Glass sheet storage device

By combining the feeding, top-loading, and lifting mechanisms, the problem of traditional glass storage devices being able to output entire layers of glass sheets as a whole has been solved, enabling the individual removal of the required sheets and improving operational convenience and space utilization.

CN224278944UActive Publication Date: 2026-05-26FOSHAN SHUNDE CHUANGSHICHENG GLASS MASCH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FOSHAN SHUNDE CHUANGSHICHENG GLASS MASCH CO LTD
Filing Date
2025-05-06
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Traditional glass storage devices can only output the entire layer of glass as a whole, and cannot retrieve the required glass individually, which is inconvenient to operate and has low space utilization.

Method used

The design employs a combination of feeding mechanism, top material mechanism, and lifting mechanism to achieve precise storage and retrieval of glass sheets. Through the rotary shaft conveying, the extension and retraction of the top material component, and the lifting and lowering of the support rod, the required glass sheet can be retrieved individually.

Benefits of technology

It improves ease of operation and space utilization, reduces the risk of glass damage, and supports simultaneous storage of multiple layers and multiple sheets.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of glass processing equipment, and provides a glass sheet storage device which comprises a frame, and a feeding mechanism, a jacking mechanism and at least one lifting mechanism are installed in the frame. The feeding mechanism comprises at least one rotating shaft, the rotating shaft is rotationally connected with the frame, and the rotating shaft is used for conveying glass sheets; the material ejecting mechanism comprises at least one cross rod, a plurality of material ejecting pieces are installed on the cross rod, and the material ejecting pieces have the function of stretching and retracting up and down; the lifting mechanism comprises a second chain, the second chain is provided with at least one material bearing rod, and the material bearing rods are used for bearing glass sheets. According to the glass sheet storage device, the feeding mechanism, the jacking mechanism and the lifting mechanism are integrated, accurate storage and taking of the glass sheets are achieved, the problem that a traditional storage device can only output the whole layer of glass sheets integrally is solved, a user can take out the needed glass sheets independently according to actual requirements, and the use is convenient. And the storage state of other glass sheets cannot be influenced.
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Description

Technical Field

[0001] This utility model relates to the field of glass processing equipment technology, and in particular to a glass sheet storage device. Background Technology

[0002] Traditional glass storage devices are primarily used for storing and protecting glass products, but their function is relatively limited, typically only providing a static storage space. These devices were originally designed to ensure the safety of the glass sheets during storage, preventing breakage or contamination caused by external factors. However, with the continuous expansion of applications for glass products and the increasing demands for operational efficiency, traditional storage methods have gradually revealed their limitations.

[0003] Traditional glass storage devices typically only have a single storage function, lacking the ability to independently access individual glass sheets. This means that every time a glass sheet is retrieved, all the glass sheets in the storage layer are output together, preventing users from individually selecting and retrieving the desired sheet. This design is not only inconvenient to operate but also prone to unnecessary glass sheet movement, increasing the risk of glass sheet damage. Furthermore, traditional devices have low space utilization because they cannot effectively manage the simultaneous storage of multiple layers or sheets of glass, which is particularly disadvantageous in large-scale glass product management and storage.

[0004] The purpose of this invention is to solve the problem that traditional glass storage devices only have a single storage function, and each time a glass sheet is taken out, the entire layer of glass sheets is output, so the user cannot take out the glass sheet they need individually. Utility Model Content

[0005] The purpose of this invention is to solve the problem that traditional glass storage devices only have a single storage function, and each time a glass sheet is retrieved, the entire layer of glass sheets is output, making it impossible for the user to retrieve the desired glass sheet individually. This invention adopts the following technical solution:

[0006] A glass sheet storage device includes a frame, within which a feeding mechanism, a top-feeding mechanism, and at least one lifting mechanism are installed.

[0007] The feeding mechanism includes at least one rotating shaft, which is rotatably connected to the frame and is used to transport glass sheets.

[0008] The material-lifting mechanism includes at least one crossbar, on which a plurality of material-lifting components are mounted, and the material-lifting components have the function of extending and retracting vertically.

[0009] The lifting mechanism includes a second chain, on which at least one support rod is mounted, the support rod being used to support the glass sheet.

[0010] As described above, in a glass sheet storage device, the top material component includes a cylinder, a first L-shaped plate is mounted on one end of the cylinder, a second L-shaped plate is mounted on one side of the first L-shaped plate, a cylinder is mounted on the top of the second L-shaped plate, and a ball bearing is mounted on one end of the cylinder, the ball bearing being rotatably connected to the cylinder.

[0011] As described above, in a glass slide storage device, a base plate is installed at the bottom of the cylinder, the base plate has a first through groove, a second L-shaped plate has a second through groove, a lead screw is slidably disposed in the second through groove, one end of the lead screw is fixedly connected to the first L-shaped plate, a nut is sleeved on the lead screw, and the nut is threadedly connected to the lead screw.

[0012] In the glass plate storage device described above, a first bolt is fitted inside the top of the second L-shaped plate, and the first bolt is threadedly connected to the cylinder.

[0013] As described above, in a glass slide storage device, the lifting mechanism includes a second motor. An upper gear set and a lower gear set are provided on both sides of the second motor. The upper gear set and the lower gear set are connected by a second chain drive. The second motor provides rotational power to the upper gear set or the lower gear set. Each of the upper gear set and the lower gear set includes a driving gear, a driven gear, and a tension gear. The driving gear, the driven gear, and the tension gear all mesh with the second chain.

[0014] As described above, in a glass slide storage device, the lifting mechanism includes a power shaft and a driven shaft. The two ends of the power shaft are fixedly connected to the drive gear, the second motor is drivenly connected to the drive gear, and the two ends of the driven shaft are fixedly connected to the driven gear.

[0015] As described above, in a glass sheet storage device, a third L-shaped plate is provided at both ends of the material support rod. One side of the third L-shaped plate is fixedly connected to the second chain. A second bolt is sleeved inside the third L-shaped plate, and the second bolt is threadedly connected to the material support rod.

[0016] In the glass slide storage device described above, a first T-block is installed at one end of the second chain, and a second T-block is installed at the other end of the second chain. A connecting rod is fitted inside both the first T-block and the second T-block, and the connecting rod is threadedly connected to the first T-block and the second T-block.

[0017] As described above, in a glass slide storage device, the feeding mechanism includes a first motor, which provides power for the rotation of the rotating shaft. A gear is mounted on one end of the rotating shaft, and a first chain is sleeved on the gear. A gear shaft is mounted on one end of one of the rotating shafts, and the first motor is connected to the gear shaft in a transmission connection.

[0018] As described above, in a glass slide storage device, the rotating shaft is fitted with a plurality of rotating wheels, the rotating wheels being made of plastic.

[0019] Implementing the embodiments of this utility model has the following beneficial effects:

[0020] 1. The glass sheet storage device provided by this utility model integrates a feeding mechanism, a top-loading mechanism, and a lifting mechanism, achieving precise storage and retrieval of glass sheets and solving the problem that traditional storage devices can only output entire layers of glass sheets as a whole. Users can individually retrieve the required glass sheets according to actual needs without affecting the storage status of other glass sheets, greatly improving operational convenience and work efficiency. In addition, this device supports simultaneous storage of multiple layers and multiple glass sheets, significantly improving space utilization and reducing the risk of glass sheet damage due to frequent movement.

[0021] In summary, this invention solves the problem that traditional glass storage devices only have a single storage function, and each time a glass sheet is taken out, the entire layer of glass sheets is output, making it impossible for the user to take out the desired glass sheet individually. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0023] Figure 1 This is a schematic diagram of the overall structure of a glass plate storage device according to this utility model.

[0024] Figure 2 This is a schematic diagram of the structure of a glass sheet storage device after the frame has been removed.

[0025] Figure 3 This is a schematic diagram of the feeding mechanism of a glass sheet storage device according to this utility model.

[0026] Figure 4 This is a schematic diagram of the top material mechanism of a glass sheet storage device according to this utility model.

[0027] Figure 5This is a schematic diagram of the top material component of a glass sheet storage device according to the present invention.

[0028] Figure 6 yes Figure 5 A structural diagram from another angle.

[0029] Figure 7 This is a schematic diagram of the lifting mechanism of a glass sheet storage device according to this utility model.

[0030] Figure 8 This is a schematic diagram of the material support rod of a glass sheet storage device according to this utility model.

[0031] Figure 9 yes Figure 7 A magnified structural diagram of point A in the middle.

[0032] Figure 10 yes Figure 8 A magnified structural diagram of section B.

[0033] As shown in the figure:

[0034] 1. Frame; 2. Feeding mechanism; 21. Rotating shaft; 22. Rotating wheel; 23. Gear; 24. First chain; 25. Gear shaft; 26. First motor; 3. Ejector mechanism; 31. Crossbar; 32. Ejector component; 321. Base plate; 322. First through slot; 323. Cylinder; 324. First L-shaped plate; 325. Lead screw; 326. Nut; 327. Second L-shaped plate; 328. Second through slot; 329. Cylinder; 3210. Ball bearing; 3211. First bolt; 4. Lifting mechanism; 41. Power shaft; 42. Second motor; 43. Driven shaft; 44. Drive gear; 45. Driven gear; 46. Tension gear; 47. Second chain; 48. Material support rod; 49. First T-block; 410. Second T-block; 411. Connecting rod; 412. Third L-shaped plate; 413. Second bolt. Detailed Implementation

[0035] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0036] like Figures 1 to 10 As shown, this utility model proposes a glass sheet storage device, including a frame 1, in which a feeding mechanism 2, a top feeding mechanism 3 and at least one lifting mechanism 4 are installed.

[0037] The feeding mechanism 2 includes at least one rotating shaft 21, which is rotatably connected to the frame 1. The rotating shaft 21 is used to transport glass sheets. The feeding mechanism 2 includes a first motor 26, which is used to provide power for the rotation of the rotating shaft 21.

[0038] The top material mechanism 3 includes at least one crossbar 31, and the crossbar 31 is equipped with a plurality of top material components 32, which have the function of extending and retracting vertically.

[0039] The lifting mechanism 4 includes a second motor 42 and a second chain 47. An upper gear set and a lower gear set are provided on both sides of the second motor 42. The upper gear set and the lower gear set are connected by transmission through the second chain 47. The second motor 42 is used to provide rotational power for the upper gear set or the lower gear set. The second chain 47 is equipped with at least one material support rod 48, which is used to support the glass sheet.

[0040] This glass sheet storage device achieves efficient storage and retrieval of glass sheets through the coordinated action of a feeding mechanism 2, a top-loading mechanism 3, and a lifting mechanism 4. In use, the feeding mechanism 2 is first activated, and the first motor 26 drives the rotating shaft 21 to rotate. The operator places the glass sheet onto the rotating shaft 21, allowing it to enter the frame 1 and position itself above the support rod 48 as the shaft rotates. When the lifting mechanism 4 is activated, the support rod 48 lifts the glass sheet. With multiple support rods 48 in the lifting mechanism 4, the frame 1 can store multiple layers of glass sheets, and each support rod 48 can hold multiple glass sheets. When multiple layers of glass sheets need to be stored, the lifting mechanism 4 is activated, and the second motor 42 drives the second chain 47 between the upper and lower gear sets, causing the support rod 48 to rise or fall to a designated position to support different layers of glass sheets. When taking glass sheets, start from the bottom layer. When a glass sheet from the bottom layer needs to be taken, the top material mechanism 3 can be activated. The top material 32 lifts the glass sheet that does not need to be taken, so that it does not contact the rotating shaft 21, leaving only the glass sheet that needs to be taken in contact with the rotating shaft 21. At this time, the feeding mechanism 2 can be activated to output the required glass sheet from the frame 1.

[0041] This invention provides a storage solution that allows for the individual removal of desired glass sheets without affecting other glass sheets, overcoming the limitation of traditional glass storage devices that can only output entire layers of glass sheets. Furthermore, because the device can support simultaneous storage of multiple layers and multiple glass sheets, it significantly improves space utilization. By precisely controlling the movement of each component, users can flexibly access specific glass sheets according to actual needs, greatly enhancing operational convenience and work efficiency, making it suitable for glass product management environments of various sizes.

[0042] Furthermore, as a preferred embodiment of the present invention and not a limitation thereof, the top material component 32 includes a cylinder 323, one end of which is equipped with a first L-shaped plate 324, one side of which is equipped with a second L-shaped plate 327, the top of which is equipped with a cylinder 329, one end of which is equipped with a ball bearing 3210, and the ball bearing 3210 is rotatably connected to the cylinder 329. A base plate 321 is mounted on the bottom of the cylinder 323. The base plate 321 has a first through groove 322. The second L-shaped plate 327 has a second through groove 328. A lead screw 325 is slidably disposed in the second through groove 328. One end of the lead screw 325 is fixedly connected to the first L-shaped plate 324. A nut 326 is sleeved on the lead screw 325 and threadedly connected to the lead screw 325. A first bolt 3211 is sleeved on the top of the second L-shaped plate 327 and threadedly connected to the cylinder 329. The cylinder 323 serves as a power source, driving the first L-shaped plate 324 to move up and down. The connection between the first L-shaped plate 324 and the second L-shaped plate 327, along with the arrangement of the cylinder 329, together constitute a finely adjustable robotic arm structure. The lead screw 325 passes through the second through slot 328 and is fixedly connected to the first L-shaped plate 324. A nut 326 is fitted over the lead screw 325 and connected by threads to precisely adjust the position of the second L-shaped plate 327. Specifically, by sliding the second L-shaped plate 327 up and down and tightening the nut 326, the position of the second L-shaped plate 327 can be steadily adjusted. Furthermore, since the cylinder 329 is connected to the second L-shaped plate 327 by the first bolt 3211, when the ball bearing 3210 is damaged, the cylinder 329 and its ball bearing 3210 can be quickly replaced simply by disconnecting the threaded connection, greatly facilitating equipment maintenance. The design of multiple through slots (such as the first through slot 322 and the second through slot 328) allows for multi-dimensional fine adjustment of the position of the top material 32, ensuring that the ball bearing 3210 can accurately contact and handle glass sheets of different sizes and shapes.

[0043] Furthermore, as a preferred embodiment of this utility model and not a limitation thereof, both the upper gear set and the lower gear set include a driving gear 44, a driven gear 45, and a tension gear 46. The driving gear 44, driven gear 45, and tension gear 46 all mesh with the second chain 47. The lifting mechanism 4 includes a power shaft 41 and a driven shaft 43. Both ends of the power shaft 41 are fixedly connected to the driving gear 44. The second motor 42 is drively connected to the driving gear 44. Both ends of the driven shaft 43 are fixedly connected to the driven gear 45. Both ends of the material support rod 48 are provided with a third L-shaped plate 412. One side of the third L-shaped plate 412 is fixedly connected to the second chain 47. A second bolt 413 is fitted inside the third L-shaped plate 412, and the second bolt 413 is threadedly connected to the material support rod 48. Through the cooperation of the upper and lower gear sets with the second chain 47, the smooth lifting and lowering of the material support rod 48 is achieved. Specifically, the two ends of the drive shaft 41 are fixedly connected to the drive gear 44, and the second motor 42 drives the drive gear 44 to rotate, thereby driving the second chain 47 to move. The two ends of the driven shaft 43 are fixedly connected to the driven gear 45, which supports the second chain 47 and ensures its smooth transmission. The tension gear 46 adjusts the chain tension to prevent transmission efficiency from being affected by chain slack. The support rod 48 is fixedly connected to the second chain 47 through the third L-shaped plate 412. When the second chain 47 moves, the support rod 48 moves up and down accordingly. In addition, the second bolt 413 threads the support rod 48 to the third L-shaped plate 412. This design allows the support rod 48 to be quickly replaced or reinstalled when damaged or when its position needs to be adjusted. Through the coordinated work of the drive gear 44, driven gear 45, and tension gear 46, the efficient transmission of the second chain 47 is ensured, enabling the support rod 48 to smoothly carry and move the glass sheet, reducing the risk of glass sheet damage due to mechanical vibration or chain loosening.

[0044] Furthermore, as a preferred embodiment of this utility model and not a limitation, a first T-block 49 is installed at one end of the second chain 47, and a second T-block 410 is installed at the other end of the second chain 47. Both the first T-block 49 and the second T-block 410 are internally fitted with a connecting rod 411, which is threadedly connected to the first T-block 49 and the second T-block 410. The design of the first T-block 49, the second T-block 410, and the connecting rod 411 improves the installation stability and maintenance convenience of the chain. Specifically, the first T-block 49 and the second T-block 410 are respectively fixed to both ends of the second chain 47, serving as a connection and support. The connecting rod 411 is threaded to the first T-block 49 and the second T-block 410. This threaded connection not only ensures the firm fixation of both ends of the chain but also facilitates quick disassembly or adjustment of the chain tension when needed. In addition, the T-block design increases the contact area of ​​the connection parts, thereby improving the overall strength and stability of the structure and reducing the risk of loosening or deformation due to long-term use.

[0045] Furthermore, as a preferred embodiment of this utility model and not a limitation, a gear 23 is installed at one end of the rotating shaft 21, and a first chain 24 is sleeved on the gear 23. A gear shaft 25 is installed at one end of one of the rotating shafts 21, and the first motor 26 is drivenly connected to the gear shaft 25. A plurality of rotating wheels 22, made of plastic, are sleeved on the rotating shaft 21. The combined use of the gear 23, the first chain 24, and the gear shaft 25 ensures that the rotating shaft 21 can drive the glass sheet forward smoothly and efficiently. Specifically, a gear 23 is installed at one end of each rotating shaft 21, and these gears 23 are interconnected by the first chain 24. A gear shaft 25 is also installed at one end of one of the rotating shafts 21, and this gear shaft 25 is drivenly connected to the first motor 26, thereby providing a power source for the entire feeding mechanism. When the first motor 26 starts, it drives the corresponding gear 23 to rotate through the gear shaft 25, and then transmits power to other gears 23 and rotating shafts 21 through the first chain 24, so that all rotating shafts 21 rotate synchronously. In addition, the rotating shaft 21 is fitted with several plastic rollers 22. The use of plastic rollers 22 not only helps to reduce the risk of scratches or damage to the surface of the glass, but also ensures that the glass can move stably on the rotating shaft 21 through its friction.

[0046] Example 1:

[0047] This utility model proposes a glass sheet storage device, including a frame 1, wherein a feeding mechanism 2, a top feeding mechanism 3 and at least one lifting mechanism 4 are installed in the frame 1.

[0048] The feeding mechanism 2 includes at least one rotating shaft 21, which is rotatably connected to the frame 1. The rotating shaft 21 is used to transport glass sheets. The feeding mechanism 2 includes a first motor 26, which is used to provide power for the rotation of the rotating shaft 21.

[0049] The top material mechanism 3 includes at least one crossbar 31, and the crossbar 31 is equipped with several top material components 32, which have the function of extending and retracting vertically.

[0050] The lifting mechanism 4 includes a second motor 42 and a second chain 47. The second motor 42 is provided with an upper gear set and a lower gear set on both sides. The upper gear set and the lower gear set are connected by transmission through the second chain 47. The second motor 42 is used to provide rotational power for the upper gear set or the lower gear set. The second chain 47 is equipped with at least one material support rod 48, which is used to support the glass sheet.

[0051] This glass sheet storage device achieves efficient storage and retrieval of glass sheets through the coordinated action of a feeding mechanism 2, a top-loading mechanism 3, and a lifting mechanism 4. In use, the feeding mechanism 2 is first activated, and the first motor 26 drives the rotating shaft 21 to rotate. The operator places the glass sheet onto the rotating shaft 21, allowing it to enter the frame 1 and position itself above the support rod 48 as the shaft rotates. When the lifting mechanism 4 is activated, the support rod 48 lifts the glass sheet. With multiple support rods 48 in the lifting mechanism 4, the frame 1 can store multiple layers of glass sheets, and each support rod 48 can hold multiple glass sheets. When multiple layers of glass sheets need to be stored, the lifting mechanism 4 is activated, and the second motor 42 drives the second chain 47 between the upper and lower gear sets, causing the support rod 48 to rise or fall to a designated position to support different layers of glass sheets. When taking glass sheets, start from the bottom layer. When a glass sheet from the bottom layer needs to be taken, the top material mechanism 3 can be activated. The top material 32 lifts the glass sheet that does not need to be taken, so that it does not contact the rotating shaft 21, leaving only the glass sheet that needs to be taken in contact with the rotating shaft 21. At this time, the feeding mechanism 2 can be activated to output the required glass sheet from the frame 1.

[0052] This invention provides a storage solution that allows for the individual removal of desired glass sheets without affecting other glass sheets, overcoming the limitation of traditional glass storage devices that can only output entire layers of glass sheets. Furthermore, because the device can support simultaneous storage of multiple layers and multiple glass sheets, it significantly improves space utilization. By precisely controlling the movement of each component, users can flexibly access specific glass sheets according to actual needs, greatly enhancing operational convenience and work efficiency, making it suitable for glass product management environments of various sizes.

[0053] The top-loading component 32 includes a cylinder 323. A first L-shaped plate 324 is mounted on one end of the cylinder 323. A second L-shaped plate 327 is mounted on one side of the first L-shaped plate 324. A cylinder 329 is mounted on the top of the second L-shaped plate 327. A ball bearing 3210 is mounted on one end of the cylinder 329 and is rotatably connected to the cylinder 329. A base plate 321 is mounted on the bottom of the cylinder 323. A first through groove 322 is formed in the base plate 321. A second through groove 328 is formed in the second L-shaped plate 327. A lead screw 325 is slidably disposed in the second through groove 328. One end of the lead screw 325 is fixedly connected to the first L-shaped plate 324. A nut 326 is sleeved on the lead screw 325 and is threadedly connected to the lead screw 325. A first bolt 3211 is sleeved on the top of the second L-shaped plate 327 and is threadedly connected to the cylinder 329. Cylinder 323 serves as the power source, driving the first L-shaped plate 324 to move up and down. The connection between the first L-shaped plate 324 and the second L-shaped plate 327, along with the cylinder 329, together constitute a fine-tunable robotic arm structure. A lead screw 325 passes through the second through slot 328 and is fixedly connected to the first L-shaped plate 324. A nut 326 is fitted over the lead screw 325 and connected by threads to precisely adjust the position of the second L-shaped plate 327. Specifically, by sliding the second L-shaped plate 327 up and down and tightening the nut 326, the position of the second L-shaped plate 327 can be stably adjusted. Furthermore, since the cylinder 329 is connected to the second L-shaped plate 327 by the first bolt 3211, when the ball bearing 3210 is damaged, the cylinder 329 and its ball bearing 3210 can be quickly replaced simply by disconnecting the threaded connection, greatly facilitating equipment maintenance. The design of multiple through slots (such as the first through slot 322 and the second through slot 328) allows for multi-dimensional fine adjustment of the position of the top material 32, ensuring that the ball bearing 3210 can accurately contact and handle glass sheets of different sizes and shapes.

[0054] Both the upper and lower gear sets include a driving gear 44, a driven gear 45, and a tension gear 46. The driving gear 44, driven gear 45, and tension gear 46 all mesh with the second chain 47. The lifting mechanism 4 includes a power shaft 41 and a driven shaft 43. Both ends of the power shaft 41 are fixedly connected to the driving gear 44, and the second motor 42 is driven by the driving gear 44. Both ends of the driven shaft 43 are fixedly connected to the driven gear 45. The material support rod 48 has a third L-shaped plate 412 at both ends. One side of the third L-shaped plate 412 is fixedly connected to the second chain 47, and a second bolt 413 is fitted inside the third L-shaped plate 412, threadedly connected to the material support rod 48. Through the cooperation of the upper and lower gear sets with the second chain 47, the smooth lifting and lowering of the material support rod 48 is achieved. Specifically, the two ends of the power shaft 41 are fixedly connected to the driving gear 44, and the second motor 42 drives the driving gear 44 to rotate, thereby driving the second chain 47 to move. Driven gears 45 are fixedly connected to both ends of driven shaft 43 to support the second chain 47 and ensure smooth transmission. Tension gear 46 adjusts the chain tension to prevent transmission efficiency from being affected by chain slack. Support rod 48 is fixedly connected to the second chain 47 via a third L-shaped plate 412; when the second chain 47 moves, support rod 48 moves up and down accordingly. Furthermore, a second bolt 413 threads support rod 48 to the third L-shaped plate 412, allowing for quick replacement or reinstallation of support rod 48 if damaged or requiring repositioning. The coordinated operation of drive gear 44, driven gear 45, and tension gear 46 ensures efficient transmission of the second chain 47, enabling support rod 48 to smoothly carry and move the glass sheet, reducing the risk of glass sheet damage due to mechanical vibration or chain loosening.

[0055] A first T-block 49 is installed at one end of the second chain 47, and a second T-block 410 is installed at the other end. Both the first T-block 49 and the second T-block 410 have a connecting rod 411 internally fitted inside, and the connecting rod 411 is threadedly connected to the first T-block 49 and the second T-block 410. The design of the first T-block 49, the second T-block 410, and the connecting rod 411 improves the installation stability and maintenance convenience of the chain. Specifically, the first T-block 49 and the second T-block 410 are fixed to both ends of the second chain 47, serving as a connection and support. The connecting rod 411 is threaded to the first T-block 49 and the second T-block 410. This threaded connection not only ensures the secure fixing of both ends of the chain but also facilitates quick disassembly or adjustment of the chain tension when needed. Furthermore, the T-block design increases the contact area of ​​the connection points, thereby improving the overall structural strength and stability and reducing the risk of loosening or deformation due to long-term use.

[0056] A gear 23 is mounted on one end of a rotating shaft 21, and a first chain 24 is fitted around the gear 23. A gear shaft 25 is mounted on one end of one rotating shaft 21, and a first motor 26 is connected to the gear shaft 25. Several plastic rollers 22 are fitted around the rotating shaft 21. The combination of the gear 23, the first chain 24, and the gear shaft 25 ensures that the rotating shaft 21 can smoothly and efficiently drive the glass sheet forward. Specifically, each rotating shaft 21 has a gear 23 mounted on one end, and these gears 23 are interconnected via the first chain 24. A gear shaft 25 is also mounted on one end of one rotating shaft 21, and this gear shaft 25 is connected to the first motor 26, thus providing a power source for the entire feeding mechanism. When the first motor 26 starts, it drives the corresponding gear 23 to rotate via the gear shaft 25, and then transmits power to the other gears 23 and rotating shafts 21 via the first chain 24, causing all rotating shafts 21 to rotate synchronously. Furthermore, several plastic rollers 22 are fitted around the rotating shaft 21. The plastic-made roller 22 not only helps reduce the risk of scratches or damage to the glass surface, but also ensures that the glass can move stably on the rotating shaft 21 through its friction.

[0057] Specifically, the working principle of this utility model is as follows:

[0058] This glass sheet storage device achieves efficient and precise glass sheet storage and retrieval through the coordinated action of the feeding mechanism 2, the top-loading mechanism 3, and the lifting mechanism 4. First, the first motor 26 in the feeding mechanism 2 is activated, driving the rotating shaft 21 to rotate. The operator places the glass sheet between the plastic rollers 22 on the rotating shaft 21. Utilizing a power transmission system composed of gears 23, a first chain 24, and a gear shaft 25, the glass sheet smoothly enters the frame 1 and accurately stops above the support rod 48. Once the top support rod 48 is full of glass sheets, the lifting mechanism 4 is activated, raising the support rod 48 of this layer and exposing the empty support rods 48 of the next layer to store more glass sheets. Throughout the process, the plastic rollers 22 not only reduce the risk of scratches on the glass sheet surface but also provide sufficient friction to ensure stable movement of the glass sheet.

[0059] When retrieving glass sheets, the principle of retrieving them layer by layer from the bottom must be followed. First, the position of the supporting rod 48 is adjusted by the lifting mechanism 4 to move the bottom layer (or the layer that needs to be cleared) to a height that is easy to operate. Then, the top material mechanism 3 is activated, and the cylinder 323 drives the first L-shaped plate 324 to move up and down. This, in turn, causes the rollers 3210 on the second L-shaped plate 327 and the cylinder 329 to move, lifting the non-target glass sheets so that they do not contact the rotating shaft 21, leaving only the glass sheets that need to be retrieved in contact with the rotating shaft 21. At this time, the feeding mechanism 2 is activated again, and the first motor 26 drives the rotating shaft 21 to rotate, outputting the target glass sheet outside the frame 1. The above process is repeated until all the glass sheets at the bottom layer are completely cleared, and then the glass sheets of the next layer are processed.

[0060] To ensure safe operation and ease of maintenance, the device incorporates several adjustable and easily maintainable key components. For example, the top material component 32 achieves precise position adjustment via a lead screw 325 and a nut 326, while the cylinder 329 can be quickly replaced using the first bolt 3211, greatly facilitating equipment maintenance. Furthermore, the first T-blocks 49 and the second T-blocks 410 at both ends of the second chain 47 are securely fixed by connecting rods 411, increasing the overall structural strength and stability. These designs not only improve the operational flexibility and reliability of the equipment but also reduce maintenance costs, making the entire system more suitable for glass product management environments of various sizes.

[0061] In summary, this invention solves the problem that traditional glass storage devices only have a single storage function, and each time a glass sheet is taken out, the entire layer of glass sheets is output, making it impossible for the user to take out the desired glass sheet individually.

[0062] It should be understood that the terms "first," "second," etc., are used in this utility model to describe various information, but this information should not be limited to these terms. These terms are only used to distinguish information of the same type from each other. For example, without departing from the scope of this utility model, "first" information can also be referred to as "second" information, and similarly, "second" information can also be referred to as "first" information. In addition, the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0063] The above description is the preferred embodiment of this utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of this utility model, and these improvements and modifications are also considered to be within the protection scope of this utility model.

Claims

1. A glass slide storage device, comprising a frame (1), characterized in that, The frame (1) shown is equipped with a feeding mechanism (2), a top material mechanism (3) and at least one lifting mechanism (4). The feeding mechanism (2) includes at least one rotating shaft (21), which is rotatably connected to the frame (1) and is used to transport glass sheets; The top material mechanism (3) includes at least one crossbar (31), and the crossbar (31) is equipped with a plurality of top material components (32), which have the function of extending and retracting vertically; The lifting mechanism (4) includes a second chain (47) on which at least one support rod (48) is mounted, the support rod being used to support the glass sheet.

2. The glass slide storage device according to claim 1, characterized in that, The top material component (32) includes a cylinder (323), one end of which is equipped with a first L-shaped plate (324), a second L-shaped plate (327) is installed on one side of the first L-shaped plate (324), a cylinder (329) is installed on the top of the second L-shaped plate (327), and a ball bearing (3210) is installed at one end of the cylinder (329), and the ball bearing (3210) is rotatably connected to the cylinder (329).

3. A glass slide storage device according to claim 2, characterized in that, The cylinder (323) is equipped with a base plate (321) at the bottom. The base plate (321) has a first through groove (322). The second L-shaped plate (327) has a second through groove (328). A lead screw (325) is slidably arranged in the second through groove (328). One end of the lead screw (325) is fixedly connected to the first L-shaped plate (324). A nut (326) is sleeved on the lead screw (325). The nut (326) is threadedly connected to the lead screw (325).

4. A glass slide storage device according to claim 3, characterized in that, The top inner sleeve of the second L-shaped plate (327) is provided with a first bolt (3211), which is threadedly connected to the cylinder.

5. A glass slide storage device according to claim 1, characterized in that, The lifting mechanism (4) includes a second motor (42). An upper gear set and a lower gear set are provided on both sides of the second motor (42). The upper gear set and the lower gear set are connected by a second chain (47). The second motor (42) is used to provide rotational power for the upper gear set or the lower gear set. The upper gear set and the lower gear set each include a driving gear (44), a driven gear (45), and a tension gear (46). The driving gear (44), the driven gear (45), and the tension gear (46) all mesh with the second chain (47).

6. A glass slide storage device according to claim 5, characterized in that, The lifting mechanism (4) includes a power shaft (41) and a driven shaft (43). The two ends of the power shaft (41) are fixedly connected to the drive gear (44). The second motor (42) is drivenly connected to the drive gear (44). The two ends of the driven shaft (43) are fixedly connected to the driven gear (45).

7. A glass slide storage device according to claim 1, characterized in that, Both ends of the material support rod (48) are provided with a third L-shaped plate (412). One side of the third L-shaped plate (412) is fixedly connected to the second chain (47). A second bolt (413) is sleeved inside the third L-shaped plate (412). The second bolt (413) is threadedly connected to the material support rod (48).

8. A glass slide storage device according to claim 4, characterized in that, One end of the second chain (47) is equipped with a first T-block (49), and the other end of the second chain (47) is equipped with a second T-block (410). Both the first T-block (49) and the second T-block (410) are fitted with a connecting rod (411), and the connecting rod (411) is threadedly connected to the first T-block (49) and the second T-block (410).

9. A glass slide storage device according to claim 1, characterized in that, The feeding mechanism (2) includes a first motor (26), which provides power for the rotation of the rotating shaft (21). A gear (23) is installed at one end of the rotating shaft (21), and a first chain (24) is sleeved on the gear (23). A gear shaft (25) is installed at one end of one of the rotating shafts (21), and the first motor (26) is connected to the gear shaft (25) in a transmission connection.

10. A glass slide storage device according to claim 1, characterized in that, The rotating shaft (21) is fitted with a plurality of rotating wheels (22), the rotating wheels (22) being made of plastic.