地球气候系统模式的层次结构

IF 0.7 4区 地球科学 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
A. V. Eliseev
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引用次数: 0

摘要

地球气候系统的模式,连同气候的物理组成部分(大气、海洋、海冰、活跃的陆地层),包含用于描述地球系统中(生物)地球化学过程的模块,在某些情况下还包括社会经济过程。在这种模型的层次结构的顶端,我们可以看到通用循环模型,它能够详细地表示所考虑的每个组件,但其特点是计算成本高。地球气候系统最简单的模式是能量平衡模式和辐射对流模式,其特点是空间分辨率低,而且只考虑到少数最重要的气候形成过程。然而,这些模型有许多优点,主要是物理简单易懂。此外,辐射对流模式对于研究一般环流模式中允许的一些过程和调整适当的模块是有用的。此外,还有一类中等复杂程度的地球气候系统模式,它们考虑了一般环流模式中提出的大多数过程(有时也考虑了后者未考虑的过程),但也作了一些简化。这门课的优势在于有机会整合几万年甚至更长时间的模型。本文讨论了所有这些类型的模型,并讨论了它们的特征,包括其中明确考虑到的守恒定律,以及适用不同类型的地球气候系统模型的问题类型。此外,还讨论了同时使用不同类型模式的地球气候系统模式的比较方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hierarchy of the Models of the Earth Climate System

Models of the Earth climate system, along with the physical components of the climate (atmosphere, ocean, sea ice, active land layer), contain modules for describing (bio)geochemical processes in the Earth system, as well as the socio-economic processes in some cases. At the top of the hierarchy of such models one can see general-circulation models which are able to represent each of the considered components in detail, but are characterized by high computational cost. The simplest models of the Earth climate system are the energy-balance models and radiative-convective models characterized by low spatial resolution and allowance for only a small number of the most important climate-forming processes. Nevertheless, these models are characterized by a number of advantages, primarily, simple and understandable physics. Moreover, radiative-convective models are useful for studying a number of the processes allowed for in general-circulation models and tuning appropriate modules. In addition, there is a class of models of the Earth climate system of intermediate complexity, which take into account most of the processes presented in the general-circulation models (and sometimes the processes unaccounted for in the latters), but with a number of simplifications. The advantage of this class is related to an opportunity of integrating the model for the periods of tens of thousands years or even more. The review deals with all these classes of models with discussions of their features, including the conservation laws explicitly taken into account in them, as well as the classes of problems to which it is advisable to apply the models of the Earth climate system of different types. Additionally, the projects for comparing the models of the Earth climate system in which models of different classes are used simultaneously are discussed.

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来源期刊
Radiophysics and Quantum Electronics
Radiophysics and Quantum Electronics ENGINEERING, ELECTRICAL & ELECTRONIC-PHYSICS, APPLIED
CiteScore
1.10
自引率
12.50%
发文量
60
审稿时长
6-12 weeks
期刊介绍: Radiophysics and Quantum Electronics contains the most recent and best Russian research on topics such as: Radio astronomy; Plasma astrophysics; Ionospheric, atmospheric and oceanic physics; Radiowave propagation; Quantum radiophysics; Pphysics of oscillations and waves; Physics of plasmas; Statistical radiophysics; Electrodynamics; Vacuum and plasma electronics; Acoustics; Solid-state electronics. Radiophysics and Quantum Electronics is a translation of the Russian journal Izvestiya VUZ. Radiofizika, published by the Radiophysical Research Institute and N.I. Lobachevsky State University at Nizhnii Novgorod, Russia. The Russian volume-year is published in English beginning in April. All articles are peer-reviewed.
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