Modeling the Effectiveness of Cooling Trenches for Stormwater Temperature Mitigation

Due to elevated runoff stormwater temperatures from impervious areas, one management strategy to reduce stormwater temperature is the use of underground flow through rock media termed a cooling trench. This paper examines the governing equations for the liquid phase and media phases for modeling the...

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Main Author: Scott A. Wells
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Water
Subjects:
Online Access:https://www.mdpi.com/2073-4441/13/3/373
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spelling doaj-636b368c2d8646d1ab524278a03e1a752021-02-01T00:03:21ZengMDPI AGWater2073-44412021-01-011337337310.3390/w13030373Modeling the Effectiveness of Cooling Trenches for Stormwater Temperature MitigationScott A. Wells0Department of Civil and Environmental Engineering, Portland State University, Portland, OR 97207-0751, USADue to elevated runoff stormwater temperatures from impervious areas, one management strategy to reduce stormwater temperature is the use of underground flow through rock media termed a cooling trench. This paper examines the governing equations for the liquid phase and media phases for modeling the temperature leaving a cooling trench assuming that changes in temperature occurred longitudinally through the cooling trench. This model is dependent on parameters such as the media type, porosity, media initial temperature, inflow rate, and inflow temperature. Several approaches were explored mathematically for evaluating the change in temperature of the water and the cooling trench media. Typical soil–water heat transfer coefficients were summarized. Examples of predictions of outflow temperatures were shown for different modeling assumptions, such as well-mixed conditions, batch mixing and subsequent release, and steady-state and dynamic conditions. Several of these examples evaluated how long rock media would cool following a stormwater event and how the cooling trench would respond to multiple stormwater events.https://www.mdpi.com/2073-4441/13/3/373stormwaterstormwater temperaturetemperature modelingcooling trenchrock cribstormwater cooling
collection DOAJ
language English
format Article
sources DOAJ
author Scott A. Wells
spellingShingle Scott A. Wells
Modeling the Effectiveness of Cooling Trenches for Stormwater Temperature Mitigation
Water
stormwater
stormwater temperature
temperature modeling
cooling trench
rock crib
stormwater cooling
author_facet Scott A. Wells
author_sort Scott A. Wells
title Modeling the Effectiveness of Cooling Trenches for Stormwater Temperature Mitigation
title_short Modeling the Effectiveness of Cooling Trenches for Stormwater Temperature Mitigation
title_full Modeling the Effectiveness of Cooling Trenches for Stormwater Temperature Mitigation
title_fullStr Modeling the Effectiveness of Cooling Trenches for Stormwater Temperature Mitigation
title_full_unstemmed Modeling the Effectiveness of Cooling Trenches for Stormwater Temperature Mitigation
title_sort modeling the effectiveness of cooling trenches for stormwater temperature mitigation
publisher MDPI AG
series Water
issn 2073-4441
publishDate 2021-01-01
description Due to elevated runoff stormwater temperatures from impervious areas, one management strategy to reduce stormwater temperature is the use of underground flow through rock media termed a cooling trench. This paper examines the governing equations for the liquid phase and media phases for modeling the temperature leaving a cooling trench assuming that changes in temperature occurred longitudinally through the cooling trench. This model is dependent on parameters such as the media type, porosity, media initial temperature, inflow rate, and inflow temperature. Several approaches were explored mathematically for evaluating the change in temperature of the water and the cooling trench media. Typical soil–water heat transfer coefficients were summarized. Examples of predictions of outflow temperatures were shown for different modeling assumptions, such as well-mixed conditions, batch mixing and subsequent release, and steady-state and dynamic conditions. Several of these examples evaluated how long rock media would cool following a stormwater event and how the cooling trench would respond to multiple stormwater events.
topic stormwater
stormwater temperature
temperature modeling
cooling trench
rock crib
stormwater cooling
url https://www.mdpi.com/2073-4441/13/3/373
work_keys_str_mv AT scottawells modelingtheeffectivenessofcoolingtrenchesforstormwatertemperaturemitigation
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