Digital twin server
The server body is clamped by an aluminum alloy positioning plate driven by a screw. The positioning plate and heat sink fins made of high thermal conductivity material are in close contact with the side wall of the server. Combined with the vertical air duct design inside the cabinet, the problem of poor heat dissipation of digital twin servers in high-density cluster deployment is solved, achieving efficient heat dissipation and modular fixation, and extending the service life of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 贵州中汇科技发展有限公司
- Filing Date
- 2025-06-12
- Publication Date
- 2026-05-29
AI Technical Summary
When digital twin servers are deployed in high-density clusters, poor heat dissipation can cause some devices to overheat, affecting overall heat dissipation efficiency.
The server body is clamped by a screw-driven aluminum alloy positioning plate. The positioning plate and heat sink fins made of high thermal conductivity material are in close contact with the side wall of the server to form an efficient heat conduction path. In addition, the vertical air duct design inside the cabinet uses a fan to drive the airflow from bottom to top. After being filtered by the dust filter, the heat is carried away and finally discharged from the top of the cabinet.
It significantly improves the server's heat dissipation efficiency, extends the equipment's lifespan, and enables modular and rapid installation.
Smart Images

Figure CN224306096U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of server technology, and in particular to digital twin servers. Background Technology
[0002] Digital twin technology enables real-time monitoring, simulation optimization, and intelligent decision-making of real-world systems by constructing virtual mappings of physical entities. As the core infrastructure supporting digital twin applications, digital twin servers must possess capabilities such as high-performance computing, low-latency data transmission, and efficient heat dissipation.
[0003] Currently, digital twin servers are typically deployed in multiple centralized configurations to meet the demands of high-performance computing and real-time data synchronization. However, this high-density clustered deployment also presents significant heat dissipation challenges. When multiple servers are densely arranged, the heat generated during operation is difficult to dissipate quickly. Conventional forced convection cooling solutions are prone to airflow obstruction in multi-server environments, preventing even distribution of cool air to each server. Some devices may overheat due to poor heat dissipation, affecting overall cooling efficiency. Therefore, this invention provides a digital twin server to address the problems mentioned in the background section. Utility Model Content
[0004] The purpose of this invention is to provide a digital twin server. A screw-driven aluminum alloy positioning plate clamps the server body, achieving both modular and rapid fixation. The positioning plate and heat sink fins, made of highly thermally conductive material, maintain close contact with the server's sidewalls, forming an efficient heat conduction path. Combined with an optimized vertical airflow design inside the cabinet, a fan drives airflow from bottom to top. Cool air, filtered by a dust filter, passes through the air inlet and outlet channels, where forced convection removes the heat accumulated on the heat sink fins, ultimately exhausting it from the top of the cabinet. This significantly improves heat dissipation efficiency while ensuring stable server installation, effectively extending the equipment's lifespan.
[0005] To achieve the above objectives, a digital twin server is provided, including a cabinet, on which multiple mounting plates are uniformly fixed, and a server body is placed on top of each mounting plate. Positioning components for positioning the server body are symmetrically provided on the top of the mounting plate and on the side of the server body.
[0006] The positioning assembly includes a fixing plate fixed to the top of the mounting plate, a screw threaded inside the fixing plate, and a positioning plate attached to the side of the server body. One end of the screw is rotatably connected to the positioning plate. The positioning plate is made of a high thermal conductivity material and has multiple heat dissipation fins uniformly fixed on its outer side.
[0007] An air duct is provided inside the mounting plate and below the heat dissipation fins, and a ventilation and heat dissipation component is provided inside the cabinet and on the side near the air duct.
[0008] According to the digital twin server, the ventilation and heat dissipation components include an air inlet slot opened inside the bottom side of the cabinet and a fan fixed inside the top side of the cabinet, wherein the fan, air slot, and air inlet slot are arranged vertically.
[0009] According to the digital twin server, the mounting plate has through holes to form a hollow structure, and the mounting plate is also made of a material with high thermal conductivity.
[0010] According to the digital twin server, a guide rod is slidably connected inside the fixed plate, and one end of the guide rod is fixedly connected to the positioning plate.
[0011] According to the digital twin server, each air inlet slot is equipped with a dustproof mesh plate, which is fixed to the cabinet by bolts.
[0012] According to the digital twin server, the server body shell, mounting plate, positioning plate and heat dissipation fins are all made of aluminum alloy.
[0013] According to the digital twin server, a positioning block is symmetrically fixed on the top of the mounting plate and on the rear side of the server body, and both the front end of the positioning plate and the positioning block are L-shaped structures.
[0014] This utility model has the following beneficial effects:
[0015] 1. Compared with existing technologies, the aluminum alloy positioning plate driven by the screw clamps the server body, which not only achieves modular and rapid fixation, but also utilizes the high thermal conductivity material of the positioning plate and heat dissipation fins to make close contact with the server side wall, forming an efficient heat conduction path. Combined with the optimized vertical air duct design inside the cabinet, the fan drives the airflow from bottom to top. After being filtered by the dustproof mesh, the cool air passes through the air inlet slot and the air outlet slot in sequence, and the forced convection carries away the heat accumulated on the heat dissipation fins, and finally exhausts it from the top of the cabinet. While ensuring stable installation of the server, it significantly improves heat dissipation efficiency and effectively extends the service life of the equipment. Attached Figure Description
[0016] The present invention will be further described below with reference to the accompanying drawings and embodiments;
[0017] Figure 1 This is a schematic diagram of the overall structure of the digital twin server of this utility model;
[0018] Figure 2 This is a schematic diagram of the disassembled structure of the dustproof mesh plate of the digital twin server of this utility model;
[0019] Figure 3 This is a schematic diagram of the component structure on the mounting plate of the digital twin server of this utility model;
[0020] Figure 4The digital twin server of this utility model Figure 3 Schematic diagram of the structure after removing the heat sink fins;
[0021] Figure 5 The digital twin server of this utility model Figure 3 A schematic diagram of the structure viewed from below.
[0022] Legend:
[0023] 1. Cabinet; 2. Mounting plate; 3. Server body; 4. Dustproof mesh plate; 5. Fan; 6. Air duct; 7. Positioning block; 8. Positioning plate; 9. Heat sink fins; 10. Fixing plate; 11. Screw; 12. Guide rod; 13. Through hole; 14. Air inlet duct. Detailed Implementation
[0024] This section will describe in detail the specific embodiments of the present utility model. The preferred embodiments of the present utility model are shown in the accompanying drawings. The purpose of the drawings is to supplement the textual description with graphics, so that people can intuitively and vividly understand each technical feature and the overall technical solution of the present utility model, but they should not be construed as limiting the scope of protection of the present utility model.
[0025] Reference Figure 1-5 The present invention relates to a digital twin server, which includes a cabinet 1. Multiple mounting plates 2 are uniformly fixed on the inner wall of the cabinet 1. A server body 3 is placed on the top of each mounting plate 2. Positioning components for positioning the server body 3 are symmetrically arranged on the top of the mounting plate 2 and on the side of the server body 3. The positioning components include a fixing plate 10 fixed on the top of the mounting plate 2, a screw 11 threaded inside the fixing plate 10, and a positioning plate 8 attached to the side of the server body 3. One end of the screw 11 is rotatably connected to the positioning plate 8. The positioning plate 8 is made of a high thermal conductivity material and multiple heat dissipation fins 9 are uniformly fixed on its outer side. A guide rod 12 is slidably connected inside the fixing plate 10, and one end of the guide rod 12 is fixedly connected to the positioning plate 8.
[0026] After the server body 3 is placed on the mounting plate 2, the positioning plate 8 is moved by rotating the screw 11, so that the aluminum alloy positioning plate 8 fits tightly against the side wall of the server. At this time, the heat dissipation fins 9 and the server body 3 form a heat conduction path, which facilitates the airflow to carry away the heat of the heat dissipation fins 9 when passing through the air duct 6. At the same time, the positioning plate 8 clamps and fixes the server body 3, realizing modular fixation.
[0027] An air passage 6 is provided inside the mounting plate 2 and below the heat dissipation fins 9. A ventilation and heat dissipation component is provided inside the cabinet 1 and on the side near the air passage 6. The ventilation and heat dissipation component includes an air inlet slot 14 provided inside the bottom side of the cabinet 1 and a fan 5 fixed inside the top side of the cabinet 1. The fan 5, the air passage 6 and the air inlet slot 14 are arranged vertically and overlap to form a vertical air duct.
[0028] During operation, fan 5 draws air to form an upward airflow. After being filtered by dustproof mesh plate 4, the external cold air passes through air inlet slot 14 and air outlet slot 6 in sequence, carrying away the heat from heat dissipation fins 9, and is finally discharged from the top of the cabinet, achieving efficient heat dissipation for the server body 3.
[0029] The mounting plate 2 has through holes 13 inside to form a hollow structure. The mounting plate 2 is also made of a high thermal conductivity material. The through holes 13 inside form a lightweight structure while facilitating the airflow inside the cabinet 1, ensuring good air circulation inside the cabinet 1.
[0030] Each air inlet duct 14 is fitted with a dustproof mesh plate 4. External air is filtered by the dustproof mesh plate 4 before entering the cabinet 1, ensuring the cleanliness of the air entering the cabinet 1. The dustproof mesh plate 4 is fixed to the cabinet 1 with bolts, and the dustproof mesh plate 4 can be detached and fixed with bolts.
[0031] The server body 3, mounting plate 2, positioning plate 8, and heat dissipation fins 9 are all made of aluminum alloy, which has good thermal conductivity and is also lightweight. A positioning block 7 is symmetrically fixed on the top of the mounting plate 2 and located at the rear of the server body 3. The front end of the positioning plate 8 and the positioning block 7 are both L-shaped structures, which together with the L-shaped front end of the positioning plate 8 form an anti-displacement structure.
[0032] Working principle: After the server body 3 is placed on the mounting plate 2, the positioning plate 8 is moved by rotating the screw 11, so that the aluminum alloy positioning plate 8 fits tightly against the side wall of the server. At this time, the heat dissipation fins 9 and the server body 3 form a heat conduction path, which facilitates the airflow to carry away the heat of the heat dissipation fins 9 when passing through the air duct 6. At the same time, the positioning plate 8 clamps and fixes the server body 3, realizing modular fixation;
[0033] During operation, fan 5 draws air to form an upward airflow. After being filtered by dustproof mesh plate 4, the external cold air passes through air inlet slot 14 and air outlet slot 6 in sequence, carrying away the heat from heat dissipation fins 9, and is finally discharged from the top of the cabinet, achieving efficient heat dissipation for the server body 3.
[0034] The embodiments of the present utility model have been described in detail above with reference to the accompanying drawings. However, the present utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present utility model.
Claims
1. A digital twin server, characterized in that, Includes a cabinet (1), on which multiple mounting plates (2) are evenly fixed, and a server body (3) is placed on the top of each mounting plate (2). Positioning components for positioning the server body (3) are symmetrically provided on the top of the mounting plate (2) and on the side of the server body (3). The positioning assembly includes a fixing plate (10) fixed to the top of the mounting plate (2), a screw (11) threaded inside the fixing plate (10), and a positioning plate (8) attached to the side of the server body (3). One end of the screw (11) is rotatably connected to the positioning plate (8). The positioning plate (8) is made of a high thermal conductivity material and has multiple heat dissipation fins (9) uniformly fixed on its outer side. An air duct (6) is provided inside the mounting plate (2) and below the heat dissipation fins (9), and a ventilation and heat dissipation component is provided inside the cabinet (1) on the side near the air duct (6).
2. The digital twin server according to claim 1, characterized in that, The ventilation and heat dissipation assembly includes an air inlet slot (14) opened inside the bottom side of the cabinet (1) and a fan (5) fixed inside the top side of the cabinet (1). The fan (5), the air duct (6) and the air inlet slot (14) are arranged vertically.
3. The digital twin server according to claim 2, characterized in that, The mounting plate (2) has through holes (13) inside to form a hollow structure, and the mounting plate (2) is also made of a high thermal conductivity material.
4. The digital twin server according to claim 3, characterized in that, The fixed plate (10) has a guide rod (12) slidably connected inside, and one end of the guide rod (12) is fixedly connected to the positioning plate (8).
5. The digital twin server according to claim 4, characterized in that, Each air inlet slot (14) is fitted with a dustproof mesh plate (4), which is fixed to the cabinet (1) by bolts.
6. The digital twin server according to claim 1, characterized in that, The server body (3) housing, mounting plate (2), positioning plate (8) and heat dissipation fins (9) are all made of aluminum alloy.
7. The digital twin server according to claim 6, characterized in that, The mounting plate (2) is symmetrically fixed with a positioning block (7) on the top and behind the server body (3). The front end of the positioning plate (8) and the positioning block (7) are both L-shaped structures.