Fan server
By using seawater to dissipate water in offshore fan servers, combined with air cooling technology, the problem of low heat dissipation efficiency of offshore fan servers is solved, efficient heat dissipation is achieved, and the server is operated normally.
Patent Information
- Application Number
- CN202510272132.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-10
- Publication Date
- 2025-06-20
AI Technical Summary
Due to the dense internal equipment of the offshore fan server, it generates a lot of heat. The existing air-cooled heat dissipation method is less efficient and difficult to effectively dissipate heat.
Design a fan server to use seawater to cool and dissipate heat. Seawater is extracted through a water pump. The seawater passes through the filter module and enters the heat dissipation module, contacts the second blade, driving the rotation of the shaft and the fan blade. The seawater flows through the heat dissipation pipe to achieve water-cooling and heat dissipation within the server, and cooperates with the rotation of the fan blade to improve heat dissipation efficiency.
By combining water cooling and air cooling, the heat dissipation efficiency of the server is significantly improved and ensures that the server can operate normally in a high-temperature environment.
Smart Images

Figure CN120186952A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of fan power generation equipment, and specifically relates to a fan server. Background Art
[0002] Wind power generation converts the kinetic energy of the wind into mechanical kinetic energy, and then converts the mechanical energy into electrical kinetic energy. This is wind power generation. The principle of wind power generation is to use the wind to drive the rotation of the windmill blades, and then increase the rotation speed through a speed increaser to prompt the generator to generate electricity. According to the current windmill technology, a breeze speed of about three meters per second (the degree of a gentle breeze) can start generating electricity. Wind power generation is forming a boom in the world because wind power generation does not require the use of fuel and does not produce radiation or air pollution.
[0003] When an offshore fan is in use, its server is generally installed inside the bottom chamber of the fan. Since there are many devices inside the fan, there are also many components inside the server. Therefore, when the server is in use, it generates a large amount of heat. The heat generated by the components inside during use is generally directly dissipated by multiple sets of cooling fans. This air-cooling method has a low heat dissipation efficiency. Therefore, a fan server is proposed to solve the above problems. Summary of the Invention
[0004] The purpose of the present invention is to provide a fan server to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solutions:
[0006] As an alternative solution of a fan server according to the present invention, wherein: a fan server includes a server and a water pump.
[0007] A water pump is installed on one side of the server. One side of the water pump is connected to an input pipe, and the other end of the input pipe is connected to a filtering module.
[0008] The other side of the water pump is connected to an output pipe. The other side of the output pipe is connected to a heat dissipation module. The outside of the heat dissipation module is fixedly connected to the server. A connecting pipe is also connected to the outside of the heat dissipation module. The other end of the connecting pipe is connected to a heat dissipation pipe, and the other end of the heat dissipation pipe is connected to a drain pipe.
[0009] As an alternative solution for a fan server according to the present invention, the following is provided: The heat dissipation module includes a mounting frame, a fixing frame, and a rotating shaft. The outer side of the mounting frame is fixedly connected to the server. The outer side of the mounting frame is communicated with an output pipe. The bottom of the mounting frame is fixedly connected to the fixing frame. A second paddle is arranged inside the mounting frame. The bottom of the second paddle is fixedly connected to the rotating shaft. The bottom of the rotating shaft is fixedly connected to a fan blade. The outer side of the fixing frame is communicated with a connecting pipe.
[0010] When a wind turbine for marine use is in operation, its server is generally installed inside the bottom chamber of the wind turbine. Since there are many devices inside the wind turbine, there are also relatively many components inside the server. Therefore, when the server is in use, it generates a large amount of heat. The heat generated by its internal components during use is generally directly dissipated by multiple cooling fans. This air-cooling method has a relatively low heat dissipation efficiency. The present invention can directly extract seawater from the sea using a water pump. The seawater enters the output pipe through the input pipe and then enters the heat dissipation module through the output pipe. The seawater contacts the second paddle inside the mounting frame. At this time, the second paddle can rotate and drive the rotating shaft to rotate. The rotating shaft drives the fan blade to rotate. At the same time, the seawater can enter the heat dissipation pipe through the connecting pipe and be discharged through the heat dissipation pipe and the drain pipe. When the seawater flows inside the heat dissipation pipe, it can achieve water-cooling heat dissipation inside the server. Combined with the rotation of the fan blade, at this time, water-cooling and air-cooling cooperate to effectively dissipate heat inside the server and ensure the normal operation of the server.
[0011] As an alternative solution for a fan server according to the present invention, the following is provided: The heat dissipation pipe is arranged in an S shape and is disposed at the rear wall inside the server. The heat dissipation pipe is made of aluminum plate.
[0012] Since the heat dissipation pipe is arranged in an S shape, it can expand the cooling area inside the server at this time, thereby ensuring the cooling quality. And the provided heat dissipation pipe is made of aluminum plate, which has good heat dissipation efficiency.
[0013] As an alternative solution for a fan server according to the present invention, the following is provided: A filter screen is fixedly connected inside the server, and the filter screen is located directly below the heat dissipation module.
[0014] The rotation of the fan can drive the air flow, thereby ensuring the cooling quality inside the server. The provided filter screen serves the purpose of filtering and protection, avoiding the exposure of the fan during maintenance and affecting the maintenance work.
[0015] As an alternative solution of a fan server according to the present invention, wherein: the filtering module includes a fixed cylinder, a connecting rod and a rotating rod. An input pipe is communicated with the top of the fixed cylinder. A filtering cylinder is fixedly connected to the bottom of the fixed cylinder. A connecting rod is fixedly connected inside the fixed cylinder. A rotating rod is rotatably connected to the center of the connecting rod. The bottom of the rotating rod is rotatably connected to the filtering cylinder;
[0016] The outer side of the rotating rod is fixedly connected with first blades and support rods distributed up and down. The other ends of the support rods are fixedly connected with cleaning plates. The other side of the cleaning plates is fixedly connected with uniformly distributed cleaning brushes.
[0017] When seawater enters the input pipe, the seawater enters the inside of the fixed cylinder through the filtering cylinder. The filtering cylinder can achieve the filtering purpose and filter out larger impurities in the seawater. When the seawater flows inside the fixed cylinder, the seawater drives the first blades to rotate. The first blades can drive the rotating rod to rotate. The rotating rod drives the support rods, the cleaning plates and the cleaning brushes to rotate. At this time, the filtering cylinder can be cleaned to avoid blockage of the filtering cylinder and ensure that the seawater normally flows into the input pipe.
[0018] As an alternative solution of a fan server according to the present invention, wherein: a rotating ring is fixedly connected to the outer side of the rotating shaft. A sealing frame is rotatably connected to the outer side of the rotating ring. The outer side of the sealing frame is fixedly connected to the fixed frame.
[0019] As an alternative solution of a fan server according to the present invention, wherein: a sealing sleeve is also fixedly connected inside the sealing frame. The inner side of the sealing sleeve is in close contact with the rotating shaft.
[0020] At the same time, a sealing frame and a rotating ring are arranged on the outer side of the rotating shaft. At this time, the stable rotation of the rotating shaft is ensured. The arranged sealing sleeve serves the sealing purpose and avoids the leakage of seawater from the gap between the rotating shaft and the sealing frame.
[0021] As an alternative solution of a fan server according to the present invention, wherein: a water level sensor is fixedly connected to the bottom of the fixed frame. A collecting hopper is arranged below the water level sensor. The outer side of the collecting hopper is fixedly connected to the rotating shaft.
[0022] During the use process, even if seawater leaks through the sealing frame, at this time the seawater will drip into the collecting hopper. The water level sensor arranged at the bottom of the fixed frame can detect the water body inside the collecting hopper. Once the water body is detected, a signal is sent to the terminal at this time, which helps the staff to understand and carry out maintenance in time.
[0023] Compared with the prior art, the beneficial effects of the present invention are:
[0024] The present invention can directly extract water from the sea through a water pump. The seawater enters the output pipe through the input pipe, and then enters the interior of the heat dissipation module through the output pipe. The seawater contacts the second paddle inside the installation frame. At this time, the second paddle can rotate and drive the rotation of the rotating shaft, and the rotating shaft drives the rotation of the fan blades. At the same time, the seawater can enter the heat dissipation pipe through the connecting pipe and be discharged through the heat dissipation pipe and the drain pipe. When the seawater flows inside the heat dissipation pipe, it can achieve water-cooled heat dissipation inside the server, and cooperate with the rotation of the fan blades. At this time, the combination of water-cooling and air-cooling can effectively dissipate heat inside the server and ensure the normal use of the server;
[0025] When the seawater enters the input pipe, the seawater enters the fixed cylinder through the filter cylinder. The filter cylinder can serve the purpose of filtration. When the seawater flows inside the fixed cylinder, the seawater drives the rotation of the first paddle. The first paddle can drive the rotation of the rotating rod, and the rotating rod drives the rotation of the support rod, the cleaning plate and the cleaning brush. At this time, the filter cylinder can be cleaned to avoid blockage of the filter cylinder and ensure the normal inflow of seawater into the input pipe;
[0026] At the same time, a sealing frame and a rotating ring are arranged on the outer side of the rotating shaft. At this time, the stable rotation of the rotating shaft is ensured, and the arranged sealing sleeve serves the purpose of sealing to prevent seawater leakage;
[0027] During the use process, even if seawater leaks through the sealing frame, at this time the seawater will drip into the collection hopper. The water level sensor arranged at the bottom of the fixed frame can detect the water body inside the collection hopper. Once the water body is detected, a signal will be sent to the terminal at this time, which helps the staff to understand and carry out maintenance in time. Description of the Drawings
[0028] Figure 1 It is a schematic structural diagram of an overall fan server;
[0029] Figure 2 It is a schematic structural diagram of a filter module of a fan server;
[0030] Figure 3 It is a schematic structural diagram of a heat dissipation module of a fan server;
[0031] Figure 4 It is a fan server Figure 3 Schematic diagram of the structure at point A.
[0032] In the figure: 1, server; 2, water pump; 3, input pipe; 4, filtering module; 401, fixing cylinder; 402, connecting rod; 403, rotating rod; 404, first paddle; 405, support rod; 406, cleaning plate; 407, cleaning brush; 408, filtering cylinder; 5, heat dissipation module; 501, mounting frame; 502, fixing frame; 503, rotating shaft; 504, second paddle; 505, fan blade; 506, sealing frame; 507, rotating ring; 508, sealing sleeve; 509, collecting hopper; 510, water level sensor; 6, output pipe; 7, connecting pipe; 8, heat dissipation pipe; 9, drain pipe; 10, filter screen. Detailed implementation mode
[0033] Embodiment 1:
[0034] Please refer to Figure 1 , the present invention provides a technical solution:
[0035] A fan server includes a server 1 and a water pump 2,
[0036] One side of the above-mentioned server 1 is installed with a water pump 2, one side of the above-mentioned water pump 2 is communicated with an input pipe 3, and the other end of the above-mentioned input pipe 3 is communicated with a filtering module 4;
[0037] The other side of the above-mentioned water pump 2 is communicated with an output pipe 6, the other side of the above-mentioned output pipe 6 is communicated with a heat dissipation module 5, the outside of the above-mentioned heat dissipation module 5 is fixedly connected to the server 1, the outside of the above-mentioned heat dissipation module 5 is also communicated with a connecting pipe 7, the other end of the above-mentioned connecting pipe 7 is communicated with a heat dissipation pipe 8, and the other end of the above-mentioned heat dissipation pipe 8 is communicated with a drain pipe 9.
[0038] The above-mentioned heat dissipation module 5 includes a mounting frame 501, a fixing frame 502 and a rotating shaft 503. The outside of the above-mentioned mounting frame 501 is fixedly connected to the server 1. The outside of the above-mentioned mounting frame 501 is communicated with the output pipe 6. The bottom of the above-mentioned mounting frame 501 is fixedly connected to the fixing frame 502. A second paddle 504 is arranged inside the above-mentioned mounting frame 501. The bottom of the above-mentioned second paddle 504 is fixedly connected to the rotating shaft 503. The bottom of the above-mentioned rotating shaft 503 is fixedly connected to the fan blade 505. The outside of the above-mentioned fixing frame 502 is communicated with the connecting pipe 7.
[0039] When an offshore wind turbine is in use, its server is generally installed inside the bottom chamber of the wind turbine. Since there are many devices inside the wind turbine, there are also many components inside the server. Therefore, when the server is in use, it generates a large amount of heat. The heat generated by the components inside it is generally dissipated directly through multiple cooling fans. This air-cooling method has a low heat dissipation efficiency. In the present invention, seawater can be directly pumped out by a water pump 2, and the seawater enters an output pipe 6 through an input pipe 3, and then enters inside a heat dissipation module 5 through the output pipe 6. The seawater contacts a second paddle 504 inside a mounting frame 501. At this time, the second paddle 504 can rotate and drive a rotating shaft 503 to rotate, and the rotating shaft 503 drives a fan blade 505 to rotate. At the same time, the seawater can enter a heat dissipation pipe 8 through a communicating pipe 7 and is discharged through the heat dissipation pipe 8 and a drain pipe 9. When the seawater flows inside the heat dissipation pipe 8, it can achieve water-cooling heat dissipation inside the server 1, and in cooperation with the rotation of the fan blade 505, at this time, water-cooling and air-cooling cooperate to effectively dissipate heat inside the server 1 and ensure that the server 1 can be used normally.
[0040] Embodiment 2
[0041] This embodiment is an improvement made to Embodiment 1. Please refer to Figure 1 , specifically, the above-mentioned heat dissipation pipe 8 is arranged in an S shape and is arranged at the rear wall inside the server 1. The above-mentioned heat dissipation pipe 8 is made of an aluminum plate.
[0042] Since the heat dissipation pipe 8 is arranged in an S shape, the cooling area inside the server 1 can be enlarged at this time, thereby ensuring the cooling quality. And the set heat dissipation pipe 8 is made of an aluminum plate, which has good heat dissipation efficiency.
[0043] Embodiment 3
[0044] This embodiment is an improvement made to Embodiment 2. Please refer to Figure 1 , specifically, a filter screen 10 is fixedly connected inside the above-mentioned server 1, and the above-mentioned filter screen 10 is located directly below the heat dissipation module 5.
[0045] The rotation of the fan 505 can drive the air to flow, thereby ensuring the cooling quality inside the server 1. The set filter screen 10 serves the purpose of filtering and protection, avoiding that when overhauling, the fan 505 is exposed outside and affects the overhaul work.
[0046] Embodiment 4
[0047] This embodiment is an improvement made to Embodiment 3. Please refer to Figure 2, specifically, the above-mentioned filtering module 4 includes a fixed cylinder 401, a connecting rod 402 and a rotating rod 403. The top of the fixed cylinder 401 is communicated with an input pipe 3. The bottom of the fixed cylinder 401 is fixedly connected with a filtering cylinder 408. The inside of the fixed cylinder 401 is fixedly connected with a connecting rod 402. The center of the connecting rod 402 is rotatably connected with a rotating rod 403. The bottom of the rotating rod 403 is rotatably connected with the filtering cylinder 408;
[0048] The outer side of the rotating rod 403 is fixedly connected with first paddle blades 404 and support rods 405 which are distributed up and down. The other ends of the support rods 405 are all fixedly connected with cleaning plates 406. The other side of the cleaning plates 406 is fixedly connected with uniformly distributed cleaning brushes 407.
[0049] When seawater enters the input pipe 3, the seawater enters the inside of the fixed cylinder 401 through the filtering cylinder 408. The filtering cylinder 408 can achieve the filtering purpose and filter out larger impurities in the seawater. When the seawater flows inside the fixed cylinder 401, the seawater drives the first paddle blades 404 to rotate. The first paddle blades 404 can drive the rotating rod 403 to rotate. The rotating rod 403 drives the support rods 405, the cleaning plates 406 and the cleaning brushes 407 to rotate. At this time, the filtering cylinder 408 can be cleaned to prevent the filtering cylinder 408 from being blocked and ensure that the seawater can flow into the input pipe 3 normally.
[0050] Embodiment 5
[0051] This embodiment is an improvement on Embodiment 4. Please refer to Figure 3 and Figure 4 , specifically, the outer side of the above-mentioned rotating shaft 503 is fixedly connected with a rotating ring 507. The outer side of the rotating ring 507 is rotatably connected with a sealing frame 506. The outer side of the sealing frame 506 is fixedly connected with the fixed frame 502.
[0052] The inside of the sealing frame 506 is also fixedly connected with a sealing sleeve 508. The inner side of the sealing sleeve 508 is in close contact with the rotating shaft 503.
[0053] At the same time, a sealing frame 506 and a rotating ring 507 are arranged on the outer side of the rotating shaft 503. At this time, the stable rotation of the rotating shaft 503 is ensured. And the arranged sealing sleeve 508 serves the sealing purpose to prevent seawater from leaking from the gap between the rotating shaft 503 and the sealing frame 506.
[0054] Embodiment 6
[0055] This embodiment is an improvement on Embodiment 5. Please refer to Figure 4, specifically, a water level sensor 510 is fixedly connected to the bottom of the above-mentioned fixed frame 502. A collection hopper 509 is arranged below the above-mentioned water level sensor 510, and the outside of the above-mentioned collection hopper 509 is fixedly connected to the rotating shaft 503.
[0056] During use, even if seawater leaks through the sealing frame 506, the seawater will drip into the collection hopper 509 at this time. The water level sensor 510 arranged at the bottom of the fixed frame 503 can detect the water body inside the collection hopper 509. Once the water body is detected, a signal will be sent to the terminal at this time, which helps the staff to understand and carry out maintenance in time.
[0057] In this article, specific examples are used to elaborate on the principle and implementation manner of the present invention. The description of the above examples is only used to help understand the method and its core idea of the present invention. The above is only the preferred implementation manner of the present invention. It should be noted that due to the limited nature of written expression and objectively existing infinite specific structures, for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements, retouches or changes can be made, or the above technical features can be combined in an appropriate manner; these improvements, retouches, changes or combinations, or directly applying the concept and technical solution of the invention to other occasions without improvement, should all be regarded as the protection scope of the present invention.
Claims
1. A fan server, characterized in that: It comprises a server (1) and a water pump (2), A water pump (2) is installed on one side of the server (1); one side of the water pump (2) is connected to an input pipe (3); the other end of the input pipe (3) is connected to a filter module (4); The other side of the water pump (2) is connected to an output pipe (6), the other side of the output pipe (6) is connected to a heat dissipation module (5), the outer side of the heat dissipation module (5) is fixedly connected to the server (1), the outer side of the heat dissipation module (5) is also connected to a connecting pipe (7), the other end of the connecting pipe (7) is connected to a heat dissipation pipe (8), and the other end of the heat dissipation pipe (8) is connected to a drainage pipe (9).
2. A fan server according to claim 1, characterized in that: The heat dissipation pipe (8) is arranged in an S shape, and is arranged on the inner rear wall of the server (1). The heat dissipation pipe (8) is made of an aluminum plate.
3. A fan server according to claim 1, characterized in that: A filter screen (10) is fixedly connected to the interior of the server (1), and the filter screen (10) is located directly below the heat dissipation module (5).
4. The fan server according to claim 1, characterized in that: The filter module (4) comprises a fixed cylinder (401), a connecting rod (402) and a rotating rod (403); the top of the fixed cylinder (401) is connected to an input pipe (3); the bottom of the fixed cylinder (401) is fixedly connected to a filter cylinder (408); the interior of the fixed cylinder (401) is fixedly connected to a connecting rod (402); the center of the connecting rod (402) is rotatably connected to the rotating rod (403); and the bottom of the rotating rod (403) is rotatably connected to the filter cylinder (408); The outer side of the rotating rod (403) is fixedly connected with a first paddle (404) and a support rod (405) distributed up and down, the other end of the support rod (405) is fixedly connected with a cleaning plate (406), and the other side of the cleaning plate (406) is fixedly connected with a cleaning brush (407) distributed evenly.
5. The fan server according to claim 1, characterized in that: The heat dissipation module (5) comprises a mounting frame (501), a fixing frame (502) and a rotating shaft (503); the outer side of the mounting frame (501) is fixedly connected to the server (1); the outer side of the mounting frame (501) is communicated with the output pipe (6); the bottom of the mounting frame (501) is fixedly connected to the fixing frame (502); a second blade (504) is arranged inside the mounting frame (501); the bottom of the second blade (504) is fixedly connected to the rotating shaft (503); the bottom of the rotating shaft (503) is fixedly connected to a fan blade (505); and the outer side of the fixing frame (502) is communicated with the connecting pipe (7).
6. A fan server according to claim 5, characterized in that: The outer side of the rotating shaft (503) is fixedly connected to a rotating ring (507), the outer side of the rotating ring (507) is rotatably connected to a sealing frame (506), and the outer side of the sealing frame (506) is fixedly connected to the fixed frame (502).
7. A fan server according to claim 6, characterized in that: A sealing sleeve (508) is also fixedly connected to the interior of the sealing frame (506), and the inner side of the sealing sleeve (508) is in close contact with the rotating shaft (503).
8. The fan server according to claim 5, characterized in that: A water level sensor (510) is fixedly connected to the bottom of the fixed frame (502), a collecting bucket (509) is provided below the water level sensor (510), and the outer side of the collecting bucket (509) is fixedly connected to the rotating shaft (503).