论文标题
在地球附近的高速太阳风流及其太阳源冠状孔面积的峰值速度之间的依赖性
On the Dependency between the Peak Velocity of High-speed Solar Wind Streams near Earth and the Area of Their Solar Source Coronal Holes
论文作者
论文摘要
自1970年代以来,已经知道了地球附近高速太阳风流的峰值速度与太阳源区域(即冠状孔)之间的关系,但在物理上仍然不太了解。我们使用欧洲地层预测信息资产(EUHFORIA)代码进行3D磁水动力学(MHD)模拟,以表明在从太阳到地球的高速流的传播阶段形成这种经验关系。为此,我们忽略了高速流的加速阶段,并将冠状孔的区域投射到0.1 AU的球体。然后,我们仅改变冠状孔的区域和纬度。相应的高速流的横截面中的速度,温度和密度设置为恒定,均匀值。最后,我们使用EUHFORIA代码通过内部的Heliosphere传播相关的高速流。地球上模拟的高速峰值峰值揭示了对源冠状孔面积的线性依赖性。关系的斜率随着冠状孔的纬度增加而降低,并且峰速度以约730 km/s的值饱和,类似于观测值。这些发现表明,冠状孔区域与高速流峰速度之间的经验关系并不能描述高速流的加速阶段,而是来自太阳到地球的高速流传播的结果。
The relationship between the peak velocities of high-speed solar wind streams near Earth and the areas of their solar source regions, i.e., coronal holes, has been known since the 1970s, but it is still physically not well understood. We perform 3D magnetohydrodynamic (MHD) simulations using the European Heliospheric Forecasting Information Asset (EUHFORIA) code to show that this empirical relationship forms during the propagation phase of high-speed streams from the Sun to Earth. For this purpose, we neglect the acceleration phase of high-speed streams, and project the areas of coronal holes to a sphere at 0.1 au. We then vary only the areas and latitudes of the coronal holes. The velocity, temperature, and density in the cross section of the corresponding highspeed streams at 0.1 au are set to constant, homogeneous values. Finally, we propagate the associated high-speed streams through the inner heliosphere using the EUHFORIA code. The simulated high-speed stream peak velocities at Earth reveal a linear dependence on the area of their source coronal holes. The slopes of the relationship decrease with increasing latitudes of the coronal holes, and the peak velocities saturate at a value of about 730 km/s, similar to the observations. These findings imply that the empirical relationship between the coronal hole areas and high-speed stream peak velocities does not describe the acceleration phase of high-speed streams, but is a result of the high-speed stream propagation from the Sun to Earth.