首页 | 本学科首页   官方微博 | 高级检索  
     检索      

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
作者姓名:LI Guoqing  ZONG Haifeng  ZHANG Qingyun
作者单位:中国科学院大气物理研究所,,
基金项目:The National Natural Science Foundation of China (General Program, Key Program, Major Research Plan)
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.

关 键 词:atmospheric  tide  intraseasonal  atmospheric  oscillation  length  of  day  (LOD)  lunar  declina-  tion  astro-meteorology
收稿时间:2/3/2010 12:00:00 AM

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
LI Guoqing,ZONG Haifeng,ZHANG Qingyun.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[J].Advances in Atmospheric Sciences,2011,28(1):45-58.
Authors:LI Guoqing  ZONG Haifeng and ZHANG Qingyun
Institution:Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100029,Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100029,Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100029
Abstract:Variation in length of day of the Earth (LOD, equivalent to the Earths 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 Earths 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 Earths LOD and atmospheric pressure fields.
Keywords:atmospheric tide  intraseasonal atmospheric oscillation  length of day (LOD)  lunar declination  astro-meteorology
本文献已被 CNKI SpringerLink 等数据库收录!
点击此处可从《大气科学进展》浏览原始摘要信息
点击此处可从《大气科学进展》下载免费的PDF全文
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号