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Title: Multi-Directional Cyclic Response of Self-Centering Cross-Laminated Timber Shear Walls
This paper presents an experimental study on the multi-directional cyclic lateral-load response of post-tensioned self-centering (SC) cross-laminated timber (CLT) shear walls. The SC-CLT wall damage states are introduced and qualitatively defined in terms of the level of effort needed to repair the wall to restore its initial functional state. A comparison between SC-CLT wall damage states under unidirectional and multi-directional loading is presented. The experimental test results show that the SC-CLT wall damage state initiation occurs at lower story-drifts under multi-directional loading compared to unidirectional loading. The SC-CLT wall damage states are quantified in terms of the engineering demand parameter (EDP) defined as wall story-drift. Fragility functions that relate the conditional probability of the occurrence of a selected damage state at a wall corner to the EDP are developed. The results reinforce the observations that multi-directional loading on the CLT shear walls causes more damage that unidirectional loading.  more » « less
Award ID(s):
2037771
NSF-PAR ID:
10388899
Author(s) / Creator(s):
Date Published:
Journal Name:
Proceedings of the 12th National Conference on Earthquake Engineering
Issue:
2022
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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