Systems Approach to Management of Water Resources—Toward Performance Based Water Resources Engineering

Global change, that results from population growth, global warming and land use change (especially rapid urbanization), is directly affecting the complexity of water resources management problems and the uncertainty to which they are exposed. Both, the complexity and the uncertainty, are the result...

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Main Author: Slobodan P. Simonovic
Format: Article
Language:English
Published: MDPI AG 2020-04-01
Series:Water
Subjects:
Online Access:https://www.mdpi.com/2073-4441/12/4/1208
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spelling doaj-028524fb6f674ab99610ad3288c54b7d2020-11-25T02:59:50ZengMDPI AGWater2073-44412020-04-01121208120810.3390/w12041208Systems Approach to Management of Water Resources—Toward Performance Based Water Resources EngineeringSlobodan P. Simonovic0Department of Civil and Environmental Engineering, The University of Western Ontario, London, ON N6A 5B9, CanadaGlobal change, that results from population growth, global warming and land use change (especially rapid urbanization), is directly affecting the complexity of water resources management problems and the uncertainty to which they are exposed. Both, the complexity and the uncertainty, are the result of dynamic interactions between multiple system elements within three major systems: (i) the physical environment; (ii) the social environment; and (iii) the constructed infrastructure environment including pipes, roads, bridges, buildings, and other components. Recent trends in dealing with complex water resources systems include consideration of the whole region being affected, explicit incorporation of all costs and benefits, development of a large number of alternative solutions, and the active (early) involvement of all stakeholders in the decision-making. Systems approaches based on simulation, optimization, and multi-objective analyses, in deterministic, stochastic and fuzzy forms, have demonstrated in the last half of last century, a great success in supporting effective water resources management. This paper explores the future opportunities that will utilize advancements in systems theory that might transform management of water resources on a broader scale. The paper presents performance-based water resources engineering as a methodological framework to extend the role of the systems approach in improved sustainable water resources management under changing conditions (with special consideration given to rapid climate destabilization). An illustrative example of a water supply network management under changing conditions is used to convey the basic principles of performance-based water resources engineering methodology.https://www.mdpi.com/2073-4441/12/4/1208water resources systemsperformance-based engineeringsimulationresilience
collection DOAJ
language English
format Article
sources DOAJ
author Slobodan P. Simonovic
spellingShingle Slobodan P. Simonovic
Systems Approach to Management of Water Resources—Toward Performance Based Water Resources Engineering
Water
water resources systems
performance-based engineering
simulation
resilience
author_facet Slobodan P. Simonovic
author_sort Slobodan P. Simonovic
title Systems Approach to Management of Water Resources—Toward Performance Based Water Resources Engineering
title_short Systems Approach to Management of Water Resources—Toward Performance Based Water Resources Engineering
title_full Systems Approach to Management of Water Resources—Toward Performance Based Water Resources Engineering
title_fullStr Systems Approach to Management of Water Resources—Toward Performance Based Water Resources Engineering
title_full_unstemmed Systems Approach to Management of Water Resources—Toward Performance Based Water Resources Engineering
title_sort systems approach to management of water resources—toward performance based water resources engineering
publisher MDPI AG
series Water
issn 2073-4441
publishDate 2020-04-01
description Global change, that results from population growth, global warming and land use change (especially rapid urbanization), is directly affecting the complexity of water resources management problems and the uncertainty to which they are exposed. Both, the complexity and the uncertainty, are the result of dynamic interactions between multiple system elements within three major systems: (i) the physical environment; (ii) the social environment; and (iii) the constructed infrastructure environment including pipes, roads, bridges, buildings, and other components. Recent trends in dealing with complex water resources systems include consideration of the whole region being affected, explicit incorporation of all costs and benefits, development of a large number of alternative solutions, and the active (early) involvement of all stakeholders in the decision-making. Systems approaches based on simulation, optimization, and multi-objective analyses, in deterministic, stochastic and fuzzy forms, have demonstrated in the last half of last century, a great success in supporting effective water resources management. This paper explores the future opportunities that will utilize advancements in systems theory that might transform management of water resources on a broader scale. The paper presents performance-based water resources engineering as a methodological framework to extend the role of the systems approach in improved sustainable water resources management under changing conditions (with special consideration given to rapid climate destabilization). An illustrative example of a water supply network management under changing conditions is used to convey the basic principles of performance-based water resources engineering methodology.
topic water resources systems
performance-based engineering
simulation
resilience
url https://www.mdpi.com/2073-4441/12/4/1208
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