Intelligent data center energy linkage optimization device
By designing an intelligent data center energy linkage optimization device, using components such as scrapers and movable rods to achieve independent cleaning of dust, the problem of time-consuming and labor-intensive cleaning of dust in the existing technology is solved, and ventilation efficiency is improved and dust diffusion is reduced.
Patent Information
- Application Number
- CN202421640126.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-11
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2034-07-11
AI Technical Summary
The existing intelligent data center energy linkage optimization device requires manual and regular cleaning of dust accumulated from heat dissipation, which is time-consuming and labor-intensive and affects ventilation efficiency.
An intelligent data center energy linkage optimization device is designed, including equipment cabinets, equipment boxes, filters, scrapers and movable rods. The screw drives the scrapers to clean the dust on the surface of the filter, and avoids the diffusion of dust through the movable rod and connecting rod mechanism.
It realizes independent cleaning of dust to avoid affecting ventilation efficiency, while reducing the diffusion of dust during the cleaning process and reducing the impact of dust on the system.
Smart Images

Figure CN223007204U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of power equipment, and more specifically, particularly relates to an intelligent data center energy linkage optimization device. Background Technique
[0002] With the rapid development of the new power system, the operation structures of various links such as power generation and power consumption have changed. On the power generation side, new energy sources such as wind and light have become the main body of the newly added power generation; on the power consumption side, new business forms such as charging piles and energy storage have emerged continuously, and new technologies such as multi-source interaction and load regulation have continuously made breakthroughs. The large-scale access of new energy with high randomness and high flexibility puts higher requirements on the bearing capacity and intelligence level of the distribution network, posing challenges to the development of the power grid. The traditional power grid no longer meets the requirements of the new development, and it is urgent to carry out research on smart grid integration technologies to build a green, low-carbon, intelligent and efficient energy supply system. For the existing intelligent data center energy linkage optimization device, since a large number of electronic devices need active heat dissipation, it is necessary to manually clean the dust accumulated by heat dissipation regularly, which is time-consuming and laborious. Therefore, an intelligent data center energy linkage optimization device is proposed. Content of the Utility Model
[0003] Aiming at the deficiencies of the prior art, the utility model provides an intelligent data center energy linkage optimization device, which can clean dust independently, avoid the influence of dust on the ventilation efficiency, and at the same time, reduce the dust diffusion during the cleaning process and reduce the dust impact, so as to solve the problem that for the existing intelligent data center energy linkage optimization device, since a large number of electronic devices need active heat dissipation, it is necessary to manually clean the dust accumulated by heat dissipation regularly, which is time-consuming and laborious as mentioned in the above background technique.
[0004] To achieve the above object, the present utility model is realized through the following technical solutions: An intelligent data center energy linkage optimization device includes an equipment cabinet. Both sides of the equipment cabinet are embedded with equipment boxes. A plurality of first ventilation slots are opened on the opposite sides of the two equipment boxes. Filter nets are embedded on the opposite sides of the two equipment boxes. A first baffle is arranged inside the equipment box. A plurality of second ventilation slots are opened on the outer side of the first baffle. Two first optical axes are slidably connected to the side of the first baffle close to the filter net. Both ends of the first optical axes are fixedly connected to the inside of the equipment box. A scraper is arranged between the first baffle and the filter net. A second optical axis is slidably connected to the inside of the scraper. Both ends of the second optical axis are fixedly connected to the inside of the equipment box. A lead screw is also threadedly connected to the inside of the scraper. Both ends of the lead screw are rotatably connected to the inside of the equipment box. The inside of the scraper is also slidably connected to the outer sides of the two first optical axes. A movable rod is fixed to the bottom surface of the scraper. An inclined surface is opened at the lower end of the movable rod. A groove is opened in the upper part of one side of the movable rod. A first connecting rod, a second connecting rod and a second baffle are rotatably connected to the lower part of the inside of the equipment box. A transmission shaft is coaxially fixed between the rotating shafts of the first connecting rod and the second connecting rod. A first spring is fixed between the second connecting rod and the second baffle. A second spring is fixed between the second connecting rod and the equipment box.
[0005] As a preferred technical solution of the present utility model, the positions of the second ventilation slots correspond to the positions of the first ventilation slots.
[0006] As a preferred technical solution of the present utility model, the outer side of the scraper is in sliding contact with the outer side of the filter net.
[0007] As a preferred technical solution of the present utility model, the first connecting rod and the second connecting rod are parallel to each other.
[0008] As a preferred technical solution of the present utility model, the two first optical axes are parallel to the second optical axis.
[0009] As a preferred technical solution of the present utility model, the second optical axis is parallel to the lead screw.
[0010] As a preferred technical solution of the present utility model, the outer side of the first connecting rod is in sliding contact with the inclined surface and the outer side of the movable rod.
[0011] The present utility model provides an intelligent data center energy linkage optimization device, which has the following beneficial effects:
[0012] 1. The intelligent data center energy linkage optimization device can autonomously clean dust, avoid the influence of dust on ventilation efficiency, and at the same time, reduce the dust diffusion during the cleaning process, reduce the dust impact, and solve the problem that the existing intelligent data center energy linkage optimization device requires manual regular cleaning of the dust accumulated by heat dissipation due to the need for active heat dissipation of a large number of electronic devices, which is time-consuming and laborious.
[0013] 2. The intelligent data center energy linkage optimization device has a reasonable and compact structure design and good use effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is a schematic diagram of the overall structure of an intelligent data center energy linkage optimization device of the present utility model.
[0015] Figure 2 It is a schematic sectional view of an intelligent data center energy linkage optimization device of the present utility model.
[0016] Figure 3 It is an enlarged schematic view of part A in an intelligent data center energy linkage optimization device of the present utility model Figure 2 in the present utility model.
[0017] Figure 4 It is an enlarged schematic view of part B in an intelligent data center energy linkage optimization device of the present utility model Figure 3 in the present utility model.
[0018] In the figure: 1. Equipment cabinet; 2. Equipment box; 3. First ventilation slot; 4. Filter screen; 5. First baffle; 6. Second ventilation slot; 7. First optical axis; 8. Scraper; 9. Second optical axis; 10. Lead screw; 11. Movable rod; 12. Inclined plane; 13. Groove; 14. First connecting rod; 15. Second connecting rod; 16. Second baffle; 17. Transmission shaft; 18. First spring; 19. Second spring. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0019] The following further describes in detail the embodiments of the present utility model with reference to the drawings and embodiments. The following embodiments are used to illustrate the present utility model, but cannot be used to limit the scope of the present utility model.
[0020] In the description of the present utility model, unless otherwise specified, the meaning of "a plurality of" is two or more; the orientation or positional relationship indicated by terms such as "upper", "lower", "left", "right", "inner", "outer", "front end", "rear end", "head", "tail", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present utility model. In addition, terms such as "first", "second", "third", etc. are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.
[0021] In the description of the present utility model, it should be noted that, unless otherwise clearly specified and defined, the terms "connected" and "coupled" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.
[0022] Please refer to Figures 1 to 4, the present utility model provides a technical solution: an intelligent data center energy linkage optimization device, including an equipment cabinet 1. Equipment boxes 2 are embedded on both sides of the equipment cabinet 1. A plurality of first ventilation slots 3 are opened on the opposite sides of the two equipment boxes 2. Filter nets 4 are embedded on the opposite sides of the two equipment boxes 2. A first baffle 5 is arranged inside the equipment box 2. A plurality of second ventilation slots 6 are opened on the outer side of the first baffle 5. Two first optical axes 7 are slidably connected to the side of the first baffle 5 close to the filter net 4. Both ends of the first optical axis 7 are fixedly connected to the inside of the equipment box 2. A scraper 8 is arranged between the first baffle 5 and the filter net 4. A second optical axis 9 is slidably connected to the inside of the scraper 8. Both ends of the second optical axis 9 are fixedly connected to the inside of the equipment box 2. A lead screw 10 is also threadedly connected to the inside of the scraper 8. Both ends of the lead screw 10 are rotatably connected to the inside of the equipment box 2. The inside of the scraper 8 is also slidably connected to the outer sides of the two first optical axes 7. A movable rod 11 is fixed to the bottom surface of the scraper 8. An inclined surface 12 is opened at the lower end of the movable rod 11. A groove 13 is opened at the upper part of one side of the movable rod 11. A first connecting rod 14, a second connecting rod 15 and a second baffle 16 are rotatably connected to the lower part inside the equipment box 2. A transmission shaft 17 is coaxially fixed between the rotating shafts of the first connecting rod 14 and the second connecting rod 15. A first spring 18 is fixed between the second connecting rod 15 and the second baffle 16. A second spring 19 is fixed between the second connecting rod 15 and the equipment box 2. The position of the second ventilation slot 6 corresponds to the position of the first ventilation slot 3. The outer side of the scraper 8 is in sliding contact with the outer side of the filter net 4. The first connecting rod 14 and the second connecting rod 15 are parallel. The two first optical axes 7 are parallel to the second optical axis 9. The second optical axis 9 is parallel to the lead screw 10. The outer side of the first connecting rod 14 is in sliding contact with the inclined surface 12 and the outer side of the movable rod 11;
[0023] The external motor drives the lead screw 10 to rotate. The lead screw 10 drives the scraper 8 to move downward along the first optical axis 7 and the second optical axis 9. The surface of the filter screen 4 is cleaned by the scraper 8. At the same time, the scraper 8 plays a role in supporting the first baffle 5. As the scraper 8 moves downward, under the action of gravity, the first baffle 5 moves downward along the second optical axis 9, so that the second ventilation groove 6 on the first baffle 5 is staggered from the first ventilation groove 3, avoiding the dust lifted by the scraper 8 from spreading into the external air through the first ventilation groove 3, causing air pollution and then being sucked back onto the filter screen 4 again. At the same time, the scraper 8 drives the movable rod 11 to move downward. The lower end of the movable rod 11 contacts and pushes the first connecting rod 14 to rotate downward. The first connecting rod 14 drives the second connecting rod 15 to rotate downward through the transmission shaft 17. The second connecting rod 15 pushes the second baffle 16 to rotate downward through the first spring 18, so that the dust falls into the bottom of the equipment box 2 through the second baffle 16. As the scraper 8 drives the movable rod 11 to continue to move downward, the first connecting rod 14 moves along the movable rod 11 and falls into the groove 13. Under the pulling of the second spring 19, the first connecting rod 14 returns to its original position, so that the second connecting rod 15 and the second baffle 16 return to their original positions to block the bottom dust and prevent the dust from spreading outward. Subsequently, the external motor reverses, so that the scraper 8 returns to its original position. The upward rotation trajectory of the second baffle 16 is blocked, so that the second baffle 16 is in a state of blocking the bottom dust. At the same time, the scraper 8 pushes the first baffle 5 back to its original position, so that the second ventilation groove 6 on the first baffle 5 is communicated with the first ventilation groove 3, thus reopening the ventilation. Through the above process, the dust can be cleaned autonomously, avoiding the influence of dust on the ventilation efficiency. At the same time, the dust diffusion during the cleaning process is reduced, and the influence of dust is reduced, solving the problem that the existing intelligent data center energy linkage optimization device requires manual cleaning of the dust accumulated by heat dissipation regularly, which is time-consuming and laborious because a large number of electronic devices need active heat dissipation.
[0024] Specific usage and functions of this embodiment: In this utility model, an external motor drives the screw rod 10 to rotate. The screw rod 10 drives the scraper 8 to move downward along the first optical axis 7 and the second optical axis 9. The surface of the filter screen 4 is cleaned by the scraper 8. At the same time, the scraper 8 serves to support the first baffle 5. As the scraper 8 moves downward, under the action of gravity, the first baffle 5 moves downward along the second optical axis 9, causing the second ventilation slot 6 on the first baffle 5 to be staggered from the first ventilation slot 3, avoiding the dust lifted by the scraper 8 from being scattered into the external air through the first ventilation slot 3, causing air pollution and then being sucked back onto the filter screen 4 again. At the same time, the scraper 8 drives the movable rod 11 to move downward. The lower end of the movable rod 11 contacts and pushes the first connecting rod 14 to rotate downward. The first connecting rod 14 drives the second connecting rod 15 to rotate downward through the transmission shaft 17. The second connecting rod 15 pushes the second baffle 16 to rotate downward through the first spring 18, causing the dust to fall into the bottom of the equipment box 2 through the second baffle 16. As the scraper 8 drives the movable rod 11 to continue moving downward, the first connecting rod 14 moves along the movable rod 11 and falls into the groove 13. Under the pulling of the second spring 19, the first connecting rod 14 returns to its original position, causing the second connecting rod 15 and the second baffle 16 to return to their original positions to block the bottom dust and prevent the dust from spreading outward. Subsequently, the external motor reverses, causing the scraper 8 to return to its original position. The upward rotation trajectory of the second baffle 16 is blocked, causing the second baffle 16 to be in a state of blocking the bottom dust. At the same time, the scraper 8 pushes the first baffle 5 back to its original position, causing the second ventilation slot 6 on the first baffle 5 to communicate with the first ventilation slot 3, thus reopening the ventilation.
[0025] The above is only the preferred specific embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present utility model, according to the technical solution and the inventive concept of the present utility model, making equivalent replacements or changes, should be covered within the protection scope of the present utility model.
Claims
1. An intelligent data center energy linkage optimization device, comprising an equipment cabinet (1), characterized in that: Equipment boxes (2) are embedded on both sides of the equipment cabinet (1), and a plurality of first ventilation slots (3) are provided on opposite sides of the two equipment boxes (2). A filter screen (4) is embedded on opposite sides of the two equipment boxes (2). A first baffle (5) is provided on the inner side of the equipment box (2), and a plurality of second ventilation slots (6) are provided on the outer side of the first baffle (5). Two first optical axes (7) are slidably connected to the side of the first baffle (5) close to the filter screen (4), and both ends of the first optical axis (7) are fixedly connected to the inner side of the equipment box (2). A scraper (8) is provided between the first baffle (5) and the filter screen (4), and a second optical axis (9) is slidably connected to the interior of the scraper (8), and both ends of the second optical axis (9) are fixedly connected to the inner side of the equipment box (2). The interior of the scraper (8) is also threadedly connected to the first optical axis (7). A screw rod (10) is provided, both ends of which are rotatably connected to the inner side of the device box (2); the interior of the scraper (8) is also slidably connected to the outer sides of the two first optical axes (7); a movable rod (11) is fixed to the bottom surface of the scraper (8); a slope (12) is provided at the lower end of the movable rod (11); a groove (13) is provided at the upper part of one side of the movable rod (11); a first connecting rod (14), a second connecting rod (15) and a second baffle (16) are rotatably connected to the lower inner side of the device box (2); a transmission shaft (17) is coaxially fixed between the rotating shaft of the first connecting rod (14) and the rotating shaft of the second connecting rod (15); a first spring (18) is fixed between the second connecting rod (15) and the second baffle (16); and a second spring (19) is fixed between the second connecting rod (15) and the device box (2).
2. According to claim 1, an intelligent data center energy linkage optimization device is characterized by: The position of the second ventilation slot (6) corresponds to the position of the first ventilation slot (3).
3. According to claim 1, the intelligent data center energy linkage optimization device is characterized by: The outer side of the scraper (8) is in sliding contact with the outer side of the filter screen (4).
4. According to claim 1, the intelligent data center energy linkage optimization device is characterized by: The first connecting rod (14) and the second connecting rod (15) are parallel.
5. According to claim 1, the intelligent data center energy linkage optimization device is characterized by: The two first optical axes (7) are parallel to the second optical axis (9).
6. The intelligent data center energy linkage optimization device according to claim 1 is characterized by: The second optical axis (9) is parallel to the lead screw (10).
7. The intelligent data center energy linkage optimization device according to claim 1 is characterized by: The outer side of the first connecting rod (14) is in sliding contact with the outer side of the inclined surface (12) and the movable rod (11).