论文标题
彩流器和伪流的动态耦合到Heliosphere
The Dynamic Coupling of Streamers and Pseudostreamers to the Heliosphere
论文作者
论文摘要
人们普遍认为,慢速太阳风是由于彩流器和伪流式剂在开放式冠状磁通量的相互作用而产生的。我们使用3维磁水动力学模拟来确定由光电流动驱动的开放式相互作用的详细结构和动力学。光球磁场模型包括一个全局偶极子,从而产生了流媒体,并带有较大的寄生极性区域,从而产生了一个伪流的机,将卫星冠状孔与主极孔分开。我们的数值结构域扩展到30个太阳半径,并包括等温太阳风,因此可以严格计算电晕和地球球之间的耦合。该系统是通过施加大量准随机表面流动来驱动的,这些流捕获了彩带和伪流的边界附近冠状通量的驱动。我们描述了产生的结构和动力学。互换重新连接在流媒体和伪流的边界上占主导地位,但是所得结构的细节显然与彼此不同。此外,我们计算重新连接的原位特征,并确定从内气球回到太阳的动态映射,以进行测试航天器轨道。我们讨论了结果对解释内部地球内部任务的观察的含义,例如帕克太阳能探头和太阳轨道,以及慢太阳风的太空天气建模。
The slow solar wind is generally believed to result from the interaction of open and closed coronal magnetic flux at streamers and pseudostreamers. We use 3-dimensional magnetohydrodynamic simulations to determine the detailed structure and dynamics of open-closed interactions that are driven by photospheric convective flows. The photospheric magnetic field model includes a global dipole giving rise to a streamer together with a large parasitic polarity region giving rise to a pseudostreamer that separates a satellite coronal hole from the main polar hole. Our numerical domain extends out to 30 solar radii and includes an isothermal solar wind, so that the coupling between the corona and heliosphere can be calculated rigorously. This system is driven by imposing a large set of quasi-random surface flows that capture the driving of coronal flux in the vicinity of streamer and pseudostreamer boundaries by the supergranular motions. We describe the resulting structures and dynamics. Interchange reconnection dominates the evolution at both streamer and pseudostreamer boundaries, but the details of the resulting structures are clearly different from one another. Additionally, we calculate in situ signatures of the reconnection and determine the dynamic mapping from the inner heliosphere back to the Sun for a test spacecraft orbit. We discuss the implications of our results for interpreting observations from inner heliospheric missions, such as Parker Solar Probe and Solar Orbiter, and for space weather modeling of the slow solar wind.