Strength reserve-based seismic optimization for precast concrete frames with hybrid semi-rigid connections

被引:0
作者
Xiang Tu
Zheng He
Bowen Jiang
Bin Du
Zhe Qi
Guohui Huang
机构
[1] Dalian University of Technology,Department of Civil Engineering
[2] Dalian University of Technology,State Key Laboratory of Coastal and Offshore Engineering
[3] China Machinery International Engineering Design & Research Institute Co.,undefined
[4] Ltd,undefined
来源
Structural and Multidisciplinary Optimization | 2022年 / 65卷
关键词
Precast concrete frame; Yield strength reserve; Semi-rigid connection; Earthquake; Multi-objective optimization; NSGA-II;
D O I
暂无
中图分类号
学科分类号
摘要
To avoid premature yielding, excessive displacement, and unfavorable failure mode of precast concrete (PC) frames under strong earthquakes, a multi-objective seismic optimal design procedure for PC frames with hybrid semi-rigid connections is proposed. With the purpose of indicating the stiffness and inelastic displacement demands, the performance metric of yield strength reserve (YSR) is developed based on the strength reserve-related design concepts and the inelastic displacement spectrum. On this basis, the YSR is introduced as a performance objective for the optimization of PC frames, together with a customized objective of the structural cost. With specific consideration of the adaptability of hybrid semi-rigid connections, the non-dominated sorting genetic algorithm II is implemented to perform the inelastic seismic optimization. The feasibility and efficiency of the proposed approach are demonstrated on a 10-story PC frame. The widely dispersed Pareto front with diversified solutions obtained from the case study implies the prominent design flexibility of PC frames with hybrid semi-rigid connections. The seismic performance evaluation and comparison of selected optimal cases indicate that the structural performance was more closely associated with connection properties than the frame sections. Due to the existence of semi-rigid connections, a slight increase in the structural cost is observed to cause a significant increase in the YSR. More importantly, the structural response (e.g., inter-story drift ratio, connection rotation, and deflection mechanism) can be effectively controlled with a larger YSR.
引用
收藏
相关论文
共 120 条
  • [21] Nascimbene R(2011)Optimum design of high-rise steel buildings using an evolution strategy integrated parallel algorithm Comput Struct 89 2037-2051
  • [22] Bolognini D(2004)Design of non-linear steel frames for stress and displacement constraints with semi-rigid connections via genetic optimization Struct Multidisc Optim 27 259-271
  • [23] Bellotti D(1956)Limit design of structures to resist earthquakes Proc First World Conf Earthq Eng 5 1-12
  • [24] Chopra AK(2018)Experimental and numerical investigation of the static performance of innovative prefabricated high-strength composite columns Eng Struct 159 227-244
  • [25] Goel RK(2001)Optimum design of nonlinear steel frames with semi-rigid connections using a genetic algorithm Comput Struct 79 1593-1604
  • [26] Costa R(1971)Flexural members with confined concrete J Struct Div 97 1969-1990
  • [27] Lima M(2019)Fast simulations for solving fracture mechanics inverse problems using POD-RBF XIGA and Jaya algorithm Eng Fract Mech 205 285-300
  • [28] Alva G(1996)Behavior of tall buildings with mixed use of rigid and semi-rigid connections Comput Struct 61 1193-1206
  • [29] Magalhães E(2011)A genetic algorithm for design of moment-resisting steel frames Struct Multidisc Optim 44 559-574
  • [30] Deb K(2009)Application of energy balance concept in seismic evaluation of structures J Struct Eng 135 113-121