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A comprehensive approach to the optimization of design solutions for dry anti-flood reservoir dams Cover

A comprehensive approach to the optimization of design solutions for dry anti-flood reservoir dams

Open Access
|Sep 2021

Abstract

The article proposes the methodology of designing dams of dry flood control reservoirs. The algorithm is developed so as to meet all the requirements given in the Eurocode 7 and, at the same time, to be efficient in terms of necessary calculation time. Furthermore, the presented numerical procedure enables the optimization of design solutions, e.g. the depth and length of the anti-filtration barrier, by means of parametric analyses. The approach assumes the use of numerical methods, in particular, finite element (FE) analysis. Three-dimensional (3D) reconstruction of the terrain topography and subsoil layer arrangement performed in step (1) sets the base for further analyses. In step (2), the filtration phenomena are assessed based on the 3D analysis of a transient groundwater flow. In step (3), the state of displacement is evaluated and the stability is verified for all the relevant phases of construction and operation of the facility, in particular, in the course of simulated flood detention. The analyses in step (3) are carried out on 2D models corresponding to the design cross-sections of the dam. This significantly reduces the computation time (compared to 3D analysis) and, at the same time, provides a safe estimate of factor of safety. The performance of the proposed algorithm is shown on the numerical examples of the computations concerning the dam of Szalejów Górny dry anti-flood reservoir located in Poland.

DOI: https://doi.org/10.2478/sgem-2021-0016 | Journal eISSN: 2083-831X | Journal ISSN: 0137-6365
Language: English
Page range: 270 - 284
Submitted on: May 10, 2021
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Accepted on: May 21, 2021
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Published on: Sep 30, 2021
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2021 Dariusz Łydżba, Adrian Różański, Maciej Sobótka, Michał Pachnicz, Szczepan Grosel, Jakub Rainer, published by Wroclaw University of Science and Technology
This work is licensed under the Creative Commons Attribution 4.0 License.