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首页> 外文期刊>Journal of Structural Engineering >Structural Properties of Tall Diagrid Buildings Using a Neural Dynamic Model for Design Optimization
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Structural Properties of Tall Diagrid Buildings Using a Neural Dynamic Model for Design Optimization

机译:基于神经动力学模型进行设计优化的高层斜交网格建筑结构特性

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The development of structural systems is a constantly evolving process to guarantee safety and serviceability against natural hazards. As a result, diagrid structural systems became a current trend in tubular mid- and high-rise building structures for their significant lateral stiffness and aesthetic potential. Their unique geometric configuration allows the efficient distribution of internal forces that lead to optimal structural designs. However, existing design codes and provisions do not provide specific guidelines for their design under earthquake and wind loading. For this reason, this paper studies the properties of steel diagrid structures, including optimal diagrid angle, diagrid density, and fundamental period, as a function of geometric parameters. This study uses a large set of structural models with aspect ratios (H/B) from 1 to 4, diagrid angles (theta) between 45 degrees and 90 degrees, and diagrid densities (rho(d)) between 3 and 12. The structural design of each model is obtained using a soft-computing optimization algorithm, denominated hybrid counter propagation neural dynamic (CPND) model, that determines member sizes from a database of commercially available W-shapes following ASCE 7-16 standard and AISC-15 steel construction manual. This investigation confirms that the optimal diagrid angle increases with height, highlights the importance of diagrid density in structural design, and demonstrates the effect of the diagrid angle on the fundamental period. A new set of equations are proposed for: (1) the optimal diagrid angle as a function of height, and (2) the fundamental period of diagrid structures as a function of angle and height. The proposed equations allow the estimation of structural properties for the design of steel diagrid structures. (C) 2021 American Society of Civil Engineers.
机译:结构系统的开发是一个不断发展的过程,以保证对自然灾害的安全性和可维护性。因此,斜肋结构系统因其显着的横向刚度和美学潜力而成为管状中高层建筑结构的当前趋势。其独特的几何结构允许有效分配内力,从而实现最佳结构设计。然而,现有的设计规范和规定没有为地震和风荷载下的设计提供具体的指导。为此,本文研究了钢斜肋结构的性质,包括最佳斜肋角、斜肋密度和基本周期,作为几何参数的函数。本研究使用了大量结构模型,纵横比 (H/B) 为 1 到 4,斜肋角 (theta) 在 45 度到 90 度之间,斜肋密度 (rho(d)) 在 3 到 12 之间。每个模型的结构设计都是使用软计算优化算法获得的,该算法称为混合反向传播神经动力学 (CPND) 模型,该模型根据 ASCE 7-16 标准和 AISC-15 钢结构手册从商用 W 形数据库中确定杆件尺寸。该研究证实了最佳斜肋角随高度的增加而增大,突出了斜肋密度在结构设计中的重要性,并证明了斜肋角对基周期的影响。提出了一组新的方程:(1)作为高度函数的最优斜肋架角,以及(2)斜肋结构的基本周期作为角度和高度的函数。所提出的方程允许估计钢斜肋结构设计的结构特性。(C) 2021 年美国土木工程师协会。

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