题目:天体物理等离子体中不同磁化水平的动力学湍流对质子的加速

IF 1.8 4区 物理与天体物理 Q3 ASTRONOMY & ASTROPHYSICS Astrophysics and Space Science Pub Date : 2024-12-20 DOI:10.1007/s10509-024-04391-7
Ji-Hoon Ha
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引用次数: 0

摘要

天体物理等离子体中的湍流将能量转移到动力学尺度,导致质子加速或加热,但从这种湍流中形成的超热质子尚不完全清楚。虽然已经提出了基于Fokker-Planck方程的质子加速模型,通过动力学alfv波浪(KAW)扩散来理解行星际介质中超热质子的原位测量,但使用这种模型的更多研究可以帮助阐明在行星际介质之外的各种天体物理介质中粒子加速的本质。由于KAW湍流的特性取决于等离子体系统的磁化强度和质子分布函数的温度各向异性,因此KAW湍流介导的质子加速也可能受到这些因素的影响。通过求解Fokker-Planck方程,本研究通过KAW湍流在强磁化到弱磁化的天体物理等离子体(由等离子体β (\(\beta =0.01-10\))参数化)和质子温度各向异性的影响来检验质子加速度。特别是,我们的研究结果表明,KAW湍流显著影响低β等离子体(如行星际介质)中超热质子的存在,但在高β环境(如星系间和星系团内介质)中影响较小。此外,在低β环境中,质子温度各向异性显著调节质子在速度空间中的扩散效率。
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Title: proton acceleration by kinetic turbulence across various magnetization levels in astrophysical plasmas

Turbulence in astrophysical plasma transfers energy to kinetic scales, leading to proton acceleration or heating, yet the formation of suprathermal protons from such turbulence is not fully understood. While proton acceleration modeling based on the Fokker-Planck equation with diffusion through kinetic Alfvén waves (KAW) has been proposed to understand in-situ measurements of suprathermal protons in the interplanetary medium, more investigations using such modeling could help clarify the nature of particle acceleration in various astrophysical media beyond the interplanetary medium. Since the characteristics of KAW turbulence depend on the magnetization of the plasma system and the temperature anisotropy of the proton distribution function, proton acceleration mediated by KAW turbulence could also be influenced by these factors. By solving the Fokker-Planck equation, this study examines proton acceleration through KAW turbulence across strongly to weakly magnetized astrophysical plasmas, parameterized by plasma beta (\(\beta =0.01-10\)), and the effects of proton temperature anisotropy. Particularly, our findings indicate that KAW turbulence significantly influences the presence of suprathermal protons in low-beta plasmas, such as the interplanetary medium, but is less impactful in high-beta environments, like the intergalactic and intracluster medium. Additionally, the proton temperature anisotropy significantly modulates the efficiency of proton diffusion in velocity space in low-beta environments.

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来源期刊
Astrophysics and Space Science
Astrophysics and Space Science 地学天文-天文与天体物理
CiteScore
3.40
自引率
5.30%
发文量
106
审稿时长
2-4 weeks
期刊介绍: Astrophysics and Space Science publishes original contributions and invited reviews covering the entire range of astronomy, astrophysics, astrophysical cosmology, planetary and space science and the astrophysical aspects of astrobiology. This includes both observational and theoretical research, the techniques of astronomical instrumentation and data analysis and astronomical space instrumentation. We particularly welcome papers in the general fields of high-energy astrophysics, astrophysical and astrochemical studies of the interstellar medium including star formation, planetary astrophysics, the formation and evolution of galaxies and the evolution of large scale structure in the Universe. Papers in mathematical physics or in general relativity which do not establish clear astrophysical applications will no longer be considered. The journal also publishes topically selected special issues in research fields of particular scientific interest. These consist of both invited reviews and original research papers. Conference proceedings will not be considered. All papers published in the journal are subject to thorough and strict peer-reviewing. Astrophysics and Space Science features short publication times after acceptance and colour printing free of charge.
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