Large Angle Bending Behavior of Curved Members Using The Method of Characteristics

This paper deals with the nonlinear large-angle bending dynamic analysis of curved beams which investigated by modeling wave’s transmission along curved members. The approach depends on the wave propagation in one-dimensional structural element using the method of characteristics. The method of cha...

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Main Authors: Haitham H. Al-Da'ami, Ahmed A. Al-Rajihy, Essam Z. Fadhel
Format: Article
Language:English
Published: Al-Khwarizmi College of Engineering – University of Baghdad 2019-03-01
Series:Al-Khawarizmi Engineering Journal
Online Access:http://alkej.uobaghdad.edu.iq/index.php/alkej/article/view/612
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spelling doaj-1ff3910561494d9bb69eb6dcc9c3ad942020-11-25T01:15:05Zeng Al-Khwarizmi College of Engineering – University of BaghdadAl-Khawarizmi Engineering Journal1818-11712312-07892019-03-0144Large Angle Bending Behavior of Curved Members Using The Method of CharacteristicsHaitham H. Al-Da'ami0Ahmed A. Al-Rajihy1Essam Z. Fadhel2College of Engineering/ Babylon UniversityCollege of Engineering/ Kerbla UniversityCollege of Engineering/ Babylon University This paper deals with the nonlinear large-angle bending dynamic analysis of curved beams which investigated by modeling wave’s transmission along curved members. The approach depends on the wave propagation in one-dimensional structural element using the method of characteristics. The method of characteristics (MOC) is found to be a suitable method for idealizing the wave propagation inside structural systems. Timoshenko’s beam theory, which includes transverse shear deformation and rotary inertia effects, is adopted in the analysis. Only geometrical non-linearity is considered in this study and the material is assumed to be linearly elastic. Different boundary conditions and loading cases are examined. From the results obtained, it is found that the geometrical shape, boundary conditions, material properties of the members as well as the load type and direction have considerable effects on the response of the member. http://alkej.uobaghdad.edu.iq/index.php/alkej/article/view/612
collection DOAJ
language English
format Article
sources DOAJ
author Haitham H. Al-Da'ami
Ahmed A. Al-Rajihy
Essam Z. Fadhel
spellingShingle Haitham H. Al-Da'ami
Ahmed A. Al-Rajihy
Essam Z. Fadhel
Large Angle Bending Behavior of Curved Members Using The Method of Characteristics
Al-Khawarizmi Engineering Journal
author_facet Haitham H. Al-Da'ami
Ahmed A. Al-Rajihy
Essam Z. Fadhel
author_sort Haitham H. Al-Da'ami
title Large Angle Bending Behavior of Curved Members Using The Method of Characteristics
title_short Large Angle Bending Behavior of Curved Members Using The Method of Characteristics
title_full Large Angle Bending Behavior of Curved Members Using The Method of Characteristics
title_fullStr Large Angle Bending Behavior of Curved Members Using The Method of Characteristics
title_full_unstemmed Large Angle Bending Behavior of Curved Members Using The Method of Characteristics
title_sort large angle bending behavior of curved members using the method of characteristics
publisher Al-Khwarizmi College of Engineering – University of Baghdad
series Al-Khawarizmi Engineering Journal
issn 1818-1171
2312-0789
publishDate 2019-03-01
description This paper deals with the nonlinear large-angle bending dynamic analysis of curved beams which investigated by modeling wave’s transmission along curved members. The approach depends on the wave propagation in one-dimensional structural element using the method of characteristics. The method of characteristics (MOC) is found to be a suitable method for idealizing the wave propagation inside structural systems. Timoshenko’s beam theory, which includes transverse shear deformation and rotary inertia effects, is adopted in the analysis. Only geometrical non-linearity is considered in this study and the material is assumed to be linearly elastic. Different boundary conditions and loading cases are examined. From the results obtained, it is found that the geometrical shape, boundary conditions, material properties of the members as well as the load type and direction have considerable effects on the response of the member.
url http://alkej.uobaghdad.edu.iq/index.php/alkej/article/view/612
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