Seismic responses of high concrete face rockfill dams: A case study
Seismic responses of the Zipingpu concrete face rockfill dam were analyzed using the finite element method. The dynamic behavior of rockfill materials was modeled with a viscoelastic model and an empirical permanent strain model. The relevant parameters were obtained either by back analysis using th...
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doaj-5222011de5d1430483ff221ad54e22722020-11-24T22:34:32ZengElsevierWater Science and Engineering1674-23702016-07-019319520410.1016/j.wse.2016.09.002Seismic responses of high concrete face rockfill dams: A case studySheng-shui Chen0Zhong-zhi Fu1Kuang-ming Wei2Hua-qiang Han3Geotechnical Engineering Department, Nanjing Hydraulic Research Institute, Nanjing 210024, ChinaGeotechnical Engineering Department, Nanjing Hydraulic Research Institute, Nanjing 210024, ChinaGeotechnical Engineering Department, Nanjing Hydraulic Research Institute, Nanjing 210024, ChinaGeotechnical Engineering Department, Nanjing Hydraulic Research Institute, Nanjing 210024, ChinaSeismic responses of the Zipingpu concrete face rockfill dam were analyzed using the finite element method. The dynamic behavior of rockfill materials was modeled with a viscoelastic model and an empirical permanent strain model. The relevant parameters were obtained either by back analysis using the field observations or by reference to parameters of similar rockfill materials. The acceleration responses of the dam, the distribution of earthquake-induced settlement, and the gap propagation under the concrete slabs caused by the settlement of the dam were analyzed and compared with site investigations or relevant studies. The mechanism of failure of horizontal construction joints was also analyzed based on numerical results and site observations. Numerical results show that the input accelerations were considerably amplified near the top of the dam, and the strong shaking resulted in considerable settlement of the rockfill materials, with a maximum value exceeding 90 cm at the crest. As a result of the settlement of rockfill materials, the third-stage concrete slabs were separated from the cushion layer. The rotation of the cantilever slabs about the contacting regions, under the combined action of gravity and seismic inertial forces, led to the failure of the construction joints and tensile cracks appeared above the construction joints. The effectiveness and limitations of the so-called equivalent linear method are also discussed.http://www.sciencedirect.com/science/article/pii/S1674237016300370Concrete face rockfill dam (CFRD)Seismic responseZipingpuPermanent strainConstruction jointViscoelastic modelFinite element method |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Sheng-shui Chen Zhong-zhi Fu Kuang-ming Wei Hua-qiang Han |
spellingShingle |
Sheng-shui Chen Zhong-zhi Fu Kuang-ming Wei Hua-qiang Han Seismic responses of high concrete face rockfill dams: A case study Water Science and Engineering Concrete face rockfill dam (CFRD) Seismic response Zipingpu Permanent strain Construction joint Viscoelastic model Finite element method |
author_facet |
Sheng-shui Chen Zhong-zhi Fu Kuang-ming Wei Hua-qiang Han |
author_sort |
Sheng-shui Chen |
title |
Seismic responses of high concrete face rockfill dams: A case study |
title_short |
Seismic responses of high concrete face rockfill dams: A case study |
title_full |
Seismic responses of high concrete face rockfill dams: A case study |
title_fullStr |
Seismic responses of high concrete face rockfill dams: A case study |
title_full_unstemmed |
Seismic responses of high concrete face rockfill dams: A case study |
title_sort |
seismic responses of high concrete face rockfill dams: a case study |
publisher |
Elsevier |
series |
Water Science and Engineering |
issn |
1674-2370 |
publishDate |
2016-07-01 |
description |
Seismic responses of the Zipingpu concrete face rockfill dam were analyzed using the finite element method. The dynamic behavior of rockfill materials was modeled with a viscoelastic model and an empirical permanent strain model. The relevant parameters were obtained either by back analysis using the field observations or by reference to parameters of similar rockfill materials. The acceleration responses of the dam, the distribution of earthquake-induced settlement, and the gap propagation under the concrete slabs caused by the settlement of the dam were analyzed and compared with site investigations or relevant studies. The mechanism of failure of horizontal construction joints was also analyzed based on numerical results and site observations. Numerical results show that the input accelerations were considerably amplified near the top of the dam, and the strong shaking resulted in considerable settlement of the rockfill materials, with a maximum value exceeding 90 cm at the crest. As a result of the settlement of rockfill materials, the third-stage concrete slabs were separated from the cushion layer. The rotation of the cantilever slabs about the contacting regions, under the combined action of gravity and seismic inertial forces, led to the failure of the construction joints and tensile cracks appeared above the construction joints. The effectiveness and limitations of the so-called equivalent linear method are also discussed. |
topic |
Concrete face rockfill dam (CFRD) Seismic response Zipingpu Permanent strain Construction joint Viscoelastic model Finite element method |
url |
http://www.sciencedirect.com/science/article/pii/S1674237016300370 |
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