复杂风场条件下湖泊风生流模拟与未来环流预测——以青海湖为例

IF 4.8 2区 环境科学与生态学 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Junyang Li , Yuanfu Zhang , Yuxiu Li , Kai Ma , Zhikang Wang , Xiaohan Zhang , Yuchuan Yi , Pengxiang Lu , Zhiqian Gao , Min Wang
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引用次数: 0

摘要

复杂风场影响下的湖流响应机制是水文学和现代沉积研究领域的一个交叉学科热点。青海湖受多风场影响,内部水动力复杂,控制因素未知。目前的研究主要集中在气候和盛行西北风对青海湖湖流的影响上,而对其他因素的研究较少。本文在前人研究的基础上,分析了盛行风和陆湖微风共同作用下的风生流响应。利用浅水方程,综合气候资料、多风场条件、风速、吹程和水深,建立了水量平衡条件下的湖流模拟模型。通过与实测循环、水位和流量数据的比较,验证了所采用模型的准确性。结果表明:青海湖主要环流以盛行西北风为主,次环流以陆湖微风为主;北风抑制了某些次级环流的形成,如哈达湾地区的逆时针环流和东南湾的顺时针环流。在年际尺度上,青海湖北岸陆湖风风速与总水量呈正相关,与气温负相关。这些发现有助于模拟复杂风场条件下的环流,并基于对气候和水位变化的预测推断未来湖泊水流的发展模式。目前,青海湖沿岸的现代沉积现象较为复杂:南岸的风浪和沿岸流形成了海岸沙洲,而哈尔盖河北部支流河口的风浪和沿岸流形成了海岸屏障和泻湖。因此,本研究可为青海湖现代泥沙沉积与湖泊富营养化研究提供参考。为类似湖盆沉积油气藏研究提供理论支持。通过分析复杂风场对湖泊环流的驱动机制,为湖泊动力学基础理论研究提供新的视角和数据支持。为预测未来气候变化下湖泊水动力响应奠定了基础。为湖沼学、沉积学、生态学等学科的交叉研究提供了理论框架和实践参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wind-generated flow modeling and future circulation prediction of lakes under complex wind field - A case study of Qinghai Lake
The response mechanism of lake flow under the influence of a complex wind field is a cross-disciplinary hotspot in the fields of hydrology and modern sedimentation research. Qinghai Lake, influenced by multiple wind fields, exhibits complex internal hydrodynamics with largely unknown controlling factors. Current studies predominantly focus on the impact of climate and prevailing northwesterly winds on lake flow in Qinghai Lake, while other factors receive less consideration. Building on previous research, this thesis analyzes the wind-generated flow response under the combined influence of prevailing wind and land-lake breeze. A simulation model of lake flow under water balance conditions was constructed using the shallow water equation, integrating climatic data, multiple wind field conditions, wind speed, blowing range, and water depth. The accuracy of the adopted model is validated by comparison with measured circulation, water level, and flow rate data.Results indicate that the prevailing northwesterly wind in Qinghai Lake predominantly controls the main circulation, while the land-lake breeze governs the secondary circulation. The north wind inhibits the formation of certain secondary circulations, such as the counterclockwise circulation in the Hada Bay area and the clockwise circulation in the Dongnan Bay.On an interannual scale, the wind speed of the land-lake breeze along the north shore of Qinghai Lake is positively correlated with the total water volume and negatively correlated with temperature.These findings facilitate the simulation of circulation under complex wind field conditions and allow inference of future lake current development patterns based on predictions of climate and water level changes.
Currently, the modern sedimentary phenomena along the shore of Qinghai Lake are complex: wind-driven waves and littoral currents form shore sandbars on the southern shore, while wind-driven waves and littoral currents create longshore barriers and lagoons at the mouth of the Hargai River's northern tributary. Therefore, this study can provide a reference for research on modern sandy sedimentation and lake eutrophication in Qinghai Lake. It also offers theoretical support for sedimentary oil and gas reservoirs in similar lake basins.By analyzing the driving mechanisms of complex wind fields on lake circulation, this study can provide new perspectives and data support for the fundamental theoretical research of lake dynamics. It also lays the foundation for predicting the hydrodynamic responses of lakes under future climate change. Additionally, it offers a theoretical framework and practical reference for interdisciplinary research in limnology, sedimentology, ecology, and related fields.
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来源期刊
Environmental Modelling & Software
Environmental Modelling & Software 工程技术-工程:环境
CiteScore
9.30
自引率
8.20%
发文量
241
审稿时长
60 days
期刊介绍: Environmental Modelling & Software publishes contributions, in the form of research articles, reviews and short communications, on recent advances in environmental modelling and/or software. The aim is to improve our capacity to represent, understand, predict or manage the behaviour of environmental systems at all practical scales, and to communicate those improvements to a wide scientific and professional audience.
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