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Finite Modeling Updating Effects on the Dynamic Response of Building Models

机译:有限模型更新对建筑模型动态响应的影响

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An improved finite element model was used to obtain more accurate modeling of engineering structures. The main goal of this paper was to determine how this improved modeling procedure affects the dynamic response of buildings based on experimental modal parameters such as natural frequencies, mode shapes and damping ratios. For experimental assessment, three small, one-story, two-bay, reinforced concrete buildings with raft foundation were constructed under laboratory conditions. The initial three -dimensional finite element models, built with the ANSYS software, were used to analytically identify modal parameters, including natural frequencies and mode shapes. Following the analytical study, the ambient vibration tests were performed to obtain modal parameters, experimentally. The enhanced frequency domain decomposition method and the stochastic subspace identification method were used to identify the modal parameter. The analytical and experimental modal parameters were compared and then initial finite element models were updated to minimize the differences by changing of some uncertain parameters such as materials properties. With model updating, the maximum difference between the measured and initially obtained frequency was reduced from 28.47 to 4.88 %. To show the model updating effect on dynamic response of building models, dynamic analysis with the experimental computed damping ratios and 5 % damping ratio were carried out using 1992 Erzincan earthquake ground motion record. For the experimental damping ratios, the maximum differences in the displacements and stresses between the initial and updated models were obtained as 23 and 32 %, respectively. These differences were calculated as 43 and 15 % for the 5 % damping ratio. Comparisons of dynamic analyses results for the initial and updated model show that the finite element model updating affects the dynamic response of the buildings considerably.
机译:改进的有限元模型用于获得更精确的工程结构建模。本文的主要目的是根据实验模态参数(例如固有频率,模态形状和阻尼比)来确定这种改进的建模程序如何影响建筑物的动力响应。为了进行实验评估,在实验室条件下建造了三座带有筏板基础的小型,两层,一层,两层的钢筋混凝土建筑物。使用ANSYS软件建立的初始三维有限元模型用于分析识别模态参数,包括固有频率和模态形状。在进行了分析研究之后,进行了环境振动测试以通过实验获得模态参数。使用增强频域分解方法和随机子空间识别方法来识别模态参数。比较分析和实验模态参数,然后更新初始有限元模型,以通过更改某些不确定参数(例如材料属性)来最大程度地减少差异。通过更新模型,可以将实测频率与最初获得的频率之间的最大差异从28.47降低到4.88%。为了显示模型更新对建筑模型动力响应的影响,使用1992年Erzincan地震地面运动记录进行了实验计算的阻尼比和5%阻尼比的动力学分析。对于实验阻尼比,初始模型和更新模型之间的位移和应力最大差异分别为23%和32%。对于5%的阻尼比,这些差异计算为43%和15%。初始模型和更新模型的动力分析结果比较表明,有限元模型的更新极大地影响了建筑物的动力响应。

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