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The effect of global seismicity on the polar motion of a viscoelastic Earth

机译:全球地震活动对粘弹性地球极性运动的影响

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摘要

We evaluate the polar drift of a stratified viscoelastic Earth, generated by 20 years of global seismicity (from the Centroid Moment Tensor catalog, 1977–1997). Our estimate is better than that of Soldati and Spada [1999] because it accounts for the effects, previously neglected, of earthquakes at depths larger than 80 km. In fact, we show that deep focus and intermediate-depth focus seismic events tend to affect the Earth's inertia tensor more significantly than shallow ones; specifically, we find that the mean rate of polar drift (evaluated over a 6-year time interval immediately following the seismic event) due to a vertical dip-slip source at the bottom of the asthenosphere (280 km depth in our model) is 5 times larger than that generated by an analogous source, located at the boundary between lithosphère and asthenosphere (80 km depth). We conclude, nevertheless, that global seismic activity is not able to alter significantly the rotational parameters of the Earth: according to our computations, the changes that it induces in the inertia tensor result in an average polar drift that is still significantly smaller than the observed one.
机译:我们评估了由20年的全球地震活动产生的分层粘弹性地球的极坐标漂移(来自1977年至1997年的矩矩张量目录)。我们的估计值优于Soldati和Spada [1999]的估计值,因为它考虑了以前被忽略的深度大于80 km的地震的影响。实际上,我们表明,深层地震和中深层地震对地震惯性张量的影响比对浅层地震的影响大。具体来说,我们发现由于软流层底部(模型中深度为280 km)的垂直倾滑源造成的极地漂移的平均速率(在地震事件发生后的6年时间间隔内进行评估)为5位于石斑与软流圈之间边界(深度80 km)的类似源的两倍大。然而,我们得出的结论是,全球地震活动无法显着改变地球的旋转参数:根据我们的计算,它在惯性张量中引起的变化导致平均极坐标漂移仍显着小于观测到的平均极坐标漂移一。

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