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ON THE AXIAL FORCE IDENTIFICATION IN EULER-BERNOULLI BEAMS WITH UNKNOWN BOUNDARY CONDITIONS

机译:在具有未知边界条件的欧拉 - 伯努利梁轴向力识别上

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Identification of the tensile force in slender axially-loaded structural elements, such as stay cables, metallic bars and tie-rods, is of paramount importance for health monitoring and safety assessment purposes. Dynamic testing techniques provide the ground for quick and cheap identification strategies, based on the knowledge of: (a) a set of identified natural frequencies, and (b) a structural model that relates natural frequencies to the axial-force value. Within this framework, reliability of the identified axial force values depends, among other factors, on the predictive capabilities of the underlying structural model. Errors may arise, in particular, from the modeling of boundary conditions. The present paper analytically investigates the effect of boundary conditions on the modal properties of axially loaded Euler-Bernoulli beam elements. Starting from theoretical results obtained on this archetypal structural model, a numerical procedure for the identification of the axial force in beam elements with unknown bending stiffness and boundary conditions is then presented. Parametric analyses are carried out to quantitatively assess the accuracy of the proposed identification algorithm in the case of frequencies contaminated by measurement errors.
机译:识别细长的轴向加载的结构元件中的拉力,例如保持电缆,金属棒和扎带,对于健康监测和安全评估目的至关重要。基于以下知识:(a)一组鉴定的自然频率,动态测试技术为快速和廉价的识别策略提供了快速和廉价的识别策略,以及(b)将自然频率与轴向力值相关的结构模型。在该框架内,所识别的轴向力值的可靠性与其他因素相比,在底层结构模型的预测能力之外。特别是从边界条件的建模中出现错误。本文分析了边界条件对轴向装载的欧拉伯尔诺梁元件的模态特性的影响。从在该原型结构模型获得的理论结果开始,然后呈现用于识别具有未知弯曲刚度和边界条件的梁元件中轴向力的数值过程。进行参数分析,以定量评估所提出的识别算法的准确性在由测量误差污染的频率的情况下。

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