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Precise evaluation of atmospheric loading effects on Earth's time-variable gravity field

机译:精确评估大气负荷对地球时变重力场的影响

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摘要

New space gravity missions will provide gravity measurements with unprecedented accuracy and high spatial resolution. To reveal the oceanic and hydrologic signals in monthly time-variable gravity field from the Gravity Recovery and Climate Experiment (GRACE) satellite (Tapley et al., 2004) entails the removal of the atmospheric contribution, which in turn requires a precise knowledge of the atmospheric mass redistribution. We reconstruct the three-dimensional (3-D) variations of air-density from vertical profiles of pressure, temperature, and specific humidity provided by the National Centers for Environmental Prediction (NCEP) atmospheric model of a realistic topography. We compare our results with those from the classical thin layer (2-D) approximation and show that the differences between the complete 3-D and the 2-D computations are often nonnegligible in the presence of the expected GRACE sensitivity up to harmonic degrees of 15–20, corresponding to wavelengths of 2000–2500 km. For actual computation, we recommend the use of the sigma level atmospheric data with special attention to the latitude and altitude dependence of the Earth's gravity. We also examine and conclude the importance of the differences with previous study which assumed a constant surface gravity acceleration without a latitudinal dependence.
机译:新的太空重力任务将提供前所未有的精度和高空间分辨率的重力测量。为了揭示重力恢复和气候实验(GRACE)卫星在每月随时间变化的重力场中的海洋和水文信号(Tapley等,2004),需要去除大气中的贡献,这反过来又需要对大气质量再分配。我们从逼真的地形的国家环境预测中心(NCEP)大气模型提供的压力,温度和比湿的垂直剖面中重建空气密度的三维(3-D)变化。我们将我们的结果与经典薄层(2-D)近似方法的结果进行了比较,结果表明,在存在预期的GRACE灵敏度(直至谐波次数)的情况下,完整的3-D和2-D计算之间的差异通常不可忽略。 15–20,对应于2000–2500 km的波长。对于实际计算,我们建议使用sigma级大气数据,并特别注意地球引力的纬度和高度依赖性。我们还检查并总结了与先前研究的差异的重要性,之前的研究假设恒定的表面重力加速度而没有纬度依赖性。

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