High-elasticity anti-static electronic device packaging piece

By using anti-static pearl cotton material and designing buffer strips, buffer grooves, positioning slots and inserts, the shortcomings of electronic component packaging in terms of buffering performance and fixing effect are solved, achieving high elasticity protection and stable transportation.

CN223658851UActive Publication Date: 2025-12-12KUNSHAN SIKAICHEN PACKAGING MATERIAL CO LTD
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Patent Information

Application Number
CN202422805066.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-18
Publication Date
2025-12-12
Estimated Expiration
2034-11-18

AI Technical Summary

Technical Problem

Existing electronic device packaging is inadequate in terms of cushioning and securing performance, especially in the event of severe impacts, and is prone to shaking and dimensional errors during packing.

Method used

Made of pearl cotton material with antistatic agent, combined with the design of buffer strips and buffer grooves, the buffer strips and buffer grooves work together to absorb impact force, and combined with the design of positioning slots and positioning pins, it achieves high elasticity protection and stable fixation.

Benefits of technology

It improves the protection of electronic components, avoids shaking and dimensional errors during packaging, and ensures the stability and tightness of electronic components during transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a high elasticity anti-static electronic device package, and particularly relates to the technical field of electronic device package, the high elasticity anti-static electronic device package comprises a pearl wool main body and a protective cover, the periphery of the pearl wool main body is symmetrically and fixedly connected with buffer strips, and the bottom of the pearl wool main body is provided with a buffer groove. A storage cavity and a positioning slot are formed in the top of the pearl wool main body. According to the packaging piece, firstly, through cooperation of the buffering strips and the buffering grooves, when the packaging piece is placed in a box body, a gap is prevented from being generated between the pearl wool body and the box body, meanwhile, deformation can be generated through the buffering strips and the bottom of the pearl wool body when the packaging piece is impacted, and the protection effect on internal electronic devices is improved; and the top end of the storage cavity is blocked through the arranged positioning blocking plate, so that the electronic device can be prevented from generating a gap in the storage cavity after the electronic device is installed, the electronic device is prevented from shaking in the storage cavity when the packaging piece is impacted, and the fixing effect is improved.
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Description

Technical Field

[0001] This utility model relates to the field of electronic device packaging technology, and more specifically, to highly elastic antistatic electronic device packaging. Background Technology

[0002] Electronic components are electronic parts and components of small machines and instruments. They often refer to certain parts in industries such as electrical appliances, radio, and instruments. They are a general term for electronic devices such as capacitors, transistors, hairsprings, and clockwork. Electronic components need to be packaged during the movement and transportation process, which not only protects the electronic components but also serves a protective function.

[0003] Commonly used packaging materials such as plastic and cardboard can protect electronic devices to some extent, but they are insufficient in terms of cushioning performance and fit to electronic devices. For example, plastic packaging cannot effectively absorb impact when subjected to severe impact, resulting in damage to electronic devices. Cardboard packaging performs poorly in terms of moisture protection and pressure resistance. Therefore, a type of packaging made of sponge or pearl cotton has emerged.

[0004] Existing packaging materials made of pearl cotton provide high elasticity and anti-static properties for packaging electronic components. However, when placing and securing electronic components, the use of slots for fixation alone can cause the components to wobble within the slots due to unpredictable impacts from the packaging, affecting the fixation effect. Furthermore, when packing these packages into boxes, discrepancies between the package dimensions and the box body can easily occur, affecting the tightness of the packing and the overall performance. Summary of the Invention

[0005] In order to overcome the above-mentioned defects of the prior art, the present invention provides a highly elastic antistatic electronic device packaging to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a high-elasticity anti-static electronic device packaging package, comprising a pearl cotton body and a protective cover. The pearl cotton body and protective cover protect the placed electronic devices, and the material of the pearl cotton body and protective cover achieves a high-elasticity protective effect. Buffer strips are symmetrically fixedly connected around the perimeter of the pearl cotton body, and a buffer groove is formed at the bottom of the pearl cotton body. Through the cooperation of the buffer strips and buffer groove, cushioning can be achieved in the event of a collision, improving the protective effect. A storage cavity and positioning slot are formed at the top of the pearl cotton body, facilitating the storage and positioning of electronic devices. The protective cover is easily installed on top of the pearl cotton body via a positioning slot. A support block is fixedly connected to the bottom of the inner cavity of the storage chamber to support the electronic devices placed inside the storage chamber, making them easy to retrieve and use. A baffle is fixedly connected to the opening of the inner cavity of the storage chamber to limit the placement of the electronic devices and improve their stability. A positioning pin and a positioning stop plate are fixedly connected to the bottom of the protective cover. The positioning stop plate limits the placement of the electronic devices inside the storage chamber, and the positioning pin easily cooperates with the positioning slot. The friction between the positioning pin and the inner wall of the positioning slot fixes the protective cover, improving the protective effect.

[0007] Both the main body and the protective cover of the pearl cotton are made of pearl cotton material with antistatic agents. It is composed of countless independent air bubbles generated by physical foaming of low-density polyethylene resin. Through the shockproof and antistatic properties of the pearl cotton with antistatic agents, it can better protect the electronic devices stored inside and protect them from external physical damage. Its unique cellular structure can effectively absorb and disperse energy when impacted, reducing the impact of impact on electronic devices, and can also effectively prevent static electricity from damaging electronic devices.

[0008] Preferably, the width of the buffer strip is the same as the depth of the buffer groove, and the width of the buffer strip is the same as the distance between the two buffer grooves. The buffer strip and the buffer groove are staggered. Through the cooperation of the buffer strip and the buffer groove, the stability of the package can be improved by squeezing the buffer strip and the buffer groove when the package is placed in the box. At the same time, the deformation of the bottom of the buffer strip and the pearl cotton body can improve the protection effect of the internal electronic components.

[0009] Preferably, the cross-sectional shape of the baffle is set to semi-circular, the size of the support block is smaller than the inner cavity size of the storage cavity, and the support block is set in the center of the inner cavity of the storage cavity. The baffle can limit the electronic device placed inside the storage cavity, thereby improving the stability of the electronic device placement, and the support block can support the electronic device, thereby improving the stability of the electronic device placement.

[0010] Preferably, the opening of the positioning slot is configured as a trumpet-shaped structure, the bottom end of the positioning pin is configured as a conical structure, and a positioning gap is provided between the baffle and the surface wall of the pearl cotton body. Through the cooperation of the positioning slot and the positioning pin, it is convenient to connect the protective cover to the pearl cotton body, facilitate the positioning of the protective cover, and improve the use effect.

[0011] Preferably, the positioning slots and positioning pins correspond one-to-one, and both the positioning slots and positioning pins are arranged around the perimeter of the pearl cotton body and the protective cover. The positioning slots and positioning pins are compatible, and the positioning pins are inserted into the interior of the positioning slots. By inserting the positioning pins into the interior of the positioning slots, the friction between the positioning pins and the positioning slots can be used to increase the resistance to pulling out the positioning pins, thereby connecting the protective cover with the pearl cotton body. The protective cover protects the top of the pearl cotton body, thus achieving the packaging of electronic devices.

[0012] Preferably, the positioning blocking plate corresponds one-to-one with the storage cavity. The positioning blocking plate is set in the positioning gap at the top of the baffle. By positioning the blocking plate inside the storage cavity, the top of the electronic devices inside the storage cavity can be protected, thereby improving the packaging protection effect.

[0013] The technical effects and advantages of this utility model are as follows:

[0014] This utility model firstly uses the combination of buffer strips and buffer grooves to prevent gaps between the pearl cotton body and the box body when the package is placed in the box. At the same time, the deformation of the bottom of the buffer strips and pearl cotton body when impacted improves the protection of the internal electronic components. The positioning blocking plate seals the top of the storage cavity, which prevents gaps from forming inside the storage cavity after the electronic components are installed. This prevents the electronic components from shaking inside the storage cavity when the package is impacted, thus improving the fixation effect.

[0015] This utility model also uses the cooperation of baffles and support blocks to position and limit the electronic components inside the storage cavity, improving the stability of placement. The cooperation of positioning pins and positioning slots facilitates the connection between the protective cover and the pearl cotton body, making it easy to position the protective cover. Furthermore, the friction between the positioning pins and positioning slots increases the resistance to pulling out the positioning pins, thereby ensuring a tight connection between the protective cover and the pearl cotton body. The protective cover protects the top of the electronic components, achieving the packaging protection effect for the electronic components.

[0016] In summary, through the interaction of the above-mentioned multiple effects, the stability and tightness of the package placed inside the box are improved, gaps are avoided, and the stability of electronic devices placed inside the storage cavity is improved, preventing the electronic devices from shaking inside the storage cavity. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model.

[0018] Figure 2 This is a schematic diagram of the structure of the pearl cotton body of this utility model.

[0019] Figure 3 This is a schematic diagram of the cross-sectional split structure of this utility model.

[0020] Figure 4 This is a schematic diagram of the disassembled, bottom-view structure of this utility model.

[0021] The attached diagram is labeled as follows: 1. Pearl cotton body; 2. Protective cover; 3. Buffer strip; 4. Buffer groove; 5. Storage cavity; 6. Support block; 7. Stop bar; 8. Positioning slot; 9. Positioning insert; 10. Positioning block. Detailed Implementation

[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0023] As attached Figure 1-4 The high-elasticity anti-static electronic device packaging shown includes a pearl cotton body 1 and a protective cover 2. The pearl cotton body 1 and protective cover 2 protect the placed electronic devices, and the high elasticity of the pearl cotton body 1 and protective cover 2 provides excellent protection. Buffer strips 3 are symmetrically fixed around the perimeter of the pearl cotton body 1, and a buffer groove 4 is provided at the bottom of the pearl cotton body 1. The buffer strips 3 and buffer groove 4 work together to cushion impacts, improving the protective effect. A storage cavity 5 and a positioning slot 8 are provided at the top of the pearl cotton body 1. The storage cavity 5 facilitates the placement and positioning of electronic devices, and the positioning slot 8 facilitates... The protective cover 2 is installed on top of the pearl cotton body 1. A support block 6 is fixedly connected to the bottom of the inner cavity of the storage cavity 5 to support the electronic devices placed inside the storage cavity 5, making them easy to retrieve and use. A baffle 7 is fixedly connected to the opening of the inner cavity of the storage cavity 5 to limit the placement of the electronic devices and improve the stability of the placement of the electronic devices. A positioning pin 9 and a positioning block 10 are fixedly connected to the bottom of the protective cover 2. The positioning block 10 limits the placement of the electronic devices inside the storage cavity 5. The positioning pin 9 can easily cooperate with the positioning slot 8. The friction between the positioning pin 9 and the inner wall of the positioning slot 8 fixes the protective cover 2 and improves the protective effect.

[0024] As attached Figure 1-4 As shown, both the main body 1 and the protective cover 2 are made of pearl cotton material with antistatic agent, which is composed of numerous independent air bubbles generated by physical foaming of low-density polyethylene resin. The width of the buffer strip 3 is the same as the depth of the buffer groove 4, and the width of the buffer strip 3 is the same as the distance between the two buffer grooves 4. The buffer strip 3 and the buffer groove 4 are staggered. Through the shockproof and antistatic properties of the pearl cotton with antistatic agent, it can better protect the electronic devices stored inside, protecting them from external physical damage. Its unique cellular structure can effectively absorb and disperse energy when impacted, reducing the impact of the impact on the electronic devices. At the same time, it can effectively prevent static electricity from damaging the electronic devices. Through the cooperation of the buffer strip 3 and the buffer groove 4, the stability of the placement can be improved by squeezing the buffer strip 3 and the buffer groove 4 when the package is placed in the box. At the same time, the deformation of the bottom of the buffer strip 3 and the pearl cotton main body 1 can improve the protection effect of the internal electronic devices.

[0025] As attached Figure 1-4 As shown, the cross-sectional shape of the baffle 7 is semi-circular, the size of the support block 6 is smaller than the inner cavity size of the storage cavity 5, the support block 6 is located in the center of the inner cavity of the storage cavity 5, the opening of the positioning slot 8 is a trumpet-shaped structure, the bottom end of the positioning pin 9 is a conical structure, a positioning gap is provided between the baffle 7 and the surface wall of the pearl cotton body 1, the positioning slot 8 and the positioning pin 9 correspond one-to-one, the positioning slot 8 and the positioning pin 9 are both located around the pearl cotton body 1 and the protective cover 2, the positioning slot 8 and the positioning pin 9 are compatible, the positioning pin 9 is inserted into the interior of the positioning slot 8, the positioning blocking plate 10 corresponds one-to-one with the storage cavity 5, the positioning blocking plate 10 is located in the positioning gap at the top of the baffle 7, the baffle 7 can be used to position the items placed in the storage cavity 5. The electronic components inside the storage cavity 5 are positioned to improve their stability. Support blocks 6 further support the electronic components, enhancing their stability. The positioning slots 8 and 9 facilitate the connection between the protective cover 2 and the pearl cotton body 1, improving the cover's positioning and overall effectiveness. The friction between the 9 and slots increases the resistance to pulling out the 9, allowing the cover 2 to connect to the body 1. The cover 2 protects the top of the pearl cotton body 1, thus packaging the electronic components. The positioning plate 10, located inside the storage cavity 5, protects the top of the electronic components inside, enhancing the protective effect.

[0026] The working principle of this utility model is as follows: When in use, the electronic device is placed inside the storage cavity 5, supported by the support block 6, and the electronic device is fixed by the side of the baffle 7, thereby achieving the effect of fixing the electronic device.

[0027] Then, the protective cover 2 is placed on top of the pearl cotton body 1, so that the positioning pin 9 is inserted into the inside of the positioning slot 8. The positioning block 10 is located at the top of the inner cavity of the storage cavity 5 to limit the top of the electronic device, thereby improving the packaging effect of the electronic device. Then, when the package is placed in the box, the gap between the package and the box can be avoided by squeezing the buffer strip 3 and the bottom of the pearl cotton body 1, thereby improving the tightness of the placement and improving the packaging protection effect.

[0028] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A highly elastic antistatic packaging package for electronic components, characterized in that: The device includes a pearl cotton body (1) and a protective cover (2). Buffer strips (3) are symmetrically fixed around the pearl cotton body (1). Buffer grooves (4) are opened at the bottom of the pearl cotton body (1). Storage cavity (5) and positioning slot (8) are opened at the top of the pearl cotton body (1). Support block (6) is fixedly connected to the bottom of the inner cavity of the storage cavity (5). A baffle strip (7) is fixedly connected to the opening of the inner cavity of the storage cavity (5). Positioning insert (9) and positioning block (10) are fixedly connected to the bottom of the protective cover (2).

2. The highly elastic antistatic electronic device packaging according to claim 1, characterized in that: The main body (1) and the protective cover (2) of the pearl cotton are both made of pearl cotton material with antistatic agent, which is composed of countless independent bubbles generated by physical foaming of low density polyethylene resin.

3. The highly elastic antistatic electronic device packaging according to claim 1, characterized in that: The width of the buffer strip (3) is the same as the depth of the buffer groove (4), the width of the buffer strip (3) is the same as the distance between the two buffer grooves (4), and the buffer strip (3) and the buffer groove (4) are misaligned.

4. The highly elastic antistatic electronic device packaging according to claim 1, characterized in that: The cross-sectional shape of the baffle (7) is set to semi-circular, the size of the support block (6) is smaller than the inner cavity size of the storage cavity (5), and the support block (6) is set in the center of the inner cavity of the storage cavity (5).

5. The highly elastic antistatic electronic device packaging according to claim 1, characterized in that: The opening of the positioning slot (8) is configured as a horn-shaped structure, the bottom end of the positioning post (9) is configured as a conical structure, and a positioning gap is provided between the baffle (7) and the surface wall of the pearl cotton body (1).

6. The highly elastic antistatic electronic device packaging according to claim 1, characterized in that: The positioning slot (8) and the positioning pin (9) correspond one to one. The positioning slot (8) and the positioning pin (9) are both set around the pearl cotton body (1) and the protective cover (2). The positioning slot (8) and the positioning pin (9) are compatible. The positioning pin (9) is inserted into the interior of the positioning slot (8).

7. The highly elastic antistatic electronic device packaging according to claim 1, characterized in that: The positioning blocking plate (10) corresponds one-to-one with the storage cavity (5), and the positioning blocking plate (10) is set in the positioning gap at the top of the baffle (7).