论文标题
将改良的Spheromak模型应用于内部冠状质量喷射的模拟
Application of a Modified Spheromak Model to Simulations of Coronal Mass Ejection in the Inner Heliosphere
论文作者
论文摘要
行星际冠状质量弹出(ICME)的磁场以通量绳的形式靠近太阳的磁场确定它们的地球性。因此,需要强大的CME磁通绳模型来执行针对太空天气预测的磁性水力动力学(MHD)模拟。我们提出了一个修改的Spheromak模型,并证明了其适用于CME模拟。在此模型中,可以使用一组输入参数来控制模拟CME的这种模拟CME和螺旋符号的属性。我们提出了一种可靠的技术,用于将具有适当速度的CME引入背景,MHD溶液描述了内层中太阳风。通过一项参数研究,我们发现CME的速度更依赖于其螺状通量而不是环形通量。我们还表明,CME速度随其总能量而增加,使我们控制了其初始速度。我们进一步证明了该模型对CME-CME碰撞模拟的适用性。最后,我们使用该模型模拟2012年7月12日CME,并将1 AU的等离子体属性与观测值进行比较。预测的CME属性与观察数据合理地一致。
The magnetic fields of interplanetary coronal mass ejections (ICMEs), which originate close to the Sun in the form of a flux rope, determine their geoeffectiveness. Therefore, robust flux rope-based models of CMEs are required to perform magnetohydrodynamic (MHD) simulations aimed at space weather predictions. We propose a modified spheromak model and demonstrate its applicability to CME simulations. In this model, such properties of a simulated CME as the poloidal and toroidal magnetic fluxes, and the helicity sign can be controlled with a set of input parameters. We propose a robust technique for introducing CMEs with an appropriate speed into a background, MHD solution describing the solar wind in the inner heliosphere. Through a parametric study, we find that the speed of a CME is much more dependent on its poloidal flux than on the toroidal flux. We also show that the CME speed increases with its total energy, giving us control over its initial speed. We further demonstrate the applicability of this model to simulations of CME-CME collisions. Finally, we use this model to simulate the 12 July 2012 CME and compare the plasma properties at 1 AU with observations. The predicted CME properties agree reasonably with observational data.