Experimental identification of modal parameters for the model of a building subjected to short-term kinematic excitation

Author:

Majcher Krzysztof1

Affiliation:

1. Faculty of Civil Engineering , Wrocław University of Science and Technology , Wybrzeże Wyspiańskiego 27, 50-370 Wrocław , Wrocław , Poland

Abstract

Abstract In this work, the input-output method of dynamic parameters' identification is experimentally tested. A method based on the transformation of a dynamic problem into a static problem by means of integration of the input and output signal was presented. The problem discussed in this article is the identification of the coefficients of stiffness matrices and eigenfrequencies of a discrete dynamic system subjected to kinematic input. The experimental analysis was carried out on a three-storey slab-and-column structure, which constitutes a physical model of a building. The vibrations of the model were excited kinematically by an earthquake simulator. The device has a computer-controlled, movable table top, which can move independently in three directions, that is, horizontally, vertically, and rotationally around the vertical axis. The aim of the experimental studies presented in this work was to determine the dynamic parameters of the model (stiffness, natural frequencies) using the input-output method in the time domain. Moreover, the results obtained with this method were compared with the results of experimental modal analysis (EMA) in order to verify their correctness. It was assumed that the movement of the base is horizontal and occurs in one direction. Two short-term, irregular kinematic excitations of the construction were considered, and the selected results and conclusions from experimental analyses were presented in this work.

Publisher

Walter de Gruyter GmbH

Subject

Computers in Earth Sciences,Mechanics of Materials,Geotechnical Engineering and Engineering Geology,Civil and Structural Engineering

Reference15 articles.

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2. Cunha, A., Caetano, E. 2006. Experimental Modal Analysis of Civil Engineering Structures, Sound and Vibration (2006, June), pp. 12-20.

3. Grosel, J., Sawicki, W., Pakos, W. 2014. Application of Classical and Operational Modal Analysis for Examination of Engineering Structures, Procedia Engineering 91, pp. 136 – 141.

4. Grosel, J., Sawicki, W., Wojcicki, Z. 2009. The identifications of modal parameters of a large industrial structure, Proceedings of The 3rd International Operational Modal Analysis Conference (IOMAC) Ancona, Italy.

5. Harris, C. M., Piersol, A. G. 2002. Shock and Vibration Handbook. 5th ed. USA: The McGraw-Hill Companies Inc

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