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Thermal transport modelling in a fully integrated surface/subsurface framework

机译:完全集成的表面/地下框架中的热输运模型

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摘要

Thermal stream loadings from both natural and anthropogenic sources have significant relevance with respect to ecosystem health and water resources management, particularly in the context of future climate change. In recent years, there has been an increase in field-based research directed towards characterizing thermal energy transport exchange processes that occur at the surface water/groundwater interface of streams. In spite of this effort, relatively little work has been performed to simulate these exchanges and elucidate their roles in mediating surface water temperatures and to simultaneously take into account all the pertinent hydrological, meteorological and surface/variably-saturated subsurface processes. To address this issue, HydroGeoSphere, a fully-integrated surface/subsurface flow and transport model, was enhanced to include fully integrated thermal energy transport. HydroGeoSphere can simulate water flow, evapotranspiration, and advective-dispersive heat and solute transport over the 2D land surface and water flow and heat and solute transport in the 3D subsurface under variably saturated conditions. In this work, the new thermal capabilities of HydroGeoSphere are tested and verified by comparing HydroGeoSphere simulation results to those from a previous subsurface thermal groundwater injection study and also by simulating an example of atmospheric thermal energy exchange. High-resolution 3D numerical simulations of a well-characterized reach of the Pine River in Ontario, Canada are also presented to demonstrate thermal energy transport in an atmosphere-groundwater-surface water system. The HydroGeoSphere simulation successfully matched the spatial variations in the thermal patterns observed in the riverbed, the surface water and the groundwater. The computational framework can be used to provide quantitative guidance towards establishing the conditions needed to maintain a healthy ecosystem.
机译:天然和人为来源产生的热流负荷与生态系统健康和水资源管理有着重要的联系,特别是在未来气候变化的背景下。近年来,基于田间研究的增加,旨在表征流的地表水/地下水界面处发生的热能传递交换过程。尽管付出了这一努力,但为模拟这些交换并阐明其在调节地表水温度中的作用,并同时考虑到所有相关的水文,气象和地表/变饱和地下过程,所做的工作相对较少。为了解决此问题,对HydroGeoSphere(一种完全集成的表面/地下流量和传输模型)进行了增强,使其包括了完全集成的热能传输。 HydroGeoSphere可以模拟在可变饱和条件下2D陆地表面上的水流,蒸散量以及对流分散的热和溶质运移,以及3D地下中的水流,热和溶质运移。在这项工作中,通过将HydroGeoSphere模拟结果与之前的地下地下热水注入研究的结果进行比较,并通过模拟大气热能交换的示例,对HydroGeoSphere的新热力性能进行了测试和验证。还展示了加拿大安大略省派恩河特征鲜明的高分辨率3D数值模拟,以演示热能在大气-地下水-地表水系统中的传输。 HydroGeoSphere模拟成功地匹配了在河床,地表水和地下水中观察到的热模式的空间变化。该计算框架可用于提供定量指导,以建立维持健康生态系统所需的条件。

著录项

  • 来源
    《Hydrological Processes》 |2009年第15期|2150-2164|共15页
  • 作者单位

    Department of Earth and Environmental Sciences, University of Waterloo, 200 University Avenue W., Waterloo, ON, N2L 3G1, Canada;

    Department of Earth and Environmental Sciences, University of Waterloo, 200 University Avenue W., Waterloo, ON, N2L 3G1, Canada;

    Department of Earth and Environmental Sciences, University of Waterloo, 200 University Avenue W., Waterloo, ON, N2L 3G1, Canada;

    Department of Earth and Environmental Sciences, University of Waterloo, 200 University Avenue W., Waterloo, ON, N2L 3G1, Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    thermal energy transport; fully integrated surface/subsurface model; thermal stream loadings;

    机译:热能运输;完全集成的表面/地下模型;热流负荷;

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