Intelligent temperature control cycle cooling device for phase modifier
By adopting a brass flow channel and corrugated structure design in the cooling device of the synchronous condenser, the flow area of the cooling water can be dynamically adjusted, solving the problem that the cooling device of the synchronous condenser cannot be adjusted in time. This achieves precise distribution of cooling water and efficient cooling, improving the operational stability and energy-saving effect of the synchronous condenser.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- INNER MONGOLIA BRANCH OF BEIJING JINGNENG CLEAN ENERGY POWER CO LTD
- Filing Date
- 2025-09-16
- Publication Date
- 2026-04-17
AI Technical Summary
Existing synchronous condenser cooling devices are unable to adjust the cooling intensity in a timely manner according to temperature changes, resulting in inaccurate cooling effects and affecting operational stability and lifespan.
An intelligent temperature-controlled circulating cooling device was designed. It utilizes a brass flow channel and corrugated structure to dynamically adjust the flow area of cooling water through thermal expansion caused by temperature changes and a lever mechanism, thereby achieving precise distribution and rapid response of cooling water.
It achieves precise distribution and rapid response of cooling water, improves the operational stability and cooling efficiency of the synchronous condenser, and reduces water consumption and operating costs.
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Figure CN121036432B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of cooling device technology, and in particular to an intelligent temperature-controlled circulating cooling device for a synchronous condenser. Background Technology
[0002] A synchronous condenser is a type of synchronous motor that operates under no-load conditions. Its main function is to provide or absorb reactive power to the power system by adjusting its own excitation current, thereby stabilizing the grid voltage and improving the power factor. It is an important reactive power compensation device in the power system. The intelligent temperature control and circulating cooling device of the synchronous condenser is a device used to regulate the temperature of the synchronous condenser and ensure that it operates within a suitable temperature range. Through intelligent control, it realizes coolant circulation and temperature regulation, which can effectively improve the stability and reliability of the synchronous condenser operation and extend its service life.
[0003] According to Chinese Patent Publication No. CN116780825B, this invention belongs to the field of synchronous condensers and discloses a cooling circulation device for synchronous condensers. The device includes a main body, a housing fixedly installed on one side of the main body, a base fixedly connected to the bottom of the main body, a control cabinet fixedly installed on the top of the housing, a wiring port fixedly provided on one side of the control cabinet and located on the top of the housing, a cooling plate fixedly installed on the top of the main body, a cooling mechanism provided on the top of the cooling plate, a cover plate fixedly installed on the bottom of the cooling mechanism, and a connecting mechanism provided on one side of the bottom of the cover plate, a water tank provided at the bottom of the cover plate, and a return water pipe provided on one side of the water tank. Through the coordinated use of the heat dissipation tank, the return water pipe, the descaling mechanism, the cleaning device and the outlet water pipe, the device prevents dirt from adhering and hindering the flow of coolant, facilitates the removal of dirt, promotes the circulation of coolant, and improves the cooling effect of the synchronous condenser.
[0004] Regarding the above and existing related technologies, the inventors believe that the following defects often exist: During operation, the temperature of the existing synchronous condenser body changes due to its own factors and external factors. Traditional intelligent temperature control and cooling devices are difficult to adjust the cooling intensity in a timely manner according to the temperature changes of the synchronous condenser, and it is difficult to achieve accurate matching with the actual heating state of the synchronous condenser. Summary of the Invention
[0005] The technical problem to be solved by the present invention is that the existing cooling device has the disadvantage of being unable to adjust the cooling intensity in a timely manner according to the temperature change of the camera condenser. To this end, we propose an intelligent temperature control circulating cooling device for the camera condenser.
[0006] To achieve the above objectives, this application adopts the following technical solution: an intelligent temperature control circulating cooling device for a phase-shifting camera, comprising: a phase-shifting camera body; a cooling plate fixedly connected to the top of the phase-shifting camera body; a fixing plate fixedly connected to the inner wall of the cooling plate; a main rotating shaft movably connected to the bottom of the fixing plate; a first connecting plate fixedly connected to one side of the main rotating shaft; a first rotating shaft movably connected to the side of the first connecting plate; a first flow groove fixedly connected to the bottom of the first rotating shaft; a second connecting plate fixedly connected to the other side of the main rotating shaft; a second rotating shaft movably connected to the side of the second connecting plate; a second flow groove fixedly connected to the top of the second rotating shaft; a corrugated structure fixedly connected to the top of the second flow groove; and the interior of the cooling plate... A circulating water flow channel is provided. A water inlet ring is fixedly connected to one side of the second flow channel, and a water inlet pipe is fixedly connected to the top of the water inlet ring. A water outlet ring is fixedly connected to the other side of the second flow channel, and a water outlet pipe is fixedly connected to the top of the water outlet ring. A circulating water inlet pipe is fixedly connected to one side of the cooling plate, and a circulating water outlet pipe is fixedly connected to the other side of the cooling plate. A circulating water treatment tank is fixedly connected to the top of the outlet pipe. A conveying pipe is fixedly connected to the side of the circulating water treatment tank. A heat dissipation box is fixedly connected to one end of the conveying pipe. A cooling water tank is fixedly connected to the side of the heat dissipation box. A drive pump controller is fixedly connected to the top of the cooling water tank. A circulating water transfer pipe is fixedly connected to the outer wall of the circulating water treatment tank.
[0007] Preferably, the No. 1 flow channel and the cooling plate are fixedly connected, and the No. 1 flow channel is made of brass.
[0008] Preferably, the first flow channel is set with equal spacing from the interior of the cooling plate, and the second flow channel is set with equal spacing from the interior of the cooling plate.
[0009] Preferably, the corrugated structure and the cooling plate are fixedly connected, and the corrugated structure can expand the internal space by elongating its own axis.
[0010] Preferably, the inlet ring is connected to the outlet ring through the first flow channel, and the inlet ring is connected to the outlet ring through the second flow channel.
[0011] Preferably, the inlet pipe is fixedly connected to the cooling water tank, and the circulating water outlet pipe is fixedly connected to the heat sink.
[0012] Preferably, the circulating water inlet pipe is connected to the circulating water outlet pipe through a circulating water flow channel, and the circulating water treatment tank is used to divert the cooling water after heat absorption.
[0013] Preferably, a circulating water controller is fixedly connected to the side of the circulating water transfer pipe, the circulating water transfer pipe is fixedly connected to the cooling plate, and a guide fan is fixedly connected to one end of the cooling plate.
[0014] Preferably, the bottom of the circulating water controller is fixedly connected to a device mounting bracket, and the device mounting bracket is fixedly connected to the synchronous condenser body.
[0015] Preferably, the device mounting frame is fixedly connected to the circulating water treatment tank, the device mounting frame is fixedly connected to the heat dissipation box, and the device mounting frame is fixedly connected to the cooling water tank.
[0016] The technical effects and advantages of this invention are as follows:
[0017] In this invention, a circulating water treatment tank is provided. When the temperature of the synchronous condenser is low, the circulating water treatment tank delivers the used cooling water to the cooling plate for reuse, effectively improving the circulation of cooling water. When the temperature of the synchronous condenser is high, the air temperature between the synchronous condenser and the cooling plate rises. At this time, the first flow channel expands due to heat. When the first flow channel expands, it drives the second flow channel to move through the lever mechanism. At this time, the corrugated structure is in an elongated state. Primary cooling water flows inside the first and second flow channels. At this time, the flow area of the primary cooling water increases, while the flow area of the secondary cooling water decreases, prompting the cooling device to accelerate the cooling of the air. The cooled air cools the synchronous condenser. The cooling device adjusts the cooling intensity in a timely manner according to the temperature change of the air around the synchronous condenser, realizing the precise distribution of cooling water. Attached Figure Description
[0018] The disclosure of this invention is illustrated with reference to the accompanying drawings. It should be understood that the drawings are for illustrative purposes only and are not intended to limit the scope of protection of this invention. In the drawings, the same reference numerals are used to refer to the same parts:
[0019] Figure 1 This is a front view schematic diagram of the intelligent temperature control and circulating cooling device for the camera converter of the present invention.
[0020] Figure 2 This is an enlarged structural schematic diagram of the camera body of the present invention;
[0021] Figure 3 This is an enlarged structural schematic diagram of the circulating cooling device part of the present invention;
[0022] Figure 4 This is an enlarged structural schematic diagram of the airflow guiding fan section of the present invention;
[0023] Figure 5 This is an enlarged structural schematic diagram of the heat sink portion of the present invention;
[0024] Figure 6 This is a schematic diagram of the internal structure of the cooling plate portion of the present invention;
[0025] Figure 7 This is a cross-sectional structural diagram of the cooling plate portion of the present invention;
[0026] Figure 8 For the present invention Figure 7 Enlarged structural diagram at point A;
[0027] Figure 9 This is an enlarged structural schematic diagram of the lever mechanism portion of the present invention.
[0028] Legend: 1. Camera body; 2. Cooling plate; 3. Fixing plate; 4. Main shaft; 5. Connecting plate No. 1; 6. Shaft No. 1; 7. Flow channel No. 1; 8. Connecting plate No. 2; 9. Shaft No. 2; 10. Flow channel No. 2; 11. Corrugated structure; 12. Circulating water flow channel; 13. Inlet ring; 14. Inlet pipe; 15. Outlet ring; 16. Outlet pipe; 17. Circulating water inlet pipe; 18. Circulating water outlet pipe; 19. Circulating water treatment tank; 20. Delivery pipe; 21. Heat sink; 22. Cooling water tank; 23. Drive pump controller; 24. Circulating water transfer pipe; 25. Circulating water controller; 26. Device mounting bracket; 27. Guide fan. Detailed Implementation
[0029] It is readily understood that, based on the technical solution of this invention, those skilled in the art can propose various interchangeable structural methods and implementations without altering the essential spirit of the invention. Therefore, the following detailed embodiments and accompanying drawings are merely illustrative examples of the technical solution of this invention and should not be considered as the entirety of the invention or as limitations or restrictions on the technical solution of this invention.
[0030] According to one embodiment of the present invention, Figures 1 to 9 As shown.
[0031] During operation, the temperature of the existing synchronous condenser body 1 fluctuates due to both internal and external factors. Traditional intelligent temperature-controlled circulating cooling devices struggle to adjust the cooling intensity in a timely manner based on these temperature changes. When the synchronous condenser experiences a rapid temperature rise due to a sudden increase in reactive power, the cooling intensity often fails to increase promptly, leading to cooling lag and difficulty in effectively curbing the continuous temperature rise. This results in the cooling device not accurately matching the actual heating state of the synchronous condenser. When the synchronous condenser is operating at low load and low temperature, the cooling device maintains a high cooling intensity, wasting cooling resources. Conversely, when the synchronous condenser is operating at high load and high temperature, insufficient cooling intensity may cause the synchronous condenser to remain in a high-temperature environment for extended periods, affecting its operational stability and service life. This cooling method, lacking dynamic adaptability, fails to meet the cooling requirements of the synchronous condenser under different operating conditions and is detrimental to improving the overall efficiency of the cooling system. To address this issue, this invention incorporates the following design in the intelligent temperature-controlled circulating cooling device for the synchronous condenser:
[0032] A smart temperature-controlled circulating cooling device for a synchronous condenser includes: a synchronous condenser body 1, which is a special type of synchronous motor mainly used in power systems to regulate reactive power and maintain grid voltage stability. It is an important device for ensuring the safe and efficient operation of the power system. A cooling plate 2 is fixedly connected to the top of the synchronous condenser body 1. The cooling plate 2 is a functional component for heat conduction and dissipation. It mainly uses an efficient heat exchange design to quickly conduct and dissipate the heat generated by the heat-generating equipment, thereby achieving a cooling effect. Its core function is to act as a bridge for heat transfer. One end is in contact with the synchronous condenser, and the other end transfers heat away through liquid cooling to maintain the normal operating temperature of the equipment. A fixing plate 3 is fixedly connected to the inner wall of the cooling plate 2. 3 is the stabilizing component of the entire lever mechanism, used to ensure the stability of the lever mechanism during operation. The bottom of the fixed plate 3 is movably connected to the main rotating shaft 4. One side of the main rotating shaft 4 is fixedly connected to the first connecting plate 5. The side of the first connecting plate 5 is movably connected to the first rotating shaft 6. The bottom of the first rotating shaft 6 is fixedly connected to the first flow groove 7. The other side of the main rotating shaft 4 is fixedly connected to the second connecting plate 8. The length of the second connecting plate 8 is longer than the length of the first connecting plate 5. The side of the second connecting plate 8 is movably connected to the second rotating shaft 9. The top of the second rotating shaft 9 is fixedly connected to the second flow groove 10. The top of the second flow groove 10 is fixedly connected to the corrugated structure 11. The corrugated structure 11 is made of metal sheet through stamping, bending and other processes, and the surface shows a continuous alternation of peaks and valleys. The wavy, pleated design gives the structure a certain degree of stretching and compression. When subjected to external force, the ripples can be stretched or compressed, thereby changing the overall length or volume. It is also easy to recover after deformation, making it suitable for scenarios requiring dynamic adjustment. The cooling plate 2 has a circulating water channel 12 inside. A water inlet ring 13 is fixedly connected to one side of the second channel 10, and a water inlet pipe 14 is fixedly connected to the top of the water inlet ring 13. A water outlet ring 15 is fixedly connected to the other side of the second channel 10, and a water outlet pipe 16 is fixedly connected to the top of the water outlet ring 15. A circulating water inlet pipe 17 is fixedly connected to one side of the cooling plate 2, and a circulating water outlet pipe 18 is fixedly connected to the other side of the cooling plate 2. A circulating water treatment tank 19 is fixedly connected to the top of the outlet pipe 16. The circulating water treatment tank 19 is used to rationally distribute secondary cooling water, enabling the synchronous condenser cooling device to switch from a single-use mode to a circulating reuse mode, significantly reducing water consumption. A conveying pipe 20 is fixedly connected to the side of the circulating water treatment tank 19, and a heat sink 21 is fixedly connected to one end of the conveying pipe 20. The conveying pipe 20 is used to transport the secondary cooling water inside the circulating water treatment tank 19 to the heat sink 21. The heat sink 21 is used to cool the used cooling water, ensuring its circulation and reuse or stable system operation. Through its structural design, the heat sink 21 quickly dissipates the heat from the heated cooling water after use to the surrounding environment, ensuring that there is always sufficient low-temperature water reserve in the circulating water. When the synchronous condenser temperature rises and requires enhanced cooling, [further cooling is needed].The heat sink 21 can quickly provide cooled water, and with the adjustment of the flow channel area, it improves the overall cooling response speed. A cooling water tank 22 is fixedly connected to the side of the heat sink 21. The cooling water tank 22 is a container used for storing, temporarily storing, or transferring cooling water. It is a key component in the cooling system responsible for water resource management and circulation. Its core function is to ensure a stable supply, recycling, and safe reserve of cooling water in the cooling system through reasonable capacity design and structural layout. A drive pump controller 23 is fixedly connected to the top of the cooling water tank 22. The drive pump controller 23 is an electronic device used to monitor, adjust, and control the operating status of the drive pump. It is the command center between the drive pump and the entire system. By receiving signals, making logical judgments, and executing commands, it ensures that the drive pump operates in the optimal manner. A circulating water transfer pipe 24 is fixedly connected to the outer wall of the circulating water treatment tank 19. The circulating water transfer pipe 24 is used to transport secondary cooling water, promoting the recycling of secondary cooling water.
[0033] The first flow channel 7 is fixedly connected to the cooling plate 2. The first flow channel 7 is made of brass, an alloy of copper and zinc with a high thermal conductivity. This high thermal conductivity ensures rapid and sensitive sensing of temperature changes around the camera module. When the camera module temperature rises, heat is quickly transferred to the brass material, causing it to expand thermally and ensuring the response speed of the temperature sensing and adjustment mechanism. This avoids adjustment lag caused by slow material thermal conductivity. The first flow channel 7 and the second flow channel 10 are equally spaced within the cooling plate 2. The corrugated structure 11 is fixedly connected to the cooling plate 2. The corrugated structure 11 can expand its internal space through axial elongation. The inlet ring 13 is connected to the outlet ring 15 via the first flow channel 7 and the second flow channel 10. The inlet pipe 14 is fixedly connected to the cooling water tank 22, and the circulating water outlet pipe 18 is fixedly connected to the heat sink 21. The circulating water inlet pipe 17 is connected to the circulating water outlet pipe 18 through the circulating water flow channel 12. The circulating water treatment tank 19 is used to divert the cooling water after heat absorption. A circulating water controller 25 is fixedly connected to the side of the circulating water transfer pipe 24. The circulating water controller 25 is used to control the delivery of secondary cooling water and ensure the stability of the secondary cooling water delivery. The circulating water transfer pipe 24 is fixedly connected to the cooling plate 2. A guide fan 27 is fixedly connected to one end of the cooling plate 2. A device mounting frame 26 is fixedly connected to the bottom of the circulating water controller 25. The device mounting frame 26 is a structural frame used to fix and support various equipment or devices to ensure the stability of the equipment during operation. The device mounting frame 26 is fixedly connected to the synchronous condenser body 1, the circulating water treatment tank 19, the heat sink 21, and the cooling water tank 22.
[0034] When the device is in use, the synchronous condenser body 1 is in working condition, and the entire cooling system starts running. The drive pump controller 23 delivers the cooling water from the cooling water tank 22 to the inlet ring 13 through the inlet pipe 14. The inlet ring 13, as the cooling water distribution hub, has multiple precise distribution ports designed inside, which are connected to the first flow channel 7 and the second flow channel 10 respectively, so that the cooling water can be evenly and efficiently distributed to these two flow channels. At this time, the cooling water flows in the first flow channel 7 and the second flow channel 10, continuously absorbing the heat generated by the synchronous condenser during operation through heat exchange. The cooling plate 2 cools the air around the synchronous condenser, and the cooled air... The condenser body 1 is cooled down, thus achieving cooling of the condenser body 1. The used cooling water enters the circulating water treatment tank 19 through the outlet ring 15 and outlet pipe 16. At this time, the circulating water controller 25 starts working. The circulating water controller 25 starts the circulating water pump, which transports the secondary cooling water inside the circulating water treatment tank 19 to the circulating water flow channel 12 area inside the cooling plate 2 through the circulating water transfer pipe 24 and circulating water inlet pipe 17. When the secondary cooling water in the circulating water flow channel 12 flows, it cools the air around the condenser body 1. The air circulates under the action of the guide fan 27, achieving rapid cooling of the air around the condenser body 1. Rapid cooling is then applied, followed by secondary cooling water being directly transferred to the heat sink 21 via the circulating water outlet pipe 18. When the temperature of the synchronous condenser body 1 rises during operation, the air temperature in the high-heat area of the synchronous condenser body 1 is also higher. At this time, the first flow channel 7 expands due to heat, causing the first rotating shaft 6 to rise. The first rotating shaft 6 and the first connecting plate 5 rotate around the main rotating shaft 4. During the rotation of the main rotating shaft 4, the second connecting plate 8 and the second rotating shaft 9 move accordingly. At this time, the second rotating shaft 9 pulls the second flow channel 10 downward, and the corrugated structure 11 begins to elongate, its pleated shape gradually unfolding. The length of the second connecting plate 8 is greater than that of the first connecting plate. The length of 5 is amplified by lever principle because the upward movement distance caused by the expansion of the first flow channel 7 is small. This causes the space of the second flow channel 10 and the corrugated structure 11 to expand significantly. At this time, the flow area of the primary cooling water flowing through the first flow channel 7 and the second flow channel 10 increases, and the space of the circulating water flow channel 12 inside the cooling plate 2 is compressed, resulting in a reduction of the secondary cooling water flowing through the circulating water flow channel 12. Through this dynamic adjustment of increasing the primary cooling water flow and decreasing the secondary cooling water flow, the cooling device can quickly improve the cooling intensity of the condenser body 1, thereby effectively accelerating the cooling efficiency and ensuring that the temperature of the condenser body 1 drops rapidly to the safe operating range.
[0035] Equipped with a circulating water treatment tank 19, it plays a crucial role in regulating cooling water under different load conditions of the synchronous condenser. When the synchronous condenser is operating at a low load and its body temperature is low, the circulating water treatment tank 19 delivers the used cooling water to the cooling plate 2 for cooling circulation, effectively improving the recycling of cooling water, reducing the continuous consumption of new cooling water, and decreasing the frequency and amount of new water replenishment. This demonstrates a significant effect in energy saving and consumption reduction, while also lowering the operating cost of the entire cooling system. Conversely, when the synchronous condenser operates under high load and its body temperature is high... At high temperatures, the No. 1 flow channel 7, which is in close contact with the high-heat-generating part of the camera module, absorbs a large amount of heat and undergoes thermal expansion. The brass material used in the No. 1 flow channel 7 will also experience significant thermal expansion due to the principle of thermal expansion and contraction. The expansion of the No. 1 flow channel 7 is effectively amplified through a lever mechanism, thereby driving the entire cooling system to make adaptive adjustments. The lever mechanism is a precision linkage structure composed of a fixed plate 3, a main rotating shaft 4, a No. 1 connecting plate 5, a No. 1 rotating shaft 6, a No. 2 connecting plate 8, and a No. 2 rotating shaft 9. When the No. 1 flow channel 7 expands, it drives the No. 2 flow channel 10 to move through the lever mechanism. The ripple structure 11 is elongated, expanding the originally relatively compact space. The primary cooling water with strong cooling capacity flows inside the first and second flow channels 7 and 10. The change in the shape of the flow channels directly increases the flow area of the primary cooling water, widening the path and coverage of the high-heat-generating area, and significantly increasing the flow rate per unit time. Simultaneously, while the flow area of the primary cooling water increases, the flow area of the secondary cooling water correspondingly narrows, resulting in a smaller flow area. This dynamic adjustment mechanism allows the cooling device to adjust according to the real-time temperature of the synchronous condenser. By adjusting the temperature, the cooling intensity of high-heat-generating parts is increased in a timely manner, allowing the primary cooling water with stronger cooling capacity to play its full role. This achieves precise distribution of cooling water. The entire adjustment process does not require external power and is achieved entirely by mechanical deformation caused by temperature changes. This ensures the timeliness of cooling intensity adjustment and achieves reasonable distribution of cooling water through precise control of the flow area of primary and secondary cooling water. When the heat generation is high, the focus is on the powerful cooling of primary cooling water, and when the heat generation is low, the focus is on the recycling of secondary cooling water. Ultimately, this achieves a dual optimization of cooling efficiency and resource conservation.
[0036] The technical scope of this invention is not limited to the content described above. Those skilled in the art can make various modifications and variations to the above embodiments without departing from the technical concept of this invention, and all such modifications and variations should fall within the protection scope of this invention.
Claims
1. An intelligent temperature control cycle cooling device for phase modulator, characterized in that, include: The camera body has a cooling plate fixedly connected to its top. A fixing plate is fixedly connected to the inner wall of the cooling plate. A main rotating shaft is movably connected to the bottom of the fixing plate. A first connecting plate is fixedly connected to one side of the main rotating shaft. A first rotating shaft is movably connected to the side of the first connecting plate. A first flow channel is fixedly connected to the bottom of the first rotating shaft. The first flow channel is fixedly connected to the cooling plate and is made of brass. A second connecting plate is fixedly connected to the other side of the main rotating shaft. A second rotating shaft is movably connected to the side of the second connecting plate. A second flow channel is fixedly connected to the top of the second rotating shaft. The top of the second flow channel has a corrugated structure. A circulating water system is provided inside the cooling plate. The second flow channel has an inlet ring fixedly connected to one side, and an inlet pipe fixedly connected to the top of the inlet ring. An outlet ring is fixedly connected to the other side of the second flow channel, and an outlet pipe is fixedly connected to the top of the outlet ring. A circulating water inlet pipe is fixedly connected to one side of the cooling plate, and a circulating water outlet pipe is fixedly connected to the other side of the cooling plate. A circulating water treatment tank is fixedly connected to the top of the outlet pipe. A conveying pipe is fixedly connected to the side of the circulating water treatment tank. A heat dissipation box is fixedly connected to one end of the conveying pipe. A cooling water tank is fixedly connected to the side of the heat dissipation box. A drive pump controller is fixedly connected to the top of the cooling water tank. A circulating water transfer pipe is fixedly connected to the outer wall of the circulating water treatment tank.
2. The intelligent temperature control cycle cooling device for phase modulator according to claim 1, characterized in that: The first flow channel is set at equal intervals with respect to the interior of the cooling plate, and the second flow channel is set at equal intervals with respect to the interior of the cooling plate.
3. The intelligent temperature control cycle cooling device for phase modulator according to claim 1, characterized in that: The corrugated structure is fixedly connected to the cooling plate, and the corrugated structure can expand the internal space by extending its own axial length.
4. The intelligent temperature control cycle cooling device for phase modulator according to claim 1, characterized in that: The inlet ring is connected to the outlet ring through the first flow channel, and the inlet ring is connected to the outlet ring through the second flow channel.
5. The intelligent temperature control circulating cooling device for a synchronous condenser according to claim 1, characterized in that: The inlet pipe is fixedly connected to the cooling water tank, and the circulating water outlet pipe is fixedly connected to the heat dissipation box.
6. The intelligent temperature control circulating cooling device for a synchronous condenser according to claim 1, characterized in that: The circulating water inlet pipe is connected to the circulating water outlet pipe through the circulating water flow channel, and the circulating water treatment tank is used to divert the cooling water after heat absorption.
7. The intelligent temperature control cycle cooling device for phase modulator according to claim 1, characterized in that: A circulating water controller is fixedly connected to the side of the circulating water transfer pipe. The circulating water transfer pipe is fixedly connected to the cooling plate. A guide fan is fixedly connected to one end of the cooling plate.
8. The intelligent temperature control cycle cooling device for phase modulator according to claim 7, characterized in that: The bottom of the circulating water controller is fixedly connected to a device mounting bracket, and the device mounting bracket is fixedly connected to the main body of the synchronous condenser.
9. The intelligent temperature control cycle cooling device for phase modulator according to claim 8, characterized in that: The device mounting bracket is fixedly connected to the circulating water treatment tank, the device mounting bracket is fixedly connected to the heat dissipation box, and the device mounting bracket is fixedly connected to the cooling water tank.
Citation Information
Patent Citations
A cooling circulation device for cooling down a phase regulator
CN116780825B
Phase modifier cooling system with transverse flow filler
CN111463964A
Intelligent temperature control servo motor and working principle thereof
CN112165217A