...
首页> 外文期刊>The Astrophysical journal >RETURN CURRENTS AND ENERGY TRANSPORT IN THE SOLAR FLARING ATMOSPHERE
【24h】

RETURN CURRENTS AND ENERGY TRANSPORT IN THE SOLAR FLARING ATMOSPHERE

机译:太阳能形成的大气中的回程电流和能量传输

获取原文

摘要

According to the standard Ohmic perspective, the injection of accelerated electrons into the flaring region violates local charge equilibrium and therefore, in response, return currents are driven by an electric field to equilibrate such charge violation. In this framework, the energy loss rate associated with these local currents has an Ohmic nature and significantly shortens the accelerated electron path. In the present paper, we adopt a different viewpoint and, specifically, we study the impact of the background drift velocity on the energy loss rate of accelerated electrons in solar flares. We first utilize the Rutherford cross-section to derive the formula of the energy loss rate when the collisional target has a finite temperature and the background instantaneously and coherently moves up to equilibrate the electron injection. We then use the continuity equation for electrons and imaging spectroscopy data provided by RHESSI to validate this model. We show that this new formula for the energy loss rate provides a better fit of the experimental data with respect to the model based on the effects of standard Ohmic return currents.
机译:根据标准的欧姆学观点,将加速的电子注入扩口区域会破坏局部电荷平衡,因此,作为响应,电场会驱动返回电流来平衡这种电荷违背。在这种框架下,与这些局部电流相关的能量损失率具有欧姆特性,并显着缩短了加速电子路径。在本文中,我们采用了不同的观点,具体地说,我们研究了背景漂移速度对太阳耀斑中加速电子的能量损失率的影响。我们首先利用卢瑟福横截面来推导当碰撞目标具有有限的温度并且背景瞬时且相干地向上移动以平衡电子注入时能量损失率的公式。然后,我们使用RHESSI提供的电子和成像光谱数据的连续性方程式来验证该模型。我们表明,基于标准欧姆返回电流的影响,这种新的能量损失率公式可以更好地拟合实验数据。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号