force storage spring (35) is fixedly connected to the first telescopic member (34), a driving component is clamped on one end of the first telescopic member (34) away from the toggle member (36), and the driving component is used to drive the toggle member (36) to move.

7. The thermal capacity coating device for optical lenses according to claim 6, characterized in that: The driving assembly includes a guide column (37), the guide column (37) is fixedly connected to the fixing frame (120), the connecting block (32) is slidably connected to the guide column (37), the bidirectional screw rods (3) arranged transversely symmetrically are fixedly connected to the two ends of the third rotating column (121), the fixing ring (31) is threadedly connected to the bidirectional screw rod (3), the fixing ring (31) and the guide column (37) are slidably connected, the fixing ring (31) and the connecting block (32) are fixedly connected, the guide rings (33) arranged transversely symmetrically along the third rotating column (121) are fixedly connected to the two sides of the connecting block (32), and the end of the first telescopic member (34) away from the toggle member (36) is clamped between two adjacent guide rings (33).

8. The thermal capacity coating device for optical lenses according to claim 7, characterized in that: It also includes a fixing rod (4), which is symmetrically arranged along the connecting rod (116) and fixedly connected to the first telescopic member (34), and the second telescopic member (42) is fixedly connected to an end of the fixing rod (4) away from the first telescopic member (34).

9. The thermal capacity coating device for optical lenses according to claim 8, characterized in that: It also includes a soft pad (41), which is fixedly connected to a side of the second telescopic member (42) away from the first telescopic member.

10. A method for using the thermal capacity coating device for optical lenses according to any one of claims 1 to 9, wherein the specific steps are as follows: S1: stretch the elastic telescopic member (113) so that the stopper (22) below it is locked with the small diameter circular baffle (21), start the motor (12), the motor (12) rotates to drive the first rotating member (11) and the lens tray (13) to rotate, the rotation of the first rotating member (11) will continue to drive the large gear (14), the small gear (15), the first belt (18) and the second belt (110) to rotate, and then put the lens on the right end of the second belt (110); S2: Under the driving action of the belt, the lens moves from the right end of the second belt (110) to the left end of the second belt (110), and slides from the second belt (110) to the buffer plate (114), and then the lens continues to slide from the buffer plate (114) to the elastic telescopic member (113), and then the lens slides from the buffer plate (114) to the elastic telescopic member (113); S3: When the lens is being transported, the torsion spring (2) is always in a state of storing force, so that the outer end of the elastic telescopic member (113) is in close contact with the lens tray (13); S4: The second belt (110) rotates to drive the third rotating column (121), and the fixed ring (31) slides on the bidirectional screw (3) in a threaded manner, driving the guide ring (33) and the first telescopic member (34) to move inward, and also driving the fixed rod (4) and the second telescopic member (42) to move inward first, and the second telescopic member (42) squeezes the lens that slides down onto the elastic telescopic member (113) and squeezes the lens into the lens hole; S5: The first telescopic member (34) moves inward, and at the same time drives the toggle rod to move inward, and the toggle rod will toggle the lens that is not fully assembled into the lens hole so that it is fully assembled into the lens hole; S6: After the inner lens hole is assembled, the stopper (22) is disengaged from the notch of the small diameter circular baffle (21), driving the elastic telescopic member (113) to contract and assemble the outer lens hole; S7: After all lens holes on the lens tray (13) are assembled, the lens tray (13) is removed from the first rotating member (11) and placed in a coating machine (122) for coating.