Elastic material inner liner water tank device and protective storage device containing it
By using an inner water tank device made of elastic material, the problems of complex processing and high cost in the existing technology are solved, achieving a low-cost and simple installation effect of pressure relief and cooling, ensuring the safety of the chip at high temperatures and high structural stability.
Patent Information
- Application Number
- CN202311294795.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-10-08
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2043-10-08
AI Technical Summary
The metal inner liner of the protective memory in existing car driving recorders is complex to manufacture and costly, which leads to the data storage being damaged in an accident and the cause of the accident being unreadable.
The water tank device with an inner liner made of elastic material has an inner liner shell containing a water filling chamber and a chip placement chamber. The pressure relief valve mounting component is connected to the outer surface. The fusible metal component melts at high temperature to relieve pressure. The inner liner shell and the pressure relief valve housing component are integrally formed. Flame-retardant materials are used to improve safety.
It achieves small size, low cost, simple installation process, automatic installation of pressure relief valve, ensures chip safety at high temperature, high cooling stability, and strong structural stability.
Smart Images

Figure CN117238328B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of data storage technology, and in particular to a water box device with an elastic material inner liner and a protective storage device containing the same. Background Technology
[0002] Currently, some in-vehicle devices, such as dashcams, typically store vehicle data using built-in hard drives or SD cards. In the event of an accident leading to a fire, crash, or submersion, inadequate protection can damage the data storage device (e.g., built-in hard drive or SD card), rendering the driving data unreadable and hindering the determination of the accident's cause. Therefore, data disaster recovery storage devices have emerged to store the data.
[0003] Currently, most protective memory chips used in automotive dashcams employ a water-filled protective liner to protect the memory chip. The water in the liner boils and evaporates upon heating, maintaining the temperature around the chip at a safe level and preventing heat damage. These protective liners are typically made of metal materials such as 304 stainless steel, and the processing and leak-proof testing procedures are relatively complex, resulting in higher production time and costs. Summary of the Invention
[0004] The purpose of this invention is to overcome the above-mentioned shortcomings of the prior art. This invention provides a water box device with an elastic material inner liner and a protective storage device containing the same.
[0005] This invention is achieved through the following technical solution:
[0006] A water box device with an elastic material inner liner includes an inner liner shell and at least one pressure relief valve mounting component. The inner liner shell has a water injection chamber and a chip placement chamber. The chip placement chamber is used to accommodate and place chips. The pressure relief valve mounting component is connected to the outer surface of the inner liner shell and is used to communicate with the water injection chamber. The material of the inner liner shell is an elastic material.
[0007] Furthermore, the inner liner shell includes an inner liner shell body and a seal, the pressure relief valve mounting component is connected to the outer surface of the inner liner shell body, the seal is sealed to one side of the inner liner shell body, and the seal and the inner liner shell body form the water injection cavity.
[0008] Furthermore, the inner shell also includes a chip mounting component, which extends inward from the outer surface of the inner shell body into the inner shell body, and the chip mounting component has a chip placement cavity for placing a chip.
[0009] Furthermore, the inner liner shell also includes a first reinforcing rib, which is located inside the water injection cavity and is connected to the inner wall surface of the chip mounting component and the inner liner shell body.
[0010] And / or, the chip is inserted into the chip placement cavity, and the chip placement cavity is potted to cover the chip.
[0011] Furthermore, the sealing opening has an inwardly recessed sealing groove on the side facing the inner liner shell body, and the inner liner shell body is inserted into the sealing groove;
[0012] Alternatively, the seal extends into the inner liner shell body so that the outer peripheral surface of the seal is sealed to the inner wall surface of the inner liner shell body.
[0013] Furthermore, the seal has an inwardly recessed force-applying groove on the side facing away from the inner liner body, and the force-applying groove is adjacent to the outer peripheral surface of the seal.
[0014] Furthermore, the sealing groove is located between the force-applying groove and the outer peripheral surface of the seal.
[0015] Furthermore, the seal is connected to the inner liner shell body by heat pressing or adhesive bonding;
[0016] And / or, a reinforcing component is pre-installed inside the seal;
[0017] And / or, the outer surface of the seal has a second reinforcing rib;
[0018] And / or, one side of the inner liner shell body has a snap-fit part, and the seal has a matching part. The snap-fit part is an outwardly protruding protrusion or an inwardly recessed groove, and the snap-fit part is snapped onto the matching part.
[0019] Furthermore, the inner liner outer shell includes multiple spliced shells, which are spliced together to form the inner liner outer shell;
[0020] And / or, the pressure relief valve mounting component includes a pressure relief valve receiving component and a fusible metal component. The pressure relief valve receiving component is made of an elastic material. The pressure relief valve receiving component is connected to the outer surface of the inner liner shell, and the inner liner shell and the pressure relief valve receiving component are integrally formed. The pressure relief valve receiving component has a receiving cavity inside. Both the inner wall and the outer wall of the pressure relief valve receiving component are provided with pressure relief holes. The fusible metal component is disposed in the receiving cavity and is sealed in the two pressure relief holes.
[0021] And / or, each corner of the inner shell has a thickened portion.
[0022] Furthermore, the outer surface of the inner liner shell is coated with a high-temperature resistant, heat-insulating, and flame-retardant paint or adhesive tape;
[0023] And / or, the outer surface of the chip is covered with a thermally conductive layer;
[0024] And / or, the material of the inner liner shell is flame-retardant silicone rubber or flame-retardant elastic high-temperature resistant polymer material.
[0025] A protective storage device comprising a water tank device with an inner liner made of elastic material as described above.
[0026] The beneficial effects of this invention are as follows:
[0027] The present invention relates to an elastic material inner tank water box device and a protective memory containing the same. The inner tank shell is made of elastic material, the pressure relief valve mounting component is mounted on the inner tank shell, and the chip is placed in a chip accommodating container, achieving small size, low cost, and simple installation process. At the same time, the elastic material inner tank shell will automatically install the pressure relief valve mounting component into place under the action of deformation elastic force, and the assembly requirements are low. Attached Figure Description
[0028] Figure 1 This is a front view schematic diagram of the internal structure of the elastic material inner liner water box device according to Embodiment 1 of the present invention.
[0029] Figure 2 This is a top view of the internal structure of the elastic material inner liner water box device according to Embodiment 1 of the present invention.
[0030] Figure 3 This is a schematic diagram of the structure of the inner shell body of Embodiment 1 of the present invention.
[0031] Figure 4 This is a schematic diagram of the sealing structure of Embodiment 1 of the present invention.
[0032] Figure 5 This is an exploded structural diagram of the inner liner shell body and the seal of Embodiment 1 of the present invention.
[0033] Figure 6 This is a schematic diagram of the internal structure of the pressure relief valve mounting component in Embodiment 1 of the present invention.
[0034] Figure 7 This is an exploded structural diagram of the inner liner shell body and the seal in Embodiment 2 of the present invention.
[0035] Figure 8 This is an exploded structural diagram of the inner liner shell body and the seal in Embodiment 3 of the present invention.
[0036] Figure 9 This is an exploded structural diagram of the inner liner shell body and the seal in Embodiment 4 of the present invention.
[0037] Figure 10 This is a schematic diagram of the elastic material inner liner water box device of Embodiment 5 of the present invention.
[0038] Explanation of reference numerals in the attached figures:
[0039] Inner and outer shell 1
[0040] Water injection chamber 11
[0041] Chip placement cavity 12
[0042] Inner liner, outer shell, main body 13
[0043] Buckle part 131
[0044] Seal 14
[0045] Sealing groove 141
[0046] Force groove 142
[0047] Reinforced component 143
[0048] Second reinforcing rib 144
[0049] Matching section 145
[0050] Chip mounting component 15
[0051] First reinforcing rib 16
[0052] spliced shell 17
[0053] Thickened section 18
[0054] Pressure relief valve mounting component 2
[0055] Pressure relief valve housing component 21
[0056] Receptacle 211
[0057] Pressure relief hole 212
[0058] 22 fusible metal parts
[0059] High-temperature resistant metal plug ring 221
[0060] fusible metal body 222 Detailed Implementation
[0061] The following description of the embodiments is taken with reference to the accompanying drawings, which illustrate specific embodiments in which the invention can be implemented.
[0062] Example 1
[0063] This embodiment discloses a protective storage device, which includes a water tank device with an inner liner made of elastic material. For example... Figure 1, Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6 As shown, the elastic material inner liner water box device includes an inner liner shell 1 and at least one pressure relief valve mounting component 2. The inner liner shell 1 has a water injection chamber 11 and a chip placement chamber 12. The chip placement chamber 12 is used to accommodate and place chips. The pressure relief valve mounting component 2 is connected to the outer surface of the inner liner shell 1 and is used to communicate with the water injection chamber 11. The material of the inner liner shell 1 is an elastic material.
[0064] The chip placement cavity 12 is used to accommodate and store the chip. The water injection cavity 11 contains water and covers the chip placement cavity 12, allowing the water to maintain the temperature around the chip at a safe level, thus preventing the chip from being damaged by heat. The inner shell 1 is made of an elastic material, and the pressure relief valve mounting component 2 is installed on the inner shell 1, achieving small size, low cost, and simple installation process. At the same time, the elastic material of the inner shell 1 will automatically install the pressure relief valve mounting component 2 into place under the action of deformation elasticity, with low assembly requirements, easy to achieve a sealing effect, and ensure high stability during pressure relief and cooling.
[0065] like Figure 6 As shown, in this embodiment, the pressure relief valve mounting component 2 includes a pressure relief valve receiving component 21 and a fusible metal component 22. The pressure relief valve receiving component 21 is made of an elastic material. The pressure relief valve receiving component 21 is connected to the outer surface of the inner liner shell 1, and the inner liner shell 1 and the pressure relief valve receiving component 21 are integrally formed. The pressure relief valve receiving component 21 has a receiving cavity 211 inside. Both the inner wall and the outer wall of the pressure relief valve receiving component 21 are provided with pressure relief holes 212. The fusible metal component 22 is disposed in the receiving cavity 211 and is sealed in the two pressure relief holes 212.
[0066] The pressure relief valve receiving component 21 is made of an elastic material. The interior of the pressure relief valve receiving component 21 has a receiving cavity 211. Both the inner and outer walls of the pressure relief valve receiving component 21 have pressure relief holes 212. At this time, the receiving cavity 211 is connected to the two pressure relief holes 212 and the water injection cavity 11. Then, a fusible metal component 22 is placed inside the receiving cavity 211 and sealed to the two pressure relief holes 212. When a fire occurs in the vehicle, the water temperature inside the inner liner shell 1 rises to the melting temperature of the fusible metal component 22. The fusible metal component 22 will melt, and the hot steam pressure inside the inner liner shell 1 will exert an outward force on the fusible metal component 22, causing the hot steam in the water injection cavity to be discharged outward through the two pressure relief holes 212 and the receiving cavity 211, thereby achieving the function of pressure relief and cooling, ensuring the safety of the chip inside the inner liner shell 1.
[0067] The pressure relief valve receiving component 21 is made of elastic material. Assembly can be completed simply by inserting the fusible metal component 22 into the receiving cavity 211. It is small in size, low in cost, and simple to install. At the same time, the elastic material of the pressure relief valve receiving component 21 will automatically install the fusible metal component 22 into place in the receiving cavity 211 under the action of deformation elastic force, which reduces assembly requirements. The fusible metal component 22 is placed in the receiving cavity 211 and covers the two pressure relief holes 212 on the inner and outer walls of the pressure relief valve receiving component 21, which facilitates the sealing effect. The fusible metal component 22 will also play a certain blocking role on the pressure relief holes 212, ensuring high stability during the pressure relief and cooling process.
[0068] The inner liner shell 1 and the pressure relief valve receiving component 21 are integrally formed. Both the inner liner shell 1 and the pressure relief valve receiving component 21 are made of elastic material. The inner liner shell 1 and the pressure relief valve receiving component 21 are integrally formed by processes such as hot pressing, blow molding, vulcanization, and 3D printing using elastic material. This makes the processing and manufacturing of the elastic material inner liner water box device very convenient, and the overall structure has high stability and higher safety.
[0069] The inner liner shell 1 can be made of flame-retardant silicone rubber, or it can be made of flame-retardant, elastic, high-temperature resistant polymer material. The pressure relief valve receiving component 21 can be made of flame-retardant silicone rubber, or it can be made of flame-retardant, elastic, high-temperature resistant polymer material.
[0070] In this embodiment, the fusible metal component 22 includes a fusible metal body 222 and a high-temperature resistant metal plug ring 221. The high-temperature resistant metal plug ring 221 has a through hole, with both ends of the through hole corresponding to two pressure relief holes 212. The fusible metal body 222 is embedded within the through hole. A through hole is also formed in the middle region of the high-temperature resistant metal plug ring 221, corresponding to and communicating with the two pressure relief holes 212. The embedding of the fusible metal body 222 within the high-temperature resistant metal plug ring 221 further ensures the location of the pressure relief point. The high-temperature resistant metal plug ring 221 can be made of materials such as stainless steel or copper, making the fusible metal component 22 a combination of fusible metal and other high-temperature resistant metal materials. Of course, in other embodiments, the fusible metal component 22 is a single piece of fusible metal material, which has a simple structure and is easy to manufacture.
[0071] like Figure 1 , Figure 2 and Figure 3As shown, the inner liner shell 1 includes an inner liner shell body 13 and a seal 14. A pressure relief valve mounting component 2 is connected to the outer surface of the inner liner shell body 13. The seal 14 is sealed to one side of the inner liner shell body 13, forming a water injection cavity 11 between the seal 14 and the inner liner shell body 13. During the manufacturing of the inner liner shell body 13, an opening is provided on one side. The seal 14 is connected to and seals the opening, thus forming a completely sealed water injection cavity 11. This facilitates the manufacturing of the inner liner shell 1, resulting in a small size, low cost, and simple installation process.
[0072] The inner shell 1 also includes a chip mounting component 15, which extends inward from the outer surface of the inner shell body 13 into the inner shell body 13, and has a chip placement cavity 12 for placing the chip. The chip mounting component 15 extends into the inner shell body 13, the chip is placed in the chip placement cavity 12, and the chip is led out to the outside of the shell through an FPC cable interface. The installation and connection are very convenient, the structure is simple, and the manufacturing process is very convenient.
[0073] The inner liner shell 1 also includes a first reinforcing rib 16, which is located within the water injection cavity 11 and is connected to the inner wall surface of the chip mounting component 15 and the inner liner shell body 13. The first reinforcing rib 16 provides reinforcement; by connecting the chip mounting component 15 and the inner wall surface of the inner liner shell body 13, it effectively strengthens the structural connection of the chip mounting component 15, preventing it from sagging or deviating from its position within the inner liner shell body 13. This ensures that the chip mounting component 15 is located in the central area within the inner liner shell body 13 without shifting or misaligning and contacting the bottom and top surfaces of the inner liner shell body 13.
[0074] In this embodiment, there are multiple first reinforcing ribs 16, which are distributed at intervals on the outer surface of the chip mounting component 15 to achieve higher structural stability.
[0075] The chip is inserted into the chip placement cavity 12, and the chip placement cavity 12 is potted with adhesive to cover the chip. By inserting the chip into the chip placement cavity 12 and then potting it with adhesive, the chip is sealed and waterproofed, which greatly improves the safety and stability of the water box device with an elastic material inner liner.
[0076] Because elastic materials (such as silicone rubber) have relatively low thermal conductivity, the temperature transferred from the outside to the chip may exhibit localized temperature differences. To prevent localized overheating, it is preferable to coat the chip with a thermally conductive layer, such as an aluminum foil, copper foil, or thermally conductive silicone sheet. This allows localized high temperatures to be conducted to lower-temperature areas through the thermally conductive layer, resulting in a more uniform external temperature of the chip and keeping the chip temperature close to 100°C (the temperature should not exceed 100°C until all moisture in the inner casing 1 has evaporated). This eliminates the problem of localized overheating on the chip's exterior under conditions of low thermal conductivity in elastic materials. Furthermore, the thermally conductive layer also enhances the chip's heat dissipation capabilities during daily operation of the memory chip.
[0077] like Figure 5 As shown, the seal 14 has an inwardly recessed sealing groove 141 on the side facing the inner liner shell body 13, and the inner liner shell body 13 is inserted into the sealing groove 141. The inner liner shell body 13 is inserted into the sealing groove 141 of the seal 14, thereby increasing the contact area between the inner liner shell body 13 and the seal 14, thus achieving a better sealing effect.
[0078] The seal 14 can be connected to the inner liner shell body 13 by adhesive bonding. Adhesive can be applied to the sealing groove 141 and / or the side of the inner liner shell body 13 before connection, thereby achieving adhesion and further strengthening the seal between the inner wall of the sealing groove 141 and the inner liner shell body 13. Alternatively, the seal 14 can also be connected to the inner liner shell body 13 by heat pressing to achieve a seal.
[0079] A recessed force-applying groove 142 is provided on the side of the seal 14 facing away from the inner liner shell body 13, and the force-applying groove 142 is adjacent to the outer peripheral surface of the seal 14. A sealing groove 141 is provided on the inner side of the seal 14, and a force-applying groove 142 is provided on the outer side of the seal 14. Through the force-applying groove 142, a clamp or metal component can be inserted into the force-applying groove 142 and apply force to the seal 14, so that the clamp or metal component clamps the seal 14 and the inner liner shell body 13 together. The clamp or metal component can apply pressure to the bonding surface and achieve heat-press sealing after heating, thereby obtaining a better adhesive sealing effect.
[0080] In this embodiment, the sealing groove 141 is located between the force-applying groove 142 and the outer peripheral surface of the sealing opening 14. The two jaws of the clamp apply force to the inner wall surface of the force-applying groove 142 and the outer peripheral surface of the sealing opening 14, thereby applying a clamping force between the inner wall surface of the sealing groove 141 and the inner liner shell body 13, greatly improving the sealing effect. Simultaneously, applying pressure is very convenient. Furthermore, the portion of the sealing opening 14 not connected to the inner liner shell body 13 can be made thinner, eliminating the need for thickening and reducing costs.
[0081] like Figure 4 As shown, the outer surface of the seal 14 has a second reinforcing rib 144. The second reinforcing rib 144 has a reinforcing effect, which can effectively enhance the overall structural strength of the seal 14, thereby improving the sealing effect and enhancing safety and stability.
[0082] Each corner of the inner liner shell 1 has a thickened portion 18. The thickness of the thickened portion 18 at each corner of the inner liner shell 1 is greater than the thickness of other areas of the inner liner shell 1. The thickened portion 18 increases the thickness of each corner of the inner liner shell 1, ensuring that the shape of the inner liner shell 1 is not easily changed, and also increases its strength.
[0083] The outer surface of the inner liner shell 1 is coated with a high-temperature resistant, heat-insulating, and flame-retardant coating or adhesive tape. The outer surface of the inner liner shell 1 is reinforced by applying a flame-retardant, high-temperature resistant, and heat-insulating coating or adhesive tape (such as polyimide high-temperature tape), which improves its strength and enhances its wear resistance.
[0084] Example 2
[0085] like Figure 7 As shown, the structure of the elastic material inner liner water box device in this embodiment is the same as that in Embodiment 1, and will not be repeated; only the differences will be explained. In this Embodiment 2, a reinforcing member 143 is pre-installed inside the seal 14. The reinforcing member 143 has a reinforcing function; by pre-embedding the reinforcing member 143 inside the seal 14, the structural strength of the seal 14 itself is effectively enhanced. Simultaneously, when connecting the seal 14 and the inner liner shell body 13, a force is directly applied to the outer circumferential surface of the seal 14 through a clamp, causing the side of the inner liner shell body 13 to be pressed between the reinforcing member 143 and the clamp, thereby achieving a sealed connection between the seal 14 and the inner liner shell body 13. Installation and connection are very convenient, the sealing effect is good, and it is also very convenient to use.
[0086] In this embodiment 2, the portion of the seal 14 in which the reinforcing member 143 is pre-embedded can be made thicker, so that the reinforcing member 143 is pre-embedded in the seal 14.
[0087] Example 3
[0088] like Figure 8As shown, the structure of the elastic material inner liner water box device in this embodiment is the same as that in Embodiment 1, and will not be repeated; only the differences will be described. In this Embodiment 3, the seal 14 extends into the inner liner outer shell body 13 so that the outer peripheral surface of the seal 14 is sealed to the inner wall surface of the inner liner outer shell body 13. No sealing groove is provided on the side of the seal 14 facing the inner liner outer shell body 13. The seal 14 is inserted entirely into the opening of the inner liner outer shell body 13. The outer peripheral surface of the seal 14 contacts and connects with the inner wall surface of the inner liner outer shell body 13, further increasing the contact area between the inner liner outer shell body 13 and the seal 14, thereby achieving a better sealing effect.
[0089] In this embodiment 3, a reinforcing component 143 is pre-embedded within the seal 14. The portion of the seal 14 in which the reinforcing component 143 is embedded can be made thicker. The reinforcing component 143 has a reinforcing function. By pre-embedding the reinforcing component 143 within the seal 14, the structural strength of the seal 14 itself is effectively enhanced. Simultaneously, only the application of force to the outer surface of the inner liner shell body 13 is required to achieve a sealed connection between the seal 14 and the inner liner shell body 13. Installation and connection are very convenient, the sealing effect is good, and it is also very easy to use.
[0090] Example 4
[0091] like Figure 9 As shown, the structure of the elastic material inner liner water box device in this embodiment is the same as that in Embodiment 2, and will not be repeated; only the differences will be described. In this Embodiment 4, one side of the inner liner outer shell body 13 has a snap-fit part 131, and the seal 14 has a matching part 145. The snap-fit part 131 is either an outwardly protruding structure or an inwardly recessed groove, and the snap-fit part 131 is snapped onto the matching part 145. By designing an outwardly protruding structure or an inwardly recessed groove on the contact surface between the inner liner outer shell body 13 and the seal 14, the structural connection strength is effectively strengthened. Furthermore, the sealing performance is enhanced, and the installation and positioning of the seal 14 are facilitated, simplifying the assembly process. The snap-fit part 131 and the matching part 145 can be a concave-convex structure ring. The number and placement of the snap-fit part 131 and the matching part 145 are not limited. The snap-fit part 131 and the matching part 145 correspond to and engage with each other, further enhancing the sealing effect.
[0092] Example 5
[0093] like Figure 10As shown, the structural similarities between the elastic material inner liner water box device in this embodiment and that in Embodiment 1 will not be repeated; only the differences will be described. The specific structure of the inner liner shell 1 in this Embodiment 5 differs from that in Embodiment 1. The inner liner shell 1 includes multiple spliced shells 17, which are spliced together to form the inner liner shell 1. The multiple spliced shells 17 overlap and are pressed together at their joints, thereby achieving the splicing and assembly to form the water injection cavity 11, thus completing the manufacturing of the inner liner shell 1. Of course, in other embodiments, the inner liner shell 1 can also be integrally molded, thus eliminating the need for splicing and assembly.
[0094] The above description discloses only preferred embodiments of the present invention and should not be construed as limiting the scope of the present invention. Therefore, equivalent variations made in accordance with the claims of the present invention are still within the scope of the present invention.
Claims
1. A water box device with an elastic material inner liner, characterized in that, It includes an inner liner shell and at least one pressure relief valve mounting component. The inner liner shell has a water injection chamber and a chip placement chamber. The chip placement chamber is used to accommodate and place chips. The pressure relief valve mounting component is connected to the outer surface of the inner liner shell and is used to communicate with the water injection chamber. The material of the inner liner shell is an elastic material. The pressure relief valve mounting component includes a pressure relief valve receiving component and a fusible metal component. The pressure relief valve receiving component is made of an elastic material. The pressure relief valve receiving component is connected to the outer surface of the inner liner shell, and the inner liner shell and the pressure relief valve receiving component are integrally formed. The pressure relief valve receiving component has a receiving cavity inside. Both the inner wall and the outer wall of the pressure relief valve receiving component are provided with pressure relief holes. The fusible metal component is disposed in the receiving cavity and is sealed to the two pressure relief holes. The inner liner shell includes an inner liner shell body and a seal. The pressure relief valve mounting component is connected to the outer surface of the inner liner shell body. The seal is sealed to one side of the inner liner shell body. The seal and the inner liner shell body form the water injection chamber. The sealing opening has an inwardly recessed sealing groove on the side facing the inner liner shell body, and the inner liner shell body is inserted into the sealing groove; The seal has an inwardly recessed force-applying groove on the side facing away from the inner liner body, and the force-applying groove is adjacent to the outer peripheral surface of the seal.
2. The water box device with an elastic material inner liner as described in claim 1, characterized in that, The inner shell also includes a chip mounting component, which extends inward from the outer surface of the inner shell body into the inner shell body, and has a chip placement cavity for placing a chip.
3. The water box device with an elastic material inner liner as described in claim 2, characterized in that, The inner liner shell also includes a first reinforcing rib, which is located inside the water injection cavity and is connected to the inner wall surface of the chip mounting component and the inner liner shell body.
4. The water box device with an elastic material inner liner as described in claim 2, characterized in that, The chip is inserted into the chip placement cavity, and the chip placement cavity is potted with adhesive to cover the chip.
5. The water box device with an elastic material inner liner as described in claim 1, characterized in that, The seal extends into the inner liner shell body so that the outer peripheral surface of the seal is sealed to the inner wall surface of the inner liner shell body.
6. The water box device with an elastic material inner liner as described in claim 1, characterized in that, The sealing groove is located between the force-applying groove and the outer peripheral surface of the seal.
7. The water box device with an elastic material inner liner as described in claim 1, characterized in that, The seal is connected to the inner liner shell body by heat pressing or adhesive bonding.
8. The water box device with an elastic material inner liner as described in claim 1, characterized in that, The seal is pre-installed with reinforcing components.
9. The water box device with an elastic material inner liner as described in claim 1, characterized in that, The outer surface of the seal has a second reinforcing rib.
10. The water box device with an elastic material inner liner as described in claim 1, characterized in that, The inner liner shell body has a snap-fit part on one side, and the seal has a matching part. The snap-fit part is a protruding structure that protrudes outward or a recessed groove that is snapped into the matching part.
11. The water box device with an elastic material inner liner as described in claim 1, characterized in that, The inner liner shell includes multiple spliced shells, which are spliced together to form the inner liner shell.
12. The water box device with an elastic material inner liner as described in claim 1, characterized in that, Each corner of the inner liner shell has a thickened section.
13. The water box device with an elastic material inner liner as described in claim 1, characterized in that, The outer surface of the inner liner shell is coated with a high-temperature resistant, heat-insulating, and flame-retardant paint or adhesive tape.
14. The water box device with an elastic material inner liner as described in claim 1, characterized in that, The chip is covered with a thermally conductive layer.
15. The water box device with an elastic material inner liner as described in claim 1, characterized in that, The material of the inner liner shell is flame-retardant silicone rubber or flame-retardant elastic high-temperature resistant polymer material.
16. A protective memory, characterized in that, It includes the water box device with an elastic material inner liner as described in any one of claims 1-15.
Citation Information
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