Evidence of a turbulent ExB mixing avalanche mechanism of gas breakdown in strongly magnetized systems

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作者
Min-Gu Yoo
Jeongwon Lee
Young-Gi Kim
Jayhyun Kim
Francesco Maviglia
Adrianus C. C. Sips
Hyun-Tae Kim
Taik Soo Hahm
Yong-Seok Hwang
Hae June Lee
Yong-Su Na
机构
[1] Seoul National University,Department of Nuclear Engineering
[2] National Fusion Research Institute,Department of Electrical Engineering
[3] Consorzio CREATE,undefined
[4] Univ. Napoli Federico II - DIETI,undefined
[5] JET-EFDA,undefined
[6] Culham Science Centre,undefined
[7] European Commission,undefined
[8] Pusan National University,undefined
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摘要
Although gas breakdown phenomena have been intensively studied over 100 years, the breakdown mechanism in a strongly magnetized system, such as tokamak, has been still obscured due to complex electromagnetic topologies. There has been a widespread misconception that the conventional breakdown model of the unmagnetized system can be directly applied to the strongly magnetized system. However, we found clear evidence that existing theories cannot explain the experimental results. Here, we demonstrate the underlying mechanism of gas breakdown in tokamaks, a turbulent ExB mixing avalanche, which systematically considers multi-dimensional plasma dynamics in the complex electromagnetic topology. This mechanism clearly elucidates the experiments by identifying crucial roles of self-electric fields produced by space-charge that decrease the plasma density growth rate and cause a dominant transport via ExB drifts. A comprehensive understanding of plasma dynamics in complex electromagnetic topology provides general design strategy for robust breakdown scenarios in a tokamak fusion reactor.
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