Effectiveness of PV Drains for Mitigating Earthquake-Induced Deformations in Sandy Slopes

This paper considers the effectiveness of a Pre-fabricated Vertical (PV) drain array for mitigating the earthquake-induced permanent ground deformations of a water-fronting loose sand fill based on results of numerical simulations. The numerical simulations are performed using the OpenSees finite el...

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Main Authors: Vytiniotis, Antonios, Whittle, Andrew
Other Authors: Massachusetts Institute of Technology. Department of Civil and Environmental Engineering
Format: Article
Language:en_US
Published: American Society of Civil Engineers (ASCE) 2015
Online Access:http://hdl.handle.net/1721.1/92761
https://orcid.org/0000-0001-5358-4140
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author Vytiniotis, Antonios
Whittle, Andrew
author2 Massachusetts Institute of Technology. Department of Civil and Environmental Engineering
author_facet Massachusetts Institute of Technology. Department of Civil and Environmental Engineering
Vytiniotis, Antonios
Whittle, Andrew
author_sort Vytiniotis, Antonios
collection MIT
description This paper considers the effectiveness of a Pre-fabricated Vertical (PV) drain array for mitigating the earthquake-induced permanent ground deformations of a water-fronting loose sand fill based on results of numerical simulations. The numerical simulations are performed using the OpenSees finite element framework to represent the non-linear coupled ground deformation and transient pore pressures with customized 1-D finite elements to describe flow in the PV drains. Soil behavior is modeled using an advanced elasto-plastic effective stress soil model ("DM" for Dafalias & Manzari, 2004). The analyses focus on the performance of an 18.3m high sand fill, representative of many west-coast port facilities, and compare the response with and without the PV drain mitigation system for a suite of 58 reference seismic ground motions. The computed permanent slope deformations are well correlated with the peak ground accelerations (PGA) and especially the Arias intensity (I[subscript a]). The PV drain mitigation system is effective in reducing permanent lateral deformations at the crest of the slope by a factor of 1.2 - 3.5. The system effectiveness is largely independent of the characteristics of the ground motions. The damage results have been incorporated in slope fragility curves that can be used to quantify the expected costs from earthquake damage.
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spelling mit-1721.1/927612022-10-01T08:18:37Z Effectiveness of PV Drains for Mitigating Earthquake-Induced Deformations in Sandy Slopes Vytiniotis, Antonios Whittle, Andrew Massachusetts Institute of Technology. Department of Civil and Environmental Engineering Whittle, Andrew Whittle, Andrew This paper considers the effectiveness of a Pre-fabricated Vertical (PV) drain array for mitigating the earthquake-induced permanent ground deformations of a water-fronting loose sand fill based on results of numerical simulations. The numerical simulations are performed using the OpenSees finite element framework to represent the non-linear coupled ground deformation and transient pore pressures with customized 1-D finite elements to describe flow in the PV drains. Soil behavior is modeled using an advanced elasto-plastic effective stress soil model ("DM" for Dafalias & Manzari, 2004). The analyses focus on the performance of an 18.3m high sand fill, representative of many west-coast port facilities, and compare the response with and without the PV drain mitigation system for a suite of 58 reference seismic ground motions. The computed permanent slope deformations are well correlated with the peak ground accelerations (PGA) and especially the Arias intensity (I[subscript a]). The PV drain mitigation system is effective in reducing permanent lateral deformations at the crest of the slope by a factor of 1.2 - 3.5. The system effectiveness is largely independent of the characteristics of the ground motions. The damage results have been incorporated in slope fragility curves that can be used to quantify the expected costs from earthquake damage. National Science Foundation (U.S.) (Grant CMS-0530478) National Science Foundation (U.S.) (Network for Earthquake Engineering Simulation Research (NEESR) Challenge Project) 2015-01-09T15:47:18Z 2015-01-09T15:47:18Z 2013-02 Article http://purl.org/eprint/type/ConferencePaper 978-0-7844-1278-7 http://hdl.handle.net/1721.1/92761 Vytiniotis, Antonios, and Andrew J. Whittle. “Effectiveness of PV Drains for Mitigating Earthquake-Induced Deformations in Sandy Slopes.” Geo-Congress 2013. American Society of Civil Engineers, 2013. 908–917. https://orcid.org/0000-0001-5358-4140 en_US http://dx.doi.org/10.1061/9780784412787.093 Geo-Congress 2013 Creative Commons Attribution-Noncommercial-Share Alike http://creativecommons.org/licenses/by-nc-sa/4.0/ application/pdf American Society of Civil Engineers (ASCE) Anne Graham
spellingShingle Vytiniotis, Antonios
Whittle, Andrew
Effectiveness of PV Drains for Mitigating Earthquake-Induced Deformations in Sandy Slopes
title Effectiveness of PV Drains for Mitigating Earthquake-Induced Deformations in Sandy Slopes
title_full Effectiveness of PV Drains for Mitigating Earthquake-Induced Deformations in Sandy Slopes
title_fullStr Effectiveness of PV Drains for Mitigating Earthquake-Induced Deformations in Sandy Slopes
title_full_unstemmed Effectiveness of PV Drains for Mitigating Earthquake-Induced Deformations in Sandy Slopes
title_short Effectiveness of PV Drains for Mitigating Earthquake-Induced Deformations in Sandy Slopes
title_sort effectiveness of pv drains for mitigating earthquake induced deformations in sandy slopes
url http://hdl.handle.net/1721.1/92761
https://orcid.org/0000-0001-5358-4140
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