Seismic Performance of High-Ductile Fiber-Reinforced Concrete Short Columns

This study mainly aims to investigate the effectiveness of high-ductile fiber-reinforced concrete (HDC) as a means to enhance the seismic performance of short columns. Six HDC short columns and one reinforced concrete (RC) short column were designed and tested under lateral cyclic loading. The influ...

Full description

Bibliographic Details
Main Authors: Mingke Deng, Yangxi Zhang
Format: Article
Language:English
Published: Hindawi Limited 2018-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2018/3542496
id doaj-0a17c348eabe42fa8d43969eeadd4479
record_format Article
spelling doaj-0a17c348eabe42fa8d43969eeadd44792020-11-24T22:26:31ZengHindawi LimitedAdvances in Civil Engineering1687-80861687-80942018-01-01201810.1155/2018/35424963542496Seismic Performance of High-Ductile Fiber-Reinforced Concrete Short ColumnsMingke Deng0Yangxi Zhang1Department of Civil Engineering, Xi’an University of Architecture and Technology, Xi’an, ChinaDepartment of Civil Engineering, Xi’an University of Architecture and Technology, Xi’an, ChinaThis study mainly aims to investigate the effectiveness of high-ductile fiber-reinforced concrete (HDC) as a means to enhance the seismic performance of short columns. Six HDC short columns and one reinforced concrete (RC) short column were designed and tested under lateral cyclic loading. The influence of the material type (concrete or HDC), axial load, stirrup ratio, and shear span ratio on crack patterns, hysteresis behavior, shear strength, deformation capacity, energy dissipation, and stiffness degradation was presented and discussed, respectively. The test results show that the RC short column failed in brittle shear with poor energy dissipation, while using HDC to replace concrete can effectively improve the seismic behavior of the short columns. Compared with the RC short column, the shear strength of HDC specimens was improved by 12.6–30.2%, and the drift ratio and the energy dissipation increases were 56.9–88.5% and 237.7–336.7%, respectively, at the ultimate displacement. Additionally, the prediction model of the shear strength for RC columns based on GB50010-2010 (Chinese code) can be safely adopted to evaluate the shear strength of HDC short columns.http://dx.doi.org/10.1155/2018/3542496
collection DOAJ
language English
format Article
sources DOAJ
author Mingke Deng
Yangxi Zhang
spellingShingle Mingke Deng
Yangxi Zhang
Seismic Performance of High-Ductile Fiber-Reinforced Concrete Short Columns
Advances in Civil Engineering
author_facet Mingke Deng
Yangxi Zhang
author_sort Mingke Deng
title Seismic Performance of High-Ductile Fiber-Reinforced Concrete Short Columns
title_short Seismic Performance of High-Ductile Fiber-Reinforced Concrete Short Columns
title_full Seismic Performance of High-Ductile Fiber-Reinforced Concrete Short Columns
title_fullStr Seismic Performance of High-Ductile Fiber-Reinforced Concrete Short Columns
title_full_unstemmed Seismic Performance of High-Ductile Fiber-Reinforced Concrete Short Columns
title_sort seismic performance of high-ductile fiber-reinforced concrete short columns
publisher Hindawi Limited
series Advances in Civil Engineering
issn 1687-8086
1687-8094
publishDate 2018-01-01
description This study mainly aims to investigate the effectiveness of high-ductile fiber-reinforced concrete (HDC) as a means to enhance the seismic performance of short columns. Six HDC short columns and one reinforced concrete (RC) short column were designed and tested under lateral cyclic loading. The influence of the material type (concrete or HDC), axial load, stirrup ratio, and shear span ratio on crack patterns, hysteresis behavior, shear strength, deformation capacity, energy dissipation, and stiffness degradation was presented and discussed, respectively. The test results show that the RC short column failed in brittle shear with poor energy dissipation, while using HDC to replace concrete can effectively improve the seismic behavior of the short columns. Compared with the RC short column, the shear strength of HDC specimens was improved by 12.6–30.2%, and the drift ratio and the energy dissipation increases were 56.9–88.5% and 237.7–336.7%, respectively, at the ultimate displacement. Additionally, the prediction model of the shear strength for RC columns based on GB50010-2010 (Chinese code) can be safely adopted to evaluate the shear strength of HDC short columns.
url http://dx.doi.org/10.1155/2018/3542496
work_keys_str_mv AT mingkedeng seismicperformanceofhighductilefiberreinforcedconcreteshortcolumns
AT yangxizhang seismicperformanceofhighductilefiberreinforcedconcreteshortcolumns
_version_ 1725753259578097664