Transfer box for cylindrical lens

By designing the drive assembly, limiting and auxiliary drive integrated components, partitioning assembly and air supply assembly of the transfer box for cylindrical mirror, the wear problem caused by bumps and vibration during the transfer process is solved, and the stable transport and efficient protection of the cylindrical mirror is achieved.

CN120270665AInactive Publication Date: 2025-07-08SHANGHAI DENDRITIC PRECISION INSTR CO LTD
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Patent Information

Application Number
CN202510662346.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-22
Publication Date
2025-07-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the transport of the cylindrical mirrors, the multiple sets of cylindrical mirrors are prone to scratching and wear, resulting in quality damage, and the price is high and economic losses are large.

Method used

A transport box for cylindrical mirrors is designed, including drive components, limit and auxiliary drive integrated components, partition components and air supply components. Through limit, partition and pneumatic clamping, wear between the cylindrical mirrors is prevented and transport stability is ensured.

Benefits of technology

It effectively avoids wear between the cylindrical mirrors, improves stability and safety during transportation, and reduces economic losses.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a transfer box for a cylindrical lens, and relates to the technical field of transfer boxes, the transfer box comprises a box body, one end of the box body is provided with an end cover, the box body is internally provided with an inner cavity, and the inner cavity is internally provided with an inner container slidably connected with the inner wall of the inner cavity; a containing cavity used for containing a cylindrical lens is formed in the inner container, a driving assembly is installed at the top end of the box body, a limiting and auxiliary driving integrated assembly driven by the driving assembly is installed at the position, located in the box body, of the bottom end of the driving assembly, and partition assemblies are installed at the positions, located on the two sides of the containing cavity, in the inner container. An air supply assembly is further arranged in the box body. By arranging the limiting and auxiliary driving integrated assembly and the separation assembly, the storage of the cylindrical lens can be separated, the situation of mutual abrasion is avoided, and in addition, efficient limiting can be provided for the cylindrical lens.
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Description

Technical Field

[0001] The present invention relates to the technical field of transfer boxes, and specifically to a transfer box for cylindrical lenses. Background Art

[0002] A cylindrical lens refers to a lens with an arc surface, mainly used to correct astigmatism. Due to different correction degrees, the specifications of the required cylindrical lenses are also different, that is, cylindrical lenses have many specifications. Generally, the difference between the specifications of each specification of cylindrical lenses is fifty degrees. Therefore, the number of a set of cylindrical lenses is more than a dozen or even more than two dozen.

[0003] Currently, for the transfer of cylindrical lenses, generally, a box body is used to store and collect the cylindrical lenses. However, due to bumps and vibrations during the transfer process, it is easy for multiple groups of cylindrical lenses to scratch and wear each other, resulting in damage to the quality of the cylindrical lenses. And since the price of cylindrical lenses is relatively high, once damaged, the economic loss is relatively large. For this reason, we propose a transfer box for cylindrical lenses. Summary of the Invention

[0004] Based on this, the purpose of the present invention is to provide a transfer box for cylindrical lenses to solve the technical problems in the above background art.

[0005] To achieve the above purpose, the present invention provides the following technical solution: A transfer box for cylindrical lenses, including a transfer box. The transfer box includes a box body, and an end cover is installed at one end of the box body. An inner cavity is opened inside the box body, and an inner container slidably connected to the inner wall of the inner cavity is arranged inside the inner cavity. And a placement cavity for containing cylindrical lenses is opened inside the inner container. A driving component is installed at the top end of the box body, and a limiting and auxiliary driving integrated component driven by the driving component is installed at the bottom end of the driving component inside the box body to realize the limitation of the cylindrical lenses. Separation components are installed on both sides of the placement cavity inside the inner container to realize the separation of the cylindrical lenses. An air supply component is also arranged inside the box body to realize the pneumatic clamping of the cylindrical lenses.

[0006] By adopting the above technical solution, it is possible to perform a separation process on the storage of cylindrical lenses, so that there are gaps between two groups of cylindrical lenses, thus avoiding the situation of mutual wear. In addition, it is also possible to provide efficient limitation for the cylindrical lenses, further ensuring the stability of the cylindrical lenses during transfer.

[0007] The present invention is further configured such that the driving assembly includes a rotating shaft installed at the top end of the box body, and the rotating shaft is fixedly connected to the outer wall of the end cover. Above one side of the rotating shaft, a driving shaft is installed, and a synchronous driving structure is provided between the rotating shaft and the driving shaft. The synchronous driving structure includes a large sprocket fixedly installed at the end of the rotating shaft, and a small sprocket is fixedly connected to the end of the driving shaft above one side of the large sprocket. The large sprocket and the small sprocket are connected by a chain drive, and the diameter ratio of the large sprocket to the small sprocket is 3:1. A self-resetting winding drum is installed at the end of the small sprocket, and a traction rope is wound and connected to the outer wall of the self-resetting winding drum, and the end of the traction rope extends to one side.

[0008] By adopting the above technical solution, the driving effect on the limiting and auxiliary driving integrated component is achieved.

[0009] The present invention is further configured such that the limiting and auxiliary driving integrated component includes an installation part provided at the top end of the box body, and a slider is slidably provided inside the installation part. A clamping groove is opened at the bottom end of the slider, and an adjusting block that is slidably and reset-connected to the inner wall of the box body through a spring is adaptively clamped in the clamping groove. A bottom plate is fixed to the bottom end of the adjusting block, and two groups of pressing blocks with different diameters are symmetrically arranged at the bottom end of the bottom plate. The end of the slider is connected to a reset spring installed on the inner wall of the installation part, and an extension rod extending outside the installation part is fixedly connected to the inner side of the reset spring at the end of the slider. Below the extension rod, a driving plate for assisting the inner container to move out is provided inside the box body, and a connecting rod fixedly connected to the outer wall of the extension rod is fixedly connected to the top end of the driving plate.

[0010] By adopting the above technical solution, while limiting the cylindrical lens, it can also assist the inner container to move out of the box body.

[0011] The present invention is further configured such that the partitioning assembly includes a driven plate installed on the outer wall of the side of the inner container and slidably and reset-connected to the inner wall of the inner container through a spring. A sliding groove for assisting the movement of the driven plate is opened on the inner wall of the box body outside the driven plate, and a pressing plate for pressing the driven plate is further provided in the sliding groove. A vertical plate slidably connected to the inner wall of the inner container is fixedly connected to the inner end face of the driven plate, and a plurality of partition blocks are arranged at intervals on the end face of the vertical plate, and each group of partition blocks is slidably connected to the inner wall of the inner container.

[0012] By adopting the above technical solution, the partitioning effect on the cylindrical lens is achieved, effectively avoiding the wear between the cylindrical lenses.

[0013] The present invention is further configured such that the air supply assembly includes a sealing slide plate disposed inside the box body and slidably and sealingly connected to the inner wall of the box body, and the sealing slide plate is synchronously connected to the inner tank. A sealing cavity is formed between one side of the sealing slide plate and the box body, and an exhaust valve is installed on the end face of the sealing slide plate. An air inlet is formed on the outer wall of the inner tank on the other side of the sealing slide plate, and a telescopic tube is connected between the air inlet and the exhaust valve. A trachea that communicates all the plurality of vertical plates is installed inside the inner tank, and the trachea is connected to the air inlet in a communicating manner.

[0014] By adopting the above technical solution, the effect of supplying air to the air cavity is achieved.

[0015] The present invention is further configured such that an air cavity is formed inside the vertical plate, and a sealing portion for controlling the sealed state of the air cavity is installed at the top of the driven plate. On one side of the sealing portion on the inner wall of the inner tank, an extrusion portion for laterally extruding the sealing portion is provided. An air passage communicating with the air cavity is formed inside the partition block, and a pneumatic cavity communicating with the air passage is formed inside the partition block on one side of the air passage. A slide plate is slidably and sealingly connected inside the pneumatic cavity, and a telescopic spring installed on the inner wall of the pneumatic cavity is connected to the top of the slide plate. The bottom end of the slide plate is synchronously connected to a clamping plate that is slidably connected to the inner wall of the pneumatic cavity.

[0016] By adopting the above technical solution, the effect of supplying air to the pneumatic cavity is achieved.

[0017] In summary, the present invention mainly has the following beneficial effects: 1. The present invention realizes the limiting of the cylinder lens to be transported by setting a driving component and an integrated limiting and auxiliary driving component. First, the cylinder lens to be transported is placed in the placement cavity of the inner container. Subsequently, the inner container is pushed inward until it completely moves into the box body. At this time, the end cover can be rotated to close, thereby realizing the sealing of the box body, that is, realizing the limiting of the inner container. The rotation of the end cover will drive the rotation of the rotating shaft. After the rotating shaft rotates, it will drive the small sprocket to rotate through the large sprocket and the chain. After the small sprocket rotates, it will drive the driving shaft to rotate. After the driving shaft rotates, it will drive the self-resetting winding drum to rotate. After the self-resetting winding drum rotates, the traction rope will be unwound. Furthermore, the slider will move back under the action of the return spring. The movement of the slider will squeeze the adjusting block to move downward. Therefore, under the action of the adjusting block, the pressing block on the bottom plate will move to the cylinder lens at the topmost part inside the placement cavity to realize the limiting of the top cylinder lens. Similarly, when the end cover is opened, the rotating shaft will rotate in the reverse direction and drive the driving shaft to rotate in the reverse direction. At this time, the traction rope on the self-resetting winding drum will be tightened, and the slider will move under the action of the traction rope. After the slider moves, it will move its engaging groove above the adjusting block. At this time, the adjusting block will move upward and reset into the engaging groove, thereby releasing the limiting of the pressing block on the cylinder lens. In addition, while the slider is pulled by the traction rope, the slider will also drive the extension rod to move. The extension rod will drive the driving plate to move through the connecting rod. After the driving plate moves, it will push the inner container to move outwards, thereby playing an auxiliary role in moving the inner container out; 2. The present invention realizes the separation of the cylinder lenses and ensures their stability in the separated state by setting a separation component and a gas supply component. During the process of the inner container moving towards the inner side of the box body, the driven plate on the outer wall of the inner container will slide in the chute on the inner wall of the box body. When the rotating plate moves to contact the pressing plate, the driven plate will move into the inner container under the action of the pressing plate. The movement of the driven plate will push the vertical plate to move, and then multiple groups of spaced-apart separation blocks on the end face of the vertical plate will be inserted between the cylinder lenses, realizing the separation effect of the cylinder lenses and effectively preventing friction damage between the cylinder lenses. Further, while the inner container moves towards the inner side of the box body, the sealing slide plate located outside the inner container will squeeze the air in the sealing cavity, so that the air can and can only be discharged from the exhaust valve. The discharged gas will enter the trachea in the inner container through the telescopic tube and the air inlet. The gas in the trachea will supply gas to the air cavities in each vertical plate, and the gas in the air cavities will flow into the pneumatic cavity through the air ducts to squeeze the slide plate. The slide plate will move outwards under the action of the air pressure, and will drive the clamping plate to move out of the separation block through synchronous connection to realize the clamping of the cylinder lenses, ensuring the stability of the cylinder lenses in the separated state. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a schematic diagram of the inner container structure of the present invention; Figure 3 is a schematic diagram of the housing structure of the present invention; Figure 4 Schematic diagram of the limit structure of the present invention; Figure 5 Schematic diagram of the partition structure of the present invention; Figure 6 Schematic diagram of the air supply structure of the present invention; Figure 7 Schematic diagram of the air path distribution structure of the present invention; Figure 8 Schematic diagram of the pneumatic clamping structure of the present invention; Figure 9 In the present invention Figure 8 Partial enlarged view of part A.

[0019] In the figure: 1, transfer box; 101, box body; 102, end cover; 103, inner cavity; 104, inner liner; 105, placement cavity; 2, drive assembly; 201, rotating shaft; 202, drive shaft; 203, large sprocket; 204, small sprocket; 205, self-resetting winding drum; 206, traction rope; 3, integrated limit and auxiliary drive assembly; 301, installation part; 302, slider; 303, engaging groove; 304, adjusting block; 305, bottom plate; 306, pressing block; 307, return spring; 308, extension rod; 309, drive plate; 310, connecting rod; 4, partition assembly; 401, driven plate; 402, sliding groove; 403, extrusion plate; 404, vertical plate; 4041, air cavity; 4042, sealing part; 405, partition block; 406, air duct; 407, pneumatic cavity; 408, sliding plate; 409, telescopic spring; 410, clamping plate; 5, air supply assembly; 501, sealing sliding plate; 502, sealing cavity; 503, exhaust valve; 504, air inlet; 505, telescopic tube; 506, air pipe. Detailed implementation manners

[0020] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. The embodiments described below by referring to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as a limitation of the present invention.

[0021] Next, the embodiments of the present invention will be described according to the overall structure of the present invention.

[0022] A transfer box for cylindrical lenses, as Figures 1-9 shown, includes a transfer box 1. The transfer box 1 includes a box body 101, and an end cover 102 is installed at one end of the box body 101. An inner cavity 103 is opened inside the box body 101, and an inner liner 104 slidably connected to the inner wall of the inner cavity 103 is arranged inside the inner cavity 103. A placement cavity 105 for containing cylindrical lenses is opened inside the inner liner 104.

[0023] Please refer to Figure 1 andFigure 4 At the top of the box body 101, a driving component 2 is installed to drive the limiting and auxiliary driving integrated component 3. Specifically, the driving component 2 includes a rotating shaft 201 installed at the top of the box body 101, and the rotating shaft 201 is fixedly connected to the outer wall of the end cover 102. Above one side of the rotating shaft 201, a driving shaft 202 is installed, and a synchronous driving structure is arranged between the rotating shaft 201 and the driving shaft 202. The synchronous driving structure includes a large sprocket 203 fixedly installed at the end of the rotating shaft 201. Above one side of the large sprocket 203, a small sprocket 204 is fixedly connected to the end of the driving shaft 202. The large sprocket 203 and the small sprocket 204 are connected by a chain drive, and the diameter ratio of the large sprocket 203 to the small sprocket 204 is 3:1. At the end of the small sprocket 204, a self-resetting winding drum 205 is installed, and a traction rope 206 is wound and connected to the outer wall of the self-resetting winding drum 205, and the end of the traction rope 206 extends to one side.

[0024] Please refer to Figure 1 and Figure 4 Inside the box body 101 at the bottom of the driving component 2, a limiting and auxiliary driving integrated component 3 driven by the driving component 2 is installed to limit the cylindrical lens. Specifically, the limiting and auxiliary driving integrated component 3 includes an installation part 301 arranged at the top of the box body 101. A slider 302 is slidably arranged inside the installation part 301. A clamping groove 303 is opened at the bottom of the slider 302, and an adjusting block 304 which is slidably reset by a spring and connected to the inner wall of the box body 101 is adaptively clamped in the clamping groove 303. A bottom plate 305 is fixed to the bottom of the adjusting block 304, and two groups of pressing blocks 306 with different diameters are symmetrically arranged at the bottom of the bottom plate 305. One end of the slider 302 is connected to a reset spring 307 installed on the inner wall of the installation part 301, and a prolonging rod 308 extending to the outside of the installation part 301 is fixedly connected to the inner side of the reset spring 307 at one end of the slider 302. Below the prolonging rod 308, a driving plate 309 for assisting the inner container 104 to move out is arranged inside the box body 101, and a connecting rod 310 fixedly connected to the outer wall of the prolonging rod 308 is fixedly connected to the top of the driving plate 309.

[0025] Please refer to Figure 2 、 Figure 3 、 Figure 5 and Figure 7 On both sides of the placement cavity 105 inside the inner container 104, a partitioning component 4 is installed to partition the cylindrical lenses. Specifically, the separating component 4 includes a driven plate 401 installed on the outer wall of the side part of the inner container 104 and slidably and resiliently connected to the inner wall of the inner container 104 by a spring. A chute 402 for assisting the movement of the driven plate 401 is provided on the inner wall of the box body 101 on the outer side of the driven plate 401. An extrusion plate 403 for extruding the driven plate 401 is further provided in the chute 402. A vertical plate 404 slidably connected to the inner wall of the inner container 104 is fixedly connected to the inner end face of the driven plate 401. A plurality of groups of separating blocks 405 distributed at intervals are provided on the end face of the vertical plate 404. Each group of separating blocks 405 is slidably connected to the inner wall of the inner container 104. An air cavity 4041 is formed inside the vertical plate 404. A sealing part 4042 for controlling the sealed state of the air cavity 4041 is installed at the top end of the driven plate 401. An extrusion part for horizontally extruding the sealing part 4042 is provided on the inner wall of the inner container 104 on one side of the sealing part 4042. An air passage 406 communicating with the air cavity 4041 is formed inside the separating block 405. An air cylinder cavity 407 communicating with the air passage 406 is formed inside the separating block 405 on one side of the air passage 406. A sliding plate 408 is slidably and sealingly connected inside the air cylinder cavity 407. A telescopic spring 409 installed on the inner wall of the air cylinder cavity 407 is connected to the top end of the sliding plate 408. A clamping plate 410 slidably connected to the inner wall of the air cylinder cavity 407 is synchronously connected to the bottom end of the sliding plate 408.

[0026] Please refer to Figures 6-7 , and an air supply component 5 is further provided inside the box body 101 to achieve pneumatic clamping of the cylindrical lens; Specifically, the air supply component 5 includes a sealing sliding plate 501 installed inside the box body 101 and slidably and sealingly connected to the inner wall of the box body 101. The sealing sliding plate 501 is synchronously connected to the inner container 104. A sealing cavity 502 is formed between one side of the sealing sliding plate 501 and the box body 101. An exhaust valve 503 is installed on the end face of the sealing sliding plate 501. An air inlet 504 is provided on the outer wall of the inner container 104 on the other side of the sealing sliding plate 501. A telescopic tube 505 is connected between the air inlet 504 and the exhaust valve 503. An air pipe 506 connecting all the vertical plates 404 is installed inside the inner container 104. The air pipe 506 is connected to the air inlet 504.

[0027] The working principle of the present invention is as follows: First, place the cylindrical lens to be transported into the placement cavity 105 of the inner container 104. Then, push the inner container 104 inward until the inner container 104 completely moves into the box body 101. At this time, the end cover 102 can be rotated to be closed, so as to achieve the sealing of the box body 101, that is, the limitation of the inner container 104 is realized; The rotation of the end cap 102 drives the rotation of the rotating shaft 201. After the rotation of the rotating shaft 201, the large sprocket 203 and the chain are used to drive the small sprocket 204 to rotate. After the rotation of the small sprocket 204, the drive shaft 202 is driven to rotate. After the rotation of the drive shaft 202, the self-resetting winding drum 205 is driven to rotate. After the rotation of the self-resetting winding drum 205, the traction rope 206 is unwound. Furthermore, the slider 302 moves back under the action of the return spring 307. The movement of the slider 302 presses the adjustment block 304 to move downward. Therefore, under the action of the adjustment block 304, the pressing block 306 on the bottom plate 305 moves to the topmost cylindrical lens in the placement cavity 105 to limit the top cylindrical lens; Similarly, when opening the end cap 102, the rotating shaft 201 rotates in the reverse direction and drives the drive shaft 202 to rotate in the reverse direction. At this time, the traction rope 206 on the self-resetting winding drum 205 is tightened, and the slider 302 moves under the action of the traction rope 206. After the slider 302 moves, its engaging groove 303 is moved above the adjustment block 304. At this time, the adjustment block 304 moves upward and resets into the engaging groove, thus releasing the limit of the pressing block 306 on the cylindrical lens; In addition, while the slider 302 is being pulled by the traction rope 206, the slider 302 also drives the extension rod 308 to move. The extension rod 308 drives the drive plate 309 to move through the connecting rod 310. After the drive plate 309 moves, it pushes the inner container 104 to move outwards, thus assisting the inner container 104 to move out; Furthermore, during the process of the inner container 104 moving towards the inside of the box body 101, the driven plate 401 on the outer wall of the inner container 104 slides in the chute 402 on the inner wall of the box body 101. When the driven plate 401 moves to contact the pressing plate 403, the driven plate 401 moves into the inner container 104 under the action of the pressing plate 403. The movement of the driven plate 401 pushes the vertical plate 404 to move, and then multiple groups of spaced-apart partition blocks 405 on the end face of the vertical plate 404 are inserted between the cylindrical lenses, achieving the effect of separating the cylindrical lenses and effectively preventing friction damage between the cylindrical lenses; In addition, while the inner container 104 moves towards the inside of the box body 101, the sealing slide plate 501 located outside the end of the inner container 104 squeezes the air in the sealing cavity 502, so that the air can only be discharged from the exhaust valve 503. The discharged gas enters the trachea 506 in the inner container 104 through the telescopic tube 505 and the air inlet 504. The gas in the trachea 506 supplies gas to the air cavities 4041 in each vertical plate 404, and the gas in the air cavities 4041 flows into the pneumatic cavity 407 through the air channels 406 to squeeze the slide plate 408. After the slide plate 408 is acted upon by the air pressure, it moves outwards and drives the clamping plate 410 to move out of the partition block 405 through synchronous connection to clamp the cylindrical lens, ensuring the stability of the cylindrical lens in the separated state; It should be noted that the sealing portion 4042 provided at the top of the vertical plate 404 for controlling the air chamber 4041 will act on the pressing portion provided on the inner wall of the inner container 104 when the vertical plate 404 is reset, thereby realizing the displacement of the sealing portion 4042, that is, discharging the gas in the air chamber 4041, the air passage 406 and the pneumatic chamber 407 to facilitate subsequent use.

[0028] Although the embodiments of the present invention have been shown and described, the specific embodiments are only explanations of the present invention and are not limitations thereof. The specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. After reading this specification, those skilled in the art can make modifications, substitutions and variations that do not contribute creatively to the embodiments as needed, but as long as they are within the scope of the claims of the present invention, they are protected by the patent law.

Claims

1. A transfer box for cylindrical lenses, comprising a transfer box (1), characterized in that: The transfer box (1) includes a box body (101), and an end cover (102) is installed at one end of the box body (101). An inner cavity (103) is formed inside the box body (101), and an inner liner (104) that is slidably connected to the inner wall of the inner cavity (103) is arranged inside the inner cavity (103). A placement cavity (105) for containing cylindrical lenses is formed inside the inner liner (104). A driving assembly (2) is installed at the top of the box body (101). At the bottom of the driving assembly (2) and inside the box body (101), a limiting and auxiliary driving integrated assembly (3) driven by the driving assembly (2) is installed to limit the cylindrical lens. On both sides of the placement cavity (105) inside the inner liner (104), a separating assembly (4) is installed to separate the cylindrical lenses. An air supply assembly (5) is also arranged inside the box body (101) to pneumatically clamp the cylindrical lens.

2. The transfer box for cylindrical lenses according to claim 1, characterized in that: The driving assembly (2) includes a rotating shaft (201) installed at the top of the box body (101), and the rotating shaft (201) is fixedly connected to the outer wall of the end cover (102). Above one side of the rotating shaft (201), a driving shaft (202) is installed, and a synchronous driving structure is arranged between the rotating shaft (201) and the driving shaft (202).

3. The transfer box for cylindrical lenses according to claim 2, wherein: The synchronous driving structure includes a large sprocket (203) fixedly installed at the end of the rotating shaft (201). Above one side of the large sprocket (203), a small sprocket (204) is fixedly connected to the end of the driving shaft (202). The large sprocket (203) and the small sprocket (204) are connected by a chain drive, and the ratio of the wheel diameters of the large sprocket (203) to the small sprocket (204) is 3:

1.

4. The transfer box for cylindrical lenses according to claim 3, characterized in that: A self - resetting winding drum (205) is installed at the end of the small sprocket (204), and a traction rope (206) is wound around the outer wall of the self - resetting winding drum (205). The end of the traction rope (206) extends to one side.

5. The transfer box for cylindrical lenses according to claim 1, characterized in that: The limiting and auxiliary driving integrated assembly (3) includes an installation part (301) arranged at the top of the box body (101). A slider (302) is slidably arranged inside the installation part (301). A clamping groove (303) is formed at the bottom of the slider (302), and an adjusting block (304) that is slidably reset by a spring and connected to the inner wall of the box body (101) is fitted and clamped in the clamping groove (303). A bottom plate (305) is fixed to the bottom of the adjusting block (304), and two sets of pressing blocks (306) with different diameters are symmetrically arranged at the bottom of the bottom plate (305).

6. The transfer box for cylindrical lenses according to claim 5, characterized in that: One end of the slider (302) is connected to a return spring (307) installed on the inner wall of the installation part (301). And at the inner side of the return spring (307) at the end of the slider (302), there is a fixed connection with an extension rod (308) extending to the outside of the installation part (301). Below the extension rod (308), inside the box body (101), there is a driving plate (309) for assisting the removal of the inner container (104). And at the top end of the driving plate (309), there is a fixed connection with a connecting rod (310) fixedly connected to the outer wall of the extension rod (308).

7. The transfer box for cylindrical lenses according to claim 1, characterized in that: The separation component (4) includes a driven plate (401) installed on the outer wall of the side part of the inner container (104) and slidably connected to the inner wall of the inner container (104) through a spring for reset. And on the inner wall of the box body (101) at the outer side of the driven plate (401), there is a sliding groove (402) for assisting the movement of the driven plate (401). And in the sliding groove (402), there is also a pressing plate (403) for pressing the driven plate (401). At the inner end face of the driven plate (401), there is a fixed connection with a vertical plate (404) slidably connected to the inner wall of the inner container (104). And on the end face of the vertical plate (404), there are multiple groups of separation blocks (405) distributed at intervals. And each group of the separation blocks (405) is slidably connected to the inner wall of the inner container (104).

8. The transfer box for cylindrical lenses according to claim 7, characterized in that: The air supply component (5) includes a sealing slide plate (501) arranged inside the box body (101) and slidably and sealingly connected to the inner wall of the box body (101). And the sealing slide plate (501) is synchronously connected to the inner container (104). Between one side of the sealing slide plate (501) and the box body (101), there is a sealing cavity (502). And on the end face of the sealing slide plate (501), there is an exhaust valve (503) installed. On the other side of the sealing slide plate (501), at the outer wall of the inner container (104), there is an air inlet (504). And between the air inlet (504) and the exhaust valve (503), there is a telescopic tube (505) connected. Inside the inner container (104), there is an air pipe (506) installed to communicate all the multiple groups of the vertical plates (404). And the air pipe (506) is connected and communicated with the air inlet (504).

9. The transfer box for cylindrical lenses according to claim 8, characterized in that: An air cavity (4041) is formed inside the vertical plate (404), and a sealing part (4042) for controlling the sealed state of the air cavity (4041) is installed at the top of the driven plate (401). On one side of the sealing part (4042) on the inner wall of the inner container (104), an extrusion part for laterally extruding the sealing part (4042) is provided. An air passage (406) communicating with the air cavity (4041) is formed inside the partition block (405), and a pneumatic cavity (407) communicating with the air passage (406) is formed inside the partition block (405) on one side of the air passage (406). A sliding plate (408) is slidably and sealingly connected inside the pneumatic cavity (407), and a telescopic spring (409) installed on the inner wall of the pneumatic cavity (407) is connected to the top of the sliding plate (408). A clamping plate (410) slidably connected to the inner wall of the pneumatic cavity (407) is synchronously connected to the bottom end of the sliding plate (408).