地球能量储存全球季节性循环的终结

IF 4.9 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS Surveys in Geophysics Pub Date : 2023-07-18 DOI:10.1007/s10712-023-09797-6
Gregory C. Johnson, Felix W. Landerer, Norman G. Loeb, John M. Lyman, Michael Mayer, Abigail L. S. Swann, Jinlun Zhang
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引用次数: 0

摘要

利用观测和再分析,对地球气候系统中能量的全球季节性循环进行了量化。在排除长期趋势后,进入和离开大气顶部气候系统的净能量(TOA)应与平均一年中进入和离开海洋、大气、陆地和冰的能量总和一致。通过观察实现这种平衡预算一直是一项挑战。先前的分歧被归因于高纬度海洋的稀疏观测。然而,将新的全球海洋热含量估计值的局部垂直整合限制在季节性热能储存的深度,而不是像以前那样在各地整合到2000米,可以在统计不确定性范围内关闭全球季节性能量收支。能量储存的季节周期在海洋中最大,在4月达到峰值,因为南半球海洋面积最大,海洋的热惯性导致了相对于南方夏至的滞后。大气和陆地能量储存的季节周期较小,但分别在7月和9月达到高峰,这是由于北半球陆地较多,陆地的热惯性比大气大。全球冰的季节性蓄能较小,因此大气和陆地在全球积分中部分抵消了海洋蓄能,它们的总和与季节周期内不确定因素的时间积分净全球TOA能量通量相匹配,并且都在4月份达到峰值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Closure of Earth’s Global Seasonal Cycle of Energy Storage

The global seasonal cycle of energy in Earth’s climate system is quantified using observations and reanalyses. After removing long-term trends, net energy entering and exiting the climate system at the top of the atmosphere (TOA) should agree with the sum of energy entering and exiting the ocean, atmosphere, land, and ice over the course of an average year. Achieving such a balanced budget with observations has been challenging. Disagreements have been attributed previously to sparse observations in the high-latitude oceans. However, limiting the local vertical integration of new global ocean heat content estimates to the depth to which seasonal heat energy is stored, rather than integrating to 2000 m everywhere as done previously, allows closure of the global seasonal energy budget within statistical uncertainties. The seasonal cycle of energy storage is largest in the ocean, peaking in April because ocean area is largest in the Southern Hemisphere and the ocean’s thermal inertia causes a lag with respect to the austral summer solstice. Seasonal cycles in energy storage in the atmosphere and land are smaller, but peak in July and September, respectively, because there is more land in the Northern Hemisphere, and the land has more thermal inertia than the atmosphere. Global seasonal energy storage by ice is small, so the atmosphere and land partially offset ocean energy storage in the global integral, with their sum matching time-integrated net global TOA energy fluxes over the seasonal cycle within uncertainties, and both peaking in April.

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来源期刊
Surveys in Geophysics
Surveys in Geophysics 地学-地球化学与地球物理
CiteScore
10.00
自引率
10.90%
发文量
64
审稿时长
4.5 months
期刊介绍: Surveys in Geophysics publishes refereed review articles on the physical, chemical and biological processes occurring within the Earth, on its surface, in its atmosphere and in the near-Earth space environment, including relations with other bodies in the solar system. Observations, their interpretation, theory and modelling are covered in papers dealing with any of the Earth and space sciences.
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