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Article

Multi-Objective Performance of Detention Basins and Rainwater Harvesting Systems Using Real-Time Controls with Rainfall Forecasts

by
Margherita Altobelli
,
Margherita Evangelisti
and
Marco Maglionico
*
DICAM—Department of Civil, Chemical, Environmental and Materials Engineering, University of Bologna, Viale del Risorgimento 2, 40136 Bologna, Italy
*
Author to whom correspondence should be addressed.
Water 2024, 16(1), 71; https://doi.org/10.3390/w16010071
Submission received: 26 November 2023 / Revised: 21 December 2023 / Accepted: 22 December 2023 / Published: 24 December 2023
(This article belongs to the Special Issue Rainwater Harvesting and Treatment)

Abstract

Climate change and an increase in urbanization are severely testing urban drainage systems; at the same time, population growth is leading to an increase in demand for water resources, while climate change is more likely to reduce the amount of water that is available to meet this demand. The present study finds a solution to both problems by assuming a hybrid use of detention basins, i.e., providing a real-time control system (RTC) for the outfall discharge managed according to the rainfall forecast and the water level in the tank, to reuse rainwater for non-potable use and, at the same time, to guarantee the hydraulic protection of the downstream system. Twenty-seven scenarios were simulated using the numerical model SWMM 5.1, assuming different types of controls on the discharge. The simulations show a non-potable water-saving efficiency from a minimum of 32% to a maximum of 90%, and the reduction in volume discharged is between 11% and 31%, while the peak flow rate varies more significantly depending on the type of control used. These results highlight the detention basins’ potential deriving from the hybrid use of this system with rainwater harvesting systems.
Keywords: detention basins; rainwater harvesting systems; hybrid systems; stormwater management; rainfall forecasting; real-time control; long-term simulation; SWMM detention basins; rainwater harvesting systems; hybrid systems; stormwater management; rainfall forecasting; real-time control; long-term simulation; SWMM
Graphical Abstract

Share and Cite

MDPI and ACS Style

Altobelli, M.; Evangelisti, M.; Maglionico, M. Multi-Objective Performance of Detention Basins and Rainwater Harvesting Systems Using Real-Time Controls with Rainfall Forecasts. Water 2024, 16, 71. https://doi.org/10.3390/w16010071

AMA Style

Altobelli M, Evangelisti M, Maglionico M. Multi-Objective Performance of Detention Basins and Rainwater Harvesting Systems Using Real-Time Controls with Rainfall Forecasts. Water. 2024; 16(1):71. https://doi.org/10.3390/w16010071

Chicago/Turabian Style

Altobelli, Margherita, Margherita Evangelisti, and Marco Maglionico. 2024. "Multi-Objective Performance of Detention Basins and Rainwater Harvesting Systems Using Real-Time Controls with Rainfall Forecasts" Water 16, no. 1: 71. https://doi.org/10.3390/w16010071

APA Style

Altobelli, M., Evangelisti, M., & Maglionico, M. (2024). Multi-Objective Performance of Detention Basins and Rainwater Harvesting Systems Using Real-Time Controls with Rainfall Forecasts. Water, 16(1), 71. https://doi.org/10.3390/w16010071

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