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Theoretical and numerical studies of elastic buckling and load resistance of double cross-arm pre-tensioned cable stayed buckling-restrained braces

机译:双横臂预应力斜拉索约束屈曲支臂的弹性屈曲和载荷阻力的理论和数值研究

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This paper investigates the elastic buckling behaviour and load resistance of a double cross-arm pre-tensioned cable stayed buckling-restrained brace (DPCS-BRB) where an extra cross-arm is assigned within a longitudinal cable truss along its length. Naturally, the span and efficiency of the PCS-BRB can be increased and improved by adopting multiple cross-arms. Equilibrium method is utilised to derive the formula of elastic buckling load of a pin-ended DPCS-BRB, and the obtained results have been verified through FE analysis. It is found from theoretical derivations and FE analysis that there exists a single-wave symmetric and double-wave antisymmetric buckling modes in the DPCS-BRB, respectively. In addition, a negative linear correlation exists between the elastic buckling load and the initial pre-tensioning force of the cables in the DPCS-BRB. Furthermore, it has been explored through FE analysis that the optimal location of the cross-arms for achieving higher elastic buckling load as well as higher ultimate compressive load-carrying capacity is found to be a quarter length to each end of the DPCS-BRB. At last, the ultimate compressive load-carrying capacity of the DPCS-BRB is found to be directly proportional to its restraining ratio, and there exists a lower limit of the restraining ratio which ensures the core could reach its full cross-sectional yield load without overall instability of the DPCS-BRB. The investigation of the elastic buckling behaviour and ultimate compressive load-carrying capacity as well as the failure mechanism of the DPCS-BRB provides fundamentals to the further development of a comprehensive design method of the DPCS-BRB subjected to axial cyclic loads.
机译:本文研究了双横臂预张紧的斜拉约束索(DPCS-BRB)的弹性屈曲行为和载荷阻力,其中在纵索桁架上沿其长度分配了一个额外的横臂。当然,通过采用多个交叉臂可以增加和改善PCS-BRB的跨度和效率。利用平衡法推导了销端DPCS-BRB的弹性屈曲载荷公式,并通过有限元分析验证了所得结果。从理论推导和有限元分析发现,DPCS-BRB中分别存在单波对称和双波反对称屈曲模式。另外,弹性屈曲载荷与DPCS-BRB中电缆的初始预拉力之间存在负线性关系。此外,通过有限元分析已经发现,用于实现更高的弹性屈曲载荷以及更高的极限压缩载荷承载能力的横臂的最佳位置是DPCS-BRB两端的四分之一长度。最后,发现DPCS-BRB的极限压缩载荷承载能力与其约束比成正比,并且存在一个约束比的下限,以确保型芯可以在不承受任何横截面的情况下达到其全部横截面屈服载荷。 DPCS-BRB的整体不稳定。对DPCS-BRB的弹性屈曲行为和极限压缩承载力以及破坏机理的研究为进一步开发承受轴向循环载荷的DPCS-BRB的综合设计方法提供了基础。

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