Intensive wind-water mixed heat dissipation type high-voltage frequency converter
The intensive wind-water hybrid heat dissipation high-voltage inverter combines air cooling and water cooling to solve the heat dissipation problem of high-voltage inverter in harsh environments, achieves efficient and reliable heat dissipation effect and convenient installation and maintenance, and reduces costs and floor space.
Patent Information
- Application Number
- CN202422522842.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-18
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2034-10-18
AI Technical Summary
The heat dissipation performance of existing high-voltage inverters is reduced in environments with high dust, temperature and humidity, which can easily lead to equipment failure. In addition, water-cooled inverters are expensive, large in size and complex to install and maintain.
It adopts an intensive wind-water hybrid cooling design, combining air cooling and water cooling. Driven by the top fan, cold air flows through the power unit and transformer and is converted into hot air. The air enters the heat exchanger to exchange heat with the cooling water, forming a closed cycle. The power unit and transformer still use air cooling.
It achieves high reliability, long service life, strong environmental adaptability, high heat dissipation efficiency, compact structure, low cost, easy installation and maintenance, and avoids the risk of cooling water leakage.
Smart Images

Figure CN223379476U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of high-voltage and high-power frequency converters, in particular to an intensive wind-water hybrid heat dissipation type high-voltage frequency converter. Background Art
[0002] High-voltage inverters are widely used in industries such as petrochemicals, municipal water supply, steel and metallurgy, electric power, and cement manufacturing. With the development of industrial automation, high-voltage inverters are playing an increasingly important role in industrial production, and their environmental adaptability directly affects the stable operation and production efficiency of equipment.
[0003] High-voltage inverters generally use two cooling methods: forced air cooling and water cooling. Forced air cooling offers advantages such as low cost, easy installation, and convenient maintenance. However, it is susceptible to environmental influences, particularly in dusty, high-temperature, and high-humidity environments, which can lead to reduced heat dissipation and insulation performance, and even equipment failure. Conventional water-cooled inverters offer advantages such as high heat dissipation efficiency, low noise, and strong environmental adaptability. However, they also come with high cost, large size, complex installation and maintenance, and the risk of leakage at the connection between the unit and the water pipe. Utility Model Content
[0004] The purpose of the utility model is to provide an intensive wind-water hybrid heat dissipation high-voltage inverter, which combines the advantages of forced air-cooled inverter and water-cooled inverter. It has the advantages of easy installation and convenient maintenance of air-cooled inverter, and the advantage of strong environmental adaptability of water-cooled inverter. At the same time, it has the advantages of small size, low cost, high integration, etc., and solves the problems that forced air-cooled inverter is greatly affected by the external environment and water-cooled inverter is high cost, large size and complicated installation and maintenance.
[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions:
[0006] An intensive air-water hybrid heat dissipation high-voltage inverter includes a control system, air ducts, fans, a heat dissipation system, a phase-shifting transformer, and a power unit. The power unit and phase-shifting transformer are cooled by air, while the heat dissipation system uses water-cooling for heat exchange. Driven by the top fan, cold air enters the power unit in front of the cabinet and the phase-shifting transformer in back of the cabinet in sequence, where it is converted into hot air. The hot air flows through the top air duct into the heat exchanger in the heat dissipation system, where it completes heat exchange with the cooling water flowing through the heat exchanger. After the heat exchange, the cold air flows back to the power unit in front of the cabinet.
[0007] The control system, fan, cooling system, phase-shifting transformer, and power unit are all installed in a Fengshui mixed cooling high-voltage inverter cabinet, which has a closed space.
[0008] The heat dissipation system is arranged on one side of the cabinet body, and a cooling water interface is provided on the side wall of one side of the cabinet body. The heat dissipation system includes a heat exchanger, and the cooling water interface is respectively connected to the water inlet pipe and the water outlet pipe of the heat exchanger.
[0009] The air duct is arranged at the top of the cabinet, and a fan is arranged inside the air duct.
[0010] The control system is arranged in an independent box, and the independent box is installed into the other side of the cabinet through a slide.
[0011] The power unit is a drawer-type power unit. A quick socket is provided at the rear of the power unit for connecting to the secondary winding of the phase-shifting transformer. An air-cooled radiator is provided inside the power unit. The capacitor in the power unit is arranged on one side of the air-cooled radiator. The power device and temperature switch are arranged on the air-cooled radiator. The temperature switch is used for over-temperature protection of the power device.
[0012] The phase-shifting transformer uses a wind tube to dissipate heat. The wind tube is wrapped around the outside of the transformer winding to form an air duct. Cold air flows through the wind tube to dissipate heat for the transformer winding.
[0013] The power unit is arranged at the front end of the phase-shifting transformer.
[0014] The control system includes a frequency converter controller and a touch screen. The frequency converter controller and the touch screen are connected via a port. The chips of the frequency converter controller are DSP and FPGA.
[0015] The power devices include IGBTs and rectifier bridges. The rectifier bridge is used to convert the AC power input from the secondary winding of the phase-shifting transformer into DC power, and the IGBT is used to convert the DC power after capacitor filtering into AC power again.
[0016] Compared with the prior art, the beneficial effects of the present invention are:
[0017] 1. The Fengshui mixed heat dissipation high-voltage inverter cabinet has a closed space and does not require external air inlets and exhaust vents. It can prevent external air and dust from entering the cabinet and affecting equipment operation. It has high reliability, long service life, and strong environmental adaptability.
[0018] 2. The cabinet adopts a self-circulating heat dissipation method. Driven by the centrifugal fan on the top of the inverter, cold air flows through the power unit and transformer in the cabinet to dissipate heat and then converts into hot air. The hot air enters the heat dissipation system and flows through the internal heat exchanger, exchanges heat with the external cooling water, and is converted back into cold air to complete the heat exchange. Because external cooling water participates in the heat exchange, compared with traditional forced air-cooled inverters, it has the advantages of high heat dissipation efficiency and constant and controllable temperature. Because the power unit and transformer still use forced air cooling for heat dissipation, compared with traditional water-cooled inverters, it has the advantages of simple structure, convenient maintenance and low cost. At the same time, there is no risk of cooling water leakage around the power unit and transformer, and the reliability is higher.
[0019] 3. The Feng Shui hybrid heat dissipation high-voltage inverter adopts an intensive integrated structure. The power unit, phase-shifting transformer, control system, and heat dissipation system are all integrated in one cabinet. It has the advantages of compact structure, small footprint, and simple installation. It is also convenient for equipment storage, packaging, and transportation. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is the main view of an intensive Feng Shui hybrid heat dissipation high-voltage inverter.
[0021] Figure 2 This is a side view of an intensive Feng Shui hybrid cooling high-voltage inverter with the side panels removed.
[0022] Figure 3 This is the main view of the intensive Feng Shui hybrid heat dissipation high-voltage inverter with part of the front door removed.
[0023] Figure 4 It is a side sectional view of an intensive Feng Shui hybrid heat dissipation high-voltage inverter.
[0024] Figure 5 It is an isometric view of the control system.
[0025] Figure 6 This is the expanded view of the control system cabinet.
[0026] Figure 7 This is an isometric view of the power unit with the connecting copper busbar removed.
[0027] Figure 8 is an isometric view of a phase-shifting transformer.
[0028] Figure 9 This is a schematic diagram of the interior of the cooling system with the front door removed.
[0029] Figure 10 This is the main view of the heat dissipation principle of the intensive Feng Shui mixed heat dissipation high-voltage inverter.
[0030] Figure 11 It is a side view of the heat dissipation principle of an intensive Feng Shui hybrid heat dissipation high-voltage inverter.
[0031] In the figure: 1-cabinet 2-control system 3-air duct 4-fan 5-cooling system 6-phase-shifting transformer 7-power unit 8-cooling water interface 9-box 10-inverter controller 11-power box 12-UPS power supply 13-digital signal control module 14-quick socket 15-handle 16-capacitor 17-air-cooling radiator 18-power device 19-temperature switch 20-air cylinder 21-heat exchanger 22-pressure gauge 23-display screen. DETAILED DESCRIPTION
[0032] The present invention will be described in detail below with reference to the accompanying drawings. However, it should be noted that the implementation of the present invention is not limited to the following embodiments.
[0033] The following examples are implemented under the premise of the technical solution of the present utility model, and provide detailed implementation methods and specific operating processes, but the scope of protection of the present utility model is not limited to the following examples. The methods used in the following examples are conventional methods unless otherwise specified.
[0034] [Example 1]
[0035] An intensive wind and water mixed heat dissipation high-voltage inverter, including a control system 2, an air duct 3, a fan 4, a heat dissipation system 5, a phase-shifting transformer 6, and a power unit 7. Figure 1-4 ,See Figure 9-11 The power unit 7 and the phase-shifting transformer 6 are cooled by air, and the heat dissipation system 5 is cooled by water. Driven by the top fan 4, the cold air enters the power unit 7 in front of the cabinet and the phase-shifting transformer 6 behind the cabinet in turn and is converted into hot air. The hot air flows through the top air duct 3 and enters the heat exchanger 21 in the heat dissipation system 5, and completes heat exchange with the cooling water flowing through the heat exchanger 21. The cold air after heat exchange flows back to the air inlet of the power unit 7 in front of the cabinet, realizing the closed circulation of the cooling air inside the high-voltage inverter and completing heat exchange with the external cooling water. Figure 10 、 11 middle,
[0036] Indicates cold air, Indicates cold air, Indicates cooling water inflow. Indicates cooling water return; the high-voltage inverter does not require external air inlets and exhaust vents and adopts a fully enclosed structure. External air and dust cannot enter the inverter and have no impact on equipment operation; the control system 2, air duct 3, fan 4, cooling system 5, phase-shifting transformer 6, and power unit 7 are all installed in a high-voltage inverter cabinet 1 with air-water hybrid cooling. It adopts an intensive integrated design, with a compact structure, small footprint, and easy installation and maintenance.
[0037] The cooling system 5 is arranged on the right side of the cabinet 1, and a cooling water interface 8 is provided on the side wall of one side of the cabinet 1. The cooling system 5 includes a heat exchanger 21, a pressure gauge 22, and a display screen 23. The pressure gauge 22 is used to detect the operating status of the cooling system 5, and the display screen 23 is used for human-computer interaction and equipment status display. The cooling water interface 8 is respectively connected to the water inlet pipe and the water outlet pipe of the heat exchanger 21; the air duct 3 is arranged at the top of the cabinet 1, and a fan 4 is provided inside the air duct 3; see Figure 5 , Figure 6 , the control system 2 is arranged in an independent box 9, which is installed in the upper left part of the cabinet 1 through a slide. The control system 2 can be independently assembled and wired outside the cabinet 1. The box 9 of the control system 2 is a deployable structure, which is convenient for the installation and wiring of internal electrical components; the control system 2 includes a frequency converter control machine 10, a digital signal control module 13, a power box 11, and a UPS power supply 12. The power box 11 and the UPS power supply 12 are used to provide working power to the control system 2. The frequency converter control machine 10 is connected to the digital signal control module 13 through a port. The DI module of the digital signal control module 13 receives the operating status signal of the fan 4 and sends it to the frequency converter control machine 10 through the optical fiber port for status monitoring. The DO module of the digital signal control module 13 converts the received drive instruction into a DO signal to drive the fan 4 to start and stop; the chip in the frequency converter control machine 10 and the digital signal control module 13 is CPLD, FPGA, DSP, or single-chip microcomputer; see Figure 7 The power unit 7 is a drawer-type power unit 7. A quick socket 14 is provided at the rear of the power unit 7 for connecting to the secondary winding of the phase-shifting transformer of the inverter. A handle 15 is provided at the front of the power unit 7 for easy removal and installation of the power unit 7. An air-cooled radiator 17 is provided inside the power unit 7. The capacitor 16 in the power unit 7 is arranged on one side of the air-cooled radiator 17 to facilitate the installation and connection of the capacitor 16. A power device 18 and a temperature switch 19 are arranged on the air-cooled radiator 17. The temperature switch 19 is used for over-temperature protection of the power device 18. Cold air flows through the air-cooled radiator 17 to dissipate heat for the working power device. The power device 18 includes an IGBT and a rectifier bridge; see Figure 8 The phase-shifting transformer 6 uses a wind tube 20 to dissipate heat. The wind tube 20 is wrapped around the outside of the transformer winding to form an air duct 3. Cold air flows through the wind tube 20 to dissipate heat for the transformer winding.
[0038] The utility model discloses a wind and water mixed heat dissipation type high-voltage inverter cabinet with a closed space, which does not need to be configured with external air inlet and exhaust vents, and can prevent external air and dust from entering the cabinet to affect the operation of the equipment. It has the advantages of high reliability, long service life, and strong environmental adaptability. It adopts a self-circulating heat dissipation method in the cabinet. Driven by the centrifugal fan on the top of the inverter, the cold air flows through the power unit and transformer in the cabinet to dissipate heat and then converts into hot air. The hot air enters the heat dissipation system and flows through the internal heat exchanger to exchange heat with the cooling water supplied from the outside and then converts into cold air again to complete the heat exchange. Due to the participation of external cooling water, Compared with traditional forced air-cooled inverters, this inverter has the advantages of high heat dissipation efficiency and constant and controllable temperature. Since the power unit and transformer still use forced air cooling for heat dissipation, compared with traditional water-cooled inverters, it has the advantages of simple structure, convenient maintenance and low cost. At the same time, there is no risk of cooling water leakage around the power unit and transformer, and the reliability is higher. The air-water hybrid heat dissipation high-voltage inverter adopts an intensive integrated structure. The power unit, phase-shifting transformer, control system, and heat dissipation system are all integrated in a cabinet, which has the advantages of compact structure, small footprint, and simple installation. It is also convenient for equipment storage, packaging and transportation.
Claims
1. An intensive Feng Shui hybrid heat dissipation type high voltage inverter, characterized in that: It includes a control system, air ducts, fans, a cooling system, a phase-shifting transformer, and a power unit. The power unit and phase-shifting transformer are cooled by air, while the cooling system uses water-cooling for heat exchange. Driven by the top fan, cold air enters the power unit in front of the cabinet and the phase-shifting transformer in back of the cabinet in turn, and is converted into hot air. The hot air flows through the top air duct into the heat exchanger in the cooling system, where it completes heat exchange with the cooling water flowing through the heat exchanger. After the heat exchange, the cold air flows back to the power unit in front of the cabinet. The control system, fan, cooling system, phase-shifting transformer, and power unit are all installed in a Fengshui mixed cooling high-voltage inverter cabinet, which has a closed space.
2. The intensive Feng Shui hybrid heat dissipation high-voltage inverter according to claim 1, characterized in that: The heat dissipation system is arranged on one side of the cabinet, and a cooling water interface is provided on the side wall of one side of the cabinet. The heat dissipation system includes a heat exchanger, and the cooling water interface is respectively connected to the water inlet pipe and the water outlet pipe of the heat exchanger.
3. The intensive Feng Shui hybrid heat dissipation high voltage inverter according to claim 1, characterized in that: The air duct is arranged at the top of the cabinet, and a fan is arranged inside the air duct.
4. The intensive Feng Shui hybrid heat dissipation high-voltage inverter according to claim 1, characterized in that: The control system is arranged in an independent box, and the independent box is installed into the other side of the cabinet through a slide.
5. The intensive Feng Shui hybrid heat dissipation type high voltage inverter according to claim 1, characterized in that: The power unit is a drawer-type power unit. A quick socket is provided at the rear of the power unit for connecting to the secondary winding of the phase-shifting transformer. An air-cooled radiator is provided inside the power unit. The capacitor in the power unit is arranged on one side of the air-cooled radiator. The power device and the temperature switch are arranged on the air-cooled radiator. The temperature switch is used for over-temperature protection of the power device.
6. The intensive Feng Shui hybrid heat dissipation type high voltage inverter according to claim 1, characterized in that: The phase-shifting transformer adopts an air duct for heat dissipation. The air duct is covered on the outside of the transformer winding to form an air duct. Cold air flows through the air duct to dissipate heat for the transformer winding.
7. The intensive wind and water hybrid heat dissipation high-voltage inverter according to claim 1, characterized in that: The power unit is arranged at the front end of the phase-shifting transformer.
8. The intensive Feng Shui hybrid heat dissipation high voltage inverter according to claim 4, characterized in that: The control system comprises a frequency converter controller and a touch screen. The frequency converter controller and the touch screen are connected via a port. The chips of the frequency converter controller are DSP and FPGA.
9. The intensive wind and water hybrid heat dissipation high-voltage inverter according to claim 5, characterized in that: The power device includes an IGBT and a rectifier bridge. The rectifier bridge is used to convert the AC power input from the secondary winding of the phase-shifting transformer into DC power. The IGBT is used to convert the DC power after capacitor filtering into AC power again.