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A hybrid-stress finite element for linear anisotropic elasticityStandard assumed displacement finite elements with anisotropic material properties perform poorly in complex stress fields such as combined bending and shear and combined bending and torsion. A set of three dimensional hybrid-stress brick elements were developed with fully anisotropic material properties. Both eight-node and twenty-node bricks were developed based on the symmetry group theory of Punch and Atluri. An eight-node brick was also developed using complete polynomials and stress basis functions and reducing the order of the resulting stress parameter matrix by applying equilibrium constraints and stress compatibility constraints. Here the stress compatibility constraints must be formulated assuming anisotropic material properties. The performance of these elements was examined in numerical examples covering a broad range of stress distributions. The stress predictions show significant improvement over the assumed displacement elements but the calculation time is increased.
Document ID
19900019298
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Fly, Gerald W.
(Computational Mechanics Co. Austin, TX., United States)
Oden, J. Tinsley
(Texas Univ. Austin., United States)
Pearson, Mark L.
(Softcom Systems, Inc., Huntsville AL., United States)
Date Acquired
September 6, 2013
Publication Date
September 1, 1988
Publication Information
Publication: NASA, Marshall Space Flight Center, Advanced Earth-to-Orbit Propulsion Technology 1988, Volume 1
Subject Category
Structural Mechanics
Accession Number
90N28614
Funding Number(s)
CONTRACT_GRANT: NAS8-37283
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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