Seismic Performance of Self-Centering Rotational Viscoelastic Dampers with Shape Memory Alloy Strands Under Mainshock-Aftershock Sequences

A self-centering rotational viscoelastic damper incorporating shape memory alloy strands is proposed for reinforced concrete coupling beams. Analytical formulations, finite element simulations, and nonlinear analyses of an 18-story building under 20 recorded mainshock-aftershock sequences assess its performance. The damper increases mean mainshock peak inter-story drift by 21% but reduces aftershock peak drift by 2%–36%. It also lowers base shear and floor acceleration, contributes to energy dissipation, and maintains small residual drifts, despite local increases at some stories. These results demonstrate potential benefits alongside a transient drift trade-off. Integrated-device experiments and fatigue validation remain necessary.

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Publication Details

Journal
Journal of Earthquake Engineering
Published
2026-09-16
DOI
https://doi.org/10.1080/13632469.2026.2732038
Primary Topic
Seismic Performance and Analysis
Type
article
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article

Seismic Performance of Self-Centering Rotational Viscoelastic Dampers with Shape Memory Alloy Strands Under Mainshock-Aftershock Sequences

Zhaozhuo Gan, Zhan Shu, Cuiling Ran, Xuanhan Liu
Journal of Earthquake Engineering
Seismic Performance and Analysis
article

Seismic Performance of Self-Centering Rotational Viscoelastic Dampers with Shape Memory Alloy Strands Under Mainshock-Aftershock Sequences

Zhaozhuo Gan, Zhan Shu, Cuiling Ran, Xuanhan Liu
article en

Abstract

A self-centering rotational viscoelastic damper incorporating shape memory alloy strands is proposed for reinforced concrete coupling beams. Analytical formulations, finite element simulations, and nonlinear analyses of an 18-story building under 20 recorded mainshock-aftershock sequences assess its performance. The damper increases mean mainshock peak inter-story drift by 21% but reduces aftershock peak drift by 2%–36%. It also lowers base shear and floor acceleration, contributes to energy dissipation, and maintains small residual drifts, despite local increases at some stories. These results demonstrate potential benefits alongside a transient drift trade-off. Integrated-device experiments and fatigue validation remain necessary.

Journal of Earthquake Engineering
Shanghai University (CN), University of Northern British Columbia (CA), University of Alberta (CA)
Openalex Percentile: Top 16%
Seismic Performance and Analysis
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