Scalar-potential mapping of the steady-state magnetosheath model

IF 1.7 4区 地球科学 Q3 ASTRONOMY & ASTROPHYSICS Annales Geophysicae Pub Date : 2024-03-07 DOI:10.5194/angeo-42-79-2024
Yasuhito Narita, Daniel Schmid, Simon Toepfer
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Abstract

Abstract. The steady-state magnetosheath model has various applications for studying the plasma and magnetic field profile around the planetary magnetospheres. In particular, the magnetosheath model is analytically obtained by solving the Laplace equation for parabolic boundaries (bow shock and magnetopause). We address the question, how can we utilize the magnetosheath model by transforming into a more general, empirical, non-parabolic magnetosheath geometry? To achieve the goal, we develop the scalar-potential mapping method which provides a semi-analytic estimate of steady-state flow velocity and magnetic field in the empirical magnetosheath domain. The method makes use of a coordinate transformation from the empirical magnetosheath domain into the parabolic magnetosheath domain and evaluates a set of variables (shell variable and connector variable) to utilize the solutions of the Laplace equation obtained for the parabolic magnetosheath domain. Our model uses two invariants of transformation: the zenith angle within the magnetosheath with respect to the direction to the Sun and the ratio of the distance to the magnetopause and the thickness of magnetosheath along the magnetopause-normal direction. The use of magnetopause-normal direction makes a marked difference from the earlier model construction using the radial direction as reference. The plasma flow and magnetic field can be determined as a function of the upstream condition (flow velocity or magnetic field) in a wide range of zenith angles. The scalar-potential mapping method is computationally inexpensive, using analytic expressions as much as possible, and is applicable to various planetary magnetosheath domains.
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稳态磁鞘模型的标势图
摘要稳态磁鞘模型在研究行星磁层周围的等离子体和磁场剖面方面有多种应用。特别是,磁鞘模型是通过求解抛物线边界(弓形冲击和磁极)的拉普拉斯方程分析得到的。我们要解决的问题是,如何将磁鞘模型转化为更一般的、经验性的、非抛物线磁鞘几何?为了实现这一目标,我们开发了标量-电位映射方法,该方法可对经验磁鞘域中的稳态流速和磁场进行半解析估算。该方法利用从经验磁鞘域到抛物线磁鞘域的坐标变换,并利用抛物线磁鞘域获得的拉普拉斯方程的解来评估一组变量(壳变量和连接器变量)。我们的模型使用两个变换不变式:磁鞘内相对于太阳方向的天顶角,以及磁极面距离与沿磁极面法线方向的磁鞘厚度之比。使用磁极法线方向与早期使用径向作为参考的模型构造有明显不同。等离子体流和磁场可以作为上游条件(流速或磁场)的函数在很大的天顶角范围内确定。标量-电势映射法计算成本低廉,尽可能使用解析表达式,适用于各种行星磁鞘域。
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来源期刊
Annales Geophysicae
Annales Geophysicae 地学-地球科学综合
CiteScore
4.30
自引率
0.00%
发文量
42
审稿时长
2 months
期刊介绍: Annales Geophysicae (ANGEO) is a not-for-profit international multi- and inter-disciplinary scientific open-access journal in the field of solar–terrestrial and planetary sciences. ANGEO publishes original articles and short communications (letters) on research of the Sun–Earth system, including the science of space weather, solar–terrestrial plasma physics, the Earth''s ionosphere and atmosphere, the magnetosphere, and the study of planets and planetary systems, the interaction between the different spheres of a planet, and the interaction across the planetary system. Topics range from space weathering, planetary magnetic field, and planetary interior and surface dynamics to the formation and evolution of planetary systems.
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