Extending Science from Lunar Laser Ranging

Vishnu Viswanathan, E. Mazarico, S. Merkowitz, James G. Williams, S. Turyshev, D. Currie, A. Ermakov, N. Rambaux, A. Fienga, C. Courde, J. Chabé, J. Torre, A. Bourgoin, U. Schreiber, T. Eubanks, Chensheng Wu, D. Dequal, S. Dell’Agnello, L. Biskupek, J. Muller, S. Kopeikin
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引用次数: 6

Abstract

The Lunar Laser Ranging (LLR) experiment has accumulated 50 years of range data of improving accuracy from ground stations to the laser retroreflector arrays (LRAs) on the lunar surface. The upcoming decade offers several opportunities to break new ground in data precision through the deployment of the next generation of single corner-cube lunar retroreflectors and active laser transponders. This is likely to expand the LLR station network. Lunar dynamical models and analysis tools have the potential to improve and fully exploit the long temporal baseline and precision allowed by millimetric LLR data. Some of the model limitations are outlined for future efforts. Differential observation techniques will help mitigate some of the primary limiting factors and reach unprecedented accuracy. Such observations and techniques may enable the detection of several subtle signatures required to understand the dynamics of the Earth-Moon system and the deep lunar interior. LLR model improvements would impact multi-disciplinary fields that include lunar and planetary science, Earth science, fundamental physics, celestial mechanics and ephemerides.
从月球激光测距扩展科学
月球激光测距(LLR)实验积累了50年的距离数据,提高了从地面站到月球表面激光后向反射阵列(LRAs)的精度。在即将到来的十年中,通过部署下一代单角立方月球后向反射器和主动激光应答器,将有机会在数据精度方面取得新的突破。这可能会扩大轻轨站网络。月球动力学模型和分析工具有潜力改进和充分利用毫米LLR数据所允许的长时间基线和精度。概述了模型的一些局限性,以供今后的努力。差分观测技术将有助于减轻一些主要的限制因素,并达到前所未有的精度。这样的观测和技术可以探测到一些微妙的特征,这些特征是了解地月系统和月球深部内部动力学所必需的。LLR模型的改进将影响多学科领域,包括月球和行星科学、地球科学、基础物理学、天体力学和星历。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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