首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Estimation of Earth interior parameters from a Bayesian inversion of very long baseline interferometry nutation time series
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Estimation of Earth interior parameters from a Bayesian inversion of very long baseline interferometry nutation time series

机译:从非常长的基线干涉测量矩阵矩阵读取地球内部参数的估算

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摘要

Among the variations in the rotation of the Earth, the nutation is the most suitable for studying the Earth's internal structure. The nutation is mainly driven by the gravitational torque of the Moon, the Sun and the planets acting on its equatorial bulge. The Earth response to this external forcing is influenced by its internal structure. Because the gravitational forcing is known to a very good accuracy, the high precision nutation observations, using the very long baseline interferometry (VLBI) technique, allow to estimate Earth interior parameters. The nutational response of the nonrigid Earth to the gravitational forcing has previously been modeled by a semianalytic model which depends on parameters, related to the Earth interior, that are adjusted on the nutation observations. Those parameters are the dynamical ellipticities of the whole Earth and fluid core, compliances describing the deformability of the whole Earth and fluid core, and coupling constants related to the torques generated by the differential rotation of the mantle, fluid core and solid inner core. Most of the nutation models are frequency domain models so that, in previous studies, the time series of observations are processed before the fit in order to get data in the frequency domain. Because the parameters are fit only on the twenty dominant terms in the frequency domain, this fit leads to a loss of information. In this paper, we present a new fit procedure of the nutation model to the observations, which estimates the Earth's parameters directly from the time series of nutation data. This allows to use all the information of the time domain data and to account for the time variable uncertainties on the data (this time variability is due to the improvement of the measurement techniques). Rather than the linearized least squares method used in previous studies, we use a probabilistic (Bayesian) inversion method. This method does not rely on the assumption that the model is linear in its parameters, it is thus particularly well-suited for the highly nonlinear nutation model. In addition, we include an additional parameter to allow for uncertainties in the nutation model itself. This parameter is estimated jointly with the geophysical parameters. As result, we obtain a probability distribution on the parameters. The numerical results are compared with those obtained from previous studies.
机译:在地球旋转的变化中,批判是研究地球内部结构最适合的。努力主要由月亮的引力扭矩,太阳和行星作用在其赤道凸起上。对此外部强制的地球反应受其内部结构的影响。由于引力强制以非常好的准确度,所以使用非常长的基线干涉测量(VLBI)技术的高精度询问观测,允许估计地球内部参数。非脂饼地球对引力强制的求解响应先前已经由半镨模型建模,这取决于与地球内部相关的参数,这些模型在询问观察中调整。这些参数是整个地球和流体芯的动态椭圆型,可根据整个地球和流体芯的可变形性,以及与由披风,流体芯和固体内芯的差动旋转产生的扭矩相关的耦合常数。大多数询问模型是频域模型,使得在以前的研究中,在适合之前处理的时间序列是在拟合域中获取数据。因为参数仅适用于频域中的二十个主导术语,所以这种拟合导致信息丢失。在本文中,我们向观察结果提出了新的纠缠模型的拟合程序,该观察结果直接估计了地球的参数。这允许使用时域数据的所有信息,并考虑数据上的时间变量不确定性(此时间可变性是由于测量技术的改进)。我们使用概率(贝叶斯)反转方法而不是在先前研究中使用的线性化最小二乘法。该方法不依赖于假设模型在其参数中线性,因此特别适用于高度非线性询问模型。此外,我们包括附加参数,以允许纠缠模型本身的不确定性。该参数与地球物理参数共同估计。结果,我们在参数上获得概率分布。将数值结果与从先前的研究中获得的数值进行比较。

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    Department of Reference Systems and Geodynamics Royal Observatory of Belgium Brussels Belgium;

    Department of Reference Systems and Geodynamics Royal Observatory of Belgium Brussels Belgium;

    Institut de Physique du Globe de Paris associé au CNRS et à l'Université de Paris VII Paris France;

    Department of Reference Systems and Geodynamics Royal Observatory of Belgium Brussels Belgium;

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  • 正文语种 eng
  • 中图分类 地球物理学;
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