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Lunar Pole Illumination and Communications Statistics Computed from GSSR Elevation Data

机译:来自GSSR高程数据计算的月球杆照明和通信统计数据

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The Goldstone Solar System RADAR (GSSR) group at JPL produced a Digital Elevation Model (DEM) of the lunar south pole using data obtained in 2006. This model has 40-meter horizontal resolution and about S-meter relative vertical accuracy. This paper uses that Digital Elevation Model to compute average solar illumination and Earth visibility near the lunar south pole. This data quantifies solar power and Earth communications resources at proposed lunar base locations. The elevation data were converted into local terrain horizon masks, then converted into selenographic latitude and longitude coordinates. The horizon masks were compared to latitude, longitude regions bounding the maximum Sun and Earth motions relative to the moon. Proposed lunar south pole base sites were examined in detail, with the best site showing multi-year averages of solar power availability of 92% and Direct-To-Earth (DTE) communication availability of about 50%. Results are compared with a theoretical model, and with actual sun and Earth visibility averaged over the years 2009 to 2028. Results for the lunar North pole were computed using the GSSR DEM of the lunar North pole produced in 1997. The paper also explores using a heliostat to reduce the photovoltaic power system mass and complexity.
机译:Goldstone Solary System Radar(GSSR)雷达(GSSR)组在2006年获得的数据产生了月球南极的数字高度模型(DEM)。该模型具有40米的水平分辨率和约计相对垂直精度。本文采用该数字高程模型计算了农历南极附近的平均太阳能照明和地球可视性。该数据在提出的月球基地定量了太阳能和地球通信资源。高程数据被转换为当地地形地平线掩模,然后转换成Selecographic Latitude和经度坐标。将地平线面具与相对于月球相对于月球相对于月球限制最大太阳和地球运动的纬度,经度区域进行比较。提出了农历南极基地,详细研究了,最佳网站显示了太阳能可用性的多年平均值为92%,直接直接(DTE)通信可用性约50%。结果与理论模型进行比较,与2009年至2028年的实际阳光和地球可见度平均。使用1997年的农历北极GSSR DEM计算了农历北极的结果。本文还探讨了使用Heliostat降低光伏电力系统质量和复杂性。

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