Acceleration of solar wind particles due to inertial Alfvén waves

Kiran Batool, Imran Ali Khan, M. Shamir, Abdul Kabir, Syed Ayaz
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Abstract

Gaining an understanding of the effects and dynamics of the solar wind is crucial for the study of space weather, Earth’s magnetosphere, spacecraft protection, the dynamics of the Solar System, and various other aspects. Observations show that Alfvén waves effectively transfer energy to resonant particles. This study demonstrates how inertial Alfvén waves deliver their energy to resonant plasma particles in different solar environments under certain conditions. The analysis shows that inertial Alfvén waves experience more rapid damping with increasing parallel wavenumber, ambient magnetic field strength, and particle number density, coupled with a decrease in temperature. The rate of energy transfer to resonant particles intensifies with higher temperatures and reduced parallel wavenumber and particle number density. Particles with higher initial velocities actively participate in Landau damping, especially in regions with a stronger ambient magnetic field.
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惯性阿尔费文波对太阳风粒子的加速作用
了解太阳风的效应和动力学对于研究空间天气、地球磁层、航天器保护、太阳系动力学以及其他各个方面都至关重要。观测表明,阿尔芬波能有效地将能量传递给共振粒子。本研究展示了在特定条件下,惯性阿尔芬波如何将能量传递给不同太阳环境中的共振等离子体粒子。分析表明,随着平行波数、环境磁场强度和粒子数量密度的增加,再加上温度的降低,惯性阿尔芬波会经历更快的阻尼。随着温度升高、平行波数和粒子数密度减小,共振粒子的能量传递速度也会加快。初始速度较高的粒子会积极参与朗道阻尼,尤其是在环境磁场较强的区域。
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