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Spatial Structure And Collisionless Electron Heating In Balmer-dominated Shocks

机译:Balmer控制的冲击中的空间结构和无碰撞电子加热

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摘要

Balmer-dominated shocks in supernova remnants (SNRs) produce strong hydrogen lines with a two-component profile composed of a narrow contribution from cold upstream hydrogen atoms and a broad contribution from hydrogen atoms that have undergone charge transfer reactions with hot protons. Observations of emission lines from edgewise shocks in SNRs can constrain the gas velocity and collisionless electron heating at the shock front. Downstream hydrogen atoms engage in charge transfer, excitation, and ionization reactions, defining an interaction region called the shock transition zone. The properties of hot hydrogen atoms produced by charge transfers (called broad neutrals) are critical for accurately calculating the structure and radiation from the shock transition zone. This paper is the third in a series describing the kinetic, fluid, and emission properties of Balmer-dominated shocks, and it is the first to properly treat the effect of broad neutral kinetics on the shock transition zone structure. We use our models to extract shock parameters from observations of Balmer-dominated SNRs. We find that the inferred shock velocities and electron temperatures are lower than those of previous calculations by < 10% for v_s < 1500 km s~(-1) and by 10%-30% for v_s > 1500 km s~(-1). This effect is primarily due to the fact that excitation by proton collisions and charge transfer to excited levels favor the high-speed part of the neutral hydrogen velocity distribution. Our results have a strong dependence on the ratio of the electron to proton temperatures, β = T_e/T_p, which allows us to construct a relation β(v_s) between the temperature ratio and the shock velocity. We compare our calculations to previous results by Ghavamian and coworkers.
机译:超新星遗留物(SNR)中由Balmer为主的冲击产生的氢线很强,具有两个分量的分布,其中冷上游氢原子的贡献很小,而热质子经过电荷转移反应的氢原子的贡献很大。在SNRs中观察到来自边沿冲击的发射线会限制气体速度和冲击前沿的无碰撞电子加热。下游氢原子参与电荷转移,激发和电离反应,从而定义了一个相互作用区域,称为激波跃迁区。电荷转移产生的热氢原子的性质(称为宽中性)对于准确计算冲击过渡区的结构和辐射至关重要。本文是描述巴尔默支配冲击的动力学,流体和发射特性的系列文章中的第三篇,并且是第一个适当处理宽泛中性动力学对冲击过渡带结构影响的论文。我们使用我们的模型从Balmer为主的SNR的观测值中提取冲击参数。我们发现推定的冲击速度和电子温度比以前的计算结果低了v_s <1500 km s〜(-1)的<10%和v_s> 1500 km s〜(-1)的10%-30% 。这种影响主要是由于以下事实:质子碰撞引起的激发和电荷转移至激发能级偏爱中性氢速度分布的高速部分。我们的结果强烈依赖于电子与质子温度之比β= T_e / T_p,这使我们能够在温度比与冲击速度之间建立关系β(v_s)。我们将我们的计算结果与Ghavamian及其同事的先前结果进行了比较。

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