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A Ground Structure Method to Minimize the Total Installed Cost of Steel Frame Structures

机译:一种最小化钢框架结构总安装成本的地面结构方法

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This paper presents a ground structure method to optimize the topology and discrete member sizing of steel frame structures in order to minimize total installed cost, including material, fabrication and erection components. The proposed method improves upon existing cost-based ground structure methods by incorporating constructability considerations well as satisfying both strength and serviceability constraints. The architecture for the method is a bi-level Multidisciplinary Feasible (MDF) architecture in which the discrete member sizing optimization is nested within the topology optimization process. For each structural topology generated, the sizing optimization process seek to find a set of discrete member sizes that result in the lowest total installed cost while satisfying strength (member utilization) and serviceability (node deflection and story drift) criteria. To accurately assess cost, the connection details for the structure are generated automatically using accurate site-specific cost information obtained directly from fabricators and erectors. Member continuity rules are also applied to each node in the structure to improve constructability. The proposed optimization method is benchmarked against conventional weight-based ground structure optimization methods resulting in an average cost savings of up to 30% with comparable computational efficiency.
机译:本文提出了一种用于优化钢框架结构拓扑和离散构件尺寸的地面结构方法,以最大程度地降低包括材料,制造和安装组件在内的总安装成本。所提出的方法通过结合可施工性考虑因素并同时满足强度和适用性约束,对现有的基于成本的地面结构方法进行了改进。该方法的体系结构是双层多学科可行(MDF)体系结构,其中离散成员大小优化嵌套在拓扑优化过程中。对于生成的每个结构拓扑,尺寸优化过程将寻求找到一组离散的构件尺寸,这些尺寸将导致最低的总安装成本,同时满足强度(构件利用率)和可维护性(节点挠度和层间位移)标准。为了准确评估成本,使用直接从制造商和安装者处获得的准确的特定于现场的成本信息,自动生成结构的连接详细信息。成员连续性规则也应用于结构中的每个节点,以提高可构造性。所提出的优化方法以常规的基于权重的地面结构优化方法为基准,从而在可比的计算效率下平均节省了高达30%的成本。

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