首页> 外文期刊>General Relativity and Gravitation: GRG Journal >Effects of satellite positioning errors and Earth's multipole moments in the detection of the gravitomagnetic field with an orbiting gravity gradiometer
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Effects of satellite positioning errors and Earth's multipole moments in the detection of the gravitomagnetic field with an orbiting gravity gradiometer

机译:卫星定位误差和地球多极矩在轨道重力梯度仪探测重力磁场中的作用

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The rotation of the Earth produces gravitomagnetic components of the Riemann curvature tensor, which are of the order of 10~(-10) of the Newtonian terms arising from the mass of the Earth. Detection of the gravitomagnetic field is very important, since it tests one of the most fundamental predictions of general relativity.We review the experimental scheme for detecting the gravitomagnetic effect with an orbiting gravity gradiometer in an inertial frame. Two factors which can affect the experiment, satellite positioning errors and Earth's multipole moments, are analyzed. We derive the satellite positioning accuracy required for construction of matched templates with sufficient precision.We find that the satellite orbit must be carefully selected to avoid some dangerous altitudes at which Earth's multipole moments can mask gravitomagnetic signals. Allowable orbit altitudes are computed. We also examine an alternative scheme, in which the gradiometer is fixed to a local inertial frame defined by gyroscopes. In this experiment, the gradient signal grows linearly with time due to the Lense-Thirring effect, and the satellite positioning errors and Earth's multipole moments become negligible.
机译:地球的自转产生了黎曼曲率张量的重力分量,其分量是地球质量引起的牛顿项的10〜(-10)。重力磁场的检测非常重要,因为它测试了广义相对论的最基本的预测之一。我们回顾了在惯性系中使用轨道重力梯度仪检测重力效应的实验方案。分析了可能影响实验的两个因素,卫星定位误差和地球的多极矩。我们得出了足够精确的构造匹配模板所需的卫星定位精度,我们发现必须谨慎选择卫星轨道,以避免地球多极矩可以掩盖重力信号的某些危险高度。计算允许的轨道高度。我们还研究了一种替代方案,其中梯度仪固定在陀螺仪定义的局部惯性系上。在本实验中,由于Lense-Thirring效应,梯度信号随时间线性增长,卫星定位误差和地球的多极矩变得可以忽略不计。

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