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Geocentre motion measured with DORIS and SLR, and predicted by geophysical models

机译:用DORIS和SLR测量并通过地球物理模型预测的地心运动

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Geocentre motion signals measured by satellite geodesy and those predicted from the observed mass redistribution in the ocean, atmosphere and terrestrial waters over 1993.1-2003.0 are analysed and compared under two viewpoints: the amplitudes and phases of the seasonal components, and the spectral signature of the non-seasonal components. The geodetic signals partly match the geophysical variations in the seasonal band, with possible remaining annual and semi-annual errors in both techniques, at the millimetre level in the equatorial plane for Satellite laser ranging (SLR) and Doppler Orbitography and radiopositioning integrated on Satellite (DORIS), and at the centimetre level in T_z (Z-axis translation) for DORIS. Unlike SLR, the DORIS annual signatures in all three geocentre components have strongly varying amplitudes after 1996. The amplitude of the annual geophysical signal in T_y is slowly growing with time. All three geophysical fluids contribute to this effect. The magnitude of the geophysically derived long-term geocentre motion is of the same magnitude in the T_x, T_y and T_z directions, with a 0.5-1.0 mm Allan standard deviation for the 1-year sampling time, while the geodetic values are 2 mm in the equatorial plane for both SLR and DORIS, 4 mm for SLR and 9 mm for DORIS in the T_z direction. The mismatch of the geodetic signal with the geophysical one in the inter-annual band is suggested to be due partly to excessive geodetic noise and partly to underestimated geophysical signal.
机译:利用两种观点对通过卫星大地测量测量的地心运动信号和根据观测到的海洋,大气和陆地水域的质量再分布预测的地心运动信号进行了比较,并从以下两个角度进行了比较:季节分量的振幅和相位以及卫星的频谱特征。非季节性成分。大地测量信号部分匹配季节性带的地球物理变化,两种技术都可能存在年误差和半年误差,在卫星激光测距(SLR)和多普勒轨道成像以及集成在卫星上的无线电定位的赤道平面毫米级DORIS),并在T_z的厘米级别(Z轴平移)表示DORIS。与SLR不同,1996年以后,所有三个地球中心分量的DORIS年度信号振幅都有很大变化。T_y中的年度地球物理信号振幅随时间缓慢增长。所有这三种地球物理流体都有助于这种作用。从地球物理上得出的长期地球中心运动的幅度在T_x,T_y和T_z方向上具有相同的幅度,在1年采样时间内的艾伦标准偏差为0.5-1.0 mm,而大地测量值为2 mm。在T_z方向上,SLR和DORIS的赤道平面分别为4 mm和9 mm。有人认为大地信号与年际频带中的地球物理信号不匹配,部分原因是大地噪声过大,部分是由于地球物理信号被低估了。

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