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First observation of pT fusion in JET tritium plasmas with ICRF heating of protons

M.J. Mantsinen, O.N. Jarvis, V.G. Kiptily, S.E. Sharapov, B. Alper, L.-G. Eriksson, A. Gondhalekar, R.F. Heeter, D.C. McDonald2001年被引用 14Nuclear FusionIF 3出版社

High power ICRF heating of a hydrogen minority ion species in JET tritium plasmas has generated a total neutron rate that is about 40% larger than the 14 MeV neutron rate originating from fusion reactions between bulk tritium ions and deuterium minority ions. The T(p,n)3He fusion reaction, caused by ICRF accelerated protons, is identified as a source for producing the excess neutron emission. This reaction is endothermic and has a proton energy threshold of about 1 MeV and a peak cross-section at about 3.0 MeV. The presence of protons with such high energies is detected in gamma ray and high energy neutral particle analyser measurements and is also confirmed by ICRF modelling with the PION code. The fast proton energy content and the pT fusion reactivity as simulated by the PION code are compared with the experimental measurements when classical slowing down and confinement of ICRF accelerated protons are assumed in the simulations.

日本語訳

高パワーICRF加熱をJETトリチウムプラズマ中の水素マイノリティイオン種に対して行った結果、全中性子率は、バルクのトリチウムイオンと重水素マイノリティイオン間の核融合反応に由来する14MeV中性子率よりも約40%大きくなった。ICRFで加速された陽子によって引き起こされるT(p,n)3He核融合反応が、過剰な中性子放出の源として同定された。この反応は吸熱反応であり、陽子エネルギー閾値は約1MeV、ピーク断面積は約3.0MeVで生じる。このような高エネルギーの陽子の存在は、ガンマ線および高エネルギー中性粒子分析装置の測定で検出され、PIONコードを用いたICRFモデリングによっても確認された。シミュレーションにおいてICRF加速陽子の古典的な減速と閉じ込めを仮定した場合の高速陽子エネルギー含有量およびpT核融合反応率は、実験測定値と比較された。

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jet高精度(タイトル一致)

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JETTritiumIon cyclotron heating
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