论文标题
Swasti-SW:太阳风的太空天气自适应模拟框架及其与Aditya-L1任务的相关性
SWASTi-SW: Space Weather Adaptive SimulaTion framework for Solar Wind and its relevance to ADITYA-L1 mission
论文作者
论文摘要
太阳风流充当背景,控制着诱导地磁风暴活动的天气圈中太空天气驱动因素的传播。因此,太阳风参数的预测是空间天气预报的核心。这项工作提出了土著三维(3D)太阳风模型(Swasti-SW)。这个用于预测环境太阳风的数值框架是基于建立完善的方案,该方案使用了半经验冠状模型和基于物理的内部地球模型。这项研究展示了Wang-Sheeley-Arge(WSA)关系的更广泛的版本,该版本为Heliosperic域提供了速度曲线输入。 Gong和HMI磁力图的观察线观测用作冠状模型的输入,而冠状模型则提供了0.1 AU的太阳风等离子体特性。然后将这些结果用作内气球内磁水动力学(MHD)模型的初始边界条件,以计算高达2.1 AU的太阳风特性。随着对多个卡灵顿旋转的验证运行,还提出了特定热比的变化和流相互作用区域(SIR)的研究的影响。这项工作展示了SIRS的多向特征,并为来自太阳能风离子光谱仪(SWIS)的潜在观测值提供了合成测量,该系统的Aditya太阳风颗粒实验(ASPEX)有效载荷有效载荷ISRO ISRO即将到来的即将到来的Solar Solar Solar Aditya-L1。
Solar wind streams, acting as background, govern the propagation of space weather drivers in the heliosphere, which induce geomagnetic storm activities. Therefore, predictions of the solar wind parameters are the core of space weather forecasts. This work presents an indigenous three-dimensional (3D) Solar Wind model (SWASTi-SW). This numerical framework for forecasting the ambient solar wind is based on a well-established scheme that uses a semi-empirical coronal model and a physics-based inner heliospheric model. This study demonstrates a more generalized version of Wang-Sheeley-Arge (WSA) relation, which provides a speed profile input to the heliospheric domain. Line-of-sight observations of GONG and HMI magnetograms are used as inputs for the coronal model, which in turn, provides the solar wind plasma properties at 0.1 AU. These results are then used as an initial boundary condition for the magnetohydrodynamics (MHD) model of the inner heliosphere to compute the solar wind properties up to 2.1 AU. Along with the validation run for multiple Carrington rotations, the effect of variation of specific heat ratio and study of stream interaction region (SIR) is also presented. This work showcases the multi-directional features of SIRs and provides synthetic measurements for potential observations from the Solar Wind Ion Spectrometer (SWIS) subsystem of Aditya Solar wind Particle EXperiment (ASPEX) payload on-board ISRO's upcoming solar mission Aditya-L1.