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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Temporal and radial variation of the solar wind temperature-speed relationship
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Temporal and radial variation of the solar wind temperature-speed relationship

机译:时间和太阳风的径向变异temperature-speed关系

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The solar wind temperature (T) and speed (V) are generally well correlated at ~1 AU, except in Interplanetary Coronal Mass Ejections where this correlation breaks down. We perform a comprehensive analysis of both the temporal and radial variation in the temperature-speed (T-V) relationship of the non-transient wind, and our analysis provides insight into both the causes of the T-V relationship and the sources of the temperature variability. Often at 1 AU the speed-temperature relationship is well represented by a single linear fit over a speed range spanning both the slow and fast wind. However, at times the fast wind from coronal holes can have a different T-V relationship than the slow wind. A good example of this was in 2003 when there was a very large and long-lived outward magnetic polarity coronal hole at low latitudes that emitted wind with speeds as fast as a polar coronal hole. The long-lived nature of the hole made it possible to clearly distinguish that some holes can have a different T-Vrelationship. In an earlier ACE study, we found that both the compressions and rarefactions T-V curves are linear, but the compression curve is shifted to higher temperatures. By separating compressions and rarefactions prior to determining the radial profiles of the solar wind parameters, the importance of dynamic interactions on the radial evolution of the solar wind parameters is revealed. Although the T-V relationship at 1 AU is often well described by a single linear curve, we find that the T-Vrelationship continually evolves with distance. Beyond ~ 2.5 AU the differences between the compressions and rarefactions are quite significant and affect the shape of the overall T-V distribution to the point that a simple linear fit no longer describes the distribution well. Since additional heating of the ambient solar wind outside of interaction regions can be associated with Alfvénic fluctuations and the turbulent energy cascade, we also estimate the heating rate radial profile from the solar wind speed and temperature measurements.
机译:太阳风温度(T)和速度(V)一般相关~ 1 AU,除了星际日冕物质抛射的地方相关性分解。时间和综合分析径向变异temperature-speed(过程)非暂时性的风,和我们的关系分析的原因提供了洞察过程关系的来源温度的变化。speed-temperature关系很好表示为一个线性的适应速度风范围跨越的快与慢。然而,有时快风从日冕孔可以有不同的过程比的关系缓慢的风。当有一个非常大的和长寿外磁极性低日冕洞纬度,发出风的速度一样快作为一个极日冕洞。这个洞可以明显区分一些漏洞可以有不同T-Vrelationship。发现按压和稀疏过程曲线是线性的,但压缩曲线转移到更高的温度。按压和稀疏之前确定太阳风的径向配置文件参数,动态的重要性相互作用在径向上太阳能的进化风参数。1非盟的关系往往是所描述的一个单一的线性曲线,我们发现T-Vrelationship不断发展与距离。按压和稀疏相当重大的,影响整体的形状过程,一个简单的分布线性适应不再描述了分布好。太阳风之外的交互区域与Alfvenic波动和相关湍流能量级联,我们也估计从太阳风加热速度径向剖面速度和温度测量。

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