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弯曲型结构简化动力模型分析及TMD减振设计
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作者 王菁菁 张超 李浩博 《湖南工业大学学报》 2020年第1期45-50,共6页
采用等效刚度参数识别法对某高层建筑主体结构进行模型简化。对比了简化模型和ETABS原模型的动力特性和包括地震作用的多种激励下的结构响应。为了说明在高层建筑结构动力分析中使用正确模型的重要性,对剪切型模型和弯曲型模型的固有频... 采用等效刚度参数识别法对某高层建筑主体结构进行模型简化。对比了简化模型和ETABS原模型的动力特性和包括地震作用的多种激励下的结构响应。为了说明在高层建筑结构动力分析中使用正确模型的重要性,对剪切型模型和弯曲型模型的固有频率和振型进行了对比分析。以弯曲型模型和剪切型模型为基础,进行了调谐质量阻尼器(简称TMD)减振设计,将所得TMD附加于弯曲型主体结构,并对比结构的位移响应。结果表明,剪切型结构和弯曲型结构的动力响应存在较大差异,而弯曲型简化模型能准确地代表原模型,故不建议或者应谨慎使用剪切型模型对高层建筑结构进行减振装置设计。 展开更多
关键词 高层结构 模型简化 等效刚度参数识别法 弯曲型模型 剪切型模型
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Optimal design of automotive body B-pillar using simplified finite element model of body-in-prime combined with an optimization procedure
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作者 Mehri IZANLOO Abolfazl KHALKHALI 《Journal of Central South University》 SCIE EI CAS CSCD 2022年第12期3939-3955,共17页
Optimization of an automotive body structure faces the difficulty of having too many design variables and a too large design search space. A simplified model of body-in-prime(BIP) can solve this difficulty by reducing... Optimization of an automotive body structure faces the difficulty of having too many design variables and a too large design search space. A simplified model of body-in-prime(BIP) can solve this difficulty by reducing the number of design variables. In this study, to achieve lighter weight and higher stiffness, the simplified model of BIP was developed and combined with an optimization procedure;consequently, optimal designs of automotive body B-pillar were produced. B-pillar was divided into four quarters and each quarter was modelled by one simplified beam. In the optimization procedure, depth, width, and thickness of the simplified beams were considered as the design variables.Weight, bending and torsional stiffness were also considered as objective functions. The optimization procedure is composed of six stages: designing the experiments, calculating grey relational grade, calculating signal-to noise ratio,finding an optimum design using Taguchi grey relational analysis, performing sensitivity analysis using analysis of variance(ANOVA) and performing non-dominated sorting and multi-criteria decision making. The results show that the width of lower B-pillar has the highest effect(about 55%) and the obtained optimum design point could reduce the weight of B-pillar by about 40% without reducing the BIP stiffness by more than 1.47%. 展开更多
关键词 body-in-prime(BIP)model finite element model bending stiffness torsional stiffness B-pillar Taguchi method multi criterion decision-making(MCDM)method
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