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Effect of flexural and shear stresses simultaneously for optimized design of butterfly-shaped dampers: Computational study

机译:弯曲和剪切应力同时对蝶形阻尼器优化设计的影响:计算研究

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摘要

Structural fuses are made up from oriented steel plates to be used to resist seismic force with shear loading resistance capabilities. The damage and excessive inelastic deformations are concentrated in structural fuses to avoid any issues for the rest of the surrounding elements. Recently developed fuse plates are designed with engineered cutouts leaving flexural or shear links with controlled yielding features. A promising type of link is proposed to align better bending strength along the length of the link with the demand moment diagram is a butterfly-shaped link. Previously, the design methodologies are purely based on the flexural stresses, or shear stresses only, which overestimate the dampers capability for resisting against the applied loadings. This study is specifically focused on the optimized design methodologies for commonly used butterfly-shaped dampers. Numerous studies have shown that the stresses are not uniformly distributed along the length of the dampers; hence, the design methodology and the effective implementation of the steel need revisions and improvements. In this study, the effect of shear and flexural stresses on the behavior of butterfly-shaped links are computationally investigated The mathematical models based on von-Mises yielding criteria are initially developed and the optimized design methodology is proposed based on the yielding criterion. The optimized design is refined and investigated with the aid of computational investigations in the next step. The proposed design methodology meets the needs of optimized design concepts for butterfly-shaped dampers considering the uniform stress distribution and efficient use of steel.
机译:结构保险丝由取向的钢板组成,以用于抵抗具有剪切负载阻力能力的地震力。损坏和过度的非弹性变形集中在结构熔体中,以避免围绕周围元件的其余部分的任何问题。最近开发的保险丝板设计有设计的切割切口,使弯曲或剪切环连接,具有受控的产生特征。提出了一种有希望的链接,以使沿着链路长度与需求力矩图保持更好的弯曲强度是蝴蝶形的环节。以前,设计方法纯粹基于弯曲应力或仅剪切应力,其估计阻尼器能力以抵抗施加的载荷。本研究专门专注于常用蝴蝶形阻尼器的优化设计方法。许多研究表明,应力沿着阻尼器的长度均匀地分布;因此,设计方法和钢的有效实施需要修改和改进。在这项研究中,剪切和弯曲应力对蝴蝶形环节的行为的影响是计算基于von-mises的数学模型,其最初开发了标准,并且基于屈服标准提出了优化的设计方法。优化的设计是借助下一步的计算调查的精制和调查。考虑均匀的应力分布和高效使用钢,所提出的设计方法满足蝴蝶形阻尼器优化设计概念的需求。

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