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ASTROD-GW: Overview and progress

机译:ASTROD-GW:概述和进展

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In this paper, we present an overview of Astrodynamical Space Test of Relativity using Optical Devices (ASTROD-GW) optimized for Gravitational Wave (GW) detection mission concept and its studies. ASTROD-GW is an optimization of ASTROD which focuses on low frequency GW detection. The detection sensitivity is shifted by a factor of 260 (52) towards longer wavelengths compared with that of NGO/eLISA (LISA). The mission consists of three spacecraft, each of which orbits near one of the Sun-Earth Lagrange points (L3, L4 and L5), such that the array forms an almost equilateral triangle. The three spacecraft range interferometrically with one another with an arm length of about 260 million kilometers. The orbits have been optimized resulting in arm length changes of less than ± 0.00015 AU or, fractionally, less than ±10 -4 in 20 years, and relative Doppler velocities of the three spacecraft of less than ±3 m/s. In this paper, we present an overview of the mission covering: the scientific aims, the sensitivity spectrum, the basic orbit configuration, the simulation and optimization of the spacecraft orbits, the deployment of ASTROD-GW formation, Time Delay Interferometry (TDI) and the payload. The science goals are the detection of GWs from (i) Supermassive Black Holes; (ii) Extreme-Mass-Ratio Black Hole Inspirals; (iii) Intermediate-Mass Black Holes; (iv) Galactic Compact Binaries and (v) Relic GW Background. For the purposes of primordial GW detection, a six spacecraft formation would be needed to enable the correlated detection of stochastic GWs. A brief discussion of the six spacecraft orbit optimization is also presented.
机译:在本文中,我们概述了使用相对于引力波(GW)检测任务概念进行了优化的光学设备(ASTROD-GW)进行的相对论天体空间测试。 ASTROD-GW是对ASTROD的优化,主要针对低频GW检测。与NGO / eLISA(LISA)相比,检测灵敏度向更长的波长移动了260(52)倍。任务由三艘航天器组成,每个航天器绕着太阳地球拉格朗日点之一(L3,L4和L5)运行,从而使阵列形成几乎等边的三角形。这三架航天器互相干涉,臂长约2.6亿公里。轨道已经过优化,导致臂长变化在20年内小于±0.00015 AU或部分小于±10 -4,并且三个航天器的相对多普勒速度小于±3 m / s。在本文中,我们对任务进行了概述,包括:科学目的,灵敏度谱,基本轨道配置,航天器轨道的仿真和优化,ASTROD-GW编队的部署,时延干涉测量(TDI)和有效载荷。科学目标是从(i)超质量黑洞中检测出GW。 (ii)最高质量比黑洞灵感; (iii)中质量黑洞; (iv)银河紧凑二进制文件和(v)遗物GW背景。为了原始GW的检测,将需要六个航天器编队以实现对随机GW的相关检测。还简要介绍了六种航天器的轨道优化。

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