Efficient machine room energy-saving control equipment
By controlling and transmitting the valve plate to rotate, the fin spacing is adjusted, thus solving the energy loss problem of existing computer room control equipment and achieving efficient computer room cooling and energy-saving effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- ZHEJIANG LANBAO TECHNOLOGY CO LTD
- Filing Date
- 2024-10-14
- Publication Date
- 2026-04-14
AI Technical Summary
Existing computer room control equipment cannot effectively cool down the room and cannot be adjusted according to actual usage, resulting in increased energy loss and reduced heat exchange efficiency of the control equipment.
By employing a control mechanism and a transmission mechanism, the valve plate in the intake pipe is driven to rotate relative to each other, adjusting the spacing of the fins to adapt to changes in flow rate and improving heat exchange efficiency.
It enables adaptive adjustment of intake airflow and fin spacing based on flow rate, thereby improving the energy efficiency and heat exchange efficiency of the computer room.
Smart Images

Figure CN121855286A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of computer room control equipment technology, and specifically to a high-efficiency, energy-saving control device for computer rooms. Background Technology
[0002] A computer room, also known as a data center, provides a suitable environment for the normal operation of hardware equipment. It is the location where hardware equipment performs data collection, transfer, integration, optimization, sharing, and security. It is the core area for information technology operations, data storage, and processing, ensuring the uninterrupted operation of information technology in enterprises, institutions, or schools.
[0003] In order to improve the efficiency of the computer room and the stability of the operation of various devices inside the computer room, control equipment is needed to regulate the working temperature inside the computer room in real time.
[0004] Existing data center control equipment cannot effectively cool the absorbed heat when recovering heat from the data center. As a result, the absorbed heat needs to be exhausted to the outside through exhaust fans, which increases the energy loss of the data center to some extent. Although some data centers are equipped with control equipment that can circulate and cool the absorbed heat, such control equipment cannot adjust its operation according to actual usage. Therefore, it not only reduces the heat exchange efficiency of the control equipment, but also increases energy loss to some extent, thus affecting the normal use of high-efficiency data centers. Summary of the Invention
[0005] The purpose of this invention is to provide a high-efficiency energy-saving control device for computer rooms to overcome the above-mentioned shortcomings in the prior art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a high-efficiency data center energy-saving control device, comprising a body, an installation frame fixedly installed inside the body, an air supply pipe fixedly installed inside the installation frame, and a plurality of finned components slidably disposed on the air supply pipe; a control mechanism for adjusting the flow rate is provided on the air supply pipe; and an adjustment mechanism for adjusting the spacing of the plurality of finned components is provided on the installation frame.
[0007] Furthermore, an air inlet pipe and an air outlet pipe are connected to the gas transmission pipeline, and the air inlet pipe and the air outlet pipe are fixedly installed on the machine body.
[0008] Furthermore, the control mechanism includes a rotating shaft rotatably mounted on the intake pipe, and a first valve plate and a second valve plate are mounted on the rotating shaft.
[0009] Furthermore, a fixed frame is fixedly installed on the intake pipe, and a driving component is provided on the fixed frame. The driving component is slidably disposed on the fixed frame under the drive of a driving source. The first valve plate and the second valve plate are slidably driven by the driving component so that the first valve plate and the second valve plate are rotatably disposed relative to each other in the intake pipe.
[0010] Furthermore, the drive source includes a telescopic cylinder fixedly mounted on the fixed frame, and the output end of the telescopic cylinder is fixedly mounted on the drive component.
[0011] Furthermore, the driving component includes two actuating parts, each with an actuating groove on its side that is close to each other; a first rotating plate is fixedly mounted on the top surface of the rotating shaft, and a first lever is fixedly mounted on the first rotating plate; a second rotating plate is sleeved on the circumferential surface of the rotating shaft, and a second lever is fixedly mounted on the second rotating plate; the two actuating grooves respectively cooperate with the first lever and the second lever.
[0012] Furthermore, the adjustment mechanism includes a lead screw rotatably mounted on the mounting frame, which receives sliding drive from a drive component through a transmission mechanism to rotate the lead screw. The lead screw has two threaded ends with opposite directions of rotation, and a drive block is threadedly connected to each of the two threaded ends. A scissor-type telescopic component is provided on each of the two drive blocks, and multiple clamping components are fixedly mounted on the scissor-type telescopic component. The fin component is snapped onto the clamping component.
[0013] Furthermore, a guide frame is fixedly installed on the mounting frame, and the two drive blocks are slidably disposed within the guide frame.
[0014] Furthermore, the transmission mechanism includes a connector fixedly mounted on the drive member, a rack fixedly mounted on the top surface of the connector, and a gear meshing with the rack fixedly mounted on the circumferential surface of the lead screw.
[0015] In the above technical solution, the present invention provides a high-efficiency data center energy-saving control device, which has the following beneficial effects: By using a control mechanism to drive the first and second valve plates in the intake pipe to rotate relative to each other, the flow rate in the intake pipe can be adaptively adjusted as needed. By using a transmission mechanism and a control mechanism, the spacing of multiple fins on the gas delivery pipe can be adjusted according to the flow rate when the first and second valve plates rotate relative to each other, thereby improving heat exchange efficiency and greatly improving energy saving effect. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.
[0017] Figure 1 This is a schematic diagram of the overall structure provided for an embodiment of the present invention; Figure 2 Provided for embodiments of the present invention Figure 1 A schematic diagram of a partial structure; Figure 3 Provided for embodiments of the present invention Figure 1 Internal structure diagram; Figure 4 Provided for embodiments of the present invention Figure 3 A schematic diagram of the back structure; Figure 5 Provided for embodiments of the present invention Figure 3 Partial disassembly diagram; Figure 6 Provided for embodiments of the present invention Figure 5 Partial disassembly diagram; Figure 7 Provided for embodiments of the present invention Figure 6 Schematic diagram of the structure at point A; Figure 8 Provided for embodiments of the present invention Figure 6 Schematic diagram of the structure at point B; Figure 9 Provided for embodiments of the present invention Figure 4 Partial disassembly diagram; Figure 10 This is a schematic diagram of the control mechanism provided in an embodiment of the present invention; Figure 11 Provided for embodiments of the present invention Figure 10 Partial disassembly diagram; Figure 12 Provided for embodiments of the present invention Figure 10 Schematic diagram of the structure at point C; Figure 13 Provided for embodiments of the present invention Figure 11 Schematic diagram of the structure of the first and second valve plates in the middle; Figure 14 Provided for embodiments of the present invention Figure 13 A schematic diagram of the back structure.
[0018] Explanation of reference numerals in the attached figures: 1. Body; 2. Mounting frame; 3. Air supply pipe; 31. Inlet pipe; 32. Outlet pipe; 33. Fin component; 4. Control mechanism; 401. Fixed frame; 402. Telescopic cylinder; 403. Drive component; 4031. Actuating part; 4032. Actuating groove; 4033. Guide part; 404. Elastic component; 405. Rotating shaft; 406. First valve plate; 407. Second valve plate; 408. First rotating plate; 409. First lever; 410. Second rotating plate; 411. Second lever; 5. Transmission mechanism; 51. Connecting component; 52. Rack; 53. Gear; 54. First pulley; 55. Second pulley; 56. Transmission belt; 6. Adjustment mechanism; 61. Guide frame; 62. Lead screw; 63. Drive block; 64. Scissor-type telescopic component; 65. Clamping component. Detailed Implementation
[0019] To enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.
[0020] Please see Figure 1-14 The present invention provides a high-efficiency data center energy-saving control device, comprising a body 1, an installation frame 2 fixedly installed inside the body 1, an air supply pipe 3 fixedly installed inside the installation frame 2, a plurality of finned components 33 slidably arranged on the air supply pipe 3, a control mechanism 4 for adjusting the flow rate on the air supply pipe 3, and an adjustment mechanism 6 for adjusting the spacing of the plurality of finned components 33 on the installation frame 2.
[0021] In the above technical solution, by using the control mechanism 4 to drive the first valve plate 406 and the second valve plate 407 in the intake pipe 31 to rotate relative to each other, the flow rate in the intake pipe 31 can be adaptively adjusted as needed. By using the transmission mechanism 5 and the adjustment mechanism 6, when the first valve plate 406 and the second valve plate 407 rotate relative to each other, the spacing of the multiple fins 33 on the gas pipeline 3 can be adjusted according to the flow rate, thereby improving the heat exchange efficiency and greatly improving the energy-saving effect.
[0022] As a preferred technical solution in this embodiment, an air inlet pipe 31 and an air outlet pipe 32 are connected to the air supply pipe 3, and the air inlet pipe 31 and the air outlet pipe 32 are fixedly installed on the machine body 1.
[0023] Furthermore, the control mechanism 4 includes a rotating shaft 405 rotatably mounted on the intake pipe 31, and a first valve plate 406 and a second valve plate 407 are mounted on the rotating shaft 405.
[0024] In the above technical solution, by rotating the first valve plate 406 and the second valve plate 407 in the intake pipe 31, the flow rate in the intake pipe 31 can be adjusted.
[0025] As a preferred technical solution in this embodiment, a fixed frame 401 is fixedly installed on the intake pipe 31, and a driving member 403 is provided on the fixed frame 401. The driving member 403 is driven by a driving source and is slidably disposed on the fixed frame 401. The first valve plate 406 and the second valve plate 407 are driven by the sliding drive of the driving member 403 so that the first valve plate 406 and the second valve plate 407 are rotatably disposed in the intake pipe 31.
[0026] Furthermore, the driving source includes a telescopic cylinder 402 fixedly mounted on the fixed frame 401, and the output end of the telescopic cylinder 402 is fixedly mounted on the driving component 403.
[0027] Furthermore, the driving component 403 includes two actuating parts 4031, each of which has an actuating groove 4032 on one side that is close to each other; a first rotating plate 408 is fixedly installed on the top surface of the rotating shaft 405, and a first lever 409 is fixedly installed on the first rotating plate 408; a second rotating plate 410 is sleeved on the circumferential surface of the rotating shaft 405, and a second lever 411 is fixedly installed on the second rotating plate 410; the two actuating grooves 4032 respectively cooperate with the first lever 409 and the second lever 411.
[0028] In the above technical solution, by utilizing the telescopic cylinder 402 on the fixed frame 401, the driving component 403 on the fixed frame 401 slides under the action of the telescopic cylinder 402, thereby enabling the two actuating grooves 4032 on the driving component 403 to drive the first lever 409 on the first rotating plate 408 and the second lever 411 on the second rotating plate 410 to rotate, thereby driving the first valve plate 406 and the second valve plate 407 on the rotating shaft 405 to rotate, thus achieving the effect of adaptively adjusting the flow rate in the intake pipe 31 by driving the relative rotation between the first valve plate 406 and the second valve plate 407.
[0029] As a preferred technical solution in this embodiment, a sensor is fixedly installed in the air intake pipe 31, and the sensor is electrically connected to the telescopic cylinder 402.
[0030] In the above technical solution, by utilizing the sensor in the intake pipe 31, the flow rate in the intake pipe 31 can be monitored in real time, thereby enabling the start and stop of the telescopic cylinder 402, and thus achieving the effect of regulating the flow rate in the air supply pipeline 3.
[0031] As a preferred technical solution in this embodiment, a plurality of elastic members 404 are provided between the fixed frame 401 and the driving member 403, and the two ends of the elastic members 404 are respectively fixedly installed on the fixed frame 401 and the driving member 403.
[0032] In the above technical solution, the elasticity of the elastic element 404 can provide a stable supporting force, making the telescopic cylinder 402 move or work more smoothly, reducing the amplitude of shaking or swaying of the drive element 403. Furthermore, the elastic element 404 can also absorb and reduce the energy of impact, thereby mitigating the impact on the channel section, reducing damage to the drive section, and extending the service life of the equipment.
[0033] Furthermore, the fixed frame 401 has grooves on its corresponding inner walls on both sides, and the driving component 403 has guide parts 4033 fixedly installed on both corresponding sides, with the guide parts 4033 slidably disposed in the grooves.
[0034] In the above technical solution, by utilizing the groove on the fixed frame 401, the sliding direction of the drive unit can be restricted, thereby improving the stability of the drive unit during the sliding process.
[0035] As a preferred technical solution in this embodiment, the adjustment mechanism 6 includes a lead screw 62 rotatably mounted on the mounting frame 2, which receives sliding drive from the drive member 403 through the transmission mechanism 5 to rotate the lead screw 62. The lead screw 62 has two threaded ends with opposite directions of rotation, and a drive block 63 is threadedly connected to each of the two threaded ends. A scissor-type telescopic member 64 is provided on the two drive blocks 63, and multiple clamping members 65 are fixedly installed on the scissor-type telescopic member 64. The fin member 33 is snapped onto the clamping member 65.
[0036] Furthermore, the transmission mechanism 5 includes a connector 51 fixedly mounted on the drive member 403, a rack 52 fixedly mounted on the top surface of the connector 51, and a gear 53 meshing with the rack 52 fixedly mounted on the circumferential surface of the lead screw 62.
[0037] In the above technical solution, by using the adjustment mechanism 6, the drive unit can drive the lead screw 62 on the mounting frame 2 to rotate during the sliding process by means of the mutual cooperation between the rack 52 on the drive unit and the gear 53 on the lead screw 62. Since the lead screw 62 is provided with two threaded ends with opposite directions of rotation, after the lead screw 62 rotates, the two drive blocks 63 on the lead screw 62 can move in opposite directions along the axial direction. Therefore, by using the scissor-type telescopic member 64, the distance between the multiple clamping members 65 can be adjusted, thereby enabling the adaptive adjustment of the distance between the fins 33 on the gas pipeline 3 by the flow rate in the gas pipeline 3.
[0038] As a preferred technical solution in this embodiment, a guide frame 61 is fixedly installed on the mounting frame 2, and two driving blocks 63 are slidably disposed within the guide frame 61.
[0039] In the above technical solution, by using the guide frame 61, the sliding direction of the drive block 63 can be restricted.
[0040] To improve stability during the adjustment of the spacing of the fins 33, as another preferred technical solution in this embodiment, two lead screws 62 are rotatably provided on the mounting frame 2. A first pulley 54 and a second pulley 55 are respectively fixedly installed on the circumferential surface of the two lead screws 62. The first pulley 54 and the second pulley 55 are connected by a transmission belt 56.
[0041] Furthermore, the transmission mechanism 5 includes a connector 51 fixedly mounted on the drive member 403, a rack 52 fixedly mounted on the top surface of the connector 51, and a gear 53 meshing with the rack 52 fixedly mounted on the circumferential surface of the lead screw 62.
[0042] Working principle: By utilizing the sensor in the intake pipe 31, the flow rate in the intake pipe 31 can be monitored in real time, thereby driving the telescopic cylinder 402 to start and stop. Then, by utilizing the telescopic cylinder 402 on the fixed frame 401, the driving component 403 on the fixed frame 401 slides under the action of the telescopic cylinder 402, thereby driving the two actuating grooves 4032 on the driving component 403 to drive the first lever 409 on the first rotating plate 408 and the second lever 411 on the second rotating plate 410 to rotate, thereby driving... The first valve plate 406 and the second valve plate 407 on the rotating shaft 405 rotate, thereby enabling relative rotation between the first valve plate 406 and the second valve plate 407. The elasticity of the elastic element 404 provides stable support, making the telescopic cylinder 402 move or work more smoothly, reducing the amplitude of swaying or shaking of the drive element 403. Furthermore, the elastic element 404 can absorb and reduce the energy of impact, thereby mitigating the impact on the channel section, reducing damage to the drive section, and extending the service life of the equipment.
[0043] By utilizing the adjustment mechanism 6, the drive unit can rotate the lead screw 62 on the mounting frame 2 during sliding by means of the interaction between the rack 52 on the drive unit and the gear 53 on the lead screw 62. Since the lead screw 62 is provided with two threaded ends with opposite directions of rotation, after the lead screw 62 rotates, the two drive blocks 63 on the lead screw 62 can move in opposite directions along the axial direction. Therefore, by utilizing the scissor-type telescopic member 64, the spacing between the multiple clamping members 65 can be adjusted, thereby enabling adaptive adjustment of the spacing of the fins 33 on the gas pipeline 3 based on the flow rate in the gas pipeline 3. Furthermore, by utilizing the two sets of adjustment mechanisms 6 on the mounting frame 2, the stability during the adjustment of the spacing of the fins 33 can be improved.
[0044] Therefore, by utilizing the control equipment in the computer room, the heat generated by the equipment in the computer room can be recovered. The recovered heat can flow through the air inlet pipe 31 to the air delivery pipe 3, and then the heat dissipation of the fins 33 can cool the hot air in the air delivery pipe 3. The cooled air then flows back into the computer room along the air delivery pipe 3 and the air outlet pipe 32, thereby achieving the effect of cooling the computer room and recycling the heat in the computer room. Furthermore, by using the control mechanism 4 to drive the first valve plate 406 and the second valve plate 407 in the air inlet pipe 31 to rotate relative to each other, the flow rate in the air inlet pipe 31 can be adaptively adjusted as needed. By using the transmission mechanism 5 and the adjustment mechanism 6, when the first valve plate 406 and the second valve plate 407 rotate relative to each other, the spacing of the multiple fins 33 on the air delivery pipe 3 can be adjusted according to the flow rate, thereby improving the heat exchange efficiency and greatly improving the energy-saving effect. The foregoing has only described certain exemplary embodiments of the present invention by way of illustration. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the foregoing drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. A high-efficiency energy-saving control device for computer rooms, comprising a body (1), characterized in that, An installation frame (2) is fixedly installed inside the body (1), and an air supply pipe (3) is fixedly installed inside the installation frame (2). Multiple fins (33) are slidably arranged on the air supply pipe (3). The gas pipeline (3) is equipped with a control mechanism (4) for regulating the flow rate; The mounting frame (2) is provided with an adjustment mechanism (6) for adjusting the spacing of the plurality of fins (33).
2. The high-efficiency energy-saving control equipment for computer rooms according to claim 1, characterized in that, The gas pipeline (3) is connected to an air inlet pipe (31) and an air outlet pipe (32), which are fixedly installed on the machine body (1).
3. The high-efficiency energy-saving control equipment for computer rooms according to claim 2, characterized in that, The control mechanism (4) includes a rotating shaft (405) rotatably mounted on the intake pipe (31), and a first valve plate (406) and a second valve plate (407) are mounted on the rotating shaft (405).
4. The high-efficiency energy-saving control equipment for computer rooms according to claim 3, characterized in that, A fixed frame (401) is fixedly installed on the intake pipe (31). A drive member (403) is provided on the fixed frame (401). The drive member (403) is driven by a drive source and is slidably disposed on the fixed frame (401). The first valve plate (406) and the second valve plate (407) are driven by the drive member (403) to make the first valve plate (406) and the second valve plate (407) rotate relative to each other in the intake pipe (31).
5. The high-efficiency energy-saving control equipment for computer rooms according to claim 4, characterized in that, The drive source includes a telescopic cylinder (402) fixedly mounted on the fixed frame (401), and the output end of the telescopic cylinder (402) is fixedly mounted on the drive component (403).
6. The high-efficiency energy-saving control equipment for computer rooms according to claim 5, characterized in that, The driving component (403) includes two actuating parts (4031), and actuating grooves (4032) are provided on the side of the two actuating parts (4031) that are close to each other. A first rotating plate (408) is fixedly installed on the top surface of the rotating shaft (405), and a first lever (409) is fixedly installed on the first rotating plate (408). A second rotating plate (410) is sleeved on the circumference of the rotating shaft (405), and a second lever (411) is fixedly installed on the second rotating plate (410). The two actuation slots (4032) are respectively engaged with the first lever (409) and the second lever (411).
7. The high-efficiency data center energy-saving control equipment according to claim 4, characterized in that, The adjustment mechanism (6) includes a lead screw (62) rotatably mounted on the mounting frame (2), which receives sliding drive from the drive member (403) through the transmission mechanism (5) to make the lead screw (62) rotate. The lead screw (62) has two threaded ends with opposite directions of rotation. Both threaded ends are threadedly connected to drive blocks (63). Both drive blocks (63) are provided with scissor-type telescopic members (64). Multiple clamping members (65) are fixedly mounted on the scissor-type telescopic members (64). The fin member (33) is snapped onto the clamping member (65).
8. The high-efficiency energy-saving control equipment for computer rooms according to claim 7, characterized in that, A guide frame (61) is fixedly installed on the mounting frame (2), and the two drive blocks (63) are slidably disposed within the guide frame (61).
9. The high-efficiency data center energy-saving control equipment according to claim 7, characterized in that, The transmission mechanism (5) includes a connector (51) fixedly installed on the drive member (403), a rack (52) fixedly installed on the top surface of the connector (51), and a gear (53) meshing with the rack (52) fixedly installed on the circumferential surface of the lead screw (62).