Holographic bin integral packaging structure

By supporting the screen, bottom cushioning shock-absorbing support and outer packaging box protection in the holographic chamber, the problem of fragile screen and complex overall packaging during transportation of the holographic chamber is solved, and all-round cushioning shock-absorbing protection and efficient packaging are achieved.

CN223162366UActive Publication Date: 2025-07-29浙江众合科技股份有限公司
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Patent Information

Application Number
CN202422050282.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2025-07-29
Estimated Expiration
2034-08-23

AI Technical Summary

Technical Problem

The overall packaging solution of the existing holographic warehouse has insufficient screen rigidity, risk of fragility during transportation, and the overall packaging operation is complex; the bulk packaging solution increases assembly costs and manpower and material resources.

Method used

The internal inflatable airbag is used to provide screen support, the bottom cushioning shock absorbing support is adjusted by the lifting wheel mechanism, and an outsourcing cushioning shock absorbing support is provided between the outer packaging box and the holographic chamber, which combines a split shock absorbing plate and a fixed paper cover to achieve all-round protection.

Benefits of technology

It realizes all-round anti-loosening buffering and shock absorption of holographic warehouses during transportation, avoids the risk of damage, reduces operational complexity and cost, and saves human and material resources.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an integral packaging structure of a holographic bin. The integral packaging structure comprises an internal inflatable air bag, a bottom buffering and damping support, an outer packaging box and an outer packaging buffering and damping support, the internal inflatable air bag is filled in the internal cavity of the holographic bin and is in contact with the inner side of the screen; the bottom buffering and damping support comprises a bottom bracket and a bottom lining arranged on the bottom bracket, the bottom buffering and damping support is arranged in an internal space formed between the lifting wheel mechanism and a bottom plate of the holographic bin when the lifting wheel mechanism extends, and the bottom lining is in contact with the bottom plate of the holographic bin when the lifting wheel mechanism is adjusted to a set height; the outer packaging box covers the outer side of the holographic bin, and the outer packaging buffering and damping support is arranged between the holographic bin and the outer packaging box. According to the utility model, through integral packaging, all-directional anti-loose buffering and damping packaging protection of the holographic bin can be realized, and the risk of damage in the transportation process is avoided.
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Description

Technical Field

[0001] The utility model belongs to the technical field of holographic cabins, and particularly relates to a packaging structure of a holographic cabin. Background Art

[0002] In the prior art, the packaging schemes of holographic cabins are divided into two types. For products such as ordinary fragile cabinets (such as holographic cabins), the overall packaging box is generally used as the outer packaging box. If the fragility level of the product is relatively high, the product can be shipped in loose parts. The fragile parts are individually packaged and then shipped, and assembled into finished products after arriving at the destination, which can avoid the risk of damage to the finished products during transportation.

[0003] However, there are certain problems with both of the two packaging schemes of holographic cabins in the prior art.

[0004] Overall packaging scheme: If the overall height of the product is too high, there are requirements for the storey height of the packaging workshop, or special tooling is required for packaging the product; if the overall weight of the product is heavy, when an additional layer of shock-absorbing foam is added to the bottom of the product, manual labor cannot complete the operation, and equipment such as a crane is required to complete this operation, and the same operation is also required when disassembling the packaging; if the rigid parts of the finished product are insufficient in rigidity, only buffering and shock absorption on the outer surface are not enough, and there is still a risk of damage during transportation.

[0005] Loose parts individual packaging scheme: Although the loose parts shipping method can protect the fragile parts from damage during transportation, it increases the assembly cost. After arriving at the destination, the assembly of the finished product requires professional workshop assembly personnel to operate, and relevant functions need to be tested after assembly. There are many uncertain factors, and it requires a huge amount of human and material resources. Content of the Utility Model

[0006] The technical problem to be solved by the utility model is to provide a holographic cabin overall packaging structure, which can solve the problems of screen fragility and overall buffering and shock absorption while realizing the overall packaging of the holographic cabin.

[0007] To solve the above technical problems, the present utility model adopts the following technical solutions: A holographic chamber integral packaging structure, with a screen on the front of the holographic chamber and a lifting wheel mechanism at the bottom. The buffer and shock absorption packaging structure of the holographic chamber includes an internal inflatable airbag, a bottom buffer and shock absorption support, an outer packaging box, and an outer buffer and shock absorption support; the internal inflatable airbag is filled in the internal cavity of the holographic chamber and contacts the inner side of the screen, and the internal air pressure of the internal inflatable airbag supports the screen; the bottom buffer and shock absorption support includes a bottom bracket and a bottom lining provided on the bottom bracket, and the bottom buffer and shock absorption support is arranged in the internal space formed between the lifting wheel mechanism when extended and the bottom plate of the holographic chamber, and the bottom lining contacts the bottom plate of the holographic chamber when the lifting wheel mechanism is adjusted to a set height; the outer packaging box covers the outside of the holographic chamber, and the outer buffer and shock absorption support is arranged between the holographic chamber and the outer packaging box.

[0008] Preferably, a pressure regulating device is provided at the inflation port of the internal inflatable airbag; and / or, the bottom lining is made of foam.

[0009] Preferably, the outer buffer and shock absorption support is a shock-absorbing plate provided with shock-absorbing foam.

[0010] Preferably, the shock-absorbing plate is an integral structure of shock-absorbing foam and an outer cardboard.

[0011] Preferably, the outer packaging box is provided with a left shock-absorbing plate, a right shock-absorbing plate, a front shock-absorbing plate, a rear shock-absorbing plate, and a top shock-absorbing plate with a split structure corresponding to the left, right, front, rear, and top positions of the holographic chamber.

[0012] Preferably, the shock-absorbing foam on the front shock-absorbing plate is integrally distributed corresponding to the screen position.

[0013] Preferably, the top shock-absorbing plate is fixed by a packaging belt.

[0014] Preferably, the outer packaging box is provided with an upper fixing paper sleeve and a lower fixing paper sleeve surrounding the outside of the outer buffer and shock absorption support, and the upper fixing paper sleeve and the lower fixing paper sleeve are combined to fix and hold the outer buffer and shock absorption support.

[0015] Preferably, the bottom bracket is provided with a fork slot for cooperating with the forklift arm, and the bottom of the lower fixing paper sleeve is provided with an opening for providing a clearance space for the forklift arm.

[0016] Preferably, the height of the bottom buffer and shock absorption support is less than the height when the lifting wheel mechanism is extended to the maximum height.

[0017] The present utility model adopts the above technical solutions and has the following beneficial effects:

[0018] 1. Since the holographic warehouse screen is relatively large in size and there is no support for the screen inside the cavity on the back of the screen, the screen has insufficient rigidity, resulting in the screen being fragile. To solve the problem of insufficient screen rigidity, the present utility model adds an internal inflatable airbag inside the cavity of the holographic warehouse. The air pressure inside the airbag provides support for the entire screen, preventing damage to the screen caused by insufficient rigidity during transportation.

[0019] In addition, to prevent vibration in the vertical direction from damaging the product structure, the present utility model reasonably utilizes the lifting wheel mechanism of the holographic warehouse to achieve the setting of bottom buffer shock absorption support. When the lifting wheel mechanism extends to its maximum height, there will be a suspended distance between the bottom plate of the entire holographic warehouse and the ground. At this time, the bottom foam lining and the bottom bracket can be placed together within the suspended distance between the lifting wheel mechanism and the bottom plate of the holographic warehouse. Since the suspended distance is greater than the total thickness of the bottom foam lining and the bottom bracket, the height of the lifting wheel mechanism needs to be adjusted to the state where the bottom plate of the holographic warehouse is in full contact with the bottom foam lining. At this time, the buffer shock absorption effect of the bottom foam lining can be reflected on the holographic warehouse. Therefore, the installation and disassembly of the bottom buffer shock absorption support do not depend on equipment such as cranes, and can be achieved only by adjusting the height of the lifting wheel mechanism.

[0020] Moreover, to protect the sides and top of the product, the outer packaging box is wrapped around the outside of the holographic warehouse, and there is an outer buffer shock absorption support between the outer packaging box and the holographic warehouse, preventing damage to the product caused by impacts and vibrations in the lateral and top directions during transportation.

[0021] Therefore, through the integrated packaging, the present utility model can achieve all-round anti-loosening buffer shock absorption packaging protection for the holographic warehouse, avoiding the risk of damage during transportation. And compared with the split packaging, the integrated packaging not only has a cost advantage, but also can quickly carry out the packaging operation, avoiding the consumption of huge human and material resources.

[0022] 2. The inflation port of the internal inflatable airbag is provided with a pressure regulating device, so that the internal pressure of the airbag can be maintained at the set value after setting the pressure value. When the internal air pressure of the airbag reaches the set value, the volume of the airbag basically fills the entire internal cavity of the holographic warehouse, and the inner wall of the screen is also supported by the airbag pressure as a whole, greatly increasing the overall rigidity of the screen after assembly and solving the problem of screen fragility caused by insufficient screen rigidity.

[0023] 3. The split-type outer packaging box design is adopted. There are left shock-absorbing plates, right shock-absorbing plates, front shock-absorbing plates, rear shock-absorbing plates and top shock-absorbing plates with split structures corresponding to the left, right, front, rear and top orientations of the holographic warehouse. And upper fixing paper sleeves and lower fixing paper sleeves are fixed outside the outer buffer shock absorption support for fixing and clamping the outer buffer shock absorption support. Therefore, the requirements for packaging supporting conditions are low and the operation is convenient.

[0024] 4. The shock-absorbing plate adopts an integrated structure of shock-absorbing foam and outer cardboard, so as to achieve overall synchronous assembly and improve efficiency. The shock-absorbing foam ensures good cushioning and shock absorption, and realizes cushioning and shock absorption support between the outer packaging box and the holographic warehouse.

[0025] 5. The shock-absorbing foam on the front shock-absorbing plate needs to directly contact the screen, so the shock-absorbing foam corresponding to the screen position is distributed as a whole to more comprehensively protect the screen surface.

[0026] 6. The bottom bracket is provided with a fork groove that cooperates with the forklift arm. The bottom of the lower fixed paper sleeve is provided with an opening to provide avoidance space for the forklift arm. The forklift can directly extend into the fork groove of the bottom bracket through the opening to complete the taking off and landing action.

[0027] 7. Since the height of the bottom buffer and shock-absorbing support is less than the height of the lifting wheel mechanism when it is extended to its maximum height, after the lifting wheel mechanism is extended, the bottom foam lining and the bottom bracket can be placed together in the suspended distance between the lifting wheel mechanism and the bottom plate of the holographic warehouse.

[0028] The specific technical solutions and beneficial effects of the present invention will be described in detail in the following specific embodiments with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] The present invention will be further described below with reference to the accompanying drawings and specific embodiments:

[0030] Figure 1 This is a schematic diagram of the holographic chamber with the lifting wheel mechanism retracted;

[0031] Figure 2 This is a schematic diagram of the holographic chamber with the lifting wheel mechanism extended;

[0032] Figure 3 This is a schematic diagram of the arrangement of the internal inflatable airbag in the inner cavity of the holographic chamber;

[0033] Figure 4 yes Figure 3 Schematic diagram of the middle AA section;

[0034] Figure 5 It is a schematic diagram of the structure of the internal inflatable airbag;

[0035] Figure 6 This is the installation diagram of the bottom buffer shock absorption support Figure 1 ;

[0036] Figure 7 This is the installation diagram of the bottom buffer shock absorption support Figure 2 ;

[0037] Figure 8 This is the installation diagram of the outer packaging box Figure 1 ;

[0038] Figure 9 It is a schematic diagram of the installation of the outer packing box Figure 2 ;

[0039] Figure 10 It is a schematic diagram of the installation of the outer packing box Figure 3 ;

[0040] Figure 11 It is a schematic diagram of the overall packaging steps of the holographic warehouse;

[0041] In the figure: 1 - holographic warehouse, 2 - screen, 3 - lifting wheel mechanism, 4 - internal inflatable airbag, 5 - pressure regulating device, 6 - bottom foam lining, 7 - bottom bracket, 8 - right shock-absorbing plate, 9 - rear shock-absorbing plate, 10 - shock-absorbing foam, 11 - top shock-absorbing plate, 12 - left shock-absorbing plate, 13 - front shock-absorbing plate, 14 - upper fixing paper sleeve, 15 - lower fixing paper sleeve, 16 - opening. Specific implementation manners

[0042] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. The following description of at least one exemplary embodiment is actually only illustrative and in no way constitutes a limitation to the present invention and its application or use. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0043] As Figure 1 and Figure 2 shown, on the front of the holographic warehouse 1 to be packaged, there is a rectangular screen 2. The four sides of the screen 2 are assembled on the outer frame structure members of the holographic warehouse. At the bottom of the holographic warehouse, there is a lifting wheel mechanism 3, and each of the four corners is provided with a lifting wheel that can be extended and retracted. The lifting wheel mechanism 3 is installed on the bottom plate of the holographic warehouse, and the lifting of the lifting wheel mechanism 3 can drive the holographic warehouse 1 to lift in the vertical direction. Figure 1 and Figure 2 are respectively two states of the holographic warehouse 1, Figure 1 is the state where the lifting wheels are retracted, Figure 2 is the state where the lifting wheels are extended.

[0044] As Figures 3 to 11As shown, the buffer and shock-absorbing packaging structure of the holographic chamber includes an internal inflatable airbag 4, a bottom buffer and shock-absorbing support, and an outer packaging box; the internal inflatable airbag 4 is filled in the internal cavity of the holographic chamber and contacts the inner side of the screen, and supports the screen through the air pressure inside the internal inflatable airbag. The bottom buffer and shock-absorbing support includes a bottom bracket 7 and a bottom foam lining 6 provided on the bottom bracket. The bottom buffer and shock-absorbing support is arranged in the internal space formed between the bottom plate of the holographic chamber when the lifting wheel mechanism extends, and the height of the bottom buffer and shock-absorbing support is less than the height when the lifting wheel mechanism extends to the maximum height. The bottom foam lining 6 contacts the bottom plate of the holographic chamber. The outer packaging box covers the outside of the holographic chamber and there is an outer buffer and shock-absorbing support between the outer packaging box and the holographic chamber.

[0045] As Figures 3 to 5 shown, the inside of the holographic chamber is a cavity structure. The four sides of the screen 2 are fixed to the holographic chamber frame structure through the pressure strips, but the rest of the area of the screen 2 cannot be supported structurally, and there is a lack of rigidity. Only buffering and shock-absorbing the outer surface is not enough, and there is still a risk of damage during transportation. Therefore, in this embodiment, an internal inflatable airbag 4 with adjustable pressure is arranged in the internal cavity of the holographic chamber. The airbag inflation port is provided with a pressure regulating device 5, and the internal pressure of the airbag can be kept at the set value after setting the pressure value. When the internal air pressure of the airbag reaches the set value, the volume of the airbag basically fills the entire internal cavity of the holographic chamber, and the inner wall of the screen 2 is also supported by the airbag pressure as a whole, greatly increasing the overall rigidity of the assembled screen 2 and preventing damage to the screen caused by insufficient rigidity during transportation.

[0046] In addition, in order to prevent the vibration in the vertical direction from damaging the product structure, the present utility model reasonably utilizes the lifting wheel mechanism of the holographic chamber to realize the setting of the bottom buffer and shock-absorbing support. As Figure 6 and Figure 7 shown, when the lifting wheel mechanism 3 of the above-mentioned holographic chamber whole machine 1 extends to the maximum height, there will be a suspended distance from the bottom plate of the holographic chamber whole machine 1 to the ground. At this time, the bottom foam lining 6 and the bottom bracket 7 can be placed together in the suspended distance between the lifting wheel mechanisms 3. Since the suspended distance is greater than the total thickness of the bottom foam lining 6 and the bottom bracket 7, the height of the lifting wheel mechanism 3 needs to be adjusted to the state where the bottom plate of the holographic chamber whole machine 1 is in full contact with the bottom foam lining 6. At this time, the buffering and shock-absorbing effect of the bottom foam lining 6 can be reflected on the holographic chamber whole machine 1. Therefore, the installation and disassembly of the bottom buffer and shock-absorbing support do not depend on equipment such as cranes, and can be realized only by adjusting the height of the lifting wheel mechanism.

[0047] To protect the sides and top of the product, as Figures 8 to 10As shown in the figure, after the installation of the bottom buffer shock absorption support of the holographic chamber 1 is completed, it is necessary to carry out anti-loosening buffer shock absorption assembly on its left and right sides, front and back sides, and top surface, that is, install the outer package buffer shock absorption support. Specifically, the outer packaging box is provided with a left shock absorption plate 12, a right shock absorption plate 8, a front shock absorption plate 13, a rear shock absorption plate 7, and a top shock absorption plate 11 with a split structure corresponding to the left, right, front, back, and top directions of the holographic chamber. Among them, the right shock absorption plate 8, the left shock absorption plate 12, the rear shock absorption plate 9, and the front shock absorption plate 13 are respectively attached to the corresponding protection areas on the side surfaces of the holographic chamber 1, and the top shock absorption plate 11 is attached to the top surface of the holographic chamber 1. All the above shock absorption plates adopt an integrated structure of shock absorption foam 10 and outer cardboard, so as to realize overall synchronous assembly, improve efficiency, and the shock absorption foam ensures good buffer shock absorption, realizing the buffer shock absorption support between the outer packaging box and the holographic chamber. The shock absorption foam on the right shock absorption plate 8, the left shock absorption plate 12, and the rear shock absorption plate 7 is distributed in a discrete manner, while the shock absorption foam on the front shock absorption plate 13 needs to directly contact the screen 2. Therefore, the shock absorption foam corresponding to the screen position adopts an integral distribution, which can more comprehensively protect the surface of the screen 2. After the front, rear, left, and right shock absorption plates are all attached, the top shock absorption plate 11 is attached to the top of the whole holographic chamber 1.

[0048] After all the above shock absorption plates are attached, it is also necessary to fix them. The outer packaging box is provided with an upper fixing paper sleeve 14 and a lower fixing paper sleeve 15 surrounding the outside of the outer package buffer shock absorption support. The upper fixing paper sleeve 14 and the lower fixing paper sleeve 15 are respectively sleeved from the top and attached to the shock absorption plates on the outside of the holographic chamber, realizing the fixation and clamping of the front, rear, left, and right shock absorption plates. The top shock absorption plate 11 can be fixed by means of packaging belts, etc. Thus, it can prevent the impact and vibration in the lateral and top directions during transportation from damaging the product.

[0049] Furthermore, the bottom bracket 7 is a wooden bracket. The bottom bracket 7 is provided with a fork slot for cooperating with the forklift arm. Correspondingly, the bottom of the lower fixing paper sleeve 15 is provided with an opening 16 to provide a space for the forklift wall to avoid. The forklift can directly extend into the fork slot of the bottom bracket 7 through the opening 16 to complete the lifting and lowering action.

[0050] The overall packaging process of the holographic chamber buffer shock absorption packaging structure is as Figure 11 shown. In step 1 and step 2, the internal inflatable airbag 4 is assembled into the internal cavity of the holographic chamber 1, and the internal inflatable airbag 4 is inflated to the set pressure; in step 3, the lifting wheel mechanism 3 is extended, and the bottom foam lining 6 and the bottom bracket 7 are placed. After the placement, the lifting wheel mechanism 3 is retracted; in step 4 and step 5, the shock absorption plates in the front, rear, left, right, and top 5 directions are installed and the upper and lower fixing paper sleeves are sleeved, and all the packaging materials are installed.

[0051] Through the integral packaging, the utility model can achieve all-round anti-loosening, buffering and shock-absorbing packaging protection for the holographic chamber, avoiding the risk of damage during transportation. Moreover, compared with the split packaging, the integral packaging not only has a cost advantage, but also can quickly carry out the packaging operation, avoiding the consumption of huge human and material resources.

[0052] It can be understood that the holographic chamber here is a relatively general concept, not limited to the holographic chamber products in the usual sense, but also can be other products with large screens and fragile cabinets.

[0053] The above is only the specific implementation manner of the utility model, but the protection scope of the utility model is not limited thereto. Those skilled in the art should understand that the utility model includes but is not limited to the content described in the above specific implementation manner. Any modification that does not deviate from the functional and structural principles of the utility model will be included in the scope of the claims.

Claims

1. An overall packaging structure for a holographic cabin, with a screen on the front of the holographic cabin and a lifting wheel mechanism at the bottom, characterized in that, The buffer and shock-absorbing packaging structure of the holographic chamber includes an internal inflatable airbag, a bottom buffer and shock-absorbing support, an outer packaging box, and an outer buffer and shock-absorbing support; the internal inflatable airbag is filled in the internal cavity of the holographic chamber and contacts the inner side of the screen, and the internal air pressure of the internal inflatable airbag supports the screen; the bottom buffer and shock-absorbing support includes a bottom bracket and a bottom inner lining provided on the bottom bracket, the bottom buffer and shock-absorbing support is arranged in the internal space formed between the extended lifting wheel mechanism and the bottom plate of the holographic chamber, and the bottom inner lining contacts the bottom plate of the holographic chamber when the lifting wheel mechanism is adjusted to the set height; the outer packaging box covers the outside of the holographic chamber, and the outer buffer and shock-absorbing support is arranged between the holographic chamber and the outer packaging box.

2. The overall packaging structure of a holographic chamber according to claim 1, characterized in that The inflation port of the internal inflatable airbag is provided with a pressure regulating device; and / or, the bottom inner lining is made of foam.

3. The overall packaging structure of a holographic warehouse according to claim 1, characterized in that, The outer buffer and shock-absorbing support is a shock-absorbing plate provided with shock-absorbing foam.

4. The overall packaging structure of a holographic chamber according to claim 3, characterized in that, The shock-absorbing plate is an integral structure of shock-absorbing foam and an outer cardboard.

5. The overall packaging structure of a holographic chamber according to claim 4, characterized in that, The outer packaging box is provided with a left shock-absorbing plate, a right shock-absorbing plate, a front shock-absorbing plate, a rear shock-absorbing plate, and a top shock-absorbing plate with a split structure corresponding to the left, right, front, rear, and top positions of the holographic chamber.

6. The overall packaging structure of a holographic chamber according to claim 5, characterized in that, The shock-absorbing foam on the front shock-absorbing plate is integrally distributed corresponding to the screen position.

7. A holographic warehouse overall packaging structure according to claim 5, characterized in that, The top shock-absorbing plate is fixed by a packaging belt.

8. A holographic warehouse overall packaging structure according to claim 1, characterized in that, The outer packaging box is provided with an upper fixing paper sleeve and a lower fixing paper sleeve surrounding the outside of the outer buffer and shock-absorbing support. After the upper fixing paper sleeve and the lower fixing paper sleeve are combined, the fixing and clamping of the outer buffer and shock-absorbing support are realized.

9. The overall packaging structure of a holographic chamber according to claim 8, wherein The bottom bracket is provided with a fork slot for cooperating with the forklift arm, and the bottom of the lower fixing paper sleeve is provided with an opening for providing an avoidance space for the forklift arm.

10. A holographic warehouse overall packaging structure according to claim 1, characterized in that, The height of the bottom buffer and shock-absorbing support is less than the height when the lifting wheel mechanism extends to the maximum height.

Citation Information

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