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Fast ignition induced by shocks generated by laser-accelerated proton beams

机译:激光加速质子束产生的冲击引起的快速点火

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摘要

Fast ignition (FI) of a deuterium-tritium target compressed to a density of 500 g cm(-3) by the energy deposition of two laser-accelerated proton beams is studied by two-dimensional (2D) and three-dimensional (3D) numerical simulations. The first proton beam has an annular radial profile while the second beam is cylindrical. Both beams are characterized by a super-Gaussian profile in radius. A 3D-hydrodynamic study has been performed to identify a way to generate a nearly annular energy deposition by using a discrete number of cylindrical beams. It has been found that the energy deposited by the first proton beam can modify the density and temperature of the plasma before the arrival of the second beam allowing ignition in a zone not directly irradiated by the beams. Thus, differently from the classical FI concept, fuel ignition is not a direct consequence of plasma heating by the particle beam. Indeed, ignition occurs as a result of the synergetic action of the shocks generated by proton energy deposition.
机译:通过二维(2D)和三维(3D)研究了通过两个激光加速质子束的能量沉积将氘-靶压缩到500 g cm(-3)密度的快速点火(FI)数值模拟。第一质子束具有环形的径向轮廓,而第二质子束是圆柱形的。两个光束的特征是半径都具有超高斯分布。已经进行了3D流体动力学研究,以确定通过使用离散数量的圆柱束产生近乎环形的能量沉积的方法。已经发现,由第一质子束沉积的能量可以在第二束束到达之前改变等离子体的密度和温度,从而允许在未被束束直接照射的区域中点火。因此,与经典的FI概念不同,燃料点火不是粒子束等离子体加热的直接结果。实际上,由于质子能量沉积所产生的冲击的协同作用而发生点火。

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