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首页> 外文期刊>Celestial Mechanics and Dynamical Astronomy: An international journal of space dynamics >Secular increase of astronomical unit from analysis of the major planet motions, and its interpretation
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Secular increase of astronomical unit from analysis of the major planet motions, and its interpretation

机译:通过对主要行星运动的分析及其解释,天文单位的长期增加

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From the analysis of all available radiometric measurements of distances between the Earth and the major planets (including observations of martian landers and orbiters over 1971-2003 with the errors of few meters) the positive secular trend in the Astronomical Unit AU is estimated as d/dt AU 15 +/- 4 m/cy. The given uncertainty is the 10 times enlarged formal error of the least-squares estimate and so accounts for possible systematic errors of measurements and deficiencies of the mathematical model. The reliability of this estimate as well as its physical meaning are discussed. A priori most plausible attribution of this effect to the cosmological expansion of the Universe turns out inadequate. A model of the observables developed in the frame of the relativistic background metric of the uniform isotropic Universe shows that the corresponding dynamical perturbations in the major planet motions are completely cancelled out by the Einstein effect of dependence of the rate of the observer's clock (that keeps the proper time) on the gravitational field, though separately values of these two effects are quite large and attainable with the accuracy achieved. Another tentative source of the secular rate of AU is the loss of the solar mass due to the solar wind and electromagnetic radiation but it amounts in d/dt AU only to 0.3 m/cy. Excluding other explanations that seem exotic (such as secular decrease of the gravitational constant) at present there is no satisfactory explanation of the detected secular increase of AU, at least in the frame of the considered uniform models of the Universe.
机译:根据对地球和主要行星之间距离的所有可用辐射测量结果的分析(包括1971-2003年火星着陆器和轨道器的观测,误差仅有几米),天文单位AU的长期长期趋势估计为d / dt AU 15 +/- 4 m / cy。给定的不确定度是最小二乘估计值的10倍形式误差,因此考虑了测量的系统误差和数学模型的不足。讨论了该估计的可靠性及其物理意义。这种效应对宇宙的宇宙膨胀的先验最合理的归因是不充分的。在均匀各向同性宇宙的相对论背景度量框架内开发的可观测物模型表明,主要行星运动中相应的动力学扰动被观察者时钟频率依赖性的爱因斯坦效应完全抵消了(保持适当的时间),尽管这两个效果的值分别很大,并且可以达到所达到的精度。 AU的长期速率的另一个尝试性来源是由于太阳风和电磁辐射造成的太阳质量的损失,但它在d / dt AU中的总和仅为0.3 m / cy。目前,除了其他看似稀奇古怪的解释(例如重力常数的长期下降)之外,至少在所考虑的统一模型的框架内,还没有令人满意的解释说明所检测到的AU的长期上升。

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