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Mesh refinement in finite element analysis by minimization of the stiffness matrix traceMost finite element packages provide means to generate meshes automatically. However, the user is usually confronted with the problem of not knowing whether the mesh generated is appropriate for the problem at hand. Since the accuracy of the finite element results is mesh dependent, mesh selection forms a very important step in the analysis. Indeed, in accurate analyses, meshes need to be refined or rezoned until the solution converges to a value so that the error is below a predetermined tolerance. A-posteriori methods use error indicators, developed by using the theory of interpolation and approximation theory, for mesh refinements. Some use other criterions, such as strain energy density variation and stress contours for example, to obtain near optimal meshes. Although these methods are adaptive, they are expensive. Alternatively, a priori methods, until now available, use geometrical parameters, for example, element aspect ratio. Therefore, they are not adaptive by nature. An adaptive a-priori method is developed. The criterion is that the minimization of the trace of the stiffness matrix with respect to the nodal coordinates, leads to a minimization of the potential energy, and as a consequence provide a good starting mesh. In a few examples the method is shown to provide the optimal mesh. The method is also shown to be relatively simple and amenable to development of computer algorithms. When the procedure is used in conjunction with a-posteriori methods of grid refinement, it is shown that fewer refinement iterations and fewer degrees of freedom are required for convergence as opposed to when the procedure is not used. The mesh obtained is shown to have uniform distribution of stiffness among the nodes and elements which, as a consequence, leads to uniform error distribution. Thus the mesh obtained meets the optimality criterion of uniform error distribution.
Document ID
19900006118
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Kittur, Madan G.
(Cincinnati Univ. OH, United States)
Huston, Ronald L.
(Cincinnati Univ. OH, United States)
Date Acquired
September 6, 2013
Publication Date
November 1, 1989
Subject Category
Mechanical Engineering
Report/Patent Number
NAS 1.26:185170
NASA-CR-185170
USAAVSCOM-TR-89-C-019
AD-A219303
Accession Number
90N15434
Funding Number(s)
OTHER: NSG-3188
PROJECT: DA PROJ. 1L1-62209-A-47-A
PROJECT: RTOP 505-63-51
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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