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Element level time domain system identification techniques with unknown input information.

机译:输入信息未知的元素级时域系统识别技术。

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摘要

A finite element based linear time domain system identification algorithm is proposed to estimate the stiffness and damping coefficients of structures at the element level using response data alone without using information of excitation measurements. The unknown input excitation could be applied at any location of the structure including at the ground level representing the seismic excitation. The proposed method is an Iterative Least-Squares with Unknown Input (ILS-UI) procedure. The element-level structural parameters can be identified directly by using proposed ILS-UI procedure. No information of the modal properties is required. The efficiency and robustness of the proposed algorithm is illustrated by numerical examples. For verification purposes, both noise-free and noise-included output responses are considered in numerical examples. The applications of three types of structures, i.e., shear-type buildings, trusses, and frames, are considered in this dissertation. In all examples, the identified results indicate that the proposed ILS-UI method identified the structural parameters very well. For the successful implementation of the proposed method, only a small number of sampling time points are required, and a long time duration of responses is not necessary. For a large system, since it is practically impossible to measure responses at every dynamic degree of freedom, the absence of some observation points of responses and its effect on the proposed system identification technique must be studied. Based on the above ILS-UI procedure, a new technique combined with the Kalman filter technique is developed to identify all element-level structural parameters using measuring responses at several optimal locations only. The optimal numbers and locations of measurement points required to identify uniquely the system using this proposed ILS-EKF-UI technique are determined. Again, numerical examples with two special cases are used to illustrate the applications of this new technique. The results of numerical examples indicate that this new system identification technique is very economical, simple, and robust, since the input is not required to be measured and only several observations are required.
机译:提出了一种基于有限元的线性时域系统识别算法,在不考虑激励测量信息的情况下,仅使用响应数据即可在单元一级估计结构的刚度和阻尼系数。未知输入激励可以应用于结构的任何位置,包括代表地震激励的地平面。所提出的方法是带有未知输入的迭代最小二乘(ILS-UI)过程。元素级结构参数可以通过使用建议的ILS-UI过程直接识别。不需要模态属性的信息。数值算例说明了所提算法的效率和鲁棒性。为了进行验证,在数字示例中同时考虑了无噪声和包含噪声的输出响应。本文考虑了三种类型的结构的应用,即剪力型建筑物,桁架和框架。在所有示例中,识别出的结果表明,所提出的ILS-UI方法能够很好地识别出结构参数。为了成功实施所提出的方法,仅需要少量的采样时间点,并且不需要较长的响应时间。对于大型系统,由于实际上不可能在每个动态自由度上测量响应,因此必须研究缺少某些响应观察点及其对所提出的系统识别技术的影响。基于以上ILS-UI程序,开发了一种与卡尔曼滤波技术相结合的新技术,可仅通过在几个最佳位置处使用测量响应来识别所有元素级结构参数。确定了使用此建议的ILS-EKF-UI技术唯一标识系统所需的最佳测量点数和最佳位置。同样,使用带有两个特殊情况的数值示例来说明此新技术的应用。数值示例的结果表明,这种新的系统识别技术非常经济,简单且可靠,因为不需要测量输入,并且只需要进行几次观察即可。

著录项

  • 作者

    Wang Duan.;

  • 作者单位
  • 年度 1995
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  • 原文格式 PDF
  • 正文语种 en
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