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Design optimization on high-rise buildings considering occupant comfort reliability and joint distribution of wind speed and direction

机译:考虑居住者舒适度可靠性以及风速和风向的联合分布的高层建筑设计优化

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摘要

A new procedure for the wind resistant optimization of high-rise buildings considering the uncertainties of the wind speed, structural natural frequency and damping ratio, and the joint distribution of the wind speed and direction is proposed. The novelty of the procedure includes three aspects. Firstly, the modal acceleration responses of buildings are employed to evaluate the occupant comfort in the building instead of the commonly used total acceleration responses. This enhances the applicability of the proposed method and reduces the computation error by including the effect of the reoccurrence period of wind and avoiding calculation of the peak factor of response. Secondly, because the current method such as the modified Hasofer-Lind-Rackwitz-Fiessler (HLRF) algorithm is not suitable to the optimization design considering multiple wind directions, to overcome this problem, the design point method in generalized random space (DPG method) is used to establish equations of reliability for converting modal acceleration constraints to natural frequency constraints, in which an approach of mapping transformation is used to treat the non-normal variables. Thirdly, by improving the method of determining the limit of the wind speed based on the joint distribution of the wind speed and direction, the failure probabilities of modal accelerations under all wind directions are combined based on the joint probability distribution of the wind speed and direction to obtain the limit of natural frequency constraints. The parameters of the joint probability distribution are determined from the meteorological observation data of the wind speed. In association with the Optimality Criterion (OC) algorithm, the proposed method is applied in the wind resistant optimization of a 60-stories standard model of Commonwealth Advisory Aeronautical Research Council (CAARC). The investigations show that the proposed method can effectively decrease the structural total weight subject to reliability frequency constraints, displacement constraints and inter-story drift constrains. Considering the randomness of parameters and joint distribution of the wind speed and direction in the comfort constraint could enhance the design space for the structural total weight.
机译:提出了一种考虑风速,结构固有频率和阻尼比的不确定性以及风速和风向联合分布的高层建筑抗风优化的新程序。该程序的新颖性包括三个方面。首先,采用建筑物的模态加速度响应来评估建筑物中的乘员舒适度,而不是通常使用的总加速度响应。通过包括风的重现期的影响并避免计算响应的峰值因子,从而提高了所提方法的适用性并减少了计算误差。其次,由于当前的方法(例如改进的Hasofer-Lind-Rackwitz-Fiessler(HLRF)算法)不适合考虑多个风向的优化设计,因此,为解决此问题,广义随机空间中的设计点方法(DPG方法)用“遗传算法”建立将模态加速度约束转换为固有频率约束的可靠性方程,其中使用映射变换的方法来处理非正态变量。第三,通过改进基于风速和风向联合分布确定风速极限的方法,基于风速和风向联合分布概率,组合了在所有风向下模态加速度的失效概率。以获得固有频率限制的极限。根据风速的气象观测数据确定联合概率分布的参数。结合最优标准(OC)算法,该方法被应用于英联邦航空咨询委员会(CAARC)的60层标准模型的抗风优化。研究表明,该方法在可靠度频率约束,位移约束和层间位移约束的作用下,可以有效降低结构总重。考虑参数的随机性以及舒适约束中风速和风向的联合分布可以增加结构总重的设计空间。

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