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Advanced Laser Retroreflectors for Astrophysics and Space Science 被引量:1
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作者 S. Dell’ Agnello G. Delle Monache +16 位作者 R. Vittori A. Boni C. Cantone E. Ciocci M. Martini G. Patrizi M. Tibuzzi G. Bianco D. Currie N. Intaglietta L. Salvatori C. Lops S. Contessa L. Porcelli C. Mondaini P. Tuscano M. Maiello 《Journal of Applied Mathematics and Physics》 2015年第2期218-227,共10页
We developed advances laser retroreflectors for solar system exploration, geodesy and for precision test of General Relativity (GR) and new gravitational physics: a micro-reflector array (INRRI, Instrument for landing... We developed advances laser retroreflectors for solar system exploration, geodesy and for precision test of General Relativity (GR) and new gravitational physics: a micro-reflector array (INRRI, Instrument for landing-Roving laser Retroreflectors Investigations), a midsize reflector array for the European Earth Observation (EO) program, Copernicus (CORA, COpernicus laser Retroreflector Array), a large, single-retroreflector (MoonLIGHT, Moon Laser Instrumentation for General relativity High accuracy Tests). These laser retroreflectors will be fully characterized at the SCF_Lab (Satellite/lunar/GNSS laser ranging/altimetry Cube/microsat Characterization Facilities Laboratory), a unique and dedicated infrastructure of INFN-LNF (www.lnf.infn.it/esperimenti/etrusco/). Our research program foresees several activities: 1) Developing and characterizing the mentioned laser retroreflector devices to determine landing accuracy, rover positioning during exploration and planetary/Moon’s surface georeferencing. These devices will be passive, laser wavelength- independent, long-lived reference point. INRRI will enable the performance of full-column measurement of trace species in the Mars atmosphere by future space-borne lidars. These measurements will be complementary to highly localized measurements made by gas sampling techniques on the Rover or by laser back-scattering lidar techniques on future orbiters and/or from the surface. INRRI will also support laser and quantum communications, carried out among future Mars Orbiters and Mars Rovers. This will be possible also because the INRRI laser retroreflectors will be metal back-coated and, therefore, will not change the photon polarization. The added value of INRRI is its low mass, compact size, zero maintenance and its usefulness for any future laser altimetry, ranging, communications, atmospheric lidar capable Mars orbiter, for virtually decades after the end of the Mars surface mission, like the Apollo and Lunokhod lunar laser retroreflectors. MoonLIGHT and INRRI are proposed for landings on the Moon (two Google Lunar X Prize Missions, namely Moon Express;Russia’s Luna-27 mission, as well as others under consideration/negotia- tion, also with the help of ASI, ESA and other partnerships);2) Precision tests of GR with LLR to MoonLIGHT reflectors. Development of new fundamental gravity physics models and study of experimental constraints to these models use also laser ranging and laser reflectors throughout the solar system: extension of general relativity to include Spacetime Torsion, Non-Minimal Coupling between matter and curvature (so-called “ ” theories, or NMC gravity);3) Extension of program to: Mars, Phobos and Deimos, Jupiter and Saturn icy/rocky moons, Near Earth Asteroids. 展开更多
关键词 General relativity Satellite laser ranging (SLR) lunar laser ranging (llr) Cube Corner Retroreflectors (CCR)
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激光测月资料分析中的广义相对论效应
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作者 许华冠 黄乘利 金文敬 《中国科学院上海天文台年刊》 1993年第14期100-109,共10页
本文对激光测月资料分析中的相对论效应作了较系统的分析讨论,包括观测时刻的转换,TAI和TDB两种时间尺度的换算、测站的地心坐标和反射器的月心坐标到太阳系质心框架下的瞬时空间坐标的转换以及引力时延改正等一系列问题。同时比较分析... 本文对激光测月资料分析中的相对论效应作了较系统的分析讨论,包括观测时刻的转换,TAI和TDB两种时间尺度的换算、测站的地心坐标和反射器的月心坐标到太阳系质心框架下的瞬时空间坐标的转换以及引力时延改正等一系列问题。同时比较分析了目前我们归算软件中的相对论模型,指出原模型必须作适当的改进才能和厘米级的观测精度相匹配。 展开更多
关键词 激光测月 广义相对论效应 地心坐标 月心坐标 激光测距技术 观测精度 反射器
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