首页> 外文会议>Second Solar Cycle and Space Weather Euroconference Sep 24-29, 2001 Vico Equense, Italy >ANALYSIS OF DIFFERENTIAL EMISSION MEASURE EVOLUTION FOR SELECTED SEP AND NON-SEP ASSOCIATED FLARES BASED ON HARD AND SOFT X-RAY OBSERVATIONS
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ANALYSIS OF DIFFERENTIAL EMISSION MEASURE EVOLUTION FOR SELECTED SEP AND NON-SEP ASSOCIATED FLARES BASED ON HARD AND SOFT X-RAY OBSERVATIONS

机译:基于硬和软X射线观测的选择的SEP和非SEP相关火炬的差分发射量演化分析

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We present prompt results of analysis of differen- tial emission measure distributions (DEM) for solar flares. The DEM describes the distribution of emitting plasma with temperature. For calculations of the DEM shape we use Withbroe - Sylwester (WS) multiplicative iterative algorithm. Our input data set consists of total flare fluxes as measured by the Yohkoh Soft X-ray Telescope (SXT) in most of available filters, the Hard X-ray Telescope data (HXT), the Bragg Crystal Spectrometer (BCS) line fluxes and GOES X-ray fluency as measured in 0.5 -4 A and 1 - 8 A bands. Reconstruction of DEM shape from observed X-ray fluxes constitute uneasy ill-defined inverse problem. Therefore, before applying the algorithm to real data we performed numerous tests of the inversion method using several synthetic DEM distributions. This has been done in order to better understand how to interpret the DEM as obtained from real measurements and understand limitations of the inversion procedure. In our tests, we have used a number of typical DEM distribution shapes (cf. Figure 2). The overall stability of the WS reconstruction procedure led us to investigate DEM shapes for particular flare events selected. We have chosen to look for possible differences in DEM shape and behavior for flare events which have been associated and not associated with the (following) solar energetic particle (SEP) occurrence.
机译:我们提出了针对太阳耀斑的不同排放量测量分布(DEM)进行分析的快速结果。 DEM描述了发射等离子体随温度的分布。对于DEM形状的计算,我们使用Withbroe-Sylwester(WS)乘法迭代算法。我们的输入数据集包括由Yohkoh软X射线望远镜(SXT)在大多数可用滤镜中测量的总耀斑通量,硬X射线望远镜数据(HXT),布拉格晶体光谱仪(BCS)线通量和GOES在0.5 -4 A和1-8 A波段中测得的X射线流利度。从观察到的X射线通量重建DEM形状构成了不容易解决的不确定的反问题。因此,在将算法应用于实际数据之前,我们使用几种合成DEM分布对反演方法进行了多次测试。这样做是为了更好地理解如何解释从实际测量中获得的DEM,并了解反演程序的局限性。在我们的测试中,我们使用了许多典型的DEM分布形状(参见图2)。 WS重建程序的整体稳定性使我们能够针对选定的特定耀斑事件研究DEM形状。我们已选择要寻找耀斑事件在DEM形状和行为方面可能存在的差异,这些耀斑事件与(以下)太阳高能粒子(SEP)的发生有关但不相关。

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