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不同指向模式下星载冷原子梯度仪对重力场解算精度的影响
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作者 穆庆禄 王长青 +4 位作者 闫易浩 钟敏 冯伟 梁磊 朱紫彤 《地球物理学报》 SCIE EI CAS CSCD 北大核心 2024年第7期2528-2545,共18页
冷原子干涉测量技术(CAI, Cold-Atom Interferometry)的发展为未来卫星重力梯度测量任务提供了新的测量思路.目前基于该任务概念的模拟研究均基于单一的观测指向模式对CAI梯度仪的对地观测能力进行论证.本文在GOCE卫星任务背景下,通过... 冷原子干涉测量技术(CAI, Cold-Atom Interferometry)的发展为未来卫星重力梯度测量任务提供了新的测量思路.目前基于该任务概念的模拟研究均基于单一的观测指向模式对CAI梯度仪的对地观测能力进行论证.本文在GOCE卫星任务背景下,通过数值闭环模拟评估了CAI梯度仪在近地指向和惯性指向模式下对重力场观测影响.实验结果表明:在近地指向观测模式下,CAI梯度仪受卫星旋转角速度的影响,重力场解算的精度仅在50阶以内优于GOCE卫星的模拟结果.若当卫星搭载轨道旋转补偿系统时可以有效地减弱卫星旋转对CAI梯度仪的影响,进而提高重力场模型的解算精度.梯度张量主对角线三分量的联合解算精度在全频段内都要优于GOCE卫星相应分量的结果,精度可提高1.5~6倍.在惯性指向观测模式下且仅考虑卫星残余角速度的影响时,CAI梯度仪的解算结果在30阶以后比GOCE卫星所搭载的GRADIO梯度仪的精度低.而在综合考虑卫星残余角速度和卫星轨道面旋转后,解算得到的重力场在100阶以内优于GOCE卫星解算精度.进一步比较两种指向模式下分别基于单轴、双轴和三轴观测的结果可以发现,三轴观测时两种指向模式的解算精度相当,在所有阶次上都要优于GRADIO梯度仪的结果.但基于单轴进行观测时,近地指向模式下V_(zz)分量的精度更高,而对于双轴观测的情况,惯性指向下的组合(V_(xx)+V_(zz)和V_(yy)+V_(zz))解算精度更高.本研究通过对不同指向模式下CAI梯度仪对地观测影响的分析,可为基于CAI梯度仪的新型空间量子-地球重力场测量任务提供相应的参考. 展开更多
关键词 地球重力场 GOCE 冷原子梯度仪 近地指向 惯性指向
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Gravitational wave astronomy: the current status 被引量:4
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作者 BLAIR David JU Li +37 位作者 ZHAO ChunNong WEN LinQing CHU Qi FANG Qi CAI RongGen GAO JiangRui LIN XueChun LIU Dong WU Ling-An ZHU ZongHong REITZE David H. ARAI Koji ZHANG Fan FLAMINIO Raffaele ZHU XingJiang HOBBS George MANCHESTER Richard N. SHANNON Ryan M. BACCIGALUPI Carlo GAO Wei XU Peng BIAN Xing CAO ZhouJian CHANG ZiJing DONG Peng GONG XueFei HUANG ShuangLin JU Peng LUO ZiRen QIANG Li'E TANG WenLin WAN XiaoYun WANG Yue XU ShengNian ZANG YunLong ZHANG HaiPeng LAU Yun-Kau NI Wei-Tou 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS CSCD 2015年第12期3-43,共41页
In the centenary year of Einstein's General Theory of Relativity, this paper reviews the current status of gravitational wave astronomy across a spectrum which stretches from attohertz to kilohertz frequencies. Se... In the centenary year of Einstein's General Theory of Relativity, this paper reviews the current status of gravitational wave astronomy across a spectrum which stretches from attohertz to kilohertz frequencies. Sect. 1 of this paper reviews the historical development of gravitational wave astronomy from Einstein's first prediction to our current understanding the spectrum. It is shown that detection of signals in the audio frequency spectrum can be expected very soon, and that a north-south pair of next generation detectors would provide large scientific benefits. Sect. 2 reviews the theory of gravitational waves and the principles of detection using laser interferometry. The state of the art Advanced LIGO detectors are then described. These detectors have a high chance of detecting the first events in the near future. Sect. 3 reviews the KAGRA detector currently under development in Japan,which will be the first laser interferometer detector to use cryogenic test masses. Sect. 4 of this paper reviews gravitational wave detection in the nanohertz frequency band using the technique of pulsar timing. Sect. 5 reviews the status of gravitational wave detection in the attohertz frequency band, detectable in the polarisation of the cosmic microwave background, and discusses the prospects for detection of primordial waves from the big bang. The techniques described in sects. 1–5 have already placed significant limits on the strength of gravitational wave sources. Sects. 6 and 7 review ambitious plans for future space based gravitational wave detectors in the millihertz frequency band. Sect. 6 presents a roadmap for development of space based gravitational wave detectors by China while sect. 7 discusses a key enabling technology for space interferometry known as time delay interferometry. 展开更多
关键词 gravitational waves ground based detectors pulsar timing spaced based detectors CMB
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