Data center energy-saving matching device
By introducing lifting mechanisms and vacuuming mechanisms into the data center, and dynamically adjusting the exhaust and air inlet troughs, the problem of increased energy consumption in the prior art is solved, and efficient heat dissipation and energy saving effects are achieved.
Patent Information
- Application Number
- CN202422433606.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-09
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-10-09
AI Technical Summary
When improving the heat dissipation effect, existing data centers need to improve the cooling capacity of air-conditioning equipment or fan rotation efficiency, resulting in increased energy consumption and lack of energy-saving effects.
By designing lifting mechanisms and vacuuming mechanisms in the energy-saving supporting devices of the data center, dynamically adjusting the area of the exhaust baffle and air inlet trough, improving airflow management, enhancing airflow circulation, avoiding hot air retention, and reducing cooling energy consumption.
Improve heat dissipation without increasing energy consumption, achieve more efficient cooling performance and energy-saving effects, accurately control airflow, and avoid energy waste under low load conditions.
Smart Images

Figure CN223274398U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of data centers, in particular to an energy-saving supporting device for a data center. Background Art
[0002] A data center is a global collaborative network of specific equipment used to transmit, accelerate, display, calculate, and store data information on the Internet infrastructure. A data center includes computer servers, storage systems, and the infrastructure required for communication technology.
[0003] When using servers in a data center, a matching heat dissipation structure is required to continuously dissipate heat for the server. However, when the heat dissipation effect needs to be improved in the current data center service area, the only way to improve the heat dissipation effect inside the cabinet is to increase the cooling capacity of the air-conditioning equipment or to increase the rotation efficiency of the cooling fan. This also results in higher energy consumption and poor energy-saving effect. Utility Model Content
[0004] The purpose of the present invention is to provide an energy-saving supporting device for a data center, which has the advantage of being able to simultaneously expand the air intake area and exhaust area of a cabinet, so that the data center server can further improve the heat dissipation effect without increasing the fan rotation speed.
[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: a data center energy-saving supporting device, comprising a cabinet body, a lifting mechanism is provided inside the cabinet body, and dust collection mechanisms are provided on both sides of the cabinet body surface;
[0006] An exhaust slot is provided on the top of the cabinet body, an exhaust baffle is provided above the exhaust slot, air inlet slots are provided on both sides of the surface of the cabinet body, a support plate is fixed above the inner wall of the cabinet body, an exhaust fan is fixed on the surface of the support plate, a mounting frame is fixed to the bottom of the exhaust baffle, a first filter is fixed on the inner wall of the mounting frame, the surface of the mounting frame is slidably connected to the inner wall of the cabinet body, a connecting frame is fixed on the surface of the exhaust baffle, the connecting frame is slidably connected to the surface of the cabinet body, an air inlet baffle is fixed on the surface of the connecting frame, a second filter is fixed on the inner wall of the air inlet slot, a dust collection shell is fixed on the surface of the connecting frame, a brush plate is fixed on the top of the dust collection shell, a brush on the surface of the brush plate is slidably connected to the surface of the second filter, a temperature sensor is fixed on the inner wall of the cabinet body, and a controller is fixed on the surface of the cabinet body.
[0007] As a preferred energy-saving supporting device for a data center of the present invention, the lifting mechanism includes two side panels, the side panels are fixed to the top of the support plate, a motor is fixed to the surface of one side panel, the motor output shaft passes through the side panel and is fixed with a bidirectional screw rod, one end of the bidirectional screw rod is rotatably connected to the surface of one side panel, two sliders are threadedly connected to the surface of the bidirectional screw rod, a push plate is hinged to the top of the slider, and the top of the push plate is hinged to the bottom of the exhaust baffle.
[0008] As a preferred energy-saving supporting device for a data center of the present invention, the dust collection mechanism includes an exhaust shell and an exhaust fan, both of which are fixed to the surface of the cabinet body, the exhaust end of the exhaust fan is connected to the exhaust shell, the top of the exhaust shell is connected to a bellows, the top of the bellows is connected to an air suction pipe, and the air suction pipe is connected to the dust collection shell.
[0009] As a preferred energy-saving supporting device for a data center of the present invention, sleeves are fixed on both left and right sides of the surface of the cabinet body, and the connecting frame slides through the sleeves.
[0010] As a preferred energy-saving supporting device for a data center of the present invention, a guide rod is fixed to the surface of the side panel, the slider passes through the guide rod, and the slider is slidably connected to the surface of the guide rod.
[0011] As a preferred energy-saving supporting device for a data center of the present invention, the inner wall of the exhaust shell is detachably connected to an interception filter, and the surface of the exhaust shell is hinged with a closed door.
[0012] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0013] In the present invention, the exhaust baffle can be moved upward, so that the top of the cabinet body can have a larger heat dissipation space, and the extra space can help guide the hot air to be discharged more effectively by the exhaust fan, avoiding the hot air from being trapped on the top of the cabinet body, thereby achieving the goal of not increasing the power of the exhaust fan, but improving the heat dissipation effect by improving air flow management. This method can improve the cooling performance without increasing energy consumption, thereby improving energy saving effects. During the upward movement of the exhaust baffle, the connecting frame will drive the air inlet baffle and the dust collection shell to move upward together. When the air inlet baffle moves, it can gradually expand the air inlet area of the air inlet trough. By expanding the area of the air inlet trough below, more cold air can be introduced into the interior of the cabinet body, thereby enhancing the air flow circulation in the entire cabinet body. Moreover, the effect of this dynamic adjustment of the air inlet trough can more accurately control the airflow inside the cabinet body, avoiding the introduction of too much cold air when a large amount of cooling is not needed, and preventing more energy from being wasted inside the cabinet body under low load conditions. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1This is a schematic diagram of the three-dimensional structure of the utility model;
[0015] Figure 2 It is a schematic diagram of the cross-sectional structure of the utility model;
[0016] Figure 3 It is a schematic diagram of the partial cross-sectional structure of the utility model;
[0017] Figure 4 For this utility model Figure 2 A in the figure shows the enlarged structural diagram;
[0018] Figure 5 This is a schematic structural diagram of the lifting mechanism in the present utility model;
[0019] Figure 6 It is a schematic cross-sectional structure diagram of the dust collection mechanism in the present utility model.
[0020] In the figure: 1. Cabinet body; 2. Lifting mechanism; 201. Side panel; 202. Motor; 203. Bidirectional screw; 204. Slider; 205. Push plate; 206. Guide rod; 3. Dust collection mechanism; 301. Exhaust shell; 302. Exhaust fan; 303. Bellows; 304. Suction duct; 305. Intercepting filter; 306. Closed door; 4. Exhaust baffle; 5. Air inlet slot; 6. Support plate; 7. Exhaust fan; 8. Mounting frame; 9. First filter; 10. Connecting frame; 11. Housing; 12. Air inlet baffle; 13. Second filter; 14. Dust collection shell; 15. Brush plate; 16. Temperature sensor; 17. Controller. DETAILED DESCRIPTION
[0021] See also Figure 1-6 , a data center energy-saving supporting device, including a cabinet body 1, a lifting mechanism 2 is provided inside the cabinet body 1, and dust collection mechanisms 3 are provided on both sides of the cabinet body 1;
[0022] The lifting mechanism 2 is used to adjust the height of the exhaust baffle 4 , and the dust collection mechanism 3 is used to remove dust from the second filter screen 13 .
[0023] An exhaust slot is provided on the top of the cabinet body 1, an exhaust baffle 4 is provided above the exhaust slot, and air inlet slots 5 are provided on both sides of the surface of the cabinet body 1. A support plate 6 is fixed above the inner wall of the cabinet body 1, and an exhaust fan 7 is fixed on the surface of the support plate 6. A mounting frame 8 is fixed to the bottom of the exhaust baffle 4, and a first filter 9 is fixed on the inner wall of the mounting frame 8. The surface of the mounting frame 8 is slidably connected to the inner wall of the cabinet body 1, a connecting frame 10 is fixed to the surface of the exhaust baffle 4, and the connecting frame 10 is slidably connected to the surface of the cabinet body 1, an air inlet baffle 12 is fixed on the surface of the connecting frame 10, a second filter 13 is fixed to the inner wall of the air inlet slot 5, a dust collection shell 14 is fixed on the surface of the dust collection shell 14, a brush plate 15 is fixed on the top of the dust collection shell 14, and a brush on the surface of the brush plate 15 is slidably connected to the surface of the second filter 13, a temperature sensor 16 is fixed to the inner wall of the cabinet body 1, and a controller 17 is fixed to the surface of the cabinet body 1;
[0024] Furthermore, the lifting mechanism 2 includes two side plates 201, which are fixed to the top of the support plate 6. A motor 202 is fixed to the surface of one side plate 201. The output shaft of the motor 202 passes through the side plate 201 and is fixed to a bidirectional screw rod 203. One end of the bidirectional screw rod 203 is rotatably connected to the surface of one side plate 201. Two sliders 204 are threadedly connected to the surface of the bidirectional screw rod 203. A push plate 205 is hinged to the top of the slider 204. The top of the push plate 205 is hinged to the bottom of the exhaust baffle 4.
[0025] When the motor 202 is started, the bidirectional screw rod 203 rotates, so that the sliders 204 on both sides can be affected by the threads and start to move in opposite directions, thereby rotating the push plate 205, so that the push plate 205 can push up the exhaust baffle 4 or pull down the exhaust baffle 4, thereby achieving the effect of changing the height position of the exhaust baffle 4;
[0026] The temperature sensor 16 can monitor the internal temperature of the cabinet body 1. When the internal temperature of the cabinet body 1 is higher than the threshold value, the temperature sensor 16 can send a signal to the controller 17, so that the controller 17 can transmit a signal to the internal components of the lifting mechanism 2 and the dust collection mechanism 3, so that the lifting mechanism 2 can drive the exhaust baffle 4 and the installation frame 8 to move upward. During the movement of the installation frame 8, its surface will contact the inner wall of the cabinet body 1, so that the exhaust baffle 4 can obtain a guiding effect. By increasing the height of the exhaust baffle 4, the top of the cabinet body 1 can have a larger heat dissipation space, and the extra space can help guide the hot air to be discharged more effectively by the exhaust fan 7, avoiding the hot air from being retained at the top of the cabinet body 1, thereby achieving the purpose of not increasing the power of the exhaust fan 7, but improving the heat dissipation effect by improving the airflow management. This method can improve the cooling performance without increasing energy consumption. To improve the energy-saving effect, during the upward movement of the exhaust baffle 4, the connecting frame 10 will drive the air inlet baffle 12 and the dust collection shell 14 to move upward. When the air inlet baffle 12 moves, it can gradually expand the air inlet area of the air inlet slot 5. By expanding the area of the air inlet slot 5 below, more cold air can be introduced into the interior of the cabinet body 1, thereby enhancing the air flow circulation in the entire cabinet body 1, and the effect of this dynamic adjustment of the air inlet slot 5 can more accurately control the airflow inside the cabinet body 1, avoiding the introduction of too much cold air when a large amount of cooling is not required, and preventing the cabinet body 1 from wasting more energy under low load conditions. During the upward movement of the dust collection shell 14, the brush plate 15 can automatically clean the second filter 13, and cooperate with the dust collection mechanism 3 to allow the dust on the surface of the second filter 13 to be sucked away by the dust collection shell 14, thereby ensuring that the second filter 13 will not be blocked by dust and affect the air intake effect.
[0027] Furthermore, the dust collection mechanism 3 includes an exhaust housing 301 and an exhaust fan 302. The exhaust housing 301 and the exhaust fan 302 are both fixed to the surface of the cabinet body 1. The exhaust end of the exhaust fan 302 is connected to the exhaust housing 301. The top of the exhaust housing 301 is connected to a bellows 303. The top of the bellows 303 is connected to an air suction pipe 304. The air suction pipe 304 is connected to the dust collection housing 14.
[0028] When the exhaust fan 302 is working, it will extract the air inside the exhaust shell 301, so that the interior of the exhaust shell 301 can be in a negative pressure state, so that the dust collection shell 14 can absorb the dust scraped off by the brush plate 15, and transport it to the interior of the exhaust shell 301 through the suction pipe 304 and the bellows 303. At the same time, the bellows 303 can be extended and retracted to ensure that the dust collection shell 14 can move up and down normally.
[0029] Furthermore, casings 11 are fixed on both sides of the cabinet body 1, and the connecting frame 10 slides through the casings 11;
[0030] The housing 11 can limit the moving direction of the connecting frame 10 so that the connecting frame 10 can only move up and down.
[0031] Furthermore, a guide rod 206 is fixed to the surface of the side plate 201, and the slider 204 passes through the guide rod 206, and the slider 204 is slidably connected to the surface of the guide rod 206;
[0032] The slider 204 can slide on the surface of the guide rod 206 , thereby improving the stability of the slider 204 during movement.
[0033] Furthermore, an interception filter 305 is detachably connected to the inner wall of the exhaust housing 301, and a closed door 306 is hingedly connected to the surface of the exhaust housing 301;
[0034] This design allows the operator to easily clean the surface of the intercepting filter 305 after opening the closed door 306 .
[0035] The controller 17 is electrically connected to the temperature sensor 16, the exhaust fan 302, the exhaust fan 7 and the motor 202;
[0036] This enables the controller 17 to receive signals and operate multiple devices.
[0037] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A data center energy-saving supporting device, comprising a cabinet body (1), characterized in that: A lifting mechanism (2) is provided inside the cabinet body (1), and dust collection mechanisms (3) are provided on both left and right sides of the surface of the cabinet body (1); The cabinet body (1) is provided with an exhaust slot on the top, an exhaust baffle (4) is provided above the exhaust slot, air inlet slots (5) are provided on both sides of the cabinet body (1) surface, a support plate (6) is fixed above the inner wall of the cabinet body (1), an exhaust fan (7) is fixed on the surface of the support plate (6), a mounting frame (8) is fixed at the bottom of the exhaust baffle (4), a first filter (9) is fixed on the inner wall of the mounting frame (8), the surface of the mounting frame (8) is slidably connected to the inner wall of the cabinet body (1), and a connecting frame (10) is fixed on the surface of the exhaust baffle (4) The connecting frame (10) is slidably connected to the surface of the cabinet body (1), an air inlet baffle (12) is fixed on the surface of the connecting frame (10), a second filter (13) is fixed on the inner wall of the air inlet slot (5), a dust collection shell (14) is fixed on the surface of the connecting frame (10), a brush plate (15) is fixed on the top of the dust collection shell (14), a brush on the surface of the brush plate (15) is slidably connected to the surface of the second filter (13), a temperature sensor (16) is fixed on the inner wall of the cabinet body (1), and a controller (17) is fixed on the surface of the cabinet body (1).
2. The data center energy-saving device according to claim 1, characterized in that: The lifting mechanism (2) includes two side plates (201), the side plates (201) are fixed to the top of the support plate (6), a motor (202) is fixed to the surface of one side plate (201), the output shaft of the motor (202) passes through the side plate (201) and is fixed with a bidirectional screw rod (203), one end of the bidirectional screw rod (203) is rotatably connected to the surface of one side plate (201), the surface of the bidirectional screw rod (203) is threadedly connected to two sliders (204), the top of the slider (204) is hinged to a push plate (205), and the top of the push plate (205) is hinged to the bottom of the exhaust baffle (4).
3. The data center energy-saving device according to claim 2, characterized in that: The dust collection mechanism (3) comprises an exhaust housing (301) and an exhaust fan (302); the exhaust housing (301) and the exhaust fan (302) are both fixed to the surface of the cabinet body (1); the exhaust end of the exhaust fan (302) is connected to the exhaust housing (301); the top of the exhaust housing (301) is connected to a bellows (303); the top of the bellows (303) is connected to an air suction pipe (304); and the air suction pipe (304) is connected to the dust collection housing (14).
4. The data center energy-saving device according to claim 1, characterized in that: Shells (11) are fixed on both left and right sides of the surface of the cabinet body (1), and the connecting frame (10) slides through the shells (11).
5. The data center energy-saving device according to claim 2, characterized in that: A guide rod (206) is fixed on the surface of the side plate (201), the slider (204) passes through the guide rod (206), and the slider (204) is slidably connected to the surface of the guide rod (206).
6. The data center energy-saving device according to claim 3, characterized in that: The inner wall of the ventilation shell (301) is detachably connected to an interception filter (305), and the surface of the ventilation shell (301) is hinged with a closed door (306).