Hinge case structure

By employing modular design and intelligent adjustment mechanisms, combined with lightweight materials, the problem of non-removable and bulky traditional hinge chassis structures has been solved, enabling rapid installation, personalized adjustment, and convenient use, thereby enhancing the equipment's applicability and market competitiveness.

CN223796895UActive Publication Date: 2026-01-13BEIJING ZHONGKE TONGZHUANG TECH CO LTD
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Patent Information

Application Number
CN202423305177.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2026-01-13
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

Traditional hinge housings are non-removable, resulting in high maintenance costs, inconvenience and bulkiness, and difficulty in frequent relocation or repositioning.

Method used

It adopts a modular design and intelligent adjustment mechanism, and achieves quick disassembly and automatic adjustment through standardized interfaces and pin connections, combined with lightweight materials and electric adjustment devices.

Benefits of technology

It reduces maintenance costs, improves ease of use and flexibility, enhances device portability and user experience, and supports personalized upgrades and expansions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of hinge cases, and discloses a hinge case structure, which comprises a linking arm which is linked with a side hinge of a case main body and is used for supporting and connecting the case main body and peripheral accessories of the case main body. Standardized hooks are designed to be universal interfaces and can be rapidly installed on the two sides of a machine case, installation of the linkage arms and the main body can be completed through simple hook operation, and assembling convenience and modularization are improved. The design facilitates rapid replacement of the assembly. The pulling plug can be automatically adjusted to a preset angle under an intelligent adjusting mechanism. Light high-strength materials such as carbon fiber composite materials or aluminum alloy are adopted and used for designing a case shell and a supporting structure. The material distribution is optimized through finite element analysis (FEA), so that the material consumption is reduced as much as possible on the premise of ensuring the strength, and the equipment weight is reduced. By means of the design, the case is ensured to meet the stability, meanwhile, the lighter overall effect is achieved, and the case is convenient to carry and move.
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Description

Technical Field

[0001] This utility model belongs to the field of hinge housing technology, and in particular relates to a hinge housing structure. Background Technology

[0002] In traditional designs, components are typically non-removable, requiring complete replacement for maintenance or repair, increasing maintenance costs. Traditional chassis usually require manual adjustment, which is inconvenient, especially in scenarios with frequent changes in angle and height. Ordinary metal materials make the chassis structure bulky, hindering frequent moving or repositioning.

[0003] Based on the above analysis, the problems and shortcomings of the existing technology are as follows:

[0004] (1) In traditional designs, components are usually non-removable structures, which means that the whole structure needs to be replaced or repaired, increasing maintenance costs.

[0005] (2) Traditional chassis usually require manual adjustment, which is inconvenient to use, especially in scenarios where the angle and height change frequently.

[0006] (3) Ordinary metal materials make the chassis structure bulky and inconvenient to move or adjust frequently. Utility Model Content

[0007] To address the problems existing in the prior art, this utility model provides a hinge housing structure.

[0008] This utility model is implemented as follows: a hinge housing structure includes:

[0009] The connecting arm is hooked to a standardized design;

[0010] Link arm: Connects to the side hinge of the chassis body, used to support and connect the chassis body and its surrounding accessories;

[0011] Standardized hooks: Designed with a universal interface, they can be quickly installed on both sides of the chassis. The connection arm can be installed to the main body with simple hook operation, which improves the convenience and modularity of assembly; this design facilitates the quick replacement of components.

[0012] Frame tension bolts and intelligent adjustment;

[0013] Frame tie rods: designed to fix the angle of the main body, and are installed on the side of the main body 1 through screw holes;

[0014] Intelligent adjustment function: The built-in electric or pneumatic adjustment device can automatically adjust within the angle range set by the user; under the intelligent adjustment mechanism, the bolt can automatically adjust to the predetermined angle, improving the user-friendliness and ease of operation of the equipment;

[0015] Keyboard board and latch modification;

[0016] Keyboard: Used for installation between the main body 1 and the telescopic frame, and can be quickly plugged in and out;

[0017] Pin-type modification: The pin-type connection mode replaces the traditional screw fixing, allowing users to install or remove the keyboard panel more quickly; the pin-type mode not only improves installation efficiency but also ensures structural stability.

[0018] Angle adjustment 1 and angle adjustment 2;

[0019] Angle adjustment 1 and angle adjustment 2: used for foot pedal angle adjustment, welded to the main body 1 and coinciding with the edge line of the main beam; the angle adjustment components can be adjusted manually or electrically, allowing users to adjust the angle of the foot pedal according to their needs;

[0020] Angle adjustment column; foot pedal and rotary link; telescopic frame design; mouse link arm and modular design; mouse disk; monitor stand and height adjustment; monitor feet and monitor column; rotary link and main body connection; main body and lower beam design.

[0021] Furthermore, the angle adjustment column:

[0022] Angle adjustment column: Installed on angle adjustment 1 and angle adjustment 2, it is used to quickly adjust the angle of the foot pedal; the angle adjustment column makes the foot pedal angle adjustment more flexible and convenient for users to make personalized adjustments.

[0023] Furthermore, the foot pedal is connected to a rotary link:

[0024] Foot pedal: The foot pedal is connected to the main body via a rotating connecting hole, allowing it to rotate within a certain range to meet the diverse usage needs of users;

[0025] Foot pedal swivel link 1 and swivel link 2: welded to the edge of the main body 2 and the main beam 2, used to fix the foot pedal and ensure the stability of the rotation movement;

[0026] Furthermore, the telescopic frame is designed as follows:

[0027] Telescopic frame: Installed on the main body 1, the vertical height can be changed by adjusting the length to adapt to different users' usage conditions; the design of the telescopic frame makes the equipment more adaptable, improves ergonomics and user experience;

[0028] Furthermore, the mouse link arm features a modular design:

[0029] Mouse link arm: Located on the side of the telescopic frame, it adopts a modular design and has a hollow structure, which reduces weight and facilitates quick installation of the mouse pad; the modular mouse link arm can adapt to the needs of different users and enhances the flexibility of the design.

[0030] Furthermore, the mousepad:

[0031] Mouse disk: Installed on the mouse link arm, it can be quickly installed and removed through a standardized interface or pin method, making it easy to use or replace in different operating environments;

[0032] Furthermore, the display screen frame includes height adjustment:

[0033] Display stand: Fixed to the display column, the height of the display can be adjusted, allowing users to adjust it up and down according to their needs to achieve the best viewing angle and improve operating comfort;

[0034] Furthermore, the display screen feet and display screen pillars:

[0035] Display screen feet: welded to the main body 1, coinciding with the foot pedal adjustment edge line, used for quick installation of the display screen bracket;

[0036] Display screen pillars: Located between the display screen legs and the display screen frame, they support the display screen and ensure the stability of its height adjustment.

[0037] Furthermore, the rotary link is connected to the main body:

[0038] Rotary link: Installed on the upper beam of the main body, it connects and fixes main body 1, main body 2 and main body 2-1, so that the main bodies can be relatively fixed but still retain a certain amount of room for movement, thus achieving the stability of the overall structure;

[0039] Furthermore, the design of the main body and the lower beam:

[0040] Main body 1, main body 2, and main body 2-1: provide support and stability for the overall structure and are welded together by rotational links;

[0041] Main lower beam 1 and main lower beam 2: respectively welded to main body 1, main body 2, and main body 2-1, providing stronger structural support and ensuring the balance and stability of the chassis during use.

[0042] Based on the above technical solutions and the technical problems solved, the advantages and positive effects of the technical solution to be protected by this utility model are as follows:

[0043] First, regarding the technical problems existing in the above-mentioned prior art, the creative technical effects resulting from solving these problems are described in detail below:

[0044] 1. Modular design scheme

[0045] Modular design breaks down different components of the chassis (such as foot pedals, monitor brackets, and mouse pads) into independent modules. Each module has standardized interfaces and universal connection methods, facilitating interchangeability and upgrades. Technically, through a quick-connect structure and unified plug-and-play interfaces, users can disassemble or install modules themselves without specialized tools. Modular design solves the problems of fixed traditional chassis structures and difficulty in upgrading, extending the lifespan of the equipment and reducing the cost of subsequent replacements or upgrades for users.

[0046] 2. In traditional designs, components are typically non-removable, requiring complete replacement or repair, which increases maintenance costs. Modular design solutions enable equipment flexibility and scalability, reducing the complexity of equipment upgrades.

[0047] 3. Intelligent Adjustment Mechanism Scheme

[0048] The intelligent adjustment mechanism utilizes electric or pneumatic devices to achieve one-button quick adjustment on the angle adjustment components 1 and 2 of the chassis. Technical details include built-in sensors that monitor the user's sitting posture and operating posture in real time, feeding this data back to the control system, which automatically adjusts the display angle and foot pedal height based on the monitoring data. This mechanism not only enhances the device's personalized adjustment capabilities but also provides a convenient operating experience, avoiding the inconvenience of manual adjustments.

[0049] 4. Traditional chassis typically require manual adjustment, which is inconvenient, especially in scenarios where angles and heights change frequently. The intelligent adjustment solution effectively solves this problem, enabling automated and personalized adjustment.

[0050] 5. Lightweight materials and structural optimization schemes

[0051] To enhance the portability and structural strength of the chassis, the design utilizes lightweight, high-strength materials, such as carbon fiber composites or aluminum alloys, for both the chassis shell and supporting structure. Finite element analysis (FEA) is used to optimize material distribution, minimizing material usage and reducing equipment weight while maintaining strength. This design ensures the chassis achieves stability while maintaining a lighter overall weight, making it easier to handle and move.

[0052] 6. Ordinary metal materials make the chassis structure bulky, making it inconvenient to move or adjust its position frequently. The use of lightweight materials, combined with optimized structural design, effectively reduces the weight of the chassis and enhances portability.

[0053] 7. Coordinated design of modularity and intelligent adjustment

[0054] The combination of modular design and intelligent adjustment mechanism enables each module to independently achieve intelligent adjustment functions, further enhancing the user experience. For example, the display screen and foot pedal modules can be independently adjusted in angle to adapt to the needs of different users and provide a more comfortable user experience.

[0055] 8. Scalability of the solution

[0056] This optimized design supports future functional expansion, such as adding additional adjustment components or installing specific sensors to enhance its functionality and applicability. The modular structure allows users to customize the design to their individual needs, enabling personalized upgrades.

[0057] 9. Achieve standardization and widespread adoption of technology

[0058] With standardized interfaces and a modular design concept, the optimized hinge chassis solution can be easily extended to other types of equipment, such as medical equipment and monitoring systems, benefiting more industries.

[0059] 10. Optimized market competitiveness

[0060] This technical solution provides comprehensive functional enhancements, giving the product significant advantages in portability, comfort, expandability, and cost-effectiveness, meeting diverse user needs, and significantly enhancing the product's market competitiveness.

[0061] This optimized design, through its modularity, intelligence, and lightweight features, enables rapid installation, personalized adjustment, convenient use, and enhanced structural stability, providing users with a more efficient experience and greatly improving the chassis's applicability and market competitiveness.

[0062] Second, does the technical solution of this utility model overcome technical bias?

[0063] The introduction of the hinged chassis structure has indeed overcome technological biases to some extent, mainly in the following aspects:

[0064] I. Overcoming prejudice against traditional simulator supports

[0065] Traditional simulator stands are often bulky and heavy, making them inconvenient to carry and move, which limits the application range of simulators to some extent. The hinged chassis design is designed to overcome this prejudice. By using lightweight, high-strength materials and a foldable, easily disassembled structure, the stand achieves a perfect combination of portability and ease of use while ensuring sufficient load-bearing capacity.

[0066] II. Overcoming biases regarding simulator application scenarios

[0067] In the past, simulators were often confined to specific locations, such as laboratories and training centers, which limited their flexibility and accessibility. However, the advent of hinged chassis structures allows simulators to be easily deployed to various scenarios, such as outdoor training grounds, classrooms, and conference rooms, thus greatly expanding their application scope.

[0068] III. Overcoming Prejudice Against the Development of Simulator Technology

[0069] Throughout the development of simulator technology, there has been a persistent prejudice against the perceived contradiction between portability and functionality. People often believe that pursuing portability inevitably sacrifices functionality, and vice versa. However, the hinge chassis design, through innovative technology and structural design, has successfully overcome this prejudice, achieving a perfect balance between portability and functionality. For example, some portable stands support height and angle adjustments to meet user needs in different scenarios; simultaneously, they are equipped with additional accessories or interfaces, such as USB ports and headphone jacks, to satisfy a wider range of user requirements.

[0070] IV. Overcoming Bias Regarding Simulator Market Demand

[0071] With the continuous development and popularization of simulation technology, more and more people are paying attention to the portability and ease of use of simulators. However, in the past, the choice of portable simulator stands was relatively limited, which restricted consumers' choices to some extent. In recent years, however, with the continuous advancement of hinge chassis technology and the expansion of the market, more and more brands and models have emerged, providing consumers with more choices and a better user experience.

[0072] In conclusion, the introduction of the hinged chassis structure not only overcomes the prejudices of traditional simulator stands but also expands the application scenarios of simulators, promotes the development of simulator technology, and meets the diverse market demands for portable simulator stands. Therefore, it can be said that the hinged chassis structure, to a certain extent, overcomes technological prejudices and injects new vitality and momentum into the development of simulator technology. Attached Figure Description

[0073] Figure 1 This is a structural diagram of the hinge housing provided in an embodiment of the present utility model.

[0074] Figure 2 This is a side view of the hinge housing structure provided in an embodiment of the present utility model.

[0075] Figure 3 This is a structural diagram of the chassis connecting arm provided in an embodiment of this utility model.

[0076] Figure 4 This is a structural diagram of the frame tie rod provided in an embodiment of this utility model.

[0077] Figure 5 This is a structural diagram of the keyboard board provided in an embodiment of the present utility model.

[0078] Figure 6 This is a structural diagram of the angle adjustment 1 provided in an embodiment of the present invention.

[0079] Figure 7 This is a structural diagram of the angle adjustment 2 provided in an embodiment of the present invention.

[0080] Figure 8 This is a structural diagram of the angle adjustment column provided in an embodiment of the present invention.

[0081] Figure 9 This is a structural diagram of the foot pedal provided in an embodiment of the present utility model.

[0082] Figure 10 This is a structural diagram of the foot pedal rotating link 2 provided in an embodiment of this utility model.

[0083] Figure 11 This is a structural diagram of the foot pedal rotating link 1 provided in an embodiment of the present utility model.

[0084] Figure 12 This is a structural diagram of the telescopic frame provided in an embodiment of this utility model.

[0085] Figure 13 This is a structural diagram of the mouse link arm provided in an embodiment of this utility model.

[0086] Figure 14 This is a structural diagram of the mouse disk provided in an embodiment of this utility model.

[0087] Figure 15 This is a structural diagram of the display screen frame provided in an embodiment of the present utility model.

[0088] Figure 16 This is a structural diagram of the display screen foot column provided in an embodiment of this utility model.

[0089] Figure 17 This is a structural diagram of the display column provided in an embodiment of the present utility model.

[0090] Figure 18 This is a diagram of the rotating link structure provided in an embodiment of the present invention.

[0091] Figure 19 This is a structural diagram of the main body 1 provided in an embodiment of the present utility model.

[0092] Figure 20 This is a structural diagram of the main body 2-1 provided in the embodiment of this utility model.

[0093] Figure 21This is a structural diagram of the main body 2 provided in an embodiment of the present utility model.

[0094] Figure 22 This is a structural diagram of the main lower beam 1 provided in an embodiment of this utility model.

[0095] Figure 23 This is a structural diagram of the main lower beam 2 provided in an embodiment of this utility model.

[0096] Figure 24 This is a hinge structure diagram provided in an embodiment of the present utility model.

[0097] Figure 25 This is a structural diagram of the chassis plate provided in an embodiment of the present utility model.

[0098] In the diagram: 2. Rotary link; 4. Frame bolt; 6. Angle adjustment; 9. Foot pedal rotary connection; 10. Foot pedal; 11. Angle adjustment column; 12. Monitor frame; 13. Mouse connecting arm; 14. Mouse disk; 15. Chassis connecting arm; 16. Chassis panel; 17. Hinge; 19. Monitor stand; 20. Monitor column; 21. Telescopic frame; 22. Keyboard panel. Detailed Implementation

[0099] To make the objectives, technical solutions, and advantages of this utility model clearer, the following detailed description is provided in conjunction with embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this utility model.

[0100] like Figure 1 , 2 As shown, the hinge housing structure provided in this embodiment of the present invention includes:

[0101] The connecting arm is hooked to a standardized design;

[0102] Link arm: Connects to the side hinge of the chassis body, used to support and connect the chassis body and its surrounding accessories.

[0103] Standardized hooks: Designed with a universal interface, they can be quickly installed on both sides of the chassis. The connecting arm and main body can be installed simply by hooking the hooks, improving assembly convenience and modularity. This design also facilitates quick component replacement.

[0104] Frame bolts and intelligent adjustment

[0105] Frame bolts: designed to fix the angle of the main body, and are installed on the side of the main body 1 through screw holes.

[0106] Intelligent adjustment function: The built-in electric or pneumatic adjustment device can automatically adjust within a user-defined angle range. Under this intelligent adjustment mechanism, the bolt can automatically adjust to the predetermined angle, enhancing the user-friendliness and ease of operation of the equipment.

[0107] Keyboard board and plug modification

[0108] Keyboard: Used for installation between the main body 1 and the telescopic frame, and can be quickly plugged in and out.

[0109] Pin-type modification: Adopting a pin-type connection instead of traditional screw fixing allows users to install or remove the keyboard panel more quickly. The pin-type design not only improves installation efficiency but also ensures structural stability.

[0110] Angle Adjustment 1 and Angle Adjustment 2

[0111] Angle adjustment 1 and angle adjustment 2: used for adjusting the foot pedal angle, welded to the main body 1, coinciding with the edge line of the main beam. The angle adjustment components can be adjusted manually or electrically, allowing users to adjust the foot pedal angle according to their needs.

[0112] Angle Adjustment Column

[0113] Angle adjustment column: Installed on angle adjustment 1 and angle adjustment 2, it is used for quick adjustment of the foot pedal angle. The angle adjustment column makes the foot pedal angle adjustment more flexible and convenient for users to make personalized adjustments.

[0114] Foot pedal and rotary link

[0115] Foot pedal: The foot pedal is connected to the main body through a rotating connecting hole, allowing it to rotate within a certain range to meet the diverse usage needs of users.

[0116] Foot pedal swivel link 1 and swivel link 2: welded to the edge of the main body 2 and the main beam 2, used to fix the foot pedal and ensure the stability of the rotation.

[0117] Telescopic frame design

[0118] Telescopic frame: Installed on the main body 1, its height can be adjusted by changing its length to accommodate different user needs. The telescopic frame design makes the equipment more adaptable, improving ergonomics and user experience.

[0119] Mouse link arm and modular design

[0120] Mouse link arm: Located on the side of the telescopic stand, it features a modular design and a hollow structure, reducing weight while facilitating quick installation of the mousepad. The modular mouse link arm can adapt to the needs of different users, enhancing design flexibility.

[0121] Mouse disk

[0122] Mouse disk: Installed on the mouse link arm, it can be quickly installed and removed through a standardized interface or pin method, making it easy to use or replace in different operating environments.

[0123] Display stand and height adjustment

[0124] Display stand: Fixed to the display column, the height of the display can be adjusted, allowing users to adjust it up and down according to their needs to achieve the best viewing angle and improve operating comfort.

[0125] Display screen base and display screen pillar

[0126] Display screen feet: welded to the main body 1, coinciding with the foot pedal adjustment edge line, used for quick installation of the display screen bracket.

[0127] Display screen pillars: Located between the display screen legs and the display screen frame, they support the display screen and ensure the stability of its height adjustment.

[0128] Rotary link and main body connection

[0129] Rotary link: Installed on the upper beam of the main body, it connects and fixes main body 1, main body 2 and main body 2-1, so that the main bodies can be relatively fixed but still retain a certain amount of room for movement, thus achieving the stability of the overall structure.

[0130] Main body and lower beam design

[0131] Main body 1, main body 2, and main body 2-1: provide support and stability for the overall structure and are welded together by rotational links.

[0132] Main lower beam 1 and main lower beam 2: respectively welded to main body 1, main body 2, and main body 2-1, providing stronger structural support and ensuring the balance and stability of the chassis during use.

[0133] like Figure 3 The standardized hook for the chassis connecting arm (connected to the hinge on the side of the main body) provided in this embodiment of the utility model can be quickly installed on both sides.

[0134] like Figure 4 The frame tie rod provided in this embodiment of the utility model (used to fix the angle of the main body, fixed in the screw hole on the side of the main body 1) can be intelligently adjusted to a predetermined angle.

[0135] like Figure 5 The keyboard board provided in this embodiment of the invention (for quick plug-and-play installation on the main body 1 and the telescopic frame) has been modified into a pin-type design for faster installation.

[0136] like Figure 6The angle adjustment 1 provided in this embodiment of the utility model (used for adjusting the angle of the foot pedal, welded to the main body 1 and coinciding with the edge line of the main beam)

[0137] like Figure 7 The angle adjustment 2 provided in this embodiment of the utility model (used for adjusting the angle of the foot pedal, welded to the main body 1 and coinciding with the edge line of the main beam)

[0138] like Figure 8 This utility model embodiment provides an angle adjustment column (which can be used to quickly adjust the angle of the foot pedal and is located on the angle adjustment).

[0139] like Figure 9 This utility model embodiment provides a foot pedal (connected to a rotatable link hole for rotation).

[0140] like Figure 10 The foot pedal rotating link 2 provided in this embodiment of the utility model (welded to the main body 2 and coinciding with the edge line of the main body beam 2, used to fix the foot pedal and move with it)

[0141] like Figure 11 The foot pedal rotating link 1 provided in this embodiment of the utility model (welded to the main body 2 and coinciding with the edge line of the main body beam 2-1, used to fix the foot pedal and move with it)

[0142] like Figure 12 The telescopic frame provided in this embodiment of the utility model (installed on the main body 1, with adjustable length) can be adjusted vertically to achieve a perfect usage state.

[0143] like Figure 13 The mouse link arm (located on the side of the telescopic frame and used to fix the mouse wheel) provided in this embodiment of the utility model uses a modular design for easy and quick installation, and the hollow design can reduce weight.

[0144] like Figure 14 This is the mouse disk (fixed to the mouse connecting arm) provided in this embodiment of the utility model.

[0145] like Figure 15 The display screen bracket provided in this embodiment (mounted on two display screen pillars for adjusting the height of the display screen) can be adjusted vertically, allowing the display screen to achieve a perfect working state.

[0146] like Figure 16 The display screen support column (welded to the main body 1 and coinciding with the foot pedal adjustment edge line, used to fix the display screen column) provided in this embodiment of the utility model enables quick installation of the display screen bracket.

[0147] like Figure 17 This utility model embodiment provides a display screen pillar (fixed between the display screen base and the display screen frame).

[0148] like Figure 18 This utility model embodiment provides a rotary link (welded to the upper beam of the main body, used to connect and fix main body 1, main body 2, and main body 2-1).

[0149] like Figure 19 The main body 1 provided in this embodiment of the utility model (welded to a rotary link to support the overall structure)

[0150] like Figure 20 The main body 2-1 (fixed with a rotary link) provided in this embodiment of the utility model is...

[0151] like Figure 21 The main body 2 (fixed with a rotary link) provided in this embodiment of the utility model is

[0152] like Figure 22 The lower beam 1 of the main body (welded to the main body 1, used to stabilize the overall structure) is provided in this embodiment of the utility model.

[0153] like Figure 23 The lower beam 2 of the main body provided in this embodiment of the utility model (welded to the main body 2 and the main body 2-1, used to stabilize the overall structure)

[0154] like Figure 24 This is a hinge provided in this embodiment of the utility model (used to connect the chassis panel and the chassis connecting arm).

[0155] like Figure 25 The chassis plate (connected to the side of the main body with the hinge) provided in this embodiment of the utility model can be equipped with adjustable feet, which can adjust the angle and height.

[0156] The above description is only a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any modifications, equivalent substitutions and improvements made by those skilled in the art within the technical scope disclosed in this utility model, and within the spirit and principles of this utility model, should be included within the protection scope of this utility model.

Claims

1. A hinge housing structure, characterized in that, The hinge housing structure includes: The connecting arm is hooked to a standardized design; Link arm: Connects to the side hinge of the chassis body, used to support and connect the chassis body and its surrounding accessories; Standardized hooks: Designed with a universal interface, they can be quickly installed on both sides of the chassis. The connection arm can be installed to the main body with simple hook operation, which improves the convenience and modularity of assembly; this design facilitates the quick replacement of components. Frame tension bolts and intelligent adjustment; Frame tie rods: designed to fix the angle of the main body, and are installed on the side of the main body 1 through screw holes; Intelligent adjustment function: The built-in electric or pneumatic adjustment device can automatically adjust within the angle range set by the user; under the intelligent adjustment mechanism, the bolt can automatically adjust to the predetermined angle, improving the user-friendliness and ease of operation of the equipment; Keyboard board and latch modification; Keyboard: Used for installation between the main body 1 and the telescopic frame, and can be quickly plugged in and out; Pin-type modification: The pin-type connection mode replaces the traditional screw fixing, allowing users to install or remove the keyboard panel more quickly; the pin-type mode not only improves installation efficiency but also ensures structural stability. Angle adjustment 1 and angle adjustment 2; Angle adjustment 1 and angle adjustment 2: used for foot pedal angle adjustment, welded to the main body 1 and coinciding with the edge line of the main beam; the angle adjustment components can be adjusted manually or electrically, allowing users to adjust the angle of the foot pedal according to their needs; Angle adjustment column; foot pedal and rotary link; telescopic frame design; mouse link arm and modular design; mouse disk; monitor stand and height adjustment; monitor feet and monitor column; rotary link and main body connection; main body and lower beam design.

2. The hinge housing structure as described in claim 1, characterized in that, The angle adjustment column: Angle adjustment column: Installed on angle adjustment 1 and angle adjustment 2, it is used to quickly adjust the angle of the foot pedal; the angle adjustment column makes the foot pedal angle adjustment more flexible and convenient for users to make personalized adjustments.

3. The hinge housing structure as described in claim 1, characterized in that, The foot pedal is connected to the rotary link: Foot pedal: The foot pedal is connected to the main body via a rotating connecting hole, allowing it to rotate within a certain range to meet the diverse usage needs of users; Foot pedal swivel link 1 and swivel link 2: welded to the edge of the main body 2 and the main beam 2, used to fix the foot pedal and ensure the stability of the rotation.

4. The hinge housing structure as described in claim 1, characterized in that, The telescopic frame design: Telescopic frame: Installed on the main body 1, the vertical height can be changed by adjusting the length to adapt to different user conditions; the design of the telescopic frame makes the equipment more adaptable and improves ergonomics and user experience.

5. The hinge housing structure as described in claim 1, characterized in that, The mouse link arm and modular design: Mouse link arm: Located on the side of the telescopic frame, it adopts a modular design and has a hollow structure, which reduces weight and facilitates quick installation of the mouse pad; Modular mouse link arms can adapt to the needs of different users, enhancing design flexibility.

6. The hinge housing structure as described in claim 1, characterized in that, The mousepad: Mouse disk: Installed on the mouse link arm, it can be quickly installed and removed through a standardized interface or pin method, making it easy to use or replace in different operating environments.

7. The hinge housing structure as described in claim 1, characterized in that, The display screen frame and height adjustment: Display stand: Fixed to the display column, the height of the display can be adjusted, allowing users to adjust it up and down according to their needs to achieve the best viewing angle and improve operating comfort.

8. The hinge housing structure as described in claim 1, characterized in that, The display screen base and display screen pillar: Display screen feet: welded to the main body 1, coinciding with the foot pedal adjustment edge line, used for quick installation of the display screen bracket; Display screen pillars: Located between the display screen legs and the display screen frame, they support the display screen and ensure the stability of its height adjustment.

9. The hinge housing structure as described in claim 1, characterized in that, The rotary link is connected to the main body: Rotary link: Installed on the upper beam of the main body, it connects and fixes main body 1, main body 2 and main body 2-1, so that the main bodies can be relatively fixed but still retain a certain amount of room for movement, thus achieving the stability of the overall structure.

10. The hinge housing structure as described in claim 1, characterized in that, The design of the main body and the lower beam: Main body 1, main body 2, and main body 2-1: provide support and stability for the overall structure and are welded together by rotational links; Main lower beam 1 and main lower beam 2: respectively welded to main body 1, main body 2, and main body 2-1, providing stronger structural support and ensuring the balance and stability of the chassis during use.