Precision instrument transport package
The combined design of inner box partitions, shockproof blocks, filling layers and protective layers solves the problem that traditional packaging methods cannot effectively protect small precision instruments, and achieves multiple protection effects during transportation.
Patent Information
- Application Number
- CN202422900060.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-26
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2034-11-26
AI Technical Summary
Traditional packaging methods are difficult to effectively protect small precision instruments, especially those that are susceptible to vibration, moisture, and dust during transportation.
The inner box is divided into multiple groups of placement cavities. The outside of the inner box is provided with shockproof blocks and a filling layer. The outside of the outer box is provided with a protective layer. Moisture-proof agent and filling blocks are filled between the inner and outer boxes. The instrument is wrapped with bubble film to improve the protection effect.
It effectively prevents small precision instruments from being affected by vibration, moisture and dust during transportation, and improves the protection effect during transportation.
Smart Images

Figure CN223303210U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of equipment transportation, and in particular to a precision instrument transportation package. Background Art
[0002] With the rapid development of industrial automation and intelligence, the demand for precision instruments is increasing. However, these devices are often highly sensitive and fragile, and traditional packaging methods are difficult to meet the requirements for their safe transportation.
[0003] Currently on the market, common packaging materials and technical means mainly include foam plastics, bubble film, wooden frames, etc.
[0004] However, for some small precision instruments, although conventional packaging methods can protect small precision instruments to a certain extent, they still have many shortcomings. Therefore, it is urgent to design a transport packaging structure that can better protect small precision instruments. Utility Model Content
[0005] In order to improve the protection effect of small precision instruments during transportation, the present application provides a precision instrument transportation package.
[0006] This application provides a precision instrument transport packaging, which adopts the following technical solutions:
[0007] A precision instrument transport package includes an inner box for separating and packaging multiple small precision instruments. A shockproof and moisture-proof protective mechanism is provided on the outer side of the inner box. The protective mechanism includes:
[0008] An outer box, which is arranged outside the inner box and wraps the inner box;
[0009] A shockproof block, which is arranged on the outside of the inner box and pressed against the inner wall of the outer box;
[0010] The filling layer is arranged in the gap between the inner box and the outer box and is used to protect the inner box from moisture.
[0011] By adopting the above technical solution, the inner box provides preliminary protection for multiple groups of small precision instruments, and then multiple groups of shock-proof blocks and the outer box jointly provide shock-proof protection for the inner box. The filling layer provides moisture-proof protection for the gap between the outer box and the inner box, thereby improving the protection effect of small precision instruments during transportation.
[0012] Furthermore, the shockproof blocks are provided in eight groups and are respectively located on the eight top corners of the inner box. The shockproof blocks are composed of three mutually perpendicular panels and are pressed against the three planes of the top corners of the inner box. The side of the shockproof blocks away from the inner box is pressed against the side wall of the inner top corner of the outer box.
[0013] By adopting the above technical solution, eight groups of shockproof blocks fix the inner box inside the outer box. At the same time, the eight groups of shockproof blocks reduce the contact area between the inner box and the outer box, thereby buffering the interaction force between the outer box and the inner box.
[0014] Furthermore, the filling layer is formed by a plastic bubble film pressed against the inner wall of the outer box and is used to prevent accumulated water outside the outer box from entering the inner box.
[0015] By adopting the above technical solution, the filling layer waterproofs the gap between the outer box and the inner box, thereby reducing the probability of water accumulated in the outer box entering the inner box, and at the same time buffering the interaction force between the outer box and the inner box.
[0016] Furthermore, a plurality of groups of bagged moisture-proof agents are provided on one side of the filling layer close to the inner box and are used to absorb the accumulated water passing through the filling layer.
[0017] By adopting the above technical solution, the bagged moisture-proof agent is used to absorb the accumulated water that passes through the filling layer, thereby reducing the accumulated water content in the inner box today.
[0018] Furthermore, the inner box is divided into multiple groups of placement cavities for placing small precision instruments by multiple groups of partition plates, and the partition plates are made of corrugated cardboard.
[0019] By adopting the above technical solution, the partition plate divides the inner box into multiple groups of placement cavities, thereby reducing the probability of mutual influence between multiple groups of small precision instruments.
[0020] Furthermore, the small precision instrument is wrapped with bubble film and placed in the placement cavity.
[0021] By adopting the above technical solution, the bubble film wraps the small precision instrument, thereby improving the stability of the small precision instrument in the placement cavity.
[0022] Furthermore, a filling block is provided for filling the gap between the placement cavity and the small precision instrument wrapped with bubble film, and the filling block is composed of plastic bubble film.
[0023] By adopting the above technical solution, the filling block fills the gap between the bubble membrane and the placement cavity, thereby reducing the probability of the small precision instrument moving in the placement cavity and improving the stability of the small precision instrument.
[0024] Furthermore, a protective layer is provided on the outside of the outer box, and the protective layer is composed of a stretch film wrapped around the outer box.
[0025] By adopting the above technical solution, after the outer box is sealed, the stretch film is wrapped around the outer box to prevent external dust and moisture from entering the outer box.
[0026] In summary, this application includes at least one of the following beneficial technical effects:
[0027] The inner box is divided into multiple groups of placement cavities by partition plates, so that multiple groups of small precision instruments can be installed separately from each other. The bubble film protects the small precision instruments in the placement cavities, thereby forming an inner box that protects small precision instruments. Then, multiple groups of shockproof blocks and the outer box are used together to provide shockproof protection for the inner box. The filling layer then provides moisture-proof protection for the gap between the outer box and the inner box. Finally, the protective layer provides waterproof protection for the outside of the outer box, thereby improving the protection effect of small precision instruments during transportation. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 This is a schematic diagram of the structure of the precision instrument transport packaging of the present application, wherein the protective layer and the side wall of the outer box are cut away;
[0029] Figure 2 yes Figure 1 Schematic cross-section of AA.
[0030] Figure numerals: 1. Inner box; 11. Partition plate; 111. Placement cavity; 12. Bubble film; 13. Filling block; 2. Small precision instrument; 3. Protection mechanism; 31. Outer box; 32. Shockproof block; 33. Filling layer; 4. Moisture-proof agent; 5. Protective layer. DETAILED DESCRIPTION
[0031] The following is combined with Figure 1-2 This application is described in further detail.
[0032] The embodiment of the present application discloses a precision instrument transport package.
[0033] Reference Figure 1 and Figure 2 A precision instrument transport package includes an inner box 1, which is used to separate and package multiple small precision instruments 2. A protective mechanism 3 for shock and moisture protection is provided on the outside of the inner box 1.
[0034] Reference Figure 1 and Figure 2The inner box 1 is a rectangular structure. The inner box 1 is divided into multiple groups of placement cavities 111 by multiple groups of partition plates 11. The placement cavities 111 are used to place small precision instruments 2. Since the space of the placement cavities 111 is larger than that of the small precision instruments 2, in order to reduce the probability of the small precision instruments 2 colliding in the placement cavities 111 during transportation, the small precision instruments 2 are wrapped with bubble film 12, and then the small precision instruments 2 wrapped in the bubble film 12 are placed in the placement cavities 111. In order to further fix the small precision instruments 2, the gap between the placement cavities 111 and the small precision instruments 2 wrapped with the bubble film 12 is filled with filling blocks 13. The filling blocks 13 are composed of plastic bubble film. The gap between the placement cavities 111 and the bubble film 12 is filled by the filling blocks 13, thereby improving the stability of the small precision instruments 2 in the placement cavities 111.
[0035] Reference Figure 1 and Figure 2 After multiple groups of small precision instruments 2 are fixedly placed in the inner box 1, a protective mechanism 3 for shock and moisture protection is set on the outside of the inner box 1. The protective mechanism 3 includes an outer box 31, shockproof blocks 32 and a filling layer 33. The outer box 31 is located on the outside of the inner box 1 and is used to wrap the inner box 1; the shockproof blocks 32 are set on the outside of the inner box 1 and pressed against the inner wall of the outer box 31. There are eight groups of shockproof blocks 32, which are respectively located at the eight corners of the inner box 1. The shockproof blocks 33 are placed on the outside of the inner box 1 and are used to wrap the inner box 1. 2 is composed of three mutually perpendicular panels connected together. The three panels are respectively pressed against the three planes of the top corners of the inner box 1. The side of the three panels away from the inner box 1 is pressed against the inner top corner side wall of the outer box 31. The eight top corners of the inner box 1 are supported and fixed by eight groups of shockproof blocks 32. The eight groups of shockproof blocks 32 reduce the contact area between the inner box 1 and the outer box 31, thereby buffering the force between the outer box 31 and the inner box 1. The shockproof blocks 32 of this embodiment are made of pearl cotton foam.
[0036] Reference Figure 1 and Figure 2 The filling layer 33 is arranged in the gap between the inner box 1 and the outer box 31, and the inner box 1 is protected from moisture by the filling layer 33. The filling layer 33 is formed by a plastic bubble film pressed against the inner wall of the outer box 31. The filling layer 33 is used to prevent the accumulated water in the outer box 31 from entering the inner box 1, thereby reducing the probability of the accumulated water in the outer box 31 entering the inner box 1, and at the same time, a certain buffer is provided for the interaction force between the outer box 31 and the inner box 1; in order to further improve the dryness of the inner box 1, a plurality of groups of bagged moisture-proof agents 4 are fixedly installed on the side of the filling layer 33 close to the inner box 1, and the moisture-proof agent 4 adsorbs the accumulated water that passes through the filling layer 33, thereby reducing the content of the accumulated water entering the inner box 1.
[0037] Reference Figure 1A protective layer 5 is provided on the outside of the outer box 31. The protective layer 5 is composed of a stretch film wrapped around the outer box 31. After the outer box 31 is sealed, the stretch film is wrapped around the outer box 31 to prevent external dust and moisture from entering the outer box 31.
[0038] The working principle of the embodiment of this application is as follows:
[0039] The inner box 1 is divided into multiple groups of placement cavities 111 by the partition plate 11, so that multiple groups of small precision instruments 2 can be installed separately from each other, and the bubble film 12 protects the small precision instruments 2 in the placement cavity 111, thereby forming an inner box 1 that protects the small precision instruments 2, and then multiple groups of shockproof blocks 32 and the outer box 31 are used together to provide shockproof protection for the inner box 1, and then the filling layer 33 provides moisture-proof protection for the gap between the outer box 31 and the inner box 1, and finally the protective layer 5 is used to provide waterproof protection for the outside of the outer box 31, thereby improving the protection effect of small precision instruments during transportation.
[0040] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A precision instrument transport package, characterized by: The invention comprises an inner box (1), wherein the inner box (1) is used for separating and packaging a plurality of small precision instruments (2); a protective mechanism (3) for preventing shock and moisture is provided on the outer side of the inner box (1); the protective mechanism (3) comprises: An outer box (31), the outer box (31) being arranged outside the inner box (1) and wrapping the inner box (1); A shockproof block (32), the shockproof block (32) being arranged outside the inner box (1) and pressed against the inner wall of the outer box (31); A filling layer (33) is provided in the gap between the inner box (1) and the outer box (31) and is used to protect the inner box (1) from moisture.
2. The precision instrument transport package according to claim 1, characterized in that: The shockproof blocks (32) are provided in eight groups and are respectively located at the eight top corners of the inner box (1). The shockproof blocks (32) are composed of three mutually perpendicular panels and are pressed against the three planes of the top corners of the inner box (1). The side of the shockproof blocks (32) away from the inner box (1) is pressed against the side wall of the inner top corner of the outer box (31).
3. The precision instrument transport package according to claim 1, characterized in that: The filling layer (33) is formed by a plastic bubble film pressed against the inner wall of the outer box (31) and is used to prevent water outside the outer box (31) from entering the inner box (1).
4. The precision instrument transport package according to claim 3, characterized in that: A plurality of groups of bagged moisture-proof agents (4) are provided on one side of the filling layer (33) close to the inner box (1) and are used to absorb accumulated water passing through the filling layer (33).
5. The precision instrument transport package according to claim 1, characterized in that: The inner box (1) is divided into a plurality of placement cavities (111) for placing small precision instruments (2) by a plurality of groups of partition plates (11), wherein the partition plates (11) are made of corrugated cardboard.
6. The precision instrument transport package according to claim 5, characterized in that: The small precision instrument (2) is wrapped with a bubble film (12) and placed in the placement cavity (111).
7. The precision instrument transport package according to claim 6, characterized in that: A filling block (13) is provided for filling the gap between the placement cavity (111) and the small precision instrument (2) wrapped with the bubble film (12), wherein the filling block (13) is composed of a plastic bubble film.
8. The precision instrument transport package according to claim 1, characterized in that: A protective layer (5) is provided on the outside of the outer box (31), and the protective layer (5) is composed of a stretch film wrapped around the outer box (31).