首页> 外文期刊>The Astrophysical Journal. Letters >Reynolds Number and Intermittency in the Expanding Solar Wind: Predictions Based on Voyager Observations
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Reynolds Number and Intermittency in the Expanding Solar Wind: Predictions Based on Voyager Observations

机译:扩展太阳风中的雷诺数和间歇性:基于旅行者观察的预测

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摘要

The large-scale features of the solar wind are examined in order to predict small-scale features of turbulence in unexplored regions of the heliosphere. The strategy is to examine how system size, or effective Reynolds number Re, varies, and then how this quantity influences observable statistical properties, including intermittency properties of solar wind turbulence. The expectation based on similar hydrodynamics scalings is that the kurtosis, of the small-scale magnetic field increments, will increase with increasing Re. Simple theoretical arguments as well as Voyager observations indicate that effective interplanetary turbulence Re decreases with increasing heliocentric distance. The decrease of scale-dependent magnetic increment kurtosis with increasing heliocentric distance is verified using a newly refined Voyager magnetic field data set. We argue that these scalings continue to much smaller heliocentric distances approaching the Alfvén critical region, motivating a prediction that the Parker Solar Probe spacecraft will observe increased magnetic field intermittency, stronger current sheets, and more localized dissipation, as its perihelion approaches the critical regions. Similar arguments should be applicable to turbulence in other expanding astrophysical plasmas.
机译:对太阳风的大尺度特征进行了研究,以便预测太阳层未探测区域的小尺度湍流特征。该策略是检查系统大小或有效雷诺数Re如何变化,以及该数量如何影响可观察的统计特性,包括太阳风湍流的间歇性特性。基于类似的流体动力学标度,人们期望小尺度磁场增量的峰度将随着Re的增加而增加。简单的理论论证和旅行者号的观测表明,有效的行星际湍流随着日心距离的增加而减小。利用最新改进的Voyager磁场数据集,验证了尺度相关的磁增量峰度随日心距的增加而减小。我们认为,在接近阿尔弗雷德临界区时,这些尺度将继续缩小到更小的日心距离,这促使人们预测,随着近日点接近临界区,帕克太阳探测器航天器将观测到更强的磁场间歇性、更强的电流片和更局部化的耗散。类似的论点也适用于其他膨胀的天体物理等离子体中的湍流。

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