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首页> 外文期刊>Journal of geophysical research. Planets >Relationship of dayside main layer ionosphere height to local solar time on Mars and implications for solar wind interaction influence
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Relationship of dayside main layer ionosphere height to local solar time on Mars and implications for solar wind interaction influence

机译:白天的主层电离层高度与火星上的局部太阳时间的关系及其对太阳风相互作用的影响

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摘要

To understand the influence of solar wind on the daytime main layer ionosphere of Mars, we investigated the local solar time (LST) variations of three characteristic heights of the ionosphere, namely, the heights of the 1 MHz and 1.5 MHz reflection points (i.e., 1.24 × 10~(10)m~(-3) and 2.79 × 10~(10)m~(-3) isodensity contours, respectively) and the density peak. We used a total of 19,996 Mars Advanced Radar for Subsurface and Ionosphere Sounding observations distributed on the northern hemisphere, with solar zenith angle ≤80°, acquired from June 2005 to October 2013. We exploited the kernel partial least squares regression method to extract the nonlinear relationships of the heights to LST and a few other variables. The average height of the 1 MHz reflection point decreased from ~218 km at 10:00 A.M. to ~206 km at 16:00 P.M. local time; the height of the 1.5 MHz reflection point decreased simultaneously from ~190 km to ~181 km. These decreasing trends are in contrast to the LST variation of the density peak height, which increased from ~128 km to ~137 km over the same LST interval. Based on these findings and previous results, we suggest that the solar wind may penetrate the Martian ionosphere down to altitudes of about 50 km above the main density peak and may, in conjunction with the asymmetric draping of the interplanetary magnetic field, compress the upper part of the main ionosphere layer on the P.M. side ~10 km more than on the A.M. side.
机译:为了了解太阳风对火星白天主电离层的影响,我们研究了电离层三个特征高度的局部太阳能(LST)变化,即1 MHz和1.5 MHz反射点的高度(即,即,即, 1.24×10〜(10)M〜(-3)和2.79×10〜(10)M〜(-3)等速度轮廓)和密度峰。我们总共使用了19,996人的高级雷达,用于在2005年6月至2013年10月的北半球上分布在北半球上的地下和电离层发声观测值。高度与LST的关系以及其他一些变量。 1 MHz反射点的平均高度从上午10:00降低了218公里。下午16:00至206公里当地时间; 1.5 MHz反射点的高度同时从〜190 km降至〜181 km。这些减少趋势与密度峰高度的LST变化相反,密度峰高的高度在同一LST间隔内从〜128 km增加到〜137 km。基于这些发现和先前的结果,我们建议太阳风可以将火星电离层穿透到高度高于主密度峰值上方约50 km的高度,并且可能与行星际磁场的不对称垂悬一起,压缩上部下午的主电离层层一侧〜10公里比上午多10公里边。

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