Groove type shell supporting structure
The grooved shell support structure solves the problem of insufficient sealing performance and strength of the traditional shell support structure through arc-shaped grooves and limit block design, combined with seals, achieving stable operation and convenient maintenance of the equipment, and expanding the applicability of the equipment.
Patent Information
- Application Number
- CN202422117540.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-29
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2034-08-29
AI Technical Summary
The existing housing support structure has insufficient sealing performance, poor strength stability, inconvenient assembly and maintenance, and limited length adjustment, making it difficult to meet the requirements of stable operation and rapid replacement of equipment in complex environments.
It adopts a grooved design, including columns, mounting parts, seals and removable assembly accessories, provides stable support through curved grooves and limit blocks, and combines seal protection to achieve tight connection and flexible adjustment of the support structure.
It improves the sealing performance and strength stability of the equipment, simplifies the assembly and maintenance process, broadens the scope of application of the equipment, and meets the needs of rapid replacement and equipment upgrade.
Smart Images

Figure CN223286032U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of shell supports, in particular to a groove type shell support structure. Background Art
[0002] With the popularization and application of electronic equipment, mechanical equipment and industrial equipment, the casing support structure is an indispensable component of these equipment. Its design is crucial to ensuring the safety of the equipment during transportation, stability during operation and optimization of the overall structural performance.
[0003] In particular, in terms of "mobile communication emergency power supply devices based on smart lithium battery technology", it is not only necessary to have efficient energy conversion and storage capabilities to support the stable operation of the communication system in emergency situations, but also to ensure reliability and durability under various complex environmental conditions. That is, the design of the shell support structure needs to fully consider the characteristics of smart lithium battery technology, such as the safety protection of the battery pack, heat dissipation management, and the lightweight and portability of the overall structure.
[0004] Specifically, the housing support structure must possess excellent sealing properties to prevent external environmental factors such as dust, water mist, and corrosive gases from invading the internal intelligent lithium battery module and electronic components. This requires the use of high-precision machining technology and high-quality sealing materials during design to ensure tight connections between components and reduce gaps and cracks, thereby improving the overall waterproof and dustproof level and extending the service life of the equipment. Secondly, the housing support structure must have sufficient strength and stability to withstand possible external shock and vibration. By optimizing the structural design, such as using reinforced materials, increasing structural support points, or adopting advanced shock-absorbing and buffering technologies, the housing support structure's impact and seismic resistance can be effectively improved, ensuring stable operation of the equipment and the safety of internal components under harsh operating conditions. In addition, to facilitate assembly and maintenance, the design of the housing support structure should be modular, standardized, and easy to disassemble. This not only simplifies the production process and improves work efficiency, but also facilitates subsequent rapid replacement and equipment upgrades to meet changing usage needs. Through reasonable interface design and convenient assembly and disassembly tools, operators can quickly complete equipment maintenance and upgrades, reducing maintenance costs and improving equipment efficiency.
[0005] However, the current shell support structure still cannot meet the above requirements in terms of design and application, and has limitations, as follows:
[0006] 1. Inadequate sealing performance: Due to large gaps or cracks between components in the shell support structure, the equipment is easily corroded by external environments such as dust, water mist, corrosive gases, etc., causing damage to internal core components, thereby affecting the normal operation of the equipment, increasing the failure rate, reducing equipment performance, and shortening the equipment life;
[0007] 2. Insufficient strength and stability: When exposed to external shock or vibration, traditional housing support structures exhibit poor stability and are prone to deformation or damage. This not only affects the overall stability of the equipment but can also easily lead to overall damage, reducing its reliability and safety, and increasing maintenance costs.
[0008] 3. Inconvenient assembly and maintenance: Traditional shell support structures have complex component connections and tedious disassembly and installation processes, which not only reduces work efficiency but also increases maintenance costs. It is difficult to meet the needs of rapid replacement and equipment upgrades, which to some extent restricts equipment upgrades and development;
[0009] 4. Limited length adjustment: The traditional shell support structure has limitations in length adjustment, and it is difficult to flexibly adjust according to specific needs. This limits the scope of application of the equipment and is difficult to meet the normal working requirements of the equipment in specific application scenarios. Utility Model Content
[0010] In view of this, the present invention aims to address the deficiencies in the existing technology, and its main purpose is to provide a grooved shell support structure, which solves the technical problems of the traditional shell support structure, such as insufficient sealing performance and strength stability, inconvenient assembly and maintenance, and limited length adjustment.
[0011] In order to achieve the above purpose, the present invention adopts the following technical solutions:
[0012] The utility model provides a grooved housing support structure, comprising:
[0013] A column, wherein mounting portions are provided on both axial sides of the column, and a mounting groove is provided on the mounting portion, and the mounting groove is used to install the shell. The column is also provided with a first arc-shaped groove, and the first arc-shaped groove is arranged between the two mounting portions. A connecting hole is also provided at the end of the column, and the connecting hole is used for splicing and limiting the column. The two mounting portions are each provided with an arc-shaped limit block on one side close to the first arc-shaped groove;
[0014] a sealing member, disposed in the mounting groove and installed between the housing and the mounting portion;
[0015] The assembly part is detachably mounted on the mounting portion and is used to provide an assembly fulcrum.
[0016] As a preferred solution, the mounting portion includes a first arm plate and a second arm plate, the first arm plate and the second arm plate and the column together constitute the mounting groove, the second arm plate is arranged on a side close to the first arc-shaped groove, the two ends of the assembly part are respectively detachably connected to the two second arm plates, and the side of the assembly part away from the column is also provided with a second arc-shaped groove corresponding to the first arc-shaped groove, the arc-shaped limit block is arranged on the second arm plate, and the seal is arranged between the outer shell and the second arm plate.
[0017] As a preferred solution, the two mounting grooves are arranged vertically.
[0018] As a preferred solution, the arm length of the first arm plate is smaller than the arm length of the second arm plate.
[0019] As a preferred solution, the arc-shaped limit block and the first arc-shaped groove have the same arc center, a fan-shaped opening groove is formed between the two arc-shaped limit blocks, the fan-shaped opening groove is connected to the first arc-shaped groove, the second arc-shaped groove includes an annular notch groove portion and a fan-shaped groove portion, the fan-shaped groove portion is connected to the annular notch groove portion, and the angle of the fan-shaped groove portion is equal to the angle of the fan-shaped opening groove.
[0020] As a preferred solution, the assembly part is provided with an avoidance groove corresponding to the arc-shaped limit block on one side close to the column, and the bottom of the avoidance groove is provided with a convex arc surface. The assembly part is an elastic part and is "L"-shaped.
[0021] As a preferred solution, the assembly includes:
[0022] The connecting portion, wherein the second arc-shaped groove is provided on a side of the connecting portion away from the column;
[0023] The connecting blocks are fixedly arranged at both ends of the connecting portion, and the two connecting blocks are respectively detachably connected to the two second arm plates.
[0024] As a preferred solution, the two connecting blocks are arranged vertically.
[0025] As a preferred solution, an assembly hole is provided on a side of the connecting block close to the second arm plate, and an installation through hole is further provided on the axial end face of the connecting block, and the installation through hole is arranged perpendicular to the assembly hole.
[0026] As a preferred solution, a plurality of mounting holes adapted to the assembly holes are formed on the second arm plate, and the plurality of mounting holes are distributed at equal intervals.
[0027] Compared with the prior art, the present invention has obvious advantages and beneficial effects. Specifically, it can be seen from the above technical solution that:
[0028] 1. Improved sealing performance: By installing seals and optimizing structural gaps, it effectively prevents dust, water mist, corrosive gases, etc. in the external environment from eroding the core components inside the equipment, thereby improving the sealing performance of the equipment, reducing the failure rate, and extending the service life of the equipment;
[0029] 2. Enhanced strength and stability: By setting up the mounting parts and assembly parts, adopting a double-arc groove design and a mounting groove that closely fits the shape of the shell, it provides more stable support for the shell and enhances structural stability. It can better maintain the overall stability of the device in the face of external impact or vibration, and improve the reliability and safety of the device.
[0030] 3. Simplified assembly and maintenance process: By designing detachable assembly parts and optimizing component connection relationships, the disassembly and installation process of the shell support structure is simplified, improving work efficiency, reducing maintenance costs, meeting the needs of rapid replacement and equipment upgrades, and promoting equipment upgrades and development;
[0031] 4. Flexible length adjustment: Through the splicing limit design of the column and the multiple equally spaced mounting holes opened on the second arm plate, combined with the mounting through holes provided by the assembly parts, an assembly fulcrum is formed, which enables flexible adjustment of the support structure length. It can be customized according to needs, broadens the scope of application of the equipment, and meets the normal working requirements in specific application scenarios.
[0032] In order to more clearly illustrate the structural features and effects of the present invention, the present invention will be described in detail below with reference to the accompanying drawings and specific embodiments. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] Figure 1 This is a schematic diagram of the grooved housing support structure of an embodiment of the present application;
[0034] Figure 2 This is a schematic diagram of a grooved housing support structure with a housing installed in an embodiment of the present application;
[0035] Figure 3 This is an embodiment of the present application Figure 2 A enlarged view;
[0036] Figure 4 It is a schematic diagram of the assembly parts of the embodiment of the present application.
[0037] Description of reference numerals:
[0038] 10. Column; 11. First arc-shaped groove; 12. Connecting hole;
[0039] 20. Mounting portion; 21. Mounting groove; 22. First arm plate; 23. Second arm plate; 231. Arc-shaped limit block; 232. Fan-shaped opening groove; 233. Mounting hole;
[0040] 30. Seals;
[0041] 40. Assembly member; 41. Second arc-shaped groove; 411. Annular notch groove; 412. Fan-shaped groove; 42. Avoidance groove; 421. Arc surface; 43. Connecting portion; 44. Connecting block; 441. Assembly hole; 442. Mounting through hole;
[0042] 50. Shell. DETAILED DESCRIPTION
[0043] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and implementation examples. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0044] It should be noted that when an element is referred to as being "fixed to" another element, it may be directly attached to the other element or there may be an intermediate element. When an element is referred to as being "connected to" another element, it may be directly connected to the other element or there may be an intermediate element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only.
[0045] With the widespread application of electronic equipment, machinery and industrial equipment, the importance of casing support structures has become increasingly prominent. However, the current casing support structure faces multiple challenges in design and application. First, the poor sealing performance makes the equipment susceptible to external environmental erosion, affecting the safety and stability of internal core components, thereby reducing equipment performance and service life. Secondly, insufficient strength and stability make the equipment prone to deformation or damage when subjected to external shock or vibration, reducing equipment reliability and safety. Furthermore, the complex assembly structure not only affects work efficiency, but also increases maintenance costs, making it difficult to meet the needs of rapid replacement and upgrading of equipment. Finally, the limitations of traditional casing support structures in length adjustment limit the applicability of the equipment in different application scenarios.
[0046] To resolve the above issues, please refer to Figures 1 to 4 , the embodiment of the utility model provides a groove type housing support structure, comprising:
[0047] The column 10 is provided with mounting portions 20 on both axial sides, and the mounting portions 20 are provided with mounting grooves 21. The mounting grooves 21 are used to mount the housing 50. The mounting grooves 21 can closely fit the shape of the housing 50, so that a stable connection relationship is formed between the housing 50 and the supporting structure, ensuring the stability and accuracy of the installation of the housing 50. The column 10 is also provided with a first arcuate groove 11. The first arcuate groove 11 is provided between the two mounting portions 20 to provide support for the bending or curvature of the housing 50, thereby enhancing the stability of the housing 50 at different angles and ensuring the stability of the housing 50 in the face of external impact or During vibration, the design of the first arc-shaped groove 11 can significantly improve the ability to resist impact. A connecting hole 12 is also provided at the end of the column 10. The connecting hole 12 is used to limit the splicing of the column 10, thereby improving the stability and expansibility of the support structure and meeting the needs of flexible length adjustment. The two mounting parts 20 are each provided with an arc-shaped limit block 231 on one side close to the first arc-shaped groove 11. The arc-shaped limit block 231 is used to limit the bending stroke of the support structure when the shell 50 is impacted, thereby avoiding excessive inward bending of the mounting part 20 of the support structure, effectively preventing damage to the structure, and improving the stability of the support.
[0048] The seal 30 is arranged in the mounting groove 21 and installed between the housing 50 and the mounting portion 20, effectively preventing dust, water mist, corrosive gases, etc. in the external environment from corroding the core components inside the device, thereby improving the sealing performance and service life of the device.
[0049] The assembly part 40 is detachably mounted on the mounting portion 20 and is used to provide an assembly fulcrum for the splicing of the column 10 or the installation of internal mounting parts, thereby improving the flexibility and convenience of installation and making assembly and maintenance simpler and more efficient.
[0050] In this embodiment, the mounting portion 20 includes a first arm plate 22 and a second arm plate 23. The first arm plate 22 and the second arm plate 23 together with the column 10 form a mounting groove 21. The coordinated design of the first arm plate 22 and the second arm plate 23 enables the mounting groove 21 to accurately adapt to the shape and size of the housing 50, further enhancing the connection stability and accuracy between the housing 50 and the supporting structure. The second arm plate 23 is arranged on a side close to the first arc-shaped groove 11, and the two ends of the assembly part 40 are detachably connected to the two second arm plates 23, so that the installation and Disassembly becomes convenient and quick, which improves the convenience of maintenance. A second arc groove 41 corresponding to the first arc groove 11 is also provided on the side of the assembly part 40 away from the column 10, providing double support for the bending or curvature of the shell 50, which not only ensures the impact bending ability of the supporting structure, but also further enhances the stability of the shell 50 at different angles. The arc limit block 231 is set on the second arm plate 23, which is used to limit the bending stroke of the supporting structure when the shell 50 is impacted, thereby ensuring the stability of the structure. The seal 30 is set between the shell 50 and the second arm plate 23.
[0051] In the preferred embodiment, the two mounting grooves 21 are arranged vertically, so that the shell 50 installed on the mounting grooves 21 can obtain stable support in two mutually perpendicular directions, further improving the stability and accuracy of the shell 50. At the same time, this design also makes the support structure appear more compact, provides more possibilities for the arrangement of other components inside the device, and improves space utilization.
[0052] The side of the assembly part 40 close to the column 10 is provided with an avoidance groove 42 corresponding to the arc-shaped limit block 231 to prevent the assembly part 40 from obstructing the operation of the arc-shaped limit block 231 when the shell 50 is bent by external impact. The bottom of the avoidance groove 42 is convexly provided with an arc surface 421. When it is impacted or squeezed, the arc surface 421 can effectively disperse the pressure and ensure the cushioning performance of the assembly part 40 itself. The assembly part 40 is an elastic component, so that the assembly part 40 can provide a certain elastic buffer during the assembly process, effectively reducing the risk of structural damage caused by improper assembly or external impact. At the same time, the characteristics of the elastic component can also enable the assembly part 40 to better adapt to changes in the external environment after installation and maintain the stability of the supporting structure. In addition, the assembly part 40 is "L"-shaped, which not only enhances the structural strength of the assembly part 40, but also makes it easier to position and align the assembly part 40 during the assembly process, thereby improving the accuracy and convenience of assembly.
[0053] Furthermore, the arm length of the first arm plate 22 is smaller than the arm length of the second arm plate 23. This design makes the shape of the mounting groove 21 more in line with the actual installation requirements of the shell 50. Since the second arm plate 23 is longer, it can provide a wider and more stable support surface for the shell 50, ensuring that the shell 50 is not easy to shake or shift during the installation process. At the same time, the shorter design of the first arm plate 22 helps to reduce the overall size of the support structure and improve the compactness and aesthetics of the structure. This differentiated arm length design not only optimizes the performance of the support structure, but also makes the installation of the shell 50 more convenient and quick.
[0054] The arc-shaped limit block 231 and the first arc groove 11 have the same arc center. This design ensures that the arc-shaped limit block 231 can maintain synchronous movement with the first arc groove 11 when limiting the bending stroke of the shell 50, thereby improving the stability and reliability of the support structure. A fan-shaped opening groove 232 is formed between the two arc-shaped limit blocks 231. The fan-shaped opening groove 232 is connected to the first arc groove 11. The second arc groove 41 includes an annular notch groove portion 411 and a fan-shaped groove portion 412. The fan-shaped groove portion 412 is connected to the annular notch groove portion 411. The notched groove portion 411 is through-through. This design enables the assembly part 40 to adapt to and support the shape of the shell 50 through the deformation of the fan-shaped groove portion 412 when the shell 50 bends or the curvature changes, thereby enhancing the flexibility and adaptability of the support structure. At the same time, the angle of the fan-shaped groove portion 412 is equal to the angle of the fan-shaped opening groove 232, so that the assembly part 40 and the mounting portion 20 can maintain synchronous movement when responding to the bending or curvature of the shell 50, thereby further improving the stability and reliability of the support structure.
[0055] The assembly 40 includes:
[0056] The connecting portion 43 and the second arc-shaped groove 41 are arranged on a side of the connecting portion 43 away from the column 10. This design enables the assembly part 40 to flexibly adapt to the bending or curvature changes of the housing 50 while providing stable support.
[0057] The connecting blocks 44 are fixedly arranged at both ends of the connecting portion 43. The two connecting blocks 44 are detachably connected to the two second arm plates 23 respectively, which is convenient for maintenance and replacement. At the same time, the stable connection of the connecting blocks 44 also ensures the reliability and stability of the assembly 40 during use.
[0058] In the preferred embodiment, the two connecting blocks 44 are arranged vertically, ensuring a secure connection between the assembly 40 and the second arm plate 23 while also making the overall structure more compact and improving space utilization. Furthermore, the vertical arrangement of the connecting blocks 44 allows the connecting portion 43 to better adapt to the curvature or radian of the housing 50, thereby providing a more stable and uniform support force, further enhancing the overall stability and reliability of the support structure of the recessed housing 50.
[0059] Furthermore, an assembly hole 441 is provided on one side of the connecting block 44 close to the second arm plate 23, so that the connection between the connecting block 44 and the second arm plate 23 is more precise and easy to operate. A mounting through hole 442 is also provided on the axial end face of the connecting block 44. Through the mounting through hole 442, the assembly part 40 can be fixedly connected with other components, thereby expanding the use scenarios and adaptability of the support structure. The mounting through hole 442 and the assembly hole 441 are arranged vertically, making the structure compact and improving space utilization.
[0060] The second arm plate 23 is provided with a plurality of mounting holes 233 adapted to the assembly holes 441, providing a variety of installation position options. The plurality of mounting holes 233 are distributed at equal intervals. Such a layout not only ensures the uniformity of the mounting holes 233, but also makes the assembly part 40 more versatile and adaptable during the installation process, providing a fulcrum for the installation of internal mounting parts of the equipment, and meeting the different installation requirements of internal mounting parts of the equipment.
[0061] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements and improvements made within the principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A grooved housing support structure, characterized in that: A column (10), wherein mounting portions (20) are provided on both axial sides of the column (10), a mounting groove (21) is provided on the mounting portion (20), and the mounting groove (21) is used to install the housing (50), and a first arc-shaped groove (11) is further provided on the column (10), and the first arc-shaped groove (11) is arranged between the two mounting portions (20), and a connecting hole (12) is further provided at the end of the column (10), and the connecting hole (12) is used for splicing and limiting the column (10), and an arc-shaped limiting block (231) is provided on one side of the two mounting portions (20) close to the first arc-shaped groove (11); a sealing member (30) disposed in the mounting groove (21) and installed between the housing (50) and the mounting portion (20); An assembly part (40) is detachably mounted on the mounting portion (20) and is used to provide an assembly fulcrum.
2. The grooved housing support structure according to claim 1, wherein: The mounting portion (20) includes a first arm plate (22) and a second arm plate (23), wherein the first arm plate (22) and the second arm plate (23) together with the column (10) constitute the mounting groove (21), the second arm plate (23) is arranged on a side close to the first arc-shaped groove (11), the two ends of the assembly part (40) are detachably connected to the two second arm plates (23), and the side of the assembly part (40) away from the column (10) is further provided with a second arc-shaped groove (41) corresponding to the first arc-shaped groove (11), the arc-shaped limit block (231) is arranged on the second arm plate (23), and the sealing member (30) is arranged between the housing (50) and the second arm plate (23).
3. The grooved housing support structure according to claim 1 or 2, characterized in that: The two mounting grooves (21) are arranged vertically.
4. The grooved housing support structure according to claim 2, wherein: The arm length of the first arm plate (22) is smaller than the arm length of the second arm plate (23).
5. The grooved housing support structure according to claim 2, wherein: The arc-shaped limit block (231) and the first arc-shaped groove (11) have the same arc center, a fan-shaped opening groove (232) is formed between the two arc-shaped limit blocks (231), the fan-shaped opening groove (232) is connected to the first arc-shaped groove (11), the second arc-shaped groove (41) includes an annular notch groove portion (411) and a fan-shaped groove portion (412), the fan-shaped groove portion (412) is connected to the annular notch groove portion (411), and the angle of the fan-shaped groove portion (412) is equal to the angle of the fan-shaped opening groove (232).
6. The grooved housing support structure according to claim 1, characterized in that: A side of the assembly part (40) close to the column (10) is provided with an avoidance groove (42) corresponding to the arc-shaped limit block (231), and a curved surface (421) is convexly provided at the bottom of the avoidance groove (42). The assembly part (40) is an elastic component and is L-shaped.
7. The grooved shell support structure according to claim 2, characterized in that: The assembly (40) comprises: A connecting portion (43), wherein the second arc-shaped groove (41) is provided on a side of the connecting portion (43) away from the column (10); The connecting blocks (44) are fixedly arranged at both ends of the connecting portion (43), and the two connecting blocks (44) are detachably connected to the two second arm plates (23) respectively.
8. The grooved housing (50) support structure according to claim 7, characterized in that: The two connecting blocks (44) are arranged vertically.
9. The grooved housing (50) support structure according to claim 7, characterized in that: An assembly hole (441) is provided on one side of the connecting block (44) close to the second arm plate (23), and an installation through hole (442) is also provided on the axial end surface of the connecting block (44), wherein the installation through hole (442) is arranged perpendicular to the assembly hole (441).
10. The grooved housing support structure according to claim 9, characterized in that: The second arm plate (23) is provided with a plurality of mounting holes (233) adapted to the assembly holes (441), and the plurality of mounting holes (233) are distributed at equal intervals.