首页> 外文会议>Solar Polarization Workshop >Three-Dimensional Radiative Transfer Modeling of the Scattering Polarization in MgH Lines
【24h】

Three-Dimensional Radiative Transfer Modeling of the Scattering Polarization in MgH Lines

机译:MGH线散射极化的三维辐射转移建模

获取原文

摘要

Analysis of the Hanle effect in solar molecular lines allows us to obtain empirical information on hidden, mixed-polarity magnetic fields at subresolution scales in the (granular) upflowing regions of the 'quiet' solar photosphere. Here we report that collisions seem to be very efficient in depolarizing the rotational levels of MgH lines. This has the interesting consequence that in the upflowing regions of the quiet solar photosphere the strength of the hidden magnetic field cannot be sensibly larger than 10 G, assuming the simplest case of a single valued microturbulent field that fills the entire upflowing photospheric volume. Alternatively, an equally good theoretical fit to the observed scattering polarization amplitudes can be achieved by assuming that the rate of depolarizing collisions is an order of magnitude smaller than in the previous collisionally dominated case, but then the required strength of the hidden field in the upflowing regions turns out to be unrealistically high. These constraints reinforce our previously obtained conclusion that there is a vast amount of hidden magnetic energy and unsigned magnetic flux localized in the (intergranular) downflowing regions of the quiet solar photosphere. This work has been presented by Asensio Ramos & Trujillo Bueno (2005).
机译:太阳能分子线中的Hanle效应分析允许我们在“安静”太阳能电像篓的(颗粒)溢出区域中的亚区化鳞片上的隐藏,混合极性磁场上的经验信息。在这里,我们报告说,碰撞似乎非常有效地降低了MGH线的旋转水平。这具有有趣的结果,即在安静的太阳能照片的溢出区域中,隐藏磁场的强度不能明确大于10g,假设单个值微矛盾场的最简单的案例填充整个溢出的照片体积。或者,通过假设去极化碰撞的速率小于比先前的牢固主导的情况小的数量级来实现同样良好的理论拟合,而是可以实现比先前的牢固主导的情况小的阶数,而是卷起中隐藏场所需的强度区域结果不切实际。这些约束增强了我们先前获得的结论,即在安静的太阳能射孔的(晶间)下流动区域中存在大量的隐藏磁能和无符号磁通量。这项工作已由Asensio Ramos&Trujillo Bueno(2005)呈现。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
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