A multi-environment adaptable smart terminal shell

By combining chamfered blocks, heat absorption plates, heat dissipation fins, anti-electromagnetic rings, and sealing frames, the problem of anti-interference, protection, and sealing of smart terminal shells in complex environments is solved, enabling stable use in multiple environments.

CN224583535UActive Publication Date: 2026-07-31HANGZHOU QIUSHI ARTIFICIAL ENVIRONMENT
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HANGZHOU QIUSHI ARTIFICIAL ENVIRONMENT
Filing Date
2025-07-29
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing smart terminal casings lack sufficient resistance to electromagnetic interference, have limited impact and shock absorption performance, poor sealing performance, and inadequate screen protection in complex environments, making it difficult to meet the requirements for long-term stable use in various environments.

Method used

A multi-environment adaptable smart terminal shell was designed, which uses a combination of chamfered blocks to buffer the edges, heat absorption plates and heat dissipation fins for heat dissipation, anti-electromagnetic rings and anti-electromagnetic frames to enhance anti-electromagnetic interference, sealing frames and tempered glass films to improve sealing and screen protection, and buffer springs and support frames to provide all-round protection.

Benefits of technology

It enhances the anti-interference capability in complex electromagnetic environments, strengthens the protection performance under vibration and shock, ensures sealing and screen integrity, and extends the service life of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a multi-environment adaptable smart terminal shell, including a protective shell. The front of the protective shell has a mounting groove, and a heat-absorbing plate is fixedly connected to the bottom of the groove. A heat-spreading plate is installed inside the heat-absorbing plate. This utility model enhances impact resistance through the protective shell, chamfered edges, and elastic balls. The combination of the heat-absorbing plate, heat-spreading plate, and heat dissipation fins achieves efficient heat dissipation, adapting to high-temperature environments. Furthermore, an anti-electromagnetic ring on the mounting frame reduces electromagnetic interference, and shock-absorbing pads buffer vibrations, protecting the smart terminal body. The combination of a snap-fit ​​groove, sealing frame, and sealing slot enhances sealing, adapting to dusty and humid environments. Finally, a tempered glass film protects the human-machine interface screen from scratches, extending its lifespan. Thus, this comprehensive design achieves adaptability to various complex environments.
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Description

Technical Field

[0001] This utility model relates to the field of multi-environment adaptable smart terminal shell technology, specifically a multi-environment adaptable smart terminal shell. Background Technology

[0002] With smart terminals being widely used in diverse scenarios such as industrial control, outdoor operations, and medical assistance, the complexity of their usage environment places stringent demands on the performance of their supporting casings.

[0003] Current smart terminal casings on the market suffer from several shortcomings in adaptability: insufficient electromagnetic interference resistance; ordinary casings lack effective shielding measures, and in complex electromagnetic environments such as substations and factory workshops, external electromagnetic signals can easily interfere with the internal circuits of the device, affecting the stability of signal transmission; limited impact resistance and shock absorption performance; most casings only achieve basic protection by increasing the casing thickness, and there are no special buffer structures at the corners, making them prone to damage upon impact, and the connection between the device and the casing lacks elastic cushioning, which can easily lead to loosening of internal components in vibration environments; poor sealing performance; the connection between the screen and the casing is mostly a simple overlap, which is difficult to effectively prevent the intrusion of dust, moisture, etc., and can easily cause the inside of the device to become damp or contaminated in dusty and humid environments; insufficient screen protection; lack of special reinforced protective structures; easy to be scratched by hard objects during daily use, affecting the service life; these problems make it difficult for existing casings to meet the needs of long-term stable use in various environments.

[0004] Therefore, developing a smart terminal shell that can adapt to complex environments and integrate multiple protective functions has become an urgent need for the industry. Utility Model Content

[0005] To address the problems mentioned in the background art, the purpose of this utility model is to provide a multi-environment adaptable smart terminal shell that has the advantages of comprehensive performance in terms of protection, heat dissipation, anti-electromagnetic interference, reliable sealing, and screen enhanced protection. It solves the problems of existing shells being susceptible to interference in strong electromagnetic environments, having weak protection capabilities when subjected to collisions and vibrations, failing to seal in dusty and humid environments, and having easily scratched screens.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a multi-environment adaptable smart terminal shell, including a protective shell. The front of the protective shell has a mounting groove. A heat-absorbing plate is fixedly connected to the bottom of the mounting groove. A heat-spreading plate is installed inside the heat-absorbing plate and is located outside the protective shell. Heat dissipation fins are fixedly connected to the surface of the heat-spreading plate. A mounting frame is fixedly connected to the bottom of the mounting groove and is located around the heat-absorbing plate. Anti-electromagnetic rings are fixedly connected to the four corners of the mounting frame. A snap-fit ​​ring is fixedly connected to the surface of each anti-electromagnetic ring. A connecting frame is provided on the surface of the mounting frame. A snap-fit ​​post is fixedly connected to the inner wall of the connecting frame, and the snap-fit ​​post engages with the snap-fit ​​ring. The connecting frame and... Electromagnetic strips are fixedly connected between the mounting frames. The main body of the smart terminal is bonded to the inside of the mounting groove with thermally conductive silicone. The main body of the smart terminal works in conjunction with the heat-absorbing plate through the thermally conductive silicone. A human-machine interface screen is provided on the surface of the main body of the smart terminal. The main body of the smart terminal is located on the outside of the connecting frame. Shock-absorbing pads are fixedly connected to the four corners of the outer side of the mounting frame and are bonded to the main body of the smart terminal. A snap-fit ​​groove is provided on the surface of the mounting groove and snaps into the human-machine interface screen. A sealing frame is fixedly connected to the back of the human-machine interface screen. A sealing groove is provided at the bottom of the snap-fit ​​groove and snaps into the sealing frame. A tempered glass film is bonded to the surface of the human-machine interface screen. Chamfering blocks are fixedly connected to the corners of the protective shell.

[0007] As a preferred embodiment of this utility model, a connecting groove is provided on one side of the protective shell, a connecting port is provided on the groove wall of the connecting groove, and the connecting port is used in conjunction with the main body of the smart terminal. A cover is hinged to the outside of the connecting groove.

[0008] As a preferred embodiment of this utility model, hollow columns are symmetrically fixedly connected to both sides of the protective shell, a buffer spring is fixedly connected inside the hollow column, and a compression column is fixedly connected to the outside of the buffer spring. The compression column is slidably connected to the hollow column, and the two symmetrical compression columns are fixedly connected to the same protective column.

[0009] As a preferred embodiment of this invention, the protective shell has a cavity in its shell wall, and an anti-electromagnetic frame is fixedly connected inside the cavity.

[0010] As a preferred embodiment of this utility model, the top and bottom of the mounting groove are symmetrically and fixedly connected with anti-foolproof posts, and the surface of the main body of the smart terminal is provided with an anti-foolproof groove, which is engaged with the anti-foolproof post.

[0011] As a preferred embodiment of the present invention, a support groove is provided on the outer side of the protective shell, a damping shaft is rotatably connected inside the support groove, and a support frame is fixedly connected to the surface of the damping shaft.

[0012] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0013] 1. This utility model uses a protective shell as the basic load-bearing structure. The chamfered blocks at its corners effectively buffer the impact force on the corners, improving impact resistance. Then, through the cooperation of the mounting groove, heat absorption plate, heat dissipation plate and heat dissipation fins, it can quickly absorb the heat generated by the main body of the smart terminal and dissipate it efficiently, avoiding the impact of high temperature on the operating performance of the device and adapting to high temperature environments. Next, the anti-electromagnetic ring can form an anti-electromagnetic interference barrier to reduce the impact of external electromagnetic fields on the main body of the smart terminal, adapting to complex electromagnetic environments. Then, the shock-absorbing pad can buffer the shell when it is subjected to vibration or impact, protecting the main body of the smart terminal from damage and adapting to vibration environments. Then, the snap-fit ​​groove on the surface of the mounting groove snaps into the human-machine interface screen, and the sealing frame on the back of the human-machine interface screen snaps into the sealing groove at the bottom of the snap-fit ​​groove, enhancing the sealing performance of the shell and preventing dust and moisture from entering, adapting to dusty and humid environments. The tempered glass film adhered to the surface of the human-machine interface screen can protect the screen from scratches and extend its service life, thus comprehensively achieving adaptability to various complex environments.

[0014] 2. This utility model facilitates the connection of the smart terminal body to external devices through the connecting groove and the connecting port on one side of the protective shell. The outer side of the connecting groove is covered by a hinge, which can close the connecting port when not connected to external devices, preventing dust and debris from entering the connecting port, protecting the port from damage, and further improving the protective performance of the protective shell. Attached Figure Description

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

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

[0017] Figure 3 This is a partial cross-sectional perspective view of the structure of this utility model;

[0018] Figure 4 This is an exploded view of the structure of this utility model.

[0019] In the diagram: 1. Protective outer shell; 2. Mounting slot; 3. Heat absorption plate; 4. Heat dissipation plate; 5. Heat dissipation fins; 6. Mounting frame; 7. Anti-electromagnetic ring; 8. Smart terminal body; 9. Human-machine interface screen; 10. Shock-absorbing pad; 11. Snap-fit ​​slot; 12. Sealing frame; 13. Sealing groove; 14. Tempered glass film; 15. Chamfered block; 16. Connecting groove; 17. Connecting port; 18. Cover; 19. Hollow column; 20. Buffer spring; 21. Extrusion column; 22. Anti-electromagnetic frame; 23. Foolproof column; 24. Foolproof groove; 25. Bracket groove; 26. Support frame. Detailed Implementation

[0020] 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.

[0021] like Figures 1 to 4 As shown, this utility model provides a multi-environment adaptable smart terminal shell, including a protective shell 1. A mounting groove 2 is provided on the front of the protective shell 1. A heat-absorbing plate 3 is fixedly connected to the bottom of the mounting groove 2. A heat-spreading plate 4 is installed inside the heat-absorbing plate 3, and the heat-spreading plate 4 is located on the outside of the protective shell 1. Heat dissipation fins 5 are fixedly connected to the surface of the heat-spreading plate 4. A mounting frame 6 is fixedly connected to the bottom of the mounting groove 2, and the mounting frame 6 is located around the heat-absorbing plate 3. Anti-electromagnetic rings 7 are fixedly connected to the four corners of the surface of the mounting frame 6. A snap-fit ​​ring is fixedly connected to the surface of the anti-electromagnetic ring 7. A connecting frame is provided on the surface of the mounting frame 6. A snap-fit ​​post is fixedly connected to the inner wall of the connecting frame, and the snap-fit ​​post snaps with the snap-fit ​​ring. An anti-electromagnetic strip is fixedly connected between the connecting frame and the mounting frame 6. The interior of the mounting groove 2 is open to... The main body 8 of the smart terminal is bonded with thermally conductive silicone, and the main body 8 is used in conjunction with the heat-absorbing plate 3 through the thermally conductive silicone. A human-machine exchange screen 9 is set on the surface of the main body 8. The main body 8 is located on the outside of the connecting frame. Shock-absorbing pads 10 are fixedly connected to the four corners of the outer side of the mounting frame 6, and the shock-absorbing pads 10 are bonded to the main body 8. A snap-fit ​​groove 11 is opened on the surface of the mounting groove 2, and the snap-fit ​​groove 11 snaps with the human-machine exchange screen 9. A sealing frame 12 is fixedly connected to the back of the human-machine exchange screen 9. A sealing groove 13 is opened at the bottom of the snap-fit ​​groove 11, and the sealing groove 13 snaps with the sealing frame 12. A tempered glass film 14 is bonded to the surface of the human-machine exchange screen 9. A chamfered block 15 is fixedly connected to the corner of the protective shell 1, and an elastic ball is fixedly connected to the surface of the chamfered block 15.

[0022] refer to Figure 1 and Figure 4 A connecting groove 16 is provided on one side of the protective shell 1, and a connecting port 17 is provided on the groove wall of the connecting groove 16. The connecting port 17 is used in conjunction with the main body 8 of the smart terminal. A cover 18 is hinged to the outside of the connecting groove 16 via a hinge.

[0023] As a technical optimization of this utility model, the connection groove 16 on one side of the protective shell 1 and the connection port 17 on the groove wall facilitate the connection between the smart terminal body 8 and external devices. The cover 18 on the outside of the connection groove 16 is hinged to the outside of the connection port 17, which can close the connection port 17 when no external device is connected, preventing dust and debris from entering the connection port 17, protecting the port from damage, and further improving the protective performance of the protective shell 1.

[0024] refer to Figure 1 and Figure 2 Hollow columns 19 are symmetrically fixedly connected to both sides of the protective shell 1. A buffer spring 20 is fixedly connected inside the hollow column 19. A compression column 21 is fixedly connected to the outside of the buffer spring 20. The compression column 21 is slidably connected to the hollow column 19. The two symmetrical compression columns 21 are fixedly connected to the same protective column.

[0025] As a technical optimization of this utility model, a side buffer protection structure is formed by two symmetrical hollow columns 19, an internal buffer spring 20, a compression column 21 slidably connected to the hollow column 19, and a protective column connected to the two symmetrical compression columns 21. When the side of the shell is impacted, the protective column is forced to compress the compression column 21 and the buffer spring 20. The elastic deformation of the buffer spring 20 absorbs the impact energy, further enhancing the protection of the protective shell 1 and the internal intelligent terminal body 8, and improving the adaptability of the protective shell 1 in the side impact environment.

[0026] refer to Figure 3 The protective outer shell 1 has a cavity in its shell wall, and an anti-electromagnetic frame 22 is fixedly connected inside the cavity.

[0027] As a technical optimization of this utility model, the anti-electromagnetic frame 22, which is fixedly connected inside the cavity of the protective shell 1, cooperates with the anti-electromagnetic ring 7 to further enhance the overall anti-electromagnetic interference capability of the protective shell 1, and can more effectively block the interference of external electromagnetic signals on the main body of the smart terminal 8, so that the main body of the smart terminal 8 can still work stably in complex electromagnetic environments.

[0028] refer to Figure 4 The top and bottom of the mounting slot 2 are symmetrically fixedly connected with anti-foolproof posts 23, and the surface of the smart terminal body 8 is provided with anti-foolproof groove 24, and the anti-foolproof groove 24 is engaged with the anti-foolproof post 23.

[0029] As a technical optimization of this utility model, the anti-foolproof posts 23 at the top and bottom of the mounting groove 2 are engaged with the anti-foolproof groove 24 on the surface of the smart terminal body 8, which plays an anti-foolproof role. This can prevent improper installation of the smart terminal body 8 due to incorrect orientation during the installation process, ensure the accuracy and efficiency of installation, and reduce the risk of damage to the equipment caused by installation errors.

[0030] refer to Figure 2 The outer side of the protective shell 1 is provided with a bracket groove 25, and a damping shaft is rotatably connected inside the bracket groove 25. A support frame 26 is fixedly connected to the surface of the damping shaft.

[0031] As a technical optimization of this utility model, a support frame 26 connected to the outer bracket slot 25 of the protective shell 1 via a damping pivot provides support for the protective shell 1. Users can rotate the support frame 26 out of the bracket slot 25 according to their needs, supporting the protective shell 1 on a flat surface such as a desktop, and adjusting it to a suitable viewing or operating angle. This improves the ease of use of the human-machine interface screen 9, providing a comfortable user experience in different usage scenarios.

[0032] The working principle and usage process of this utility model are as follows: When using the smart terminal shell, first place the smart terminal body 8 into the mounting groove 2 of the protective shell 1. The anti-misalignment posts 23 at the top and bottom of the mounting groove 2 are engaged with the anti-misalignment grooves 24 on the surface of the smart terminal body 8 to ensure accurate installation. Then, use thermally conductive silicone to adhere the smart terminal body 8 to the mounting groove 2, ensuring close contact with the heat absorber plate 3. This allows the heat generated by the smart terminal body 8 during operation to be transferred to the heat absorber plate 3 via the thermally conductive silicone. The heat is then evenly distributed by the heat dissipation plate 4 inside the heat absorber plate 3, and finally dissipated into the air through the heat dissipation fins 5 on the surface of the heat dissipation plate 4, achieving heat dissipation. Next, the connecting frame is engaged with the mounting frame 6 via the snap-fit ​​posts on its inner wall and the snap-fit ​​rings on the surface of the mounting frame 6, fixing it to the mounting frame 6. Simultaneously, the anti-electromagnetic strip between the connecting frame and the mounting frame 6 provides anti-electromagnetic interference. At this time, the smart terminal body 8 is located outside the connecting frame, and the shock-absorbing pads at the four corners of the outer side of the mounting frame 6... 10 is bonded to the main body 8 of the smart terminal to reduce the impact of vibration on the main body 8 of the smart terminal; then, the human-machine interface screen 9 is placed into the snap-fit ​​slot 11 of the mounting slot 2, so that the sealing frame 12 on its back snaps into the sealing groove 13 at the bottom of the snap-fit ​​slot 11 to achieve a seal and prevent dust and moisture from entering. Then, a tempered glass film 14 is bonded to the surface of the human-machine interface screen 9 to protect the screen. The chamfered blocks 15 at the corners of the protective shell 1 can reduce the impact force during collision and protect the shell and internal equipment. If the connection interface of the smart terminal is required, the cover 18 on the outside of the connection slot 16 on one side of the protective shell 1 can be opened to expose the connection port 17 for connection operation. During use, the buffer springs 20 and the compression pillars 21 in the hollow pillars 19 on both sides of the protective shell 1 and the protective pillars can play a buffer protection role for the smart terminal and reduce the impact of side collisions. The anti-electromagnetic frame 22 in the shell cavity of the protective shell 1 and the anti-electromagnetic ring 7 on the mounting frame 6 can further enhance the anti-electromagnetic interference capability. When support for the smart terminal is required, the support frame 26 can be rotated out from the bracket slot 25 on the outside of the protective shell 1 and fixed at a suitable angle by the damping pivot to support the smart terminal.

[0033] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0034] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A multi-environment adapted intelligent terminal housing comprising a protective housing (1), characterized in that: The protective shell (1) has an installation groove (2) on its front side. A heat absorption plate (3) is fixedly connected to the bottom of the installation groove (2). A heat spreader (4) is installed inside the heat absorption plate (3) and is located outside the protective shell (1). Heat dissipation fins (5) are fixedly connected to the surface of the heat spreader (4). An installation frame (6) is fixedly connected to the bottom of the installation groove (2) and is located around the heat absorption plate (3). Anti-electromagnetic rings (7) are fixedly connected to the four corners of the surface of the installation frame (6). A snap-fit ​​ring is fixedly connected to the surface of the anti-electromagnetic ring (7). A connecting frame is provided on the surface of the installation frame (6). A snap-fit ​​post is fixedly connected to the inner wall of the connecting frame and snap-fit ​​ring. An anti-electromagnetic strip is fixedly connected between the connecting frame and the installation frame (6). A smart door is bonded inside the installation groove (2) with thermally conductive silicone. The main body of the terminal (8) is used in conjunction with the heat-absorbing plate (3) through thermal conductive silicone. The surface of the main body of the terminal (8) is provided with a human-machine exchange screen (9). The main body of the terminal (8) is located outside the connecting frame. The four corners of the outer side of the mounting frame (6) are fixedly connected with shock-absorbing pads (10), and the shock-absorbing pads (10) are bonded to the main body of the terminal (8). The surface of the mounting groove (2) is provided with a snap-fit ​​groove (11), and the snap-fit ​​groove (11) is snapped to the human-machine exchange screen (9). The back of the human-machine exchange screen (9) is fixedly connected with a sealing frame (12). The bottom of the snap-fit ​​groove (11) is provided with a sealing groove (13), and the sealing groove (13) is snapped to the sealing frame (12). The surface of the human-machine exchange screen (9) is bonded with a tempered film (14). The corners of the protective shell (1) are fixedly connected with chamfered blocks (15).

2. The multi-environment adaptive intelligent terminal housing of claim 1, wherein: The protective shell (1) has a connecting groove (16) on one side, and a connecting port (17) is provided on the groove wall of the connecting groove (16). The connecting port (17) is used in conjunction with the main body of the smart terminal (8). A cover (18) is hinged to the outside of the connecting groove (16).

3. The multi-environment adaptive intelligent terminal housing of claim 1, wherein: Hollow columns (19) are symmetrically fixedly connected to both sides of the protective shell (1). A buffer spring (20) is fixedly connected inside the hollow column (19). A compression column (21) is fixedly connected to the outside of the buffer spring (20). The compression column (21) is slidably connected to the hollow column (19). The two symmetrical compression columns (21) are fixedly connected to the same protective column.

4. The multi-environment adaptive intelligent terminal housing of claim 1, wherein: The protective shell (1) has a cavity in its shell wall, and an anti-electromagnetic frame (22) is fixedly connected inside the cavity.

5. The multi-environment adaptive intelligent terminal housing of claim 1, wherein: The top and bottom of the mounting groove (2) are symmetrically fixedly connected with anti-fooling posts (23), and the surface of the smart terminal body (8) is provided with anti-fooling groove (24), and the anti-fooling groove (24) is engaged with the anti-fooling post (23).

6. The multi-environment adaptive intelligent terminal housing of claim 1, wherein: The outer side of the protective shell (1) is provided with a bracket groove (25), and a damping shaft is rotatably connected inside the bracket groove (25). A support frame (26) is fixedly connected to the surface of the damping shaft.