论文标题
关于CME磁性结构的磁通绳模型以下30 $ r _ {\ odot} $
On the utility of flux rope models for CME magnetic structure below 30$R_{\odot}$
论文作者
论文摘要
我们对Lynch等人期间产生的三维磁通绳结构进行了全面分析。 (2019)全球尺度,360度流式井喷的冠状冠状质量射出(CME)喷发的磁流失动力学(MHD)模拟。我们创建固定和移动的合成航天器,以通过通量绳CME的不同区域生成MHD变量的时间序列。 Our moving spacecraft trajectories are derived from the spatial coordinates of Parker Solar Probe's past encounters 7 and 9 and future encounter 23. Each synthetic time series through the simulation flux rope ejecta is fit with three different in-situ flux rope models commonly used to characterize the large-scale, coherent magnetic field rotations observed in a significant fraction of interplanetary CMEs (ICMEs).我们介绍了每个原位通量绳模型符合模拟数据,并讨论模型拟合与MHD仿真的磁通绳空间方向,田间强度和旋转,膨胀轮廓以及磁通量含量之间的相似性和差异。我们将原位模型的属性与使用MHD数据计算的经典双极和单极ICME通量绳构型以及更有问题的曲线(例如具有大量径向组件的磁力轴轴取向或具有较大影响参数的径向径向成分的介质)进行了比较。我们发现,经典曲线的原位通量绳拟合结果之间的一般共识,以及有问题的概况结果之间的变化更多。我们还检查了通量绳模型子集的无力假设,并量化了MHD弹出间隔内Lorentz力的性质。我们得出的结论是,原位通量绳模型通常是对场结构的不错的近似,但是与原位通量绳模型相关的所有警告仍然将应用...
We present a comprehensive analysis of the three-dimensional magnetic flux rope structure generated during the Lynch et al. (2019) magnetohydrodynamic (MHD) simulation of a global-scale, 360 degree-wide streamer blowout coronal mass ejection (CME) eruption. We create both fixed and moving synthetic spacecraft to generate time series of the MHD variables through different regions of the flux rope CME. Our moving spacecraft trajectories are derived from the spatial coordinates of Parker Solar Probe's past encounters 7 and 9 and future encounter 23. Each synthetic time series through the simulation flux rope ejecta is fit with three different in-situ flux rope models commonly used to characterize the large-scale, coherent magnetic field rotations observed in a significant fraction of interplanetary CMEs (ICMEs). We present each of the in-situ flux rope model fits to the simulation data and discuss the similarities and differences between the model fits and the MHD simulation's flux rope spatial orientations, field strengths and rotations, expansion profiles, and magnetic flux content. We compare in-situ model properties to those calculated with the MHD data for both classic bipolar and unipolar ICME flux rope configurations as well as more problematic profiles such as those with a significant radial component to the flux rope axis orientation or profiles obtained with large impact parameters. We find general agreement among the in-situ flux rope fitting results for the classic profiles and much more variation among results for the problematic profiles. We also examine the force-free assumption for a subset of the flux rope models and quantify properties of the Lorentz force within MHD ejecta intervals. We conclude that the in-situ flux rope models are generally a decent approximation to the field structure, but all the caveats associated with in-situ flux rope models will still apply...