Physical Model Study on Discharge over a Dam Due to Landslide Generated Waves

Impulse waves generated by landslides falling into reservoirs may lead to overtopping of a dam and, in turn, to flooding of the downstream area. In the case of an embankment dam, the overtopping may lead to erosion of the downstream slope, ultimately resulting in breaching and complete failure with...

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Main Authors: Netsanet Nigatu Tessema, Fjóla G. Sigtryggsdóttir, Leif Lia, Asie Kemal Jabir
Format: Article
Language:English
Published: MDPI AG 2020-01-01
Series:Water
Subjects:
Online Access:https://www.mdpi.com/2073-4441/12/1/234
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spelling doaj-d18fe87335fa4c49aae8b59813872fff2020-11-25T02:03:23ZengMDPI AGWater2073-44412020-01-0112123410.3390/w12010234w12010234Physical Model Study on Discharge over a Dam Due to Landslide Generated WavesNetsanet Nigatu Tessema0Fjóla G. Sigtryggsdóttir1Leif Lia2Asie Kemal Jabir3School of Civil and Environmental Engineering, Addis Ababa Institute of Technology, Addis Ababa 1000, EthiopiaDepartment of Civil and Environmental Engineering, Norwegian University of Science and Technology, 7491 Trondheim, NorwayDepartment of Civil and Environmental Engineering, Norwegian University of Science and Technology, 7491 Trondheim, NorwaySchool of Civil and Environmental Engineering, Addis Ababa Institute of Technology, Addis Ababa 1000, EthiopiaImpulse waves generated by landslides falling into reservoirs may lead to overtopping of a dam and, in turn, to flooding of the downstream area. In the case of an embankment dam, the overtopping may lead to erosion of the downstream slope, ultimately resulting in breaching and complete failure with consequent further hazardous release of water to the downstream area. This research deals with the overtopping process of a dam due to landslide generated waves in a three-dimensional (3D) physical scale model setup. Experiments have been conducted with varying the slide, reservoir, and dam parameters. The primary focus is on investigating the feasibility of employing the steady state weir equation in order to predict the overtopping discharge over a dam crest due to landslide generated waves. Calibration and validation of the coefficient of discharge values for the different dam section are conducted for the specified model setup. Accordingly, a two-step calculation procedure is presented for predicting the overtopping discharge based on the maximum overtopping depth values. Hence, for the fixed setup, which includes a constant slope angle of the landslide surface, a predictive equation for maximum overtopping depth is proposed, based on slide volume, slide release height, still water depth, upstream dam slope angle, and dam height. The relative slide volume and relative still water depth both seem to have a significant effect on the relative overtopping depth.https://www.mdpi.com/2073-4441/12/1/234physical modeldam overtoppingimpulse wavesdischarge
collection DOAJ
language English
format Article
sources DOAJ
author Netsanet Nigatu Tessema
Fjóla G. Sigtryggsdóttir
Leif Lia
Asie Kemal Jabir
spellingShingle Netsanet Nigatu Tessema
Fjóla G. Sigtryggsdóttir
Leif Lia
Asie Kemal Jabir
Physical Model Study on Discharge over a Dam Due to Landslide Generated Waves
Water
physical model
dam overtopping
impulse waves
discharge
author_facet Netsanet Nigatu Tessema
Fjóla G. Sigtryggsdóttir
Leif Lia
Asie Kemal Jabir
author_sort Netsanet Nigatu Tessema
title Physical Model Study on Discharge over a Dam Due to Landslide Generated Waves
title_short Physical Model Study on Discharge over a Dam Due to Landslide Generated Waves
title_full Physical Model Study on Discharge over a Dam Due to Landslide Generated Waves
title_fullStr Physical Model Study on Discharge over a Dam Due to Landslide Generated Waves
title_full_unstemmed Physical Model Study on Discharge over a Dam Due to Landslide Generated Waves
title_sort physical model study on discharge over a dam due to landslide generated waves
publisher MDPI AG
series Water
issn 2073-4441
publishDate 2020-01-01
description Impulse waves generated by landslides falling into reservoirs may lead to overtopping of a dam and, in turn, to flooding of the downstream area. In the case of an embankment dam, the overtopping may lead to erosion of the downstream slope, ultimately resulting in breaching and complete failure with consequent further hazardous release of water to the downstream area. This research deals with the overtopping process of a dam due to landslide generated waves in a three-dimensional (3D) physical scale model setup. Experiments have been conducted with varying the slide, reservoir, and dam parameters. The primary focus is on investigating the feasibility of employing the steady state weir equation in order to predict the overtopping discharge over a dam crest due to landslide generated waves. Calibration and validation of the coefficient of discharge values for the different dam section are conducted for the specified model setup. Accordingly, a two-step calculation procedure is presented for predicting the overtopping discharge based on the maximum overtopping depth values. Hence, for the fixed setup, which includes a constant slope angle of the landslide surface, a predictive equation for maximum overtopping depth is proposed, based on slide volume, slide release height, still water depth, upstream dam slope angle, and dam height. The relative slide volume and relative still water depth both seem to have a significant effect on the relative overtopping depth.
topic physical model
dam overtopping
impulse waves
discharge
url https://www.mdpi.com/2073-4441/12/1/234
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