表面能量平衡非闭合与水平不对称湍流输运之间的联系

IF 3 3区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES Quarterly Journal of the Royal Meteorological Society Pub Date : 2023-08-18 DOI:10.1002/qj.4562
Changxing Lan, Baomin Wang, L. Li, Renzhi Fang, Ye Wang, Zhijie Zhang, Dan Zheng, Baofeng Zheng
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引用次数: 0

摘要

许多研究报道,传统的涡动相关(EC)方法普遍低估了垂直湍流通量,导致地表能量平衡(SEB)的非闭合问题突出。虽然认识到地表能量不平衡的扩大往往与风切变的增加同时发生,但大涡流在影响SEB中的作用尚不清楚。分析由EC阵列收集的数据,观察到相当大的运动热流的水平不均匀性。结果表明,结合空间通量贡献的组合式电磁法相对于传统电磁法提高了21%的运动热流密度,改善了SEB的封闭性。此外,光谱分析表明,尺度在0.0005 ~ 0.01(归一化频率范围内)的大涡流是运动热通量水平不均匀的主要原因。在不稳定条件下,这一过程是在以扩大的不对称湍流通量输运为特征的大涡流上进行的。随着风切变的增强,与扫射和喷射相关的通量贡献的增加变得不成比例,导致运动热通量的水平不均匀性,从而可以解释SEB不闭合性的增加。这篇文章受版权保护。版权所有。
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Linkage between Surface Energy Balance Non‐closure and Horizontal Asymmetric Turbulent Transport
A number of studies have reported that the traditional eddy covariance (EC) method generally underestimated vertical turbulent fluxes, leading to an outstanding non‐closure problem of the surface energy balance (SEB). Although it is recognized that the enlarged surface energy imbalance frequently coincides with the increasing wind shear, the role of large eddies in affecting the SEB remains unclear. Analyzing data collected by an EC array, considerable horizontal inhomogeneity of kinematic heat flux is observed. The results show that the combined EC method which incorporates the spatial flux contribution increases the kinematic heat flux by 21% relative to the traditional EC method, improving the SEB closure. Additionally, spectral analysis indicates that large eddies with scales ranging from 0.0005 to 0.01 (in the normalized frequency) mainly account for the horizontal inhomogeneity of kinematic heat flux. Under unstable conditions, this process is operating upon large eddies characterized by enlarged asymmetric turbulent flux transport. With enhanced wind shear, the increment of flux contribution associated with sweeps and ejections becomes disproportionate, contributing to the horizontal inhomogeneity of kinematic heat flux, and thus may explain the increased SEB non‐closure.This article is protected by copyright. All rights reserved.
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来源期刊
CiteScore
16.80
自引率
4.50%
发文量
163
审稿时长
3-8 weeks
期刊介绍: The Quarterly Journal of the Royal Meteorological Society is a journal published by the Royal Meteorological Society. It aims to communicate and document new research in the atmospheric sciences and related fields. The journal is considered one of the leading publications in meteorology worldwide. It accepts articles, comprehensive review articles, and comments on published papers. It is published eight times a year, with additional special issues. The Quarterly Journal has a wide readership of scientists in the atmospheric and related fields. It is indexed and abstracted in various databases, including Advanced Polymers Abstracts, Agricultural Engineering Abstracts, CAB Abstracts, CABDirect, COMPENDEX, CSA Civil Engineering Abstracts, Earthquake Engineering Abstracts, Engineered Materials Abstracts, Science Citation Index, SCOPUS, Web of Science, and more.
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