The siphonic energy transfer between hot solar wind and cold martian ionosphere through open magnetic flux rope

IF 6.2 3区 综合性期刊 Q1 Multidisciplinary Fundamental Research Pub Date : 2024-07-01 DOI:10.1016/j.fmre.2022.04.014
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Abstract

A mechanism for energy transfer from the solar wind to the Martian ionosphere through open magnetic flux rope is proposed based on the observations by Mars Atmosphere and Volatile EvolutioN (MAVEN). The satellite was located in the dayside magnetosheath at an altitude of about 700 km above the northern hemisphere. Collisions between the hot solar wind protons and the cold heavy ions/neutrals in the subsolar region can cool the protons and heat the heavy ions. As a result, the magnetosheath protons are siphoned into the ionosphere due to the thermal pressure gradient of protons and the heated heavy ions escape along the open magnetic field lines. Although direct collisions in the lower-altitude region were not detected, this physical process is demonstrated by MAVEN measurements of enhanced proton density, decreased proton temperature and oppositely directed motions of hot and cool protons within the flux rope, which are very different from the observational features of the flux transfer events near the Earth’s magnetopause. This mechanism could universally exist in many contexts where a collisionless plasma region is connected to a collisional plasma region. By reconstructing the magnetic geometry and the cross-section of the flux rope using the Grad-Shafranov technique, the ion loss rates are quantitatively estimated to be on the order of 1023 s1, which is much higher than previously estimated.

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热太阳风和冷火星电离层之间的虹吸能量通过开放的磁通绳传递
根据火星大气与挥发物探测卫星(MAVEN)的观测结果,提出了太阳风通过开放磁通绳向火星电离层传递能量的机制。该卫星位于北半球上空约 700 公里处的日侧磁鞘中。太阳风热质子与太阳系下区域的冷重离子/中性粒子之间的碰撞会冷却质子并加热重离子。结果,由于质子的热压梯度,磁鞘质子被虹吸到电离层,而被加热的重离子则沿着开放的磁场线逃逸。虽然没有探测到低空区域的直接碰撞,但 MAVEN 测量到的质子密度增大、质子温度降低以及通量绳内冷热质子方向相反的运动证明了这一物理过程,这与地球磁极附近通量转移事件的观测特征截然不同。这种机制可能普遍存在于无碰撞等离子体区域与碰撞等离子体区域相连接的许多环境中。通过使用 Grad-Shafranov 技术重建磁性几何和通量绳横截面,定量估算出离子损耗率约为 1023 s-1,远高于之前的估算。
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来源期刊
Fundamental Research
Fundamental Research Multidisciplinary-Multidisciplinary
CiteScore
4.00
自引率
1.60%
发文量
294
审稿时长
79 days
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