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Einstein Gravity Explorer-a medium-class fundamental physics mission

机译:爱因斯坦重力探险家-中级基础物理学任务

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摘要

The Einstein Gravity Explorer mission (EGE) is devoted to a precise measurement of the properties of space-time using atomic clocks. It tests one of the most fundamental predictions of Einstein's Theory of General Relativity, the gravitational redshift, and thereby searches for hints of quantum effects in gravity, exploring one of the most important and challenging frontiers in fundamental physics. The primary mission goal is the measurement of the gravitational redshift with an accuracy up to a factor 10(4) higher than the best current result. The mission is based on a satellite carrying cold atom-based clocks. The payload includes a cesium microwave clock (PHARAO), an optical clock, a femtosecond frequency comb, as well as precise microwave time transfer systems between space and ground. The tick rates of the clocks are continuously compared with each other, and nearly continuously with clocks on earth, during the course of the 3-year mission. The highly elliptic orbit of the satellite is optimized for the scientific goals, providing a large variation in the gravitational potential between perigee and apogee. Besides the fundamental physics results, as secondary goals EGE will establish a global reference frame for the Earth's gravitational potential and will allow a new approach to mapping Earth's gravity field with very high spatial resolution. The mission was proposed as a class-M mission to ESA's Cosmic Vision Program 2015-2025.
机译:爱因斯坦重力探测器任务(EGE)致力于使用原子钟精确测量时空的属性。它测试了爱因斯坦的广义相对论的最基本预测之一,即引力红移,从而寻找了引力中量子效应的提示,从而探索了基本物理学中最重要和最具挑战性的领域之一。首要任务目标是对引力红移的测量,其精度比目前的最佳结果高10(4)倍。该任务基于携带冷原子钟的卫星。有效载荷包括铯微波时钟(PHARAO),光学时钟,飞秒频率梳以及空间与地面之间的精确微波时间传输系统。在为期3年的任务期间,时钟的滴答频率不断相互比较,与地球上的时钟几乎连续不断。卫星的高椭圆轨道已针对科学目标进行了优化,从而使近地点和远地点之间的重力势能发生很大变化。除了基本的物理结果,EGE还将作为次要目标,为地球的重力建立一个全球参考框架,并将提供一种新的方法来绘制具有很高空间分辨率的地球重力场。该任务被提议作为ESA 2015-2025年宇宙视觉计划的M级任务。

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