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首页> 外文期刊>Advances in Atmospheric Sciences >27.3-day and average 13.6-day periodic oscillations in the Earth’s rotation rate and atmospheric pressure fields due to celestial gravitation forcing
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27.3-day and average 13.6-day periodic oscillations in the Earth’s rotation rate and atmospheric pressure fields due to celestial gravitation forcing

机译:天体引力引起的地球自转速率和大气压力场的27.3天和平均13.6天的周期性振荡

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摘要

Variation in length of day of the Earth (LOD, equivalent to the Earth’s rotation rate) versus change in atmospheric geopotential height fields and astronomical parameters were analyzed for the years 1962–2006. This revealed that there is a 27.3-day and an average 13.6-day periodic oscillation in LOD and atmospheric pressure fields following lunar revolution around the Earth. Accompanying the alternating change in celestial gravitation forcing on the Earth and its atmosphere, the Earth’s LOD changes from minimum to maximum, then to minimum, and the atmospheric geopotential height fields in the tropics oscillate from low to high, then to low. The 27.3-day and average 13.6-day periodic atmospheric oscillation in the tropics is proposed to be a type of strong atmospheric tide, excited by celestial gravitation forcing. A formula for a Tidal Index was derived to estimate the strength of the celestial gravitation forcing, and a high degree of correlation was found between the Tidal Index determined by astronomical parameters, LOD, and atmospheric geopotential height. The reason for the atmospheric tide is periodic departure of the lunar orbit from the celestial equator during lunar revolution around the Earth. The alternating asymmetric change in celestial gravitation forcing on the Earth and its atmosphere produces a “modulation” to the change in the Earth’s LOD and atmospheric pressure fields.
机译:分析了1962-2006年地球日长(LOD,等于地球自转速度)与大气势能高度场和天文参数变化的关系。这表明,绕地球绕月球运动后,LOD和大气压力场有27.3天和平均13.6天的周期性振荡。伴随着地球及其大气层上的天体引力的交替变化,地球的LOD从最小变为最大,然后变为最小,并且热带地区的大气势能高度场从低到高,然后到低。热带地区的27.3天和平均13.6天的周期性大气振荡被认为是一种强烈的大气潮,由天体重力强迫激发。推导了潮汐指数的公式来估算天体引力的强度,并发现由天文学参数,LOD和大气势能高度确定的潮汐指数之间具有高度相关性。大气潮的原因是在绕地球的月球公转期间,月球轨道周期性地偏离天赤道。天体引力在地球及其大气层上的交替不对称变化,对地球的LOD和大气压力场的变化产生了“调制”。

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