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Descending Order Reversely Constrained Optimal Design Method for Tall Building Structures under Wind Loading and Earthquake action

机译:风荷载和地震作用下高层建筑结构降序反向约束优化设计方法

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Optimal design of tall buildings is attracting increasing interests due to huge material consumption and structural costs. Design constraints are related with the design criteria of structural optimal design, and can be divided into several grades, say global constraints, assembly constraints, component constraints, sectional constraints and detailing constraints. Forwardly constrained optimal design (FCOD) method is widely applied in engineering practices. FCOD method begins with conserved initial structural member sizes after the selection of structural system and member layouts. FCOD method releases design constraints gradually with the descending order design procedure from global constraints to detailing constraints, and the structural material fat of final structural design is commonly high due to tight design schedule and limited resource input. Descending order reversely constrained optimal design method (DO-RCOD) tightens design constraints gradually in descending order, say global, assembly, sectional and detailing constraint grades. The constant incremental sensitivity analysis (CISA) method is applied in structural design of each constraint grade to compensate the under constrained design criteria with minimum material premium, and thus the structural material wastes are effectively reduced with enough structural safety required by the codes. A 10-storeys steel frame structure will be employed to illustrate the effectiveness of the DO-RCOD method under wind loading and earthquake action. The advantages of DO-RCOD method will be shown by comparing study between DO-RCOD results and DO-FCOD results.
机译:由于巨大的材料消耗和结构成本,高层建筑的优化设计吸引了越来越多的兴趣。设计约束条件与结构优化设计的设计准则有关,可以分为几个等级,例如全局约束条件,装配约束条件,零件约束条件,截面约束条件和细部约束条件。前向约束最优设计(FCOD)方法已广泛应用于工程实践中。选择结构系统和构件布局后,FCOD方法从保留初始结构构件的大小开始。 FCOD方法随着从全局约束到详细约束的降序设计过程而逐渐释放设计约束,由于严格的设计进度和有限的资源投入,最终结构设计的结构材料脂肪通常很高。降序反向约束的最佳设计方法(DO-RCOD)逐渐按降序收紧设计约束,例如全局,装配,截面和局部约束等级。在每种约束等级的结构设计中采用恒定增量灵敏度分析(CISA)方法,以最小的材料溢价来补偿欠约束的设计标准,从而以规范要求的足够结构安全性有效地减少了结构材料的浪费。将采用10层高的钢框架结构来说明DO-RCOD方法在风荷载和地震作用下的有效性。通过比较DO-RCOD结果和DO-FCOD结果的研究,将显示DO-RCOD方法的优势。

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