Shockproof and antiskid packaging equipment for liquid crystal glass substrate

By using a U-shaped plate structure and the synergistic effect of multiple components, the problem of slippage and breakage during the transportation of LCD glass substrates is solved, achieving all-round shockproof and anti-slip protection, and improving transportation stability and space utilization.

CN122009671APending Publication Date: 2026-05-12RAINBOW (HEFEI) LIQUID CRYSTAL GLASS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
RAINBOW (HEFEI) LIQUID CRYSTAL GLASS CO LTD
Filing Date
2026-02-27
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing LCD glass substrate packaging equipment cannot achieve precise and uniform fastening during transportation, which makes the glass substrates prone to slippage, collision and breakage, resulting in serious material and economic losses.

Method used

The U-shaped plate structure combines storage components, pressure components, side pressure components, and support docking components. It absorbs vibration through a buffer plate, fixes the glass substrate with the side pressure components, prevents vertical movement with the pressure components, positions the component storage parts, and supports the component stacking device, thus achieving all-round protection.

Benefits of technology

It effectively prevents glass substrates from breaking and slipping during transportation, reduces surface scratches, improves transportation stability and space utilization, and protects the fragility of glass substrates.

✦ Generated by Eureka AI based on patent content.

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Abstract

The liquid crystal glass substrate shockproof and antiskid packaging equipment comprises a U-shaped plate, storage assemblies are installed on the top face of the U-shaped plate, a storage cavity is formed in the position, located between the storage assemblies, of the top face of the U-shaped plate, the two side pressing assemblies are connected through a downward pressing assembly, and positioning assemblies are installed on the two sides of the U-shaped plate correspondingly. A supporting butt joint assembly is installed on the bottom face of the U-shaped plate. The storage assembly comprises a bottom frame, the bottom frame is fixedly connected to the top face of the U-shaped plate, a storage cavity is formed in the middle of the U-shaped plate and located between the bottom frame, a storage plate is fixedly connected to the top face of the bottom frame, butt joint rods are fixedly connected to the periphery of the top face of the storage plate, and butt joint holes are formed in the top faces of the butt joint rods. The side pressing assembly comprises a translation component. Through mutual cooperation of the storage assembly, the downward pressing assembly, the side pressing assembly, the positioning assembly and the supporting butt joint assembly, glass packaging and storage can be achieved, and later transportation is facilitated.
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Description

Technical Field

[0001] This invention relates to the field of TFT-LCD liquid crystal glass substrate packaging technology, specifically to a shockproof and anti-slip packaging device for liquid crystal glass substrates. Background Technology

[0002] TFT-LCD glass substrates, as a key basic material in LCD manufacturing, possess physical characteristics such as large surface area, extremely thin thickness (typically less than 0.5 mm), and extremely high requirements for surface smoothness. The logistics chain from substrate manufacturers to panel manufacturers involves long-distance transportation, warehousing and stacking, and multiple loading and unloading processes. Due to the inherent brittleness and poor impact resistance of the glass substrate, it is highly susceptible to defects such as cracks, micro-cracks, or surface scratches caused by external vehicle vibrations, handling impacts, or relative displacement between components within the packaging during these processes. Such defects not only directly result in high material losses but also severely impact the yield of downstream panel products, leading to significant economic losses.

[0003] Currently, the packaging structures for LCD glass substrates commonly used in the industry are mostly based on simple designs using wooden or metal frames. These traditional packaging methods have the following drawbacks in long-term use:

[0004] For side-positioning of glass substrates within packaging boxes, current technology primarily relies on manual filling with materials such as foam blocks and wooden wedges. This method has significant drawbacks: First, the applied tightening force cannot be precisely and evenly controlled; too loose a force results in ineffective restraint, while too tight a force can cause localized stress concentration and damage to the glass. Second, under continuous vibration, the filler is prone to creep or displacement, leading to weakening or even failure of the tightening force. The direct consequence is that the glass substrates slide horizontally and collide with each other within the box, causing edge and corner damage or surface scratches, and in severe cases, glass breakage. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this invention provides a shockproof and anti-slip packaging device for liquid crystal glass substrates, solving the problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides the following technical solution:

[0007] A shockproof and anti-slip packaging device for liquid crystal glass substrates includes a U-shaped plate. A storage assembly is mounted on the top surface of the U-shaped plate. A storage cavity is formed on the top surface of the U-shaped plate between the storage assemblies, and a pressing assembly is stored within the storage cavity. Side pressing assemblies are mounted on the top surfaces of the storage assemblies, with a total of four sets of side pressing assemblies. Two sets of side pressing assemblies are connected via the pressing assembly. Positioning assemblies are mounted on both sides of the U-shaped plate, and a support docking assembly is mounted on the bottom surface of the U-shaped plate. The storage assembly includes a base frame, with the base frame fixedly connected to the top surface of the U-shaped plate. A storage cavity is formed in the middle of the U-shaped plate between the base frames, and a storage assembly is fixedly connected to the top surface of the base frame. The storage plate has connecting rods fixedly connected to its top surface around its perimeter. Connecting rods have connecting holes on their top surfaces. A first buffer plate is fixedly connected to the center of the top surface of the storage plate. A second buffer plate is fixedly connected to the top surface of the first buffer plate. Each of the first and second buffer plates has a mounting groove on one side. A total of eight mounting grooves are provided. Side-pressure components are installed within each mounting groove. Each side-pressure component includes a translation component. A translation component is installed on the top surface of the storage plate within the mounting groove. A total of eight translation components are provided. A first side-pressure component is slidably connected within every two groups of translation components. Second side-pressure components are installed at both ends of each first side-pressure component.

[0008] Furthermore, the translation component includes a translation track, the top surface of the storage plate is symmetrically and fixedly connected to the translation track, the top surface of the translation track is provided with a translation groove, and the bottom surface of the translation track is provided with adjustment holes at equal intervals, the adjustment holes communicating with the translation groove.

[0009] Furthermore, the first side-pressing component includes a long rod, with a second side-pressing component respectively provided at both ends of the long rod. The top surface of the long rod is provided with equally spaced pressure screw holes, and the bottom surface of the long rod is symmetrically and fixedly connected with a sliding block. The sliding block slides within a translation groove, and a locking rod is slidably connected within the sliding block. The top surface of the locking rod is fixedly connected with a paddle, and the bottom surface of the paddle, located between the sliding blocks, is fixedly connected with a locking damping rod.

[0010] Furthermore, the second side-pressing component includes a pressing screw, with pressing screws threaded to both ends of the long rod, a side plate rotatably connected to one end of the pressing screw, and a buffer pad fixedly connected to one side of the side plate.

[0011] Furthermore, the pressing assembly includes a first pressing component and a second pressing component. One end of the first pressing component is connected to the second pressing component. The first pressing component and the second pressing component are symmetrically mounted on the U-shaped plate. The first pressing component and the second pressing component are mounted on the long rod.

[0012] Furthermore, the first pressing component includes a first U-shaped block, a first fixing bolt installed inside the first U-shaped block, a first pressing rod fixedly connected to one side of the first U-shaped block, a first protective pad fixedly connected to the bottom surface of the first pressing rod, a first adjusting groove provided at one end of the first pressing rod, a first adjusting screw rotatably connected inside the first adjusting groove, a first extension rod threadedly connected to the surface of the first adjusting screw, and a T-shaped connecting block fixedly connected to one end of the first extension rod.

[0013] Furthermore, the second pressing component includes a second U-shaped block, a second fixing bolt installed inside the second U-shaped block, a second pressing rod fixedly connected to one side of the second U-shaped block, a second protective pad fixedly connected to the bottom surface of the second pressing rod, a second adjusting groove provided at one end of the second pressing rod, a second adjusting screw rotatably connected inside the second adjusting groove, and a second extension rod threadedly connected to the surface of the second adjusting screw.

[0014] Furthermore, the second pressing component also includes a T-slot, one end of the second extension rod is provided with a T-slot, and the T-shaped connecting block is inserted into the T-slot.

[0015] Furthermore, the positioning component includes an L-shaped positioning block, and L-shaped positioning blocks are fixedly connected to both sides of the U-shaped plate. A total of 4 sets of L-shaped positioning blocks are provided, and the top surface of the L-shaped positioning block is provided with fixing screw holes.

[0016] Furthermore, the support docking assembly includes support legs, and the bottom surface of the U-shaped plate is fixedly connected with support legs at equal intervals. A total of 4 sets of support legs are provided, and the bottom surface of the support legs is fixedly connected with plug rods.

[0017] This invention provides a shockproof and anti-slip packaging device for liquid crystal glass substrates. Compared with the prior art, it has the following advantages:

[0018] 1. By cooperating with the storage components, pressing components, side pressing components and supporting docking components, the glass substrate can be packaged, which facilitates subsequent transportation and avoids the glass substrate from breaking during transportation.

[0019] 2. Through the first and second buffer plates in the storage components, high-frequency vibrations can be absorbed, and the vibration energy from different frequencies of the transportation vehicle can be absorbed and dissipated more efficiently, effectively reducing the impact of violent up-and-down jolts on the glass.

[0020] 3. The glass substrate can be pressed down on top of the storage component by using the pressing component, which can prevent the glass substrate from shaking in the vertical direction during transportation.

[0021] 4. By using 4 sets of side-pressing components, it is possible to prevent the glass from moving in the left-right or front-back direction during transportation, which could cause the glass substrate to detach from the storage components.

[0022] 5. By cooperating with the storage cavity and the positioning component, the pressing component can be stored, thus preventing the pressing component from being lost during the return of the device;

[0023] 6. By cooperating with the supporting docking components, docking rods, and docking holes, multiple devices can be stacked, facilitating later transportation and reducing space waste. Attached Figure Description

[0024] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0025] Figure 1 An overall schematic diagram of the present invention is shown;

[0026] Figure 2 This diagram shows another perspective view of the overall invention;

[0027] Figure 3 A schematic diagram of the U-shaped plate of the present invention is shown;

[0028] Figure 4 The present invention is shown. Figure 3 Enlarged view of region A in the middle;

[0029] Figure 5 A partial cross-sectional schematic diagram of the present invention is shown;

[0030] Figure 6 A schematic diagram of the storage component of the present invention is shown;

[0031] Figure 7 A schematic diagram of the side-pressure assembly of the present invention is shown;

[0032] Figure 8 A partial cross-sectional schematic diagram of the side-pressure assembly of the present invention is shown;

[0033] Figure 9 A schematic diagram of the pressing component of the present invention is shown;

[0034] Figure 10 The present invention is shown. Figure 9 Enlarged view of region B in the middle;

[0035] Figure 11 The present invention is shown. Figure 9 Enlarged diagram of region C in the middle;

[0036] Figure 12 This diagram shows another perspective view of the pressing component of the present invention;

[0037] As shown in the figure:

[0038] 100. U-shaped plate;

[0039] 200. Storage components; 201. Base frame; 202. Storage plate; 203. Connecting rod; 204. Connecting hole; 205. First buffer plate; 206. Second buffer plate; 207. Mounting slot;

[0040] 300. Storage cavity;

[0041] 400. Pressing component; 401. First U-shaped block; 402. First fixing bolt; 403. First pressing rod; 404. First protective pad; 405. First adjusting groove; 406. First adjusting screw; 407. First extension rod; 408. T-shaped connecting block; 409. Second U-shaped block; 410. Second fixing bolt; 411. Second pressing rod; 412. Second protective pad; 413. Second adjusting groove; 414. Second adjusting screw; 415. Second extension rod; 416. T-shaped groove;

[0042] 500. Side pressure assembly; 501. Translation track; 502. Translation groove; 503. Adjustment hole; 504. Long rod; 505. Lower pressure screw hole; 506. Sliding block; 507. Locking rod; 508. Paddle; 509. Locking damping rod; 510. Pressing screw; 511. Side plate; 512. Buffer pad;

[0043] 600. Positioning component; 601. L-shaped positioning block; 602. Fixing screw hole;

[0044] 700, Support docking assembly; 701, Support leg; 702, Connecting rod. Detailed Implementation

[0045] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention are described clearly and completely. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0046] Combination Figures 1-12As shown, the present invention provides a shockproof and anti-slip packaging device for liquid crystal glass substrates, comprising a U-shaped plate 100, a storage assembly 200 mounted on the top surface of the U-shaped plate 100, a storage cavity 300 disposed on the top surface of the U-shaped plate 100 and between the storage assemblies 200, a pressing assembly 400 stored in the storage cavity 300, and four sets of side pressing assemblies 500 respectively mounted on the top surface of the storage assemblies 200, with two sets of side pressing assemblies 500 connected by the pressing assembly 400. Positioning assemblies 600 are mounted on both sides of the U-shaped plate 100, and a support docking assembly 700 is mounted on the bottom surface of the U-shaped plate 100. The storage assembly 200 includes a base frame 201, the base frame 201 is fixedly connected to the top surface of the U-shaped plate 100, and the storage cavity 300 is disposed in the middle of the U-shaped plate 100 and between the base frames 201. A storage plate 202 is fixedly connected to the top surface of the base frame 201. A connecting rod 203 is fixedly connected to the four sides of the top surface of the storage plate 202. A connecting hole 204 is provided on the top surface of the connecting rod 203. A first buffer plate 205 is fixedly connected to the middle of the top surface of the storage plate 202. A second buffer plate 206 is fixedly connected to the top surface of the first buffer plate 205. An installation groove 207 is provided on one side of the first buffer plate 205 and the second buffer plate 206. A total of 8 sets of installation grooves 207 are provided. A side pressure component 500 is installed in the installation groove 207. The side pressure component 500 includes a translation component. A translation component is installed on the top surface of the storage plate 202 and located in the installation groove 207. A total of 8 sets of translation components are provided. A first side pressure component is slidably connected in every two sets of translation components. A second side pressure component is installed at both ends of the first side pressure component.

[0047] Through the above structure: 1. A U-shaped plate is used to build an overall load-bearing frame, enabling the orderly installation of each component and ensuring the overall structural stability of the mechanism; 2. The double-layer buffer plate (first + second) for storing components can initially absorb vertical vibrations and reduce the impact of vertical shaking of the glass substrate; 3. Four sets of side-pressing components, together with the downward-pressing components, achieve all-round fixation of the glass substrate from the horizontal side and vertical top surface, preventing horizontal slippage and vertical movement; 4. The positioning components facilitate the storage and fixation of the downward-pressing components when not in use, avoiding the loss of parts; 5. The supporting docking components provide stable support for the mechanism and provide a docking foundation for stacking multiple sets of mechanisms, improving transportation convenience; 6. The overall structure provides dual protection against shock and slip for the glass substrate, adapting to its fragile and vulnerable characteristics.

[0048] In this embodiment, the translation component includes a translation track 501. The top surface of the storage plate 202 is symmetrically and fixedly connected to the translation track 501. The top surface of the translation track 501 is provided with a translation groove 502. The bottom surface of the translation track 501 is provided with adjustment holes 503 at equal intervals. The adjustment holes 503 are connected to the translation groove 502.

[0049] Through the above structure: 1. The translation groove of the translation track provides a sliding track for the first side-pressing component of the side-pressing assembly, realizing the horizontal translation adjustment of the side-pressing assembly and adapting to glass substrates of different widths and lengths; 2. The adjustment hole is connected to the translation groove, providing a locking point for the subsequent locking component, ensuring that the side-pressing assembly can be stably fixed after being adjusted to the appropriate position, avoiding translational displacement; 3. The equally spaced adjustment holes can realize multi-level position adjustment of the side-pressing assembly, improving the adaptability and adjustment accuracy, and adapting to glass substrates of different widths and lengths.

[0050] In this embodiment, the first side-pressing component includes a long rod 504, and second side-pressing components are respectively provided at both ends of the long rod 504. The top surface of the long rod 504 is provided with equally spaced pressing screw holes 505. The bottom surface of the long rod 504 is symmetrically and fixedly connected with a sliding block 506. The sliding block 506 slides in the translation groove 502. A locking rod 507 is slidably connected in the sliding block 506. A paddle 508 is fixedly connected to the top surface of the locking rod 507. A locking damping rod 509 is fixedly connected to the bottom surface of the paddle 508 and located between the sliding blocks 506.

[0051] Through the above structure: 1. The sliding block and the translation groove of the translation track slide together to achieve smooth translation of the long rod (first side pressure component), driving the second side pressure component to adjust synchronously, ensuring that the side pressure component can be accurately aligned with the side of the glass substrate; 2. The locking rod, the lever, and the locking damping rod constitute a locking structure. Lifting the lever can drive the locking rod to disengage from the adjustment hole, facilitating translation adjustment. After releasing the lever, the rebound force of the locking damping rod can drive the locking rod to insert into the adjustment hole, realizing the rapid locking of the long rod. The operation is convenient and the locking is stable; 3. The long rod provides a stable installation base for the second side pressure component, ensuring that the second side pressure components on both sides exert force synchronously, improving the uniformity of lateral extrusion; 4. The lower pressure thread hole provides a threaded connection point for the fixing bolt of the lower pressure component, realizing a stable connection between the lower pressure component and the side pressure component, while further locking the side pressure component to prevent its displacement.

[0052] In this embodiment, the second side-pressing component includes a pressing screw 510. The two ends of the long rod 504 are respectively threaded with the pressing screw 510. One end of the pressing screw 510 is rotatably connected to a side plate 511. A buffer pad 512 is fixedly connected to one side of the side plate 511.

[0053] Through the above structure: 1. The extrusion screw is threadedly connected to the long rod. Rotating the extrusion screw can drive the side plate and buffer pad to move horizontally, realizing precise adjustment of the lateral extrusion force, adapting to different lengths, and adjusting the extrusion tightness according to the fixing requirements of the glass substrate; 2. The buffer pad is made of soft material (in conjunction with the working process), which can buffer the lateral extrusion force, avoid damaging the fragile edges of the glass substrate, enhance the fit, prevent horizontal slippage, and further improve the anti-slip effect.

[0054] In this embodiment, the pressing assembly 400 includes a first pressing component and a second pressing component. One end of the first pressing component is connected to the second pressing component. The first pressing component and the second pressing component are symmetrically mounted on the U-shaped plate 100. The first pressing component and the second pressing component are mounted on the long rod 504.

[0055] The above structure achieves the following: 1. The first and second pressing components are detachable, allowing for flexible adjustment of the overall length according to the length of the glass substrate, adapting to glass substrates of different sizes; 2. The two components are symmetrically installed and connected to the long rod of the side pressing assembly, achieving uniform downward pressure on the top surface of the glass substrate. Together with the side pressing assembly, they form an all-around fixation of "side extrusion + top surface pressing," further preventing vertical movement and horizontal slippage of the glass substrate; 3. The pressing assembly is mounted on the long rod, which can further lock the side pressing assembly, preventing displacement of the side pressing assembly and improving overall fixation stability.

[0056] In this embodiment, the first pressing component includes a first U-shaped block 401, a first fixing bolt 402 installed inside the first U-shaped block 401, a first pressing rod 403 fixedly connected to one side of the first U-shaped block 401, a first protective pad 404 fixedly connected to the bottom surface of the first pressing rod 403, a first adjusting groove 405 provided at one end of the first pressing rod 403, a first adjusting screw 406 rotatably connected inside the first adjusting groove 405, a first extension rod 407 threadedly connected to the surface of the first adjusting screw 406, and a T-shaped connecting block 408 fixedly connected to one end of the first extension rod 407.

[0057] Through the above structure: 1. The first U-shaped block is threadedly connected to the lower pressure screw hole of the long rod through the first fixing bolt, so as to realize the stable fixation of the first lower pressure component and the side pressure component, and at the same time facilitate disassembly and storage; 2. The first adjusting screw is threadedly engaged with the first extension rod. Rotating the screw can drive the first extension rod to slide in the first adjusting groove, so as to realize the flexible adjustment of the length of the first lower pressure component and adapt to glass substrates of different lengths.

[0058] In this embodiment, the second pressing component includes a second U-shaped block 409, a second fixing bolt 410 installed inside the second U-shaped block 409, a second pressing rod 411 fixedly connected to one side of the second U-shaped block 409, a second protective pad 412 fixedly connected to the bottom surface of the second pressing rod 411, a second adjusting groove 413 provided at one end of the second pressing rod 411, a second adjusting screw 414 rotatably connected inside the second adjusting groove 413, and a second extension rod 415 threadedly connected to the surface of the second adjusting screw 414.

[0059] Through the above structure: 1. The second U-shaped block is threadedly connected to the lower pressure screw hole of the long rod through the second fixing bolt, so as to realize the stable fixation of the second lower pressure component and the side pressure component. It cooperates with the first U-shaped block to ensure the overall stability of the lower pressure component, and at the same time facilitates disassembly and storage; 2. The second adjusting screw is threadedly engaged with the second extension rod. Rotating the screw can drive the second extension rod to slide in the second adjusting groove, so as to realize the flexible adjustment of the length of the second lower pressure component. It can be precisely matched with the length of the first lower pressure component and adapted to glass substrates of different lengths.

[0060] In this embodiment, the second pressing component also includes a T-slot 416. One end of the second extension rod 415 is provided with a T-slot 416, and the T-shaped connecting block 408 is inserted into the T-slot 416.

[0061] Through the above structure: 1. The T-shaped connecting block and the T-shaped slot are inserted and matched to realize the quick docking and disassembly of the first and second pressing components, simplifying the operation process and improving packaging and storage efficiency; 2. The T-shaped structure can prevent vertical misalignment and loosening after the two are connected, ensuring the overall structural stability of the pressing component, and the force can be evenly applied when pressing down, avoiding uneven force on the top surface of the glass substrate.

[0062] In this embodiment, the positioning component 600 includes an L-shaped positioning block 601. The two sides of the U-shaped plate 100 are respectively fixedly connected with the L-shaped positioning block 601. A total of 4 sets of L-shaped positioning blocks 601 are provided. The top surface of the L-shaped positioning block 601 is provided with a fixing screw hole 602.

[0063] Through the above structure: 1. The structure of the L-shaped positioning block can be adapted to the U-shaped blocks of the first and second pressing components, making it easy for the pressing components to slide into the positioning and fixation when idle, so as to achieve precise storage; 2. The fixing screw hole is threaded with the first and second fixing bolts, which can stably fix the stored pressing components on the L-shaped positioning block, avoiding the loss or damage of the pressing components and extending the service life of the components.

[0064] In this embodiment, the support docking assembly 700 includes support legs 701. The bottom surface of the U-shaped plate 100 is fixedly connected with support legs 701 at equal intervals. A total of 4 sets of support legs 701 are provided. The bottom surface of the support legs 701 is fixedly connected with plug rods 702.

[0065] Working principle and usage process of this invention:

[0066] In use:

[0067] During use, the operator places the LCD glass substrate flat on the second buffer plate 206. Since the first buffer plate 205 uses a high-density EPE (expanded polyethylene) pad, while the second buffer plate 206 uses a low-hardness, high-resilience PU (polyurethane) foam, it can absorb high-frequency vibrations when placing the glass substrate. It can more efficiently absorb and dissipate vibration energy from different frequencies of the transport vehicle, effectively reducing the impact of violent up-and-down jolts on the glass. After the glass is placed stably, the side pressure component 500 is used to press the glass around its perimeter.

[0068] When adjusting the side-pressure assembly 500, firstly, the operator lifts the lever 508 upwards. As the lever 508 moves upwards, it moves the locking rod 507 upwards, causing the bottom end of the locking rod 507 to disengage from the adjustment hole 503. Simultaneously, the upward movement of the lever 508 stretches the locking damping rod 509. When the locking rod 507 disengages from the adjustment hole 503, the operator can then move the long rod 504. The long rod 504 moves the second side-pressure component together. Once the second side-pressure component and the long rod 504 have moved to the appropriate position, the locking rod 507 is released. Under the action of the locking damping rod 509, the locking rod 507 will insert itself into the corresponding adjustment hole 503. At this point, the second... The side-pressing component will be located on one side of the glass substrate. When the locking rod 507 is inserted into the adjustment hole 503, the long rod 504 can be fixed in the designated position. After it is fixed, the operator rotates the pressing screw 510. As the pressing screw 510 rotates, it will drive the side plate 511 and the buffer pad 512 to move towards one side of the glass. When the four sets of buffer pads 512 press the glass around, the limiting and fixing of the glass substrate around the glass substrate can be completed. The buffer pad 512 is made of low hardness and high resilience EPDM rubber or microporous foam material. It can not only fit tightly against the side of the glass and provide uniform lateral pressure to effectively prevent horizontal slippage, but also, due to its softness, will not damage the fragile edges of the glass due to excessive hardness.

[0069] After the surrounding area is secured, the workers begin installing the pressing assembly 400. During installation, the lengths of the first and second pressing components are adjusted according to the length of the glass. To adjust, the first adjusting screw 406 is rotated. When the first adjusting screw 406 rotates, it causes the first extension rod 407 to slide within the first pressing rod 403, thus adjusting the length of the first pressing component. After adjustment, the second pressing component is adjusted. To adjust, the second adjusting screw 414 is rotated. When the second adjusting screw 414 rotates, it causes the second extension rod 415 to slide within the second pressing rod 411. After the lengths of the first and second pressing components are adjusted, they are connected together. During connection, the workers insert the T-shaped connecting block 408 at the end of the first pressing component into the T-shaped groove 416. After insertion, the connection of the first and second pressing components is completed. After connection, the first and second pressing components are fixed onto the side pressing assembly.

[0070] During installation, firstly, the staff aligns the first U-shaped block 401 and the second U-shaped block 409 with the top surface of the long rod 504 and engages them on the surface of the long rod 504. After engagement, the staff adjusts the position of the pressing component 400 according to the width of the glass to accommodate the width of the glass. After adjustment, the staff rotates the first fixing bolt 402 and the second fixing bolt 410. As the first fixing bolt 402 and the second fixing bolt 410 rotate, they will be threaded into the pressing thread hole 505, thereby fixing the first U-shaped block 401 and the second U-shaped block 409 onto different long rods 504. After fixing, the first protective pad 404 and the second protective pad 412 will press the upper surface of the glass substrate. After pressing, the glass substrate is fixed on the storage component 200, which facilitates later transportation. At the same time, the pressing component 400 can also be used to reposition and fix the side pressing component 500 to prevent the side pressing component 500 from shifting.

[0071] When multiple storage devices need to be stacked later, simply insert the bottom plug rod 702 of the next set of glass substrate storage devices into the docking hole 204 on the top of the previous set of glass substrate storage devices to complete the stacking of multiple sets of devices.

[0072] When the glass is removed, the staff can insert the first and second pressing components into the storage cavity 300. After the ends of the first and second pressing components are inserted, they are moved horizontally so that the first U-shaped block 401 and the second U-shaped block 409 in the first and second pressing components slide into the surface of the L-shaped positioning block 601. After they slide in, the first fixing bolt 402 and the second fixing bolt 410 are screwed in. When the ends of the first fixing bolt 402 and the second fixing bolt 410 are screwed into the fixing screw hole 602, the first and second pressing components are fixed in the storage cavity 300, which facilitates the return of the entire device later and avoids loss.

[0073] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0074] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A shockproof and anti-slip packaging device for liquid crystal glass substrates, characterized in that: The device includes a U-shaped plate (100), a storage assembly (200) installed on the top surface of the U-shaped plate (100), a storage cavity (300) provided on the top surface of the U-shaped plate (100) and between the storage assemblies (200), a pressing assembly (400) stored in the storage cavity (300), a side pressing assembly (500) installed on the top surface of the storage assembly (200), a total of 4 sets of side pressing assemblies (500), two sets of side pressing assemblies (500) connected by pressing assemblies (400), positioning assemblies (600) installed on both sides of the U-shaped plate (100), and a support docking assembly (700) installed on the bottom surface of the U-shaped plate (100). The storage component (200) includes a base frame (201). The top surface of the U-shaped plate (100) is fixedly connected to the base frame (201). A storage cavity (300) is provided in the middle of the U-shaped plate (100) and between the base frames (201). A storage plate (202) is fixedly connected to the top surface of the base frame (201). A docking rod (203) is fixedly connected to the four sides of the top surface of the storage plate (202). A docking hole (204) is provided on the top surface of the docking rod (203). A first buffer plate (205) is fixedly connected to the middle of the top surface of the storage plate (202). A second buffer plate (206) is fixedly connected to the top surface of the first buffer plate (205). An installation groove (207) is provided on one side of the first buffer plate (205) and the second buffer plate (206). A total of 8 sets of installation grooves (207) are provided. A side pressure component (500) is installed in the installation groove (207). The side pressure assembly (500) includes a translation component. The translation component is installed on the top surface of the storage plate (202) and in the mounting groove (207). There are a total of 8 groups of translation components. A first side pressure component is slidably connected in every two groups of translation components. A second side pressure component is installed at both ends of the first side pressure component.

2. The anti-vibration and anti-slip packaging equipment for liquid crystal glass substrates according to claim 1, characterized in that: The translation component includes a translation track (501), and the top surface of the storage plate (202) is symmetrically and fixedly connected to the translation track (501). The top surface of the translation track (501) is provided with a translation groove (502), and the bottom surface of the translation track (501) is provided with adjustment holes (503) at equal intervals. The adjustment holes (503) are connected to the translation groove (502).

3. The anti-vibration and anti-slip packaging equipment for liquid crystal glass substrates according to claim 2, characterized in that: The first side-pressing component includes a long rod (504), and a second side-pressing component is provided at both ends of the long rod (504). The top surface of the long rod (504) is provided with pressure screw holes (505) at equal intervals. The bottom surface of the long rod (504) is symmetrically and fixedly connected with a sliding block (506). The sliding block (506) slides in the translation groove (502). A locking rod (507) is slidably connected in the sliding block (506). A paddle (508) is fixedly connected to the top surface of the locking rod (507). A locking damping rod (509) is fixedly connected to the bottom surface of the paddle (508) and located between the sliding blocks (506).

4. The anti-vibration and anti-slip packaging equipment for liquid crystal glass substrates according to claim 3, characterized in that: The second side-pressing component includes a pressing screw (510), with the pressing screw (510) threaded to both ends of the long rod (504), and a side plate (511) rotatably connected to one end of the pressing screw (510), and a buffer pad (512) fixedly connected to one side of the side plate (511).

5. The anti-vibration and anti-slip packaging equipment for liquid crystal glass substrates according to claim 4, characterized in that: The pressing assembly (400) includes a first pressing component and a second pressing component. One end of the first pressing component is connected to the second pressing component. The first pressing component and the second pressing component are symmetrically mounted on the U-shaped plate (100). The first pressing component and the second pressing component are mounted on the long rod (504).

6. The anti-vibration and anti-slip packaging equipment for liquid crystal glass substrates according to claim 5, characterized in that: The first pressing component includes a first U-shaped block (401), a first fixing bolt (402) is installed in the first U-shaped block (401), a first pressing rod (403) is fixedly connected to one side of the first U-shaped block (401), a first protective pad (404) is fixedly connected to the bottom surface of the first pressing rod (403), a first adjusting groove (405) is provided at one end of the first pressing rod (403), a first adjusting screw (406) is rotatably connected in the first adjusting groove (405), a first extension rod (407) is threadedly connected to the surface of the first adjusting screw (406), and a T-shaped connecting block (408) is fixedly connected to one end of the first extension rod (407).

7. The anti-vibration and anti-slip packaging equipment for liquid crystal glass substrates according to claim 6, characterized in that: The second pressing component includes a second U-shaped block (409), a second fixing bolt (410) is installed in the second U-shaped block (409), a second pressing rod (411) is fixedly connected to one side of the second U-shaped block (409), a second protective pad (412) is fixedly connected to the bottom surface of the second pressing rod (411), a second adjusting groove (413) is provided at one end of the second pressing rod (411), a second adjusting screw (414) is rotatably connected in the second adjusting groove (413), and a second extension rod (415) is threadedly connected to the surface of the second adjusting screw (414).

8. The anti-vibration and anti-slip packaging equipment for liquid crystal glass substrates according to claim 7, characterized in that: The second pressing component also includes a T-slot (416), one end of the second extension rod (415) is provided with a T-slot (416), and the T-connecting block (408) is inserted into the T-slot (416).

9. The anti-vibration and anti-slip packaging equipment for liquid crystal glass substrates according to claim 8, characterized in that: The positioning component (600) includes an L-shaped positioning block (601). The two sides of the U-shaped plate (100) are respectively fixedly connected with L-shaped positioning blocks (601). There are a total of 4 sets of L-shaped positioning blocks (601). The top surface of the L-shaped positioning block (601) is provided with fixing screw holes (602).

10. The anti-vibration and anti-slip packaging equipment for liquid crystal glass substrates according to claim 9, characterized in that: The support docking assembly (700) includes support legs (701). The bottom surface of the U-shaped plate (100) is fixedly connected with support legs (701) at equal intervals. There are a total of 4 sets of support legs (701). The bottom surface of the support legs (701) is fixedly connected with plug rods (702).