Seismic Vulnerability Analysis of Rural Modified Raw-Soil Structures

Based on the concept of environmental protection of solid waste utilization, material testing is conducted to achieve native improvement using coal gangue-based limestone-calcined clay cement (LC3). Finite element (FE) models of rural raw-soil architecture with a colored-steel roof (RACSR) were esta...

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Main Authors: Shiwei Hou, Hao Zhang, Yuzhe Zhang, Xin Chen, Suyun Meng
Format: Article
Language:English
Published: Hindawi Limited 2021-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2021/2839509
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spelling doaj-bd20867577cb424f818cdc129e6384dc2021-08-30T00:00:54ZengHindawi LimitedShock and Vibration1875-92032021-01-01202110.1155/2021/2839509Seismic Vulnerability Analysis of Rural Modified Raw-Soil StructuresShiwei Hou0Hao Zhang1Yuzhe Zhang2Xin Chen3Suyun Meng4School of Civil EngineeringSchool of Civil EngineeringSchool of Civil EngineeringSchool of Civil EngineeringSchool of Civil EngineeringBased on the concept of environmental protection of solid waste utilization, material testing is conducted to achieve native improvement using coal gangue-based limestone-calcined clay cement (LC3). Finite element (FE) models of rural raw-soil architecture with a colored-steel roof (RACSR) were established. The effect of modified soil type and seismic character on the vulnerability of single-story raw-soil structures was investigated using probabilistic seismic demand (PSD) analysis. The seismic response characteristics of 80 representative sequences were comparatively investigated when subjected to northwest clay (raw soil) of China, fiber and stone-improved clay (modified soil), and coal gangue-based limestone-calcined clay cement (LC3 soil). The maximum interstory drift angle (ISDAmax) was lower in the LC3 soil model and the modified soil model compared to the raw-soil model. The use of LC3 soil improves structural resistance and reduces the damage probability of a structure, and the influence of different ultimate failure states on the vulnerability of the raw-soil structure was studied.http://dx.doi.org/10.1155/2021/2839509
collection DOAJ
language English
format Article
sources DOAJ
author Shiwei Hou
Hao Zhang
Yuzhe Zhang
Xin Chen
Suyun Meng
spellingShingle Shiwei Hou
Hao Zhang
Yuzhe Zhang
Xin Chen
Suyun Meng
Seismic Vulnerability Analysis of Rural Modified Raw-Soil Structures
Shock and Vibration
author_facet Shiwei Hou
Hao Zhang
Yuzhe Zhang
Xin Chen
Suyun Meng
author_sort Shiwei Hou
title Seismic Vulnerability Analysis of Rural Modified Raw-Soil Structures
title_short Seismic Vulnerability Analysis of Rural Modified Raw-Soil Structures
title_full Seismic Vulnerability Analysis of Rural Modified Raw-Soil Structures
title_fullStr Seismic Vulnerability Analysis of Rural Modified Raw-Soil Structures
title_full_unstemmed Seismic Vulnerability Analysis of Rural Modified Raw-Soil Structures
title_sort seismic vulnerability analysis of rural modified raw-soil structures
publisher Hindawi Limited
series Shock and Vibration
issn 1875-9203
publishDate 2021-01-01
description Based on the concept of environmental protection of solid waste utilization, material testing is conducted to achieve native improvement using coal gangue-based limestone-calcined clay cement (LC3). Finite element (FE) models of rural raw-soil architecture with a colored-steel roof (RACSR) were established. The effect of modified soil type and seismic character on the vulnerability of single-story raw-soil structures was investigated using probabilistic seismic demand (PSD) analysis. The seismic response characteristics of 80 representative sequences were comparatively investigated when subjected to northwest clay (raw soil) of China, fiber and stone-improved clay (modified soil), and coal gangue-based limestone-calcined clay cement (LC3 soil). The maximum interstory drift angle (ISDAmax) was lower in the LC3 soil model and the modified soil model compared to the raw-soil model. The use of LC3 soil improves structural resistance and reduces the damage probability of a structure, and the influence of different ultimate failure states on the vulnerability of the raw-soil structure was studied.
url http://dx.doi.org/10.1155/2021/2839509
work_keys_str_mv AT shiweihou seismicvulnerabilityanalysisofruralmodifiedrawsoilstructures
AT haozhang seismicvulnerabilityanalysisofruralmodifiedrawsoilstructures
AT yuzhezhang seismicvulnerabilityanalysisofruralmodifiedrawsoilstructures
AT xinchen seismicvulnerabilityanalysisofruralmodifiedrawsoilstructures
AT suyunmeng seismicvulnerabilityanalysisofruralmodifiedrawsoilstructures
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