Glass stacking and warehousing system

By introducing a V-shaped clamping structure, electric push rod, and bevel gear system into the glass stacking storage system, the problems of glass sliding and collision damage during transportation have been solved, achieving stable and adaptive storage.

CN224241747UActive Publication Date: 2026-05-15SHAHE YIRAN GLASS PRODUCTS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHAHE YIRAN GLASS PRODUCTS CO LTD
Filing Date
2025-04-21
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Traditional glass stacking storage systems are prone to sliding or tipping over during transportation or in vibrating environments, and the edges of the glass are easily in contact with metal slots, leading to collision damage or stress concentration.

Method used

A V-shaped clamping structure consisting of slot one and slot two is designed, rubber pad one and rubber pad two are used to prevent slippage, the electric push rod adjusts the height to adapt to different glass sizes, the rotating rod and bevel gear system facilitate movement and fixation, and the lead screw motor and fluid medium enhance the clamping force.

Benefits of technology

It effectively prevents glass from sliding laterally, reduces breakage rate, adapts to the storage of glass of different specifications, and improves transportation stability and storage safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a glass stacking warehousing system which comprises a base, shells are welded to the outer walls of the two sides of the top of the base, electric push rods are installed in the shells through bolts, upper limiting assemblies are installed at the output ends of the two electric push rods through bolts, and a plurality of first clamping grooves are formed in the outer walls of the two sides of the top of the base. The upper limiting assembly comprises a top seat, and second clamping grooves are formed in the outer walls of the two sides of the bottom of the top seat correspondingly. The first clamping groove and the second clamping groove can form a V-shaped clamping structure, when glass is placed on the system, the self-weight component force of the glass can be converted into lateral clamping force, the system is prevented from transversely sliding, meanwhile, the first rubber pad and the second rubber pad can prevent the glass from directly making contact with the first clamping groove and the second clamping groove, and the service life of the system is prolonged. And the rubber pad I and the rubber pad II can absorb vibration energy, so that stress concentration at the edge of the glass is avoided, and the breakage rate of the glass is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of glass stacking and storage technology, and specifically to a glass stacking and storage system. Background Technology

[0002] A glass stacking storage system is a device specifically designed for glass storage, aiming to achieve standardized, safe, and efficient glass storage. This system effectively improves the standardization and security of glass storage, enables rapid access, and enhances the flexibility and convenience of the system through the design of slide rails and casters. It is suitable for glass deep processing enterprises and other occasions that require efficient management of glass storage.

[0003] A glass stacking and storage system, as described in application number CN202421301540.9 and authorized announcement date 20250121, includes a support device and a fixing device. The fixing device is mounted on the support device. The support device includes several pairs of slide rails, and each pair of slide rails has several support frames on its surface. Each support frame has sliders slidably connected to the slide rails around its bottom perimeter. The sliders are all fixedly installed at the bottom of the support frames. An inclined plate is fixedly installed on the top left side of each support frame. The fixing device includes placement plates fixedly installed at the front and rear ends of the top of the support frames. Each placement plate has several sliding plates slidably connected to its surface. Limit plates are fixedly installed at the ends of both placement plates away from the inclined plates. This glass stacking and storage system facilitates the stacking and fixing of glass while allowing for easy movement and transfer of the entire mounting bracket, thus providing convenience for users.

[0004] While glass stacking storage systems can store raw glass sheets, traditional glass stacking storage systems are prone to sliding or tipping over when the glass is stacked, which exacerbates the risk, especially in transportation or vibration environments. Furthermore, the glass edges directly contact the metal slots, which can easily lead to collision damage or stress concentration. Therefore, there is an urgent need to design a glass stacking storage system to solve the above problems. Utility Model Content

[0005] The purpose of this invention is to provide a glass stacking storage system to address the aforementioned shortcomings of the prior art.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] A glass stacking storage system includes a base. The top two outer walls of the base are welded with shells, and electric push rods are bolted inside the shells. Upper limit components are bolted to the output ends of two electric push rods. Multiple slots are formed on both sides of the top outer walls of the base, with two sets of slots mirror-arranged. A rubber pad is adhered to one side of the inner wall of each slot. The upper limit component includes a top seat. Two slots are formed on both sides of the bottom outer walls of the top seat, with two sets of slots mirror-arranged. A rubber pad is adhered to one side of the inner wall of each slot.

[0008] Furthermore, the base has installation areas on both sides of its bottom outer wall, and a square cylindrical shell is installed inside the installation area by bolts.

[0009] Furthermore, a slider is slidably installed inside the square tube shell, and universal wheels are bolted to the outer walls on both sides of the bottom of the slider.

[0010] Furthermore, a screw is installed at the top center of the inner wall of the installation area via a bearing, and one end of the screw extends into the inside of the square tube shell. The screw and the slider are connected by a thread, and a bevel gear is installed at the top of the screw via a flat key.

[0011] Furthermore, rotating rods are mounted on both outer walls of the base via bearings, with one end of the rotating rod located inside the mounting area. A second bevel gear is mounted on one end of the rotating rod via a flat key, and the second bevel gear meshes with the first bevel gear.

[0012] Furthermore, a housing is bolted to one side of the top of the top seat, and a lead screw motor is bolted to one side of the housing. The output end of the lead screw motor is located inside the housing. A piston plate is slidably connected inside the housing, and the piston plate is threadedly connected to the output end of the lead screw motor. The housing is filled with a fluid medium that is in contact with the piston plate.

[0013] Furthermore, the top seat has a cavity, and the inner wall of the second slot has an installation groove on one side. A piston cylinder is installed inside the installation groove by bolts. The piston cylinder is connected to the cavity through a pipe. A piston rod is slidably installed inside the piston cylinder. The fluid medium fills the cavity and the piston cylinder.

[0014] In the above technical solution, the glass stacking storage system provided by this utility model has the following beneficial effects:

[0015] By using the set slot 1, rubber pad 1, slot 2, and rubber pad 2, slot 1 and slot 2 can form a "V" shaped clamping structure. When glass is placed on the system, the glass's own weight is converted into a lateral clamping force, preventing the system from sliding laterally. At the same time, rubber pad 1 and rubber pad 2 can prevent the glass from directly contacting slot 1 and slot 2, and rubber pad 1 and rubber pad 2 can absorb vibration energy, avoid stress concentration at the glass edge, and reduce the glass breakage rate.

[0016] When using this system to store glass, the electric push rods can be activated according to the glass specifications. The electric push rods will quickly adjust the height of the top mount, allowing the system to adapt to the storage of glass of different specifications and be compatible with the differences in glass size in architectural, automotive and other scenarios.

[0017] The system is equipped with a rotating rod, bevel gear one, bevel gear two, a square tube shell, a slider, and casters. When the system needs to be moved, rotating the rotating rod drives bevel gear two to rotate bevel gear one. The screw pushes the slider down, and the casters contact the ground, putting the system into a moving state, making it easy for workers to move the system. Conversely, rotating the rod in the opposite direction raises the casters, and the base directly contacts the ground, switching to a fixed mode and improving the stability of the storage glass.

[0018] The system consists of a lead screw motor, housing, fluid medium, piston cylinder, piston rod, and cavity. When the lead screw motor is started, it drives the piston plate to compress the fluid medium inside the housing. The fluid medium is then transferred to the piston cylinder through the cavity. The piston rod is hydraulically pushed to apply pressure to the glass in the second slot, increasing the clamping force on the glass and preventing loosening due to transportation vibrations. This also prevents the glass from moving out of the system during transportation. Attached Figure Description

[0019] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.

[0020] Figure 1 This is a schematic diagram of the overall structure of an embodiment of a glass stacking storage system according to the present invention.

[0021] Figure 2 This is a schematic diagram of the base structure provided for an embodiment of a glass stacking storage system according to the present invention.

[0022] Figure 3 This is a schematic diagram of the upper limit component structure provided in an embodiment of a glass stacking storage system of this utility model.

[0023] Figure 4 This is a schematic diagram of the top seat and box shell structure provided in an embodiment of a glass stacking storage system of this utility model.

[0024] Figure 5 This invention provides an embodiment of a glass stacking storage system. Figure 4 Enlarged view of the structure of part A in the middle.

[0025] Explanation of reference numerals in the attached figures:

[0026] 1. Base; 2. Housing; 3. Electric push rod; 4. Upper limit assembly; 5. Slot 1; 6. Rubber pad 1; 7. Mounting area; 8. Caster wheel; 9. Slider; 10. Square tube shell; 11. Screw; 12. Bevel gear 1; 13. Rotating rod; 14. Bevel gear 2; 15. Top seat; 16. Slot 2; 17. Rubber pad 2; 18. Housing; 19. Lead screw motor; 20. Fluid medium; 21. Piston plate; 22. Mounting groove; 23. Piston cylinder; 24. Piston rod; 25. Cavity. Detailed Implementation

[0027] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.

[0028] like Figure 1-5 As shown, the glass stacking storage system provided in this embodiment of the utility model includes a base 1. The outer walls of the top two sides of the base 1 are welded with shells 2, and electric push rods 3 are installed inside the shells 2 by bolts. The output ends of the two electric push rods 3 are installed with upper limit components 4 by bolts. Multiple slots 5 are opened on the outer walls of the top two sides of the base 1, and the two sets of slots 5 are mirror images of each other. A rubber pad 6 is adhered to one side of the inner wall of the slot 5. The upper limit component 4 includes a top seat 15. The outer walls of the bottom two sides of the top seat 15 are opened with slots 16, and the two sets of slots 16 are mirror images of each other. The slots 16 and slots 5 are aligned one-to-one at an inclination of 15°. A rubber pad 17 is adhered to one side of the inner wall of the slots 16.

[0029] Specifically, in this embodiment, the system includes a base 1, with housings 2 welded to the outer walls of both sides of the top of the base 1. Electric push rods 3 are bolted inside the housings 2. The electric push rods 3 are preferably of the THK model. Upper limit assembly 4 is bolted to the output ends of the two electric push rods 3. Multiple slots 5 are formed on both sides of the top of the base 1, with two sets of slots 5 mirror-shaped. A rubber pad 6 is adhered to one side of the inner wall of each slot 5. The upper limit assembly 4 includes a top seat 15, with slots formed on both sides of the bottom of the top seat 15. Slots 1 and 2 are inclined structures with an angle of 15°. When the electric push rod 3 is activated, it pushes the top seat 15 down, changing the distance between slot 2 and slot 1 to meet the storage needs of different glass sizes. The two sets of slots 2 and 2 are mirror images of each other. A rubber pad 2 and 17 are attached to one side of the inner wall of slot 2 and 2. When the glass plate is inserted into slots 1 and 2 and 2 of the base 1, the inclined design can guide the glass to automatically fit the rubber pad 1 and 2 and 17.

[0030] This utility model provides a glass stacking and storage system. The first slot 5 and the second slot 16 can form a "V" shaped clamping structure. When glass is placed on the system, the weight of the glass is converted into a lateral clamping force to prevent the system from sliding laterally. At the same time, the first rubber pad 6 and the second rubber pad 17 can prevent the glass from directly contacting the first slot 5 and the second slot 16. Furthermore, the first rubber pad 6 and the second rubber pad 17 can absorb vibration energy, avoid stress concentration at the glass edges, and reduce the glass breakage rate.

[0031] In one embodiment provided by this utility model, such as Figure 2As shown, mounting areas 7 are provided on both sides of the bottom outer wall of the base 1. A square cylindrical shell 10 is bolted to the inside of the mounting area 7. The inner dimensions of the square cylindrical shell 10 are 50×50×200mm. A guide rail structure guides the sliding of the slider 9. The slider 9 is slidably mounted inside the square cylindrical shell 10, with a clearance fit between the slider 9 and the square cylindrical shell 10. Universal wheels 8 are bolted to both sides of the bottom outer wall of the slider 9. The universal wheels 8 are 4-inch polyurethane wheels with brakes and a load capacity of 200kg / each. A screw 11 is mounted at the top center of the inner wall of the mounting area 7 via a bearing. The screw 11 has an M20 trapezoidal thread, a length of 250mm, and is made of 45# steel with heat treatment. One end of the screw 11 extends into the inside of the square cylindrical shell 10. The screw 11 is threadedly connected to the slider 9. A bevel gear 12 is mounted on the top of the screw 11 via a flat key. The bevel gear 12 has a module of 3 and 24 teeth, meshing with a bevel gear 14 for transmission. The outer walls of both sides of the base 1... Each component is equipped with a rotating rod 13 mounted via bearings. The rotating rod 13 has a diameter of 20mm and a length of 400mm, with a hexagonal groove at its end. One end of the rotating rod 13 is located inside the installation area 7. A bevel gear 14 is mounted on one end of the rotating rod 13 via a flat key. The bevel gear 14 has a module of 3 and 12 teeth, forming a 1:2 reduction ratio with the bevel gear 12. When moving the storage system, the rotating rod 13 can be rotated, which will drive the bevel gear 14 to rotate the bevel gear 12. The screw 11 will push the slider 9 downward, and the caster wheel 8 will contact the ground, putting the system into a moving state. Subsequently, the worker can push the base 1 to move it to the appropriate position. When the appropriate position is reached, the rod 13 can be rotated in the opposite direction, which will cause the screw 11 to lift the caster wheel 8, allowing the base 1 to directly contact the ground, switching to the fixed mode, improving the stability of the storage glass. The bevel gear 14 and the bevel gear 12 mesh with each other.

[0032] In another embodiment provided by this utility model, such as Figure 3-5As shown, a housing 18 is bolted to one side of the outer wall of the top seat 15, and a screw motor 19 is bolted to one side of the outer wall of the housing 18. The screw motor 19 is preferably a HIWINEK08 model. The output end of the screw motor 19 is located inside the housing 18. A piston plate 21 is slidably connected inside the housing 18, and the piston plate 21 is threadedly connected to the output end of the screw motor 19. The housing 18 is filled with a fluid medium 20 that contacts the piston plate 21. The fluid medium 20 is flame-retardant hydraulic oil, with a filling pressure of 0.5-2 MPa. The top seat 15 has a cavity 25, which is a hydraulic channel inside the top seat 15 with a diameter of 10 mm, connecting to the housing 18. A mounting groove 22 is opened on one side of the inner wall of the slot 2 16. A piston cylinder 23 is bolted inside. The piston cylinder 23 has an inner diameter of 20mm, a stroke of 50mm, and is made of 304 stainless steel. The piston cylinder 23 is connected to the cavity 25 through a pipe. A piston rod 24 with a diameter of 18mm is slidably installed inside the piston cylinder 23. The piston rod 24 has a polyurethane pressure head at the end, which contacts the glass surface and controls the start of the control screw motor 19. The control screw motor 19 drives the piston plate 21 to compress the fluid medium 20 in the housing 18. The fluid medium 20 is transferred to the piston cylinder 23 through the cavity 25. Then, the piston rod 24 is hydraulically pushed to apply pressure to the glass inside the second slot 16, which enhances the clamping force on the glass and prevents the glass from loosening due to transportation vibration or point vibration. The fluid medium 20 fills the cavity 25 and the piston cylinder 23. Example

[0033] A glass stacking storage system includes a base 1. A housing 2 is welded to the outer walls of both sides of the top of the base 1. An electric push rod 3 is bolted inside the housing 2. The electric push rod 3 is preferably of the THK model. An upper limit assembly 4 is bolted to the output ends of two electric push rods 3. Multiple slots 5 are formed on both sides of the top of the base 1, with two sets of slots 5 mirror-shaped. A rubber pad 6 is adhered to one side of the inner wall of each slot 5. The upper limit assembly 4 includes a top seat 15. A locking mechanism is formed on both sides of the bottom of the top seat 15. Slot 2 16, slot 1 5, and slot 2 16 are inclined structures with an inclination angle of 15°. When the electric push rod 3 is activated, it will push the top seat 15 down, changing the distance between slot 2 16 and slot 1 5 to meet the storage needs of different glass specifications. The two sets of slot 2 16 are mirror images of each other. Rubber pad 2 17 is attached to one side of the inner wall of slot 2 16. When the glass plate is inserted into slot 1 5 and slot 2 16 of the base 1, the inclined design can guide the glass to automatically fit the rubber pad 1 6 and rubber pad 2 17. Example

[0034] This embodiment further defines the features of Embodiment 1. Installation areas 7 are provided on both sides of the bottom outer wall of the base 1. A square cylindrical shell 10 is bolted to the interior of the installation area 7. The inner dimensions of the square cylindrical shell 10 are 50×50×200mm. A guide rail structure guides the sliding of the slider 9. The slider 9 is slidably installed inside the square cylindrical shell 10, with a clearance fit between the slider 9 and the square cylindrical shell 10. Universal wheels 8 are bolted to both sides of the bottom outer wall of the slider 9. The universal wheels 8 are 4-inch polyurethane wheels with brakes and a load capacity of 200kg each. A bearing is used to install a screw at the top center of the inner wall of the installation area 7. Rod 11, screw 11 with M20 trapezoidal thread, 250mm in length, made of 45# steel with heat treatment, one end of screw 11 extends into the square tube shell 10, and screw 11 is threadedly connected to slider 9. A bevel gear 12 is mounted on the top of screw 11 via a flat key. Bevel gear 12 has a module of 3 and 24 teeth, meshing with bevel gear 14 for transmission. Rotating rods 13 are mounted on both outer walls of the base 1 via bearings. Rotating rods 13 have a diameter of 20mm, a length of 400mm, and a hexagonal groove at the end. One end of rotating rod 13 is located inside the installation area 7, and a bevel gear is mounted on the other end of rotating rod 13 via a flat key. Wheel 2 14, bevel gear 2 14 with a module of 3 and 12 teeth, forms a 1:2 reduction ratio with bevel gear 1 12. When moving the storage system, rotating rod 13 can be used to drive bevel gear 2 14 to rotate bevel gear 1 12. Screw 11 will push slider 9 downward, and caster wheel 8 will contact the ground, putting the system into a moving state. Subsequently, workers can push base 1 to move it to the appropriate position. When it reaches the appropriate position, rotating rod 13 in the opposite direction will cause screw 11 to lift caster wheel 8, allowing base 1 to directly contact the ground, switching to the fixed mode and raising the storage glass. The stability is ensured, and bevel gear 14 meshes with bevel gear 12; a housing 18 is bolted to one side of the top of the top seat 15, and a screw motor 19 is bolted to one side of the housing 18. The preferred model of the screw motor 19 is HIWINEK08. The output end of the screw motor 19 is located inside the housing 18. A piston plate 21 is slidably connected inside the housing 18, and the piston plate 21 is threadedly connected to the output end of the screw motor 19. The housing 18 is filled with a fluid medium 20 that is in contact with the piston plate 21. The fluid medium 20 is flame-retardant hydraulic oil, and the filling pressure is 0.The pressure is 5-2MPa. The top seat 15 has a cavity 25, which is a hydraulic channel inside the top seat 15. The cavity 25 has a diameter of 10mm and connects to the housing 18. The inner wall of the second slot 16 has an installation groove 22, and a piston cylinder 23 is installed inside the installation groove 22 by bolts. The piston cylinder 23 has an inner diameter of 20mm, a stroke of 50mm, and is made of 304 stainless steel. The piston cylinder 23 is connected to the cavity 25 through a pipe. A piston rod 24 is slidably installed inside the piston cylinder 23. The piston rod 24 has a diameter of 18mm and a polyurethane pressure head at the end, which contacts the glass surface. The control screw motor 19 starts and drives the piston plate 21 to compress the fluid medium 20 in the housing 18. The fluid medium 20 is transferred to the piston cylinder 23 through the cavity 25. Then, the piston rod 24 is pushed by hydraulic pressure to apply pressure to the glass inside the second slot 16, which enhances the clamping force on the glass and prevents the glass from loosening due to transportation vibration or point vibration. The fluid medium 20 fills the cavity 25 and the piston cylinder 23. .

[0035] Working principle: When the storage system needs to be moved, the rotating rod 13 can be rotated. The rotating rod 13 will drive the second bevel gear 14 to rotate the first bevel gear 12. The screw 11 will push the slider 9 down, and the universal wheel 8 will contact the ground, putting the system into a moving state. Subsequently, the worker can push the base 1 to move it to the appropriate position. When the appropriate position is reached, the rod 13 can be rotated in the opposite direction, which will cause the screw 11 to lift the universal wheel 8, allowing the base 1 to directly contact the ground, switching to the fixed mode and improving the stability of the stored glass. When storing glass later, the electric push rod 3 can be activated first. The electric push rod 3 will push the top seat 15 down, causing the lock to... The distance between slot 2 16 and slot 1 5 is changed to meet the storage needs of glass of different specifications. Subsequently, the glass plate can be inserted into the slot 1 5 and slot 2 16 of the base 1. The inclined design can guide the glass to automatically fit the rubber pad 1 6 and rubber pad 2 17. Then, the control screw motor 19 is started. The screw motor 19 drives the piston plate 21 to compress the fluid medium 20 in the housing 18. The fluid medium 20 is transmitted to the piston cylinder 23 through the cavity 25. Then, the piston rod 24 is pushed by hydraulic pressure to apply pressure to the glass inside slot 2 16, which enhances the clamping force on the glass and prevents the glass from loosening due to transportation vibration or point vibration.

[0036] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A glass stacking storage system, comprising a base (1), characterized in that, The base (1) has a shell (2) welded to the outer walls on both sides of the top, and an electric push rod (3) is installed inside the shell (2) by bolts. The output ends of the two electric push rods (3) are installed with an upper limit assembly (4) by bolts. The outer walls on both sides of the top of the base (1) are provided with multiple slots (5), and the two sets of slots (5) are mirror images of each other. A rubber pad (6) is glued to one side of the inner wall of the slot (5). The upper limit assembly (4) includes a top seat (15). The outer walls on both sides of the bottom of the top seat (15) are provided with slots (16), and the two sets of slots (16) are mirror images of each other. A rubber pad (17) is glued to one side of the inner wall of the slot (16). The base (1) has installation areas (7) on both sides of its bottom outer wall, and a square tube shell (10) is installed inside the installation area (7) by bolts. The square tube shell (10) is slidably installed with a slider (9), and the bottom two outer walls of the slider (9) are all equipped with casters (8) by bolts. A screw (11) is installed at the top center of the inner wall of the installation area (7) via a bearing, and one end of the screw (11) extends into the inside of the square tube shell (10). The screw (11) and the slider (9) are connected by a thread, and a bevel gear (12) is installed at the top of the screw (11) via a flat key. The base (1) has rotating rods (13) installed on both outer walls of the base (1) via bearings. One end of the rotating rod (13) is located inside the installation area (7). One end of the rotating rod (13) is fitted with a bevel gear (14) via a flat key. The bevel gear (14) meshes with the bevel gear (12). The top of the top seat (15) is fitted with a housing (18) by bolts on one side of the outer wall, and a screw motor (19) is fitted with a lead screw motor (19) by bolts on one side of the outer wall of the housing (18). The output end of the lead screw motor (19) is located inside the housing (18). A piston plate (21) is slidably connected inside the housing (18), and the piston plate (21) is threadedly connected to the output end of the lead screw motor (19). The housing (18) is filled with a fluid medium (20) that is in contact with the piston plate (21). The top seat (15) is provided with a cavity (25), and the inner wall of the second slot (16) is provided with an installation groove (22). A piston cylinder (23) is installed inside the installation groove (22) by bolts. The piston cylinder (23) is connected to the cavity (25) through a pipe. A piston rod (24) is slidably installed inside the piston cylinder (23). The fluid medium (20) fills the cavity (25) and the piston cylinder (23).