Electronic component foam box capable of being partitioned

By incorporating components such as a drying plate, ventilation holes, a heating plate, and temperature and humidity sensors inside the foam box, the problem of insufficient moisture protection in traditional foam boxes is solved, enabling automatic drying and temperature regulation of electronic components, and improving the adaptability and safety of the storage environment.

CN224146723UActive Publication Date: 2026-04-21ZHONGSHAN SECURE FORMED PLASTIC PROD IND CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHONGSHAN SECURE FORMED PLASTIC PROD IND CO LTD
Filing Date
2025-05-19
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Traditional foam boxes lack moisture-proof and drying functions, making electronic components susceptible to moisture during storage and transportation, which affects performance and lifespan.

Method used

A partitioned foam box for electronic components was designed, which includes a drying plate, ventilation holes, a heating plate, a humidity indicator card, and a temperature and humidity sensor. The drying plate absorbs moisture, the ventilation holes control humidity, the partitions store components in different areas, the temperature and humidity sensor monitors and adjusts the environment, and a buzzer sounds an alarm, thus achieving automatic adjustment and monitoring.

Benefits of technology

It effectively controls humidity inside the box, improves moisture protection, adapts to different component shapes, provides personalized partitions, automatically adjusts temperature and alarms, and ensures that electronic components are dry and safe during storage.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224146723U_ABST
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Abstract

The utility model provides an electronic component foam box capable of being partitioned, which belongs to the technical field of foam boxes and comprises a foam box body, a mounting groove is formed in the bottom of an inner cavity of the foam box body, a drying plate is arranged in the mounting groove, a sealing cover is arranged at the opening end of the mounting groove, and a plurality of groups of air holes are uniformly formed in the top of the sealing cover. An observation opening is formed in one side of the foam box body, a transparent plate is clamped in the observation opening, a clamping groove is formed in one side of the transparent plate, and a humidity indicating card is clamped in the clamping groove; a plurality of groups of first partition plates and a plurality of groups of second partition plates are clamped in the foam box body, the first partition plates are clamped on the second partition plates, heating plates are arranged on the first partition plates and the second partition plates, and a power supply for supplying power to the heating plates and a controller for controlling the temperature of the heating plates are arranged at the bottom of the foam box body. According to the device, through the arrangement of a drying plate, air holes and a humidity indicator card, a user can control and monitor the humidity in the box, and the moisture-proof performance of the device is improved.
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Description

Technical Field

[0001] This utility model belongs to the field of foam box technology, and more specifically, it relates to a partitionable foam box for electronic components. Background Technology

[0002] In the storage and transportation of electronic components, foam boxes are a commonly used packaging container, widely used to protect various electronic components from external environmental influences. However, the air in the external environment contains a certain amount of moisture, and even though foam boxes have some degree of airtightness, they are not completely airtight. Moisture can gradually seep into the box through the tiny pores in the foam material and the joints between the lid and the body. Furthermore, traditional foam boxes lack moisture-proof and drying functions. If the humidity inside the box cannot be controlled, electronic components are easily affected by moisture, negatively impacting their performance and lifespan. Utility Model Content

[0003] To address the aforementioned technical problems, this utility model provides a partitionable foam box for electronic components, which solves the technical problem that traditional foam boxes do not have moisture-proof and drying functions, and that electronic components are prone to becoming damp if the humidity inside the box cannot be controlled.

[0004] The purpose and function of this utility model of a partitionable foam box for electronic components are achieved by the following specific technical means:

[0005] A partitionable foam box for electronic components includes a foam box body. The bottom of the foam box body has a mounting groove containing a drying plate. A cap is provided at the opening of the mounting groove, and multiple sets of ventilation holes are evenly distributed on the top of the cap. An observation port is provided on one side of the foam box body, and a transparent plate is fitted inside the observation port. A slot is provided on one side of the transparent plate, and a humidity indicator card is fitted inside the slot. Multiple sets of first partitions and multiple sets of second partitions are fitted inside the foam box body. The first partitions are fitted onto the second partitions. A heating plate is provided on both the first and second partitions. A power supply for powering the heating plates and a controller for controlling the temperature of the heating plates are provided at the bottom of the foam box body.

[0006] According to a preferred embodiment, the drying plate includes a silica gel drying layer and an activated carbon adsorption layer, with the silica gel drying layer located above the activated carbon adsorption layer.

[0007] According to a preferred embodiment, the vent holes of the cover are inclined, and the inner wall of the vent holes is covered with a hydrophobic and breathable membrane.

[0008] According to a preferred embodiment, both the first partition and the second partition are made of flame-retardant polypropylene, and the heating plate is made of flexible heating film.

[0009] According to a preferred embodiment, the inner wall of the foam box body is provided with multiple sets of longitudinal slots and multiple sets of transverse slots. The first partition is engaged in one set of the longitudinal slots, and the second partition is engaged in one set of the transverse slots. The first partition is provided with multiple sets of grooves, and the second partition is provided with multiple sets of protrusions, one set of the protrusions being engaged in one set of the grooves.

[0010] According to a preferred embodiment, a storage box is slidably provided at the bottom of the foam box body, the power source is a detachable lithium battery pack, the power source and the controller are both located in the storage box, and the controller is electrically connected to the heating plate and the power source respectively.

[0011] According to a preferred embodiment, the foam box body is provided with a temperature and humidity sensor, the storage box is provided with a buzzer, and the controller is electrically connected to the temperature and humidity sensor and the buzzer respectively.

[0012] Compared with the prior art, the present invention has the following beneficial effects:

[0013] 1. This utility model, through the inclusion of a drying plate, vents, and a humidity indicator card, allows users to control and monitor the humidity inside the enclosure, thus improving the device's moisture-proof performance. After installing the drying plate, users can visually understand the humidity level inside the enclosure by observing the humidity indicator card, enabling them to promptly detect abnormal humidity levels and enhancing the device's ability to protect electronic components from moisture. For example, when the humidity indicator card shows excessive humidity, the user can promptly replace the drying plate to ensure that the electronic components are always in a dry environment.

[0014] 2. When using this device, users can adjust the partition layout using the longitudinal and transverse slots, as well as the protrusions and grooves on the first and second partitions. This allows users to personalize the partitions according to the size and shape of electronic components, improving the device's space utilization and adaptability. Furthermore, through the coordinated operation of the temperature and humidity sensor, heating plate, controller, and buzzer, the device can automatically adjust the internal temperature and issue an alarm when temperature or humidity is abnormal, facilitating timely action by the user and enhancing the device's comprehensive protection capabilities for electronic components. For example, when the temperature and humidity sensor detects an unsuitable temperature, the controller can automatically activate the heating plate to adjust the temperature, while the buzzer alerts the user. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the assembled structure of this utility model;

[0016] Figure 2 This is a schematic diagram of the disassembled structure of this utility model;

[0017] Figure 3 yes Figure 2 Enlarged view of region a in the middle;

[0018] Figure 4 yes Figure 2 Enlarged view of region b in the middle;

[0019] Figure 5 yes Figure 2 Enlarged view of region c in the middle;

[0020] Figure 6 yes Figure 2 Enlarged view of region d in the middle;

[0021] Figure 7 This is a schematic diagram of the air vent of this utility model;

[0022] Figure 8 This is a schematic diagram of the structure of the drying plate of this utility model.

[0023] In the diagram, the correspondence between component names and drawing numbers is as follows:

[0024] 11. Foam box body; 111. Longitudinal slot; 112. Transverse slot; 12. Mounting slot; 13. Drying plate; 131. Silica gel drying layer; 132. Activated carbon adsorption layer; 14. Cover; 15. Ventilation hole; 151. Hydrophobic and breathable membrane; 16. Observation port; 17. Transparent plate; 18. Slot; 19. Humidity indicator card; 21. First partition; 211. Groove; 22. Second partition; 221. Protrusion; 23. Heating plate; 24. Power supply; 25. Controller; 26. Storage box; 27. Temperature and humidity sensor; 28. Buzzer. Detailed Implementation

[0025] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate the technical solution of this utility model, but should not be used to limit the scope of protection of this utility model.

[0026] Example:

[0027] like Figures 1 to 8As shown, this utility model provides a partitionable foam box for electronic components, including a foam box body 11. A mounting groove 12 is formed at the bottom of the inner cavity of the foam box body 11, and a drying plate 13 is placed inside the mounting groove 12. Through the arrangement of the drying plate 13 and the mounting groove 12, the drying plate 13 can absorb moisture inside the box, creating a dry storage environment for the electronic components. The mounting groove 12 is used to fix the drying plate 13. A cover 14 is provided at the opening end of the mounting groove 12, and multiple sets of ventilation holes 15 are evenly formed on the top of the cover 14. Through the arrangement of the cover 14 and the ventilation holes 15, the air inside the box can come into contact with the drying plate 13 for dehumidification. At the same time, the cover 14 can prevent foreign objects from entering the mounting groove 12 and damaging the drying plate 13. An observation port 16 is provided on one side of the foam box body 11, and a transparent plate 17 is fitted inside the observation port 16. A slot 18 is provided on one side of the transparent plate 17, and a humidity indicator card 19 is fitted inside the slot 18. This arrangement allows users to easily observe the humidity inside the box, understand the environmental conditions in a timely manner, and take appropriate measures. The foam box body 11 is internally equipped with multiple sets of first partitions 21 and multiple sets of second partitions 22. The first partitions 21 are mounted on the second partitions 22. This arrangement of the first and second partitions 21 divides the interior of the foam box body 11 into multiple zones, allowing for the separate storage of different electronic components and facilitating categorized management. Each of the first and second partitions 21 and 22 is equipped with a heating plate 23. The heating plate 23 allows for temperature regulation within each zone, meeting the storage requirements of temperature-sensitive electronic components. The bottom of the foam box body 11 has a power supply 24 for powering the heating plate 23 and a controller 25 for controlling the temperature of the heating plate 23. The power supply 24 and controller 25 provide stable power to the heating plate 23 and control its temperature. The controller 25 can be an Arduino Uno model controller.

[0028] like Figure 2 , 8 As shown, the drying plate 13 includes a silica gel drying layer 131 and an activated carbon adsorption layer 132, with the silica gel drying layer 131 located above the activated carbon adsorption layer 132. Through the arrangement of the silica gel drying layer 131 and the activated carbon adsorption layer 132, the silica gel drying layer 131 can absorb moisture, while the activated carbon adsorption layer 132 can adsorb odors and some harmful gases, synergistically enhancing the drying and purification effects.

[0029] like Figure 2 , 7 As shown, the vent 15 of the cover 14 is inclined, and the inner wall of the vent 15 is covered with a hydrophobic and breathable membrane 151. By setting the inclined vent 15 and the hydrophobic and breathable membrane 151, external liquid can be prevented from flowing into the mounting groove 12, while ensuring air circulation, enhancing the moisture-proof performance, and maintaining the normal operation of the drying plate 13.

[0030] Both the first partition 21 and the second partition 22 are made of flame-retardant polypropylene, and the heating plate 23 uses a flexible heating film. By using flame-retardant polypropylene partitions and a flexible heating film, the partitions can possess flame-retardant properties, ensuring storage safety, while also allowing for uniform heating using the flexible heating film, without affecting the partition assembly. The flexible heating film can be made of polyimide.

[0031] like Figure 2 , 4 As shown in Figures 5 and 6, the inner wall of the foam box body 11 has multiple sets of longitudinal slots 111 and multiple sets of transverse slots 112. The first partition 21 is engaged in one set of longitudinal slots 111, and the second partition 22 is engaged in one set of transverse slots 112. The first partition 21 has multiple sets of grooves 211, and the second partition 22 has multiple sets of protrusions 221, one set of protrusions 221 being engaged in one set of grooves 211. Through the arrangement of the longitudinal slots 111, transverse slots 112, grooves 211, and protrusions 221, the partitions can be installed and combined, the partition layout can be adjusted, and electronic components of different sizes and shapes can be accommodated.

[0032] The bottom of the foam box body 11 has a sliding storage box 26. The power supply 24 is a detachable lithium battery pack. Both the power supply 24 and the controller 25 are located inside the storage box 26. The controller 25 is electrically connected to the heating plate 23 and the power supply 24. This arrangement facilitates the storage, protection, and maintenance of the power supply 24 and the controller 25. At the same time, the detachable battery pack is easy to replace, ensuring the continuous and stable operation of the device.

[0033] A temperature and humidity sensor 27 is installed inside the foam box body 11, and a buzzer 28 is installed inside the storage box 26. The controller 25 is electrically connected to the temperature and humidity sensor 27 and the buzzer 28. Through the connection between the temperature and humidity sensor 27, the buzzer 28, and the controller 25, the temperature and humidity inside the box can be monitored. When the temperature and humidity exceed the set range, the controller 25 activates the buzzer 28 to sound an alarm, reminding the user to take timely action and ensuring a suitable storage environment for electronic components. The temperature and humidity sensor 27 can be a DHT22 temperature and humidity sensor.

[0034] The specific usage and function of this embodiment are as follows:

[0035] In use, the partitions are first assembled and fixed according to the size and shape of the electronic components, using the longitudinal slots 111 and transverse slots 112 on the inner wall of the foam box body 11, as well as the protrusions 221 and grooves 211 on the first partition 21 and the second partition 22. This completes the partition layout adjustment to adapt to the storage needs of different electronic components. The cover 14 is tilted and has ventilation holes 15 covered with a hydrophobic and breathable membrane 151 on its inner wall. This ensures that the air inside the box is in contact with the drying plate 13 while preventing external liquids from entering the mounting slot 12. The silica gel drying layer 131 and activated carbon adsorption layer 132 of the drying plate 13 work together to absorb moisture inside the box and adsorb odors and harmful gases, creating a dry and clean environment for the electronic components. Users can intuitively understand the humidity inside the box through the observation port 16, the transparent plate 17, and the humidity indicator card 19 in the slot 18. If temperature adjustment is required, the power supply 24 in the bottom storage box 26 supplies power to the heating plate 23, and the controller 25 regulates the temperature of the heating plate 23 to meet the needs of temperature-sensitive components. Temperature and humidity sensor 27 monitors the temperature and humidity inside the box. Once the temperature and humidity exceed the set range, controller 25 triggers buzzer 28 in storage box 26 to remind the user to deal with it in time, thereby ensuring the safety and stability of electronic components during storage and transportation.

[0036] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. It is obvious to those skilled in the art that this utility model is not limited to the details of the above exemplary embodiments.

Claims

1. A zonable electronic component foam case comprising a foam case body (11) characterised in that: The foam box body (11) has an installation groove (12) at the bottom of its inner cavity. A drying plate (13) is provided in the installation groove (12). A cover (14) is provided at the opening end of the installation groove (12). Multiple sets of ventilation holes (15) are evenly provided on the top of the cover (14). An observation port (16) is provided on one side of the foam box body (11). A transparent plate (17) is fitted in the observation port (16). A slot (18) is provided on one side of the transparent plate (17). The slot (18) is fitted with a... A humidity indicator card (19) is provided; multiple sets of first partitions (21) and multiple sets of second partitions (22) are installed inside the foam box body (11), the first partitions (21) are installed on the second partitions (22), and heating plates (23) are provided on both the first partitions (21) and the second partitions (22). A power supply (24) for supplying power to the heating plates (23) and a controller (25) for controlling the temperature of the heating plates (23) are provided at the bottom of the foam box body (11).

2. A zonable electronic component foam case according to claim 1, wherein: The drying plate (13) includes a silica gel drying layer (131) and an activated carbon adsorption layer (132), with the silica gel drying layer (131) located above the activated carbon adsorption layer (132).

3. A zonable electronic component foam case according to claim 2, wherein: The vent (15) of the cover (14) is inclined, and the inner wall of the vent (15) is covered with a hydrophobic and breathable membrane (151).

4. A zonable electronic component foam case according to claim 3, wherein: Both the first partition (21) and the second partition (22) are made of flame-retardant polypropylene, and the heating plate (23) is made of flexible heating film.

5. A zonable electronic component foam case according to claim 1, wherein: The inner wall of the foam box body (11) has multiple sets of longitudinal slots (111) and multiple sets of transverse slots (112). The first partition (21) is fitted in one set of the longitudinal slots (111), and the second partition (22) is fitted in one set of the transverse slots (112). The first partition (21) has multiple sets of grooves (211), and the second partition (22) has multiple sets of protrusions (221). One set of protrusions (221) is fitted in one set of grooves (211).

6. A zonable electronic component foam case according to claim 5, wherein: The foam box body (11) has a slidable storage box (26) at the bottom. The power supply (24) is a detachable lithium battery pack. The power supply (24) and the controller (25) are both located in the storage box (26). The controller (25) is electrically connected to the heating plate (23) and the power supply (24) respectively.

7. A zonable electronic component foam case according to claim 6, wherein: The foam box body (11) is equipped with a temperature and humidity sensor (27), the storage box (26) is equipped with a buzzer (28), and the controller (25) is electrically connected to the temperature and humidity sensor (27) and the buzzer (28) respectively.