An Initially Deformed Flat Frame Finite Element

The paper presents the author’s non-linear FEM solution of an initially stressless deformed flat frame element, in which the nodes are situated along the axis of the bar initially straight. It has been assumed that each node may sustain arbitrary displacements and rotation. The solution takes into a...

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Main Author: Zamorowski J.
Format: Article
Language:English
Published: Sciendo 2013-09-01
Series:Archives of Civil Engineering
Subjects:
Online Access:http://www.degruyter.com/view/j/ace.2013.59.issue-3/ace-2013-0021/ace-2013-0021.xml?format=INT
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spelling doaj-662d72b892964d6aaff04953790126582020-11-25T00:14:08ZengSciendoArchives of Civil Engineering1230-29452013-09-0159338140010.2478/ace-2013-0021ace-2013-0021An Initially Deformed Flat Frame Finite ElementZamorowski J.0Silesian University of Technology in Gliwice, Faculty of Civil Engineering, 5 Akademicka Street, 44-100 Gliwice, PolandThe paper presents the author’s non-linear FEM solution of an initially stressless deformed flat frame element, in which the nodes are situated along the axis of the bar initially straight. It has been assumed that each node may sustain arbitrary displacements and rotation. The solution takes into account the effect of shear, the geometrical non-linearity with large displacements (Green-Lagrange’s strain tensor) and moderate rotations (i.e. such ones which allow a linear-elastic behaviour of the material) and alternative small rotations when the second Piola-Kirchhoff stress tensor is applied. This solution is based on [1], concerning beams without any initial bow imperfections. The convergence of the obtained results at different numbers of nodes and Gauss points in the element was tested basing on the example of circular arcs with a central angle of 120° ÷180°. The analysis concerned elements with two, three, five, seven, nine and eleven nodes, for the same number of points of numerical integration and also with one more or less. Moreover, the effect of distributing the load on the convergence of the results was analyzed.http://www.degruyter.com/view/j/ace.2013.59.issue-3/ace-2013-0021/ace-2013-0021.xml?format=INTinitially deformed flat frame elementgeometrical non-linearitylarge displacementslarge and small rotations
collection DOAJ
language English
format Article
sources DOAJ
author Zamorowski J.
spellingShingle Zamorowski J.
An Initially Deformed Flat Frame Finite Element
Archives of Civil Engineering
initially deformed flat frame element
geometrical non-linearity
large displacements
large and small rotations
author_facet Zamorowski J.
author_sort Zamorowski J.
title An Initially Deformed Flat Frame Finite Element
title_short An Initially Deformed Flat Frame Finite Element
title_full An Initially Deformed Flat Frame Finite Element
title_fullStr An Initially Deformed Flat Frame Finite Element
title_full_unstemmed An Initially Deformed Flat Frame Finite Element
title_sort initially deformed flat frame finite element
publisher Sciendo
series Archives of Civil Engineering
issn 1230-2945
publishDate 2013-09-01
description The paper presents the author’s non-linear FEM solution of an initially stressless deformed flat frame element, in which the nodes are situated along the axis of the bar initially straight. It has been assumed that each node may sustain arbitrary displacements and rotation. The solution takes into account the effect of shear, the geometrical non-linearity with large displacements (Green-Lagrange’s strain tensor) and moderate rotations (i.e. such ones which allow a linear-elastic behaviour of the material) and alternative small rotations when the second Piola-Kirchhoff stress tensor is applied. This solution is based on [1], concerning beams without any initial bow imperfections. The convergence of the obtained results at different numbers of nodes and Gauss points in the element was tested basing on the example of circular arcs with a central angle of 120° ÷180°. The analysis concerned elements with two, three, five, seven, nine and eleven nodes, for the same number of points of numerical integration and also with one more or less. Moreover, the effect of distributing the load on the convergence of the results was analyzed.
topic initially deformed flat frame element
geometrical non-linearity
large displacements
large and small rotations
url http://www.degruyter.com/view/j/ace.2013.59.issue-3/ace-2013-0021/ace-2013-0021.xml?format=INT
work_keys_str_mv AT zamorowskij aninitiallydeformedflatframefiniteelement
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