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首页> 外文期刊>Journal of atmospheric and solar-terrestrial physics >D-region electron density evaluated from VLF amplitude time delay during X-ray solar flares
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D-region electron density evaluated from VLF amplitude time delay during X-ray solar flares

机译:根据X射线太阳耀斑中VLF振幅时间延迟评估的D区电子密度

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摘要

VLF amplitude enhancements of the NAA/24.0 kHz signal (Maine, USA), registered by the Belgrade AbsPAL facility during solar flares, have been related to solar X-ray fluxes measured by the GOES-12 satellite. The observed regular appearance of the VLF amplitude/phase peak behind the peak of the corresponding X-ray flux has been characterized by the time delay assigned to each of the 97 out of 114 flare-induced distinct amplitude/phase enhancement events analysed. The measurements reported pertain to the period May–August of the years 2004 and 2005 and have been used to model the electron density enhancements of the D-region during solar flares. On the grounds of the continuity equation for the electron component and the amplitude time delay, the effective recombination coefficient has been estimated to range from 10-13m3 to 10-11m3/s, depending on the X-ray maximum flux. By integrating the continuity equation, the time variation of the electron density during solar flare occurrence has been restored. Enhancements up to two orders of magnitude, for X-class flares, with respect to undisturbed conditions were predicted. The results obtained have been found to be in good agreement with measurements by different techniques, as well as with the independent estimates of β and H′. Errors introduced by the applied approach have been critically examined to place the uncertainty of the results arrived at between 10% and 20%.
机译:贝尔格莱德AbsPAL设施在太阳耀斑期间记录的NAA / 24.0 kHz信号(美国缅因州)的VLF振幅增强与GOES-12卫星测量的太阳X射线通量有关。观察到的在相应X射线通量峰值之后的VLF振幅/相位峰值的规则出现是通过对114个耀斑引起的明显的振幅/相位增强事件中的97个中的每一个分配的时间延迟来表征的。报告的测量值与2004年和2005年5月至8月之间的时间有关,已用于模拟太阳耀斑期间D区电子密度的增强。根据电子成分和振幅时间延迟的连续性方程,根据X射线最大通量,有效复合系数估计为10-13m3至10-11m3 / s。通过积分连续性方程,恢复了太阳耀斑发生期间电子密度的时间变化。预计X级耀斑在不受干扰的条件下可增强两个数量级。已经发现获得的结果与通过不同技术的测量以及与β和H'的独立估计非常吻合。已对通过应用方法引入的错误进行了严格检查,以使结果的不确定性达到10%到20%之间。

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