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Simulations of micrometeoroid interactions with the Earth atmosphere

机译:微流星体与地球大气相互作用的模拟

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Aims. Micrometeoroids (cosmic dust with size between a few μm and ~1 mm) dominate the annual extraterrestrial mass flux to the Earth. We investigate the range of physical processes occurring when micrometeoroids traverse the atmosphere. We compute the time (and altitude) dependent mass loss, energy balance, and dynamics to identify which processes determine their survival for a range of entry conditions. Methods. We develop a general numerical model for the micrometeoroid-atmosphere interaction. The equations of motion, energy, and mass balance are simultaneously solved for different entry conditions (e.g. initial radii, incident speeds and angles). Several different physical processes are taken into account in the equation of energy and in the mass balance, in order to understand their relative roles and evolution during the micrometeoroid-atmosphere interaction. In particular, to analyze the micrometeoroid thermal history we include in the energy balance: collisions with atmospheric particles, micrometeoroid radiation emission, evaporation, melting, sputtering and kinetic energy of the ablated mass. Results. Low entry velocities and grazing incidence angles favor micrometeoroid survival. Among those that survive, our model distinguishes (1) micrometeoroids who reach the melting temperature and for which melting is the most effective mass loss mechanism, and (2) micrometeoroids for which ablation due to evaporation causes most of the the mass loss. Melting is the most effective cooling mechanism. Sputtering-induced mass loss is negligible.
机译:目的微型流星体(大小在几微米至1毫米之间的宇宙尘埃)主导着每年向地球的外星质量通量。我们研究了微流星体穿越大气时发生的物理过程的范围。我们计算时间(和高度)相关的质量损失,能量平衡和动力学,以识别哪些过程决定了它们在一定范围的进入条件下的寿命。方法。我们为微流星体-大气相互作用开发了一个通用的数值模型。针对不同的进入条件(例如初始半径,入射速度和角度)同时求解运动,能量和质量平衡方程。为了了解它们在微流星体-大气相互作用中的相对作用和演化,在能量方程和质量平衡中考虑了几种不同的物理过程。特别是,为了分析微流星体的热历史,我们将其包括在能量平衡中:与大气粒子的碰撞,微流星体的辐射发射,蒸发,熔化,溅射和被烧蚀物质的动能。结果。低进入速度和掠入射角有利于微流星体的生存。在幸存的那些中,我们的模型区分了(1)达到熔化温度且熔化是最有效的质量损失机理的微流变体,和(2)由于蒸发引起的烧蚀导致大部分质量流失的微流变体。熔化是最有效的冷却机制。溅射引起的质量损失可以忽略不计。

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