Junkai Lu , Wenpeng Li , Junxian Zhao , Zhiqiang Li , Weichuang Liu
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引用次数: 0
Abstract
Self-centering energy dissipation braces (SCBs) provide both recovery and energy dissipation capacities during earthquakes. However, the deformation capacity of conventional SCBs is often constrained by the high-level prestress required in elastic self-centering components, limiting their hysteretic performance under severe earthquakes. To address this issue, this study introduces a novel self-centering brace with non-prestressed disc springs (NP-SCB). The configuration, working mechanism, and theoretical restoring force model of the NP-SCB are presented. In order to validate the concept, finite element analyses were then performed to evaluate the effects of key parameters, including sliding friction force (Fs) and disc spring stiffness (Kd), on its hysteretic performance, self-centering behavior, and energy dissipation capacity. The results revealed that the proposed restoring force model accurately predicted the hysteretic response of NP-SCBs, characterized by distinct “flag-shaped” and “spike-shaped” curves. The energy dissipation capacity was closely associated with the reactivation displacement and can be enhanced by reducing Fs or increasing Kd. The NP-SCB exhibited excellent self-centering performance, with a maximum residual axial strain of only 0.046 %. Compared to traditional pre-stressed SCBs, NP-SCBs showed a 9.86 % to 500 % improvement in deformation capacity. NP-SCB's seismic resilience can be enhanced by optimizing sliding friction force and disc spring stiffness.
期刊介绍:
The Journal of Constructional Steel Research provides an international forum for the presentation and discussion of the latest developments in structural steel research and their applications. It is aimed not only at researchers but also at those likely to be most affected by research results, i.e. designers and fabricators. Original papers of a high standard dealing with all aspects of steel research including theoretical and experimental research on elements, assemblages, connection and material properties are considered for publication.