论文标题
用电阻MHD和热传导建模的太阳大气中的Spicule Jets
Spicule jets in the solar atmosphere modeled with resistive MHD and thermal conduction
论文作者
论文摘要
使用数值模拟,我们研究了具有II型Spicules和Cool Coronal Jets特征的太阳能喷气机的动力学和性能的磁性电阻率和导热率的影响。喷气机的动态演化受电阻性MHD方程的控制,并在2.5D切片上沿磁场线进行热传导。磁场构型由两个具有相反极性的对称相邻环组成,用于支持重新连接,然后进行等离子体射流形成。总共进行了10次模拟,具有不同的电阻率和导热率值的值,该值会产生我们量化具有不同形态和热特性的喷气机。我们发现,磁性电阻率的增加不会对喷气机的形态,速度和温度产生重大影响。但是,导热率会影响喷气机的温度和形态。特别是,导热率会导致喷气机达到更高的高度并升高喷射 - APEX的温度。同样,热通量图比射流物体更有效地指示了喷气式和电晕交换能量。这些结果可能有可能在太阳大气中开辟新的血浆诊断途径。
Using numerical simulations, we study the effects of magnetic resistivity and thermal conductivity in the dynamics and properties of solar jets with characteristics of Type II spicules and cool coronal jets. The dynamic evolution of the jets is governed by the resistive MHD equations with thermal conduction along the magnetic field lines on a 2.5D slice. The magnetic field configuration consists of two symmetric neighboring loops with opposite polarity, used to support reconnection and followed by the plasma jet formation. In total 10 simulations were carried out with different values of resistivity and thermal conductivity, that produce jets with different morphological and thermal properties we quantify. We find that an increase in magnetic resistivity does not produce significant effects on the morphology, velocity and temperature of the jets. However, thermal conductivity affects both temperature and morphology of the jets. In particular, thermal conductivity causes jets to reach greater heights and increases the temperature of the jet-apex. Also, heat flux maps indicate the jet-apex and corona interchange energy more efficiently than the body of the jet. These results could potentially open a new avenue for plasma diagnostics in the Sun's atmosphere.