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Impact of non-Maxwellian electron velocity distribution functions on inferred plasma parameters in collective Thomson scattering

机译:非最大威斯电子速度分布功能对集体汤姆森散射推断等离子体参数的影响

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摘要

Optical collective Thomson scattering provides precise density and temperature measurements in numerous plasma-physics experiments. The accuracy of such measurements depends on the core assumption that the underlying electron distribution functions in under-dense laser-produced plasmas are Maxwellian. A statistically based, quantitative analysis of the errors in the measured electron density and temperature is presented when synthetic data calculated using a non-Maxwellian electron distribution function is fit assuming a Maxwellian electron distribution. Such analysis can lead to errors of up to 50% in temperature and 30% in density, in the specific case of super-Gaussian distributions characteristic of inverse bremsstrahlung heating. Including the proper family of non-Maxwellian electron distribution functions, as a fitting parameter, in Thomson-scattering analysis removes the model-dependent errors in the inferred parameters at a minimal cost to the statistical uncertainty. Published under license by AIP Publishing.
机译:光学集体汤姆森散射提供了许多等离子体物理实验中的精确密度和温度测量。这种测量的准确性取决于核心潜在的激光产生的等离子体中的底层电子分布功能是克斯韦尔的核心假设。当使用非MaxWellian电子分布函数计算的合成数据适用于MaxWellian电子分布时,呈现测量电子密度和温度中的误差的定量分析。这种分析可以导致温度高达50%的误差和30%的密度,在逆勃姆斯尔隆加热的超高斯分布特征的特定情况下。包括适当的非最大威尔电子分布函数,作为拟合参数,在汤姆森散射分析中,以统计不确定性的最小成本消除推断参数中的模型相关误差。通过AIP发布在许可证下发布。

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