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Irradiation-Resistant Miniature Electric Actuator for Nuclear Fusion - China Suppliers & Factory
Environmental temperature ratings
| Environmental temperature rating code | Temperature range (℃) | Vacuum class (Pa, optional) | Radiation resistance (Gy, optional) |
|---|---|---|---|
| VHT1 | -40~+85 | 10-1/10-3/10-5/10-7/10-9 | 1x1000/1x10000/1x105/1x106 |
| VHT2 | -40~+150 | 10-1/10-3/10-5/10-7/10-9 | 1x1000/1x10000/1x105/1x106 |
| VHT3 | -20~+200 | 10-1/10-3/10-5/10-7/10-9 | 1x1000/1x10000/1x105/1x106 |
| VHT4 | -80~+120 | 10-1/10-3/10-5/10-7/10-9 | 1x1000/1x10000/1x105/1x106 |
Vacuum Class Details
- BlankNon-vacuum
- V1Low pressure or vacuum to 10-1 Pa
- V3Low pressure or vacuum to 10-3 Pa
- V5Vacuum to 10-5 Pa
- V7Vacuum to 10-7 Pa
- V9Vacuum to 10-9 Pa
Radiation Resistance Details
- RAD1K1x1000 Gy
- RAD10K1x10000 Gy
- RAD100K1x105 Gy
- RAD1MK1x106 Gy
Description
Nuclear fusion devices, especially tokamak and stellarator type magnetic confinement fusion experimental platforms, will produce extremely strong neutron flux and gamma-ray radiation field during their operation, which poses a serious survival challenge to all electromechanical equipment in and near the device. Organic insulating materials, lubricating grease and magnetic components in ordinary electric actuators will rapidly age, decompose or degrade in this high-energy radiation environment, and usually fail in a few hours to a few days. The radiation-resistant micro-electric actuator can increase the tolerance dose to 1 × 106 Gy through comprehensive radiation-resistant material selection and reinforcement design, which enables the actuator to work stably for a long time in the diagnostic port, divertor area and blanket maintenance system of the fusion reactor, and provides the core motion support for the key data acquisition and remote operation maintenance of the nuclear fusion experiment.
In the diagnostic system of fusion experiments, various physical probes, such as electrostatic probe, neutral particle analyzer and X-ray detector, must be precisely positioned near the plasma boundary in order to obtain accurate key parameters such as density, temperature and confinement time. The radiation-resistant miniature electric actuator is integrated between the diagnostic vacuum flange and the probe, and can perform millimeter-to-micrometer-level stepping advance or rollback operation on the probe during the plasma discharge gap. Thanks to the actuator's minimum step of up to 20 nm, the researchers were able to map the fine structure of the plasma scraped layer with unprecedented resolution. More importantly, during each plasma discharge, the neutron yield in the diagnosis area rises sharply, while the radiation-resistant micro-electric actuator ensures the complete transmission of control signals and the insulation performance of motor windings by virtue of its radiation-resistant ceramic insulation skeleton and metallized packaging structure, and will not misoperate or fall out of step even under high radiation background noise. When the fusion device enters the maintenance cycle, although the radiation level still exceeds the limit of human safety, the remotely controlled maintenance robot must enter the vacuum chamber to carry out maintenance and component replacement tasks. The radiation-resistant micro-electric actuator is used as a key positioning component of the end joint of the mechanical arm or the quick-change interface of the tool to ensure that the end actuator can be aligned with the bolt or the quick connector to be disassembled with high repeatability accuracy. In a typical teleoperation maintenance drill, the radiation-resistant micro-electric actuator drives the vision camera head to perform two-dimensional accurate scanning, providing the operator with high-definition local image feedback, thus guiding the manipulator to complete the fine operation.
In addition to its direct radiation-tolerant capability, the radiation-tolerant micro-electric actuator also has vacuum compatibility, which allows it to be deployed directly in the main vacuum chamber or divertor extraction chamber of a fusion device without becoming an additional source of outgassing or leakage. At the same time, the stability of the actuator in a wide temperature range also enables it to adapt to the local temperature increase of the fusion device wall due to plasma heating. The low wear characteristics of radiation-resistant micro-electric actuators are particularly important in the continuous operation cycle of large scientific devices for several months, which reduces the downtime caused by component replacement, thus improving the utilization efficiency of precious beam time. It is no exaggeration to say that the radiation-resistant micro-electric actuator is a precise bridge between the needs of fusion physical diagnosis and engineering realization. It enables scientists to precisely control every key positioning point inside the device outside the radiation forbidden zone, and provides an indispensable hardware basis for human beings to achieve the great goal of controlled nuclear fusion. With the development of fusion reactors in the direction of longer pulse and higher power in the future, the performance advantages of irradiation-resistant micro-electric actuators will become more prominent, and the technology iteration of irradiation-resistant micro-electric actuators will continue to keep up with the frontier needs of fusion engineering.
In the diagnostic system of fusion experiments, various physical probes, such as electrostatic probe, neutral particle analyzer and X-ray detector, must be precisely positioned near the plasma boundary in order to obtain accurate key parameters such as density, temperature and confinement time. The radiation-resistant miniature electric actuator is integrated between the diagnostic vacuum flange and the probe, and can perform millimeter-to-micrometer-level stepping advance or rollback operation on the probe during the plasma discharge gap. Thanks to the actuator's minimum step of up to 20 nm, the researchers were able to map the fine structure of the plasma scraped layer with unprecedented resolution. More importantly, during each plasma discharge, the neutron yield in the diagnosis area rises sharply, while the radiation-resistant micro-electric actuator ensures the complete transmission of control signals and the insulation performance of motor windings by virtue of its radiation-resistant ceramic insulation skeleton and metallized packaging structure, and will not misoperate or fall out of step even under high radiation background noise. When the fusion device enters the maintenance cycle, although the radiation level still exceeds the limit of human safety, the remotely controlled maintenance robot must enter the vacuum chamber to carry out maintenance and component replacement tasks. The radiation-resistant micro-electric actuator is used as a key positioning component of the end joint of the mechanical arm or the quick-change interface of the tool to ensure that the end actuator can be aligned with the bolt or the quick connector to be disassembled with high repeatability accuracy. In a typical teleoperation maintenance drill, the radiation-resistant micro-electric actuator drives the vision camera head to perform two-dimensional accurate scanning, providing the operator with high-definition local image feedback, thus guiding the manipulator to complete the fine operation.
In addition to its direct radiation-tolerant capability, the radiation-tolerant micro-electric actuator also has vacuum compatibility, which allows it to be deployed directly in the main vacuum chamber or divertor extraction chamber of a fusion device without becoming an additional source of outgassing or leakage. At the same time, the stability of the actuator in a wide temperature range also enables it to adapt to the local temperature increase of the fusion device wall due to plasma heating. The low wear characteristics of radiation-resistant micro-electric actuators are particularly important in the continuous operation cycle of large scientific devices for several months, which reduces the downtime caused by component replacement, thus improving the utilization efficiency of precious beam time. It is no exaggeration to say that the radiation-resistant micro-electric actuator is a precise bridge between the needs of fusion physical diagnosis and engineering realization. It enables scientists to precisely control every key positioning point inside the device outside the radiation forbidden zone, and provides an indispensable hardware basis for human beings to achieve the great goal of controlled nuclear fusion. With the development of fusion reactors in the direction of longer pulse and higher power in the future, the performance advantages of irradiation-resistant micro-electric actuators will become more prominent, and the technology iteration of irradiation-resistant micro-electric actuators will continue to keep up with the frontier needs of fusion engineering.
Frequently Asked Questions
Q: What environmental temperature ratings are available for the actuators?
The actuators are available in four temperature ratings: VHT1 (-40 to +85 ℃), VHT2 (-40 to +150 ℃), VHT3 (-20 to +200 ℃), and VHT4 (-80 to +120 ℃).
Q: What level of radiation resistance can these actuators withstand?
Through comprehensive material selection and reinforcement design, the actuators can tolerate high radiation doses up to 1x106 Gy (RAD1MK).
Q: What vacuum classes are supported by the actuators?
They support various vacuum classes ranging from low pressure (V1, 10-1 Pa) to high vacuum environments (V9, up to 10-9 Pa), as well as non-vacuum applications.
Q: How precise is the stepping operation of the micro-electric actuators?
The actuator features an exceptionally fine minimum step resolution of up to 20 nm, allowing millimeter-to-micrometer-level adjustment accuracy for critical diagnostics.
Q: Why can't ordinary electric actuators be used in fusion devices?
Ordinary actuators contain organic insulating materials, lubricating grease, and magnetic components that rapidly age, decompose, and fail within hours or days when exposed to strong neutron flux and gamma-ray radiation.
Q: How do the actuators maintain signal integrity in high radiation environments?
They utilize a specialized radiation-resistant ceramic insulation skeleton and a metallized packaging structure to secure control signals and maintain motor winding insulation, preventing misoperation.






