一种具备高效散热风道的节能服务器
By incorporating ventilation chambers and air ducts within the server chassis, combined with sliding heat dissipation fins, the low heat dissipation efficiency and hot air recirculation issues of blade servers are resolved, achieving efficient and stable heat dissipation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN JIAJING TECHNOLOGY CO LTD
- Filing Date
- 2025-05-30
- Publication Date
- 2026-07-17
AI Technical Summary
Existing blade servers suffer from low heat dissipation efficiency, poor airflow organization, susceptibility to localized high temperatures, and severe hot air recirculation, leading to unstable operation and energy waste.
The server chassis features symmetrical ventilation chambers at the top and bottom, and a stable airflow channel is formed through the design of air guide grooves and guide rods. Combined with sliding heat dissipation fins and an elastic reset mechanism, this ensures that cooling air evenly covers key heat-generating components and prevents hot air backflow.
It achieves efficient and uniform heat dissipation, improves server stability and energy efficiency, and reduces system failure risk and energy consumption.
Smart Images

Figure CN224519227U_ABST
Abstract
Claims
1. An energy-saving server with a high-efficiency heat dissipation airflow, comprising a server chassis (1), characterized in that: The server chassis (1) has two symmetrically arranged ventilation chambers (2) inside, one above the other. Multiple ventilation slots (3) are opened opposite each other on the two ventilation chambers (2). An air intake hood (4) is installed inside the lower ventilation chamber (2), and multiple first fans (5) are embedded in the front of the air intake hood (4). An air exhaust hood (501) is installed inside the upper ventilation chamber (2), and a second fan (502) is embedded in the rear of the air exhaust hood (501). A partition plate (6) is provided between the two ventilation chambers (2). The partition plate (6) divides the internal space into upper and lower storage spaces. Each storage space has multiple storage cells. There are air guide channels (7) between adjacent storage cells. The air guide channels (7) of the upper and lower layers are connected to the two ventilation chambers (2) above and below through the corresponding ventilation channels (3). The blade server host (8) is installed in the corresponding storage cell. There are multiple CPU components (9) on its side. Multiple square openings are opened in the middle of the air guide channel (7). The square openings are arranged facing the CPU components (9).
2. The energy-saving server with high-efficiency heat dissipation air duct according to claim 1, characterized in that: The internal air duct of the server chassis (1) is designed for unidirectional airflow from bottom to top.
3. The energy-saving server with high-efficiency heat dissipation air duct according to claim 2, characterized in that: The two ventilation chambers (2) are provided with protrusion structures on the left and right sides respectively, and the air inlet hood (4) and the air outlet hood (501) are provided with groove structures that match the protrusion structures on the left and right sides respectively.
4. The energy-saving server with high-efficiency heat-dissipation air duct according to claim 3, wherein: Each of the air guide grooves (7) has multiple guide rods (10) fixedly connected to the left and right side walls inside. Heat dissipation fins (11) are slidably arranged between the multiple adjacent guide rods (10). The heat dissipation fins (11) can slide along the axial direction on the guide rods (10) and extend into the storage compartment through the square opening in the middle of the air guide groove (7) so as to form a close contact with the CPU component (9) on the blade server host (8). Each guide rod (10) is fitted with an elastic element (12). One end of the elastic element (12) is connected to the heat dissipation fin (11), and the other end is fixedly connected to the guide rod (10).
5. An energy-saving server with a high-efficiency heat dissipation airflow as described in claim 4, characterized in that: Dustproof plates (14) are provided on the front end face of the air intake hood (4) and the rear end face of the air outlet hood (501). The dustproof plates (14) are installed on the surface of the air intake hood (4) at the four corners by fixing bolts (13).
6. The energy-saving server with high-efficiency heat-dissipation air duct according to claim 5, wherein: A sealing plate (15) is provided inside the air guide groove (7).