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Contact solution algorithmsTwo algorithms for obtaining static contact solutions are described in this presentation. Although they were derived for contact problems involving specific structures (a tire and a solid rubber cylinder), they are sufficiently general to be applied to other shell-of-revolution and solid-body contact problems. The shell-of-revolution contact algorithm is a method of obtaining a point load influence coefficient matrix for the portion of shell surface that is expected to carry a contact load. If the shell is sufficiently linear with respect to contact loading, a single influence coefficient matrix can be used to obtain a good approximation of the contact pressure distribution. Otherwise, the matrix will be updated to reflect nonlinear load-deflection behavior. The solid-body contact algorithm utilizes a Lagrange multiplier to include the contact constraint in a potential energy functional. The solution is found by applying the principle of minimum potential energy. The Lagrange multiplier is identified as the contact load resultant for a specific deflection. At present, only frictionless contact solutions have been obtained with these algorithms. A sliding tread element has been developed to calculate friction shear force in the contact region of the rolling shell-of-revolution tire model.
Document ID
19890015281
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Tielking, John T.
(Texas A&M Univ. College Station, TX, United States)
Date Acquired
September 5, 2013
Publication Date
May 1, 1989
Publication Information
Publication: NASA, Langley Research Center, Computational Methods for Structural Mechanics and Dynamics, Part 1
Subject Category
Computer Programming And Software
Accession Number
89N24652
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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