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January 22, 2026Japan Architectural Review0 citationsOpen Access

Plastic Behavior and Design Methodology for Curved Members in Seismic Applications

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KLKun‐Sian LinMKMasahiro KURATAYKYutaro Kawasaki

Key Points

  • The research aims to explore the plastic behavior of curved steel members and develop design equations and guidelines for their use in seismic applications.
  • Conducted static analysis of curved members under various boundary conditions.
  • Performed extensive parametric studies focusing on initial elastic stiffness and plastic strength.
  • Developed estimation equations for yield strength and buckling behavior.
  • Validated findings through numerical simulations.
  • Established design equations for yield strength and buckling behavior under pinned and fixed boundary conditions.
  • Demonstrated high accuracy of simulations compared to theoretical estimates.
  • Provided a connection design methodology that enhances material efficiency and reduces conservative designs.
  • Identified boundary constraint conditions to control yielding mechanisms effectively.

Abstract

ABSTRACT Curved steel members, widely utilized in modern architectural and structural applications, offer aesthetic, functional, and structural benefits. However, the plastic behavior of these members, particularly the yield, buckling, and ultimate strengths under various boundary conditions, remains insufficiently investigated. Unlike straight members, curved members lack well‐established design equations and connection design guidelines, limiting their use for earthquake‐resistant applications. This study investigated the plastic behavior of curved members through static analysis and extensive parametric studies, focusing on initial elastic stiffness, plastic strength, slenderness effects, and section compactness. Estimation equations for yield strength and buckling behavior with pinned‐ and fixed‐boundary conditions were developed and validated using numerical simulations, demonstrating high accuracy. The findings further contributed to developing a connection design methodology that enhances material efficiency while preventing overly conservative designs. Moreover, a boundary constraint condition was identified to effectively control the yielding mechanism and achieve the desired plastic behavior. The proposed estimation equations and design recommendations provide a foundation for the practical implementation of curved members in seismic applications, improving structural efficiency, design flexibility, and functionality.

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Cite This Study

Lin et al. (2026) studied this question.

synapsesocial.com/papers/6971be6b642b1836717e31d0https://doi.org/10.1002/2475-8876.70069
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