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Corner-cube retro-reflector instrument for advanced lunar laser ranging

机译:用于高级月球激光测距的角立方回归反射仪

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Lunar laser ranging (LLR) has made major contributions to our understanding of the Moon's internal structure and the dynamics of the Earth-Moon system. Because of the recent improvements of the ground-based laser ranging facilities, the present LLR measurement accuracy is limited by the retro-reflectors currently on the lunar surface, which are arrays of small corner-cubes. Because of lunar librations, the surfaces of these arrays do not, in general, point directly at the Earth. This effect results in a spread of arrival times, because each cube that comprises the retroreflector is at a slightly different distance from the Earth, leading to the reduced ranging accuracy. Thus, a single, wide aperture corner-cube could have a clear advantage. In addition, after nearly four decades of successful operations the retro-reflectors arrays currently on the Moon started to show performance degradation; as a result, they yield still useful, but much weaker return signals. Thus, fresh and bright instruments on the lunar surface are needed to continue precision LLR measurements. We have developed a new retro-reflector design to enable advanced LLR operations. It is based on a single, hollow corner cube with a large aperture for which preliminary thermal, mechanical, and optical design and analysis have been performed. The new instrument will be able to reach an Earth-Moon range precision of 1-mm in a single pulse while being subjected to significant thermal variations present on the lunar surface, and will have low mass to allow robotic deployment. Here we report on our design results and instrument development effort.
机译:月球激光测距(LLR)为我们对月球内部结构和地月系统动力学的理解做出了重要贡献。由于最近改进了基于地面的激光测距设备,当前的LLR测量精度受到当前月球表面上的后向反射器(它们是小角锥阵列)的限制。由于月球的释放,这些阵列的表面通常不会直接指向地球。这种影响导致到达时间的扩散,因为组成后向反射器的每个立方体与地球的距离略有不同,从而导致测距精度降低。因此,单个宽孔径角corner盒可能具有明显的优势。此外,经过近四十年的成功运作,目前在月球上的后向反射器阵列开始表现出性能下降。结果,它们产生的信号仍然有用,但返回信号弱得多。因此,需要用月球表面上的新鲜明亮的仪器来继续进行精密的LLR测量。我们已经开发了一种新的后向反射器设计,以实现高级LLR操作。它基于具有大孔径的单个空心角cube,已对其进行了初步的热,机械和光学设计和分析。新仪器将能够在单个脉冲中达到1-mm的地球月范围精度,同时受到月球表面上明显的热变化的影响,并且质量轻,可以进行机器人部署。在这里,我们报告我们的设计结果和仪器开发工作。

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