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Constitutive modeling for isotropic materialsThe objective of the program is to evaluate and develop existing constitutive models for use in finite-element structural analysis of turbine engine hot section components. The class of constitutive equation studied is considered unified in that all inelastic deformation including plasticity, creep, and stress relaxation are treated in a single term rather than a classical separation of plasticity (time independent) and creep (time dependent) behavior. The unified theories employed also do not utilize the classical yield surface or plastic potential concept. The models are constructed from an appropriate flow law, a scalar kinetic relation between strain rate, temperature and stress, and evolutionary equations for internal variables describing strain or work hardening, both isotropic and directional (kinematic). This and other studies have shown that the unified approach is particularly suited for determining the cyclic behavior of superalloy type blade and vane materials and is entirely compatible with three-dimensional inelastic finite-element formulations. The behavior was examined of a second nickel-base alloy, MAR-M247, and compared it with the Bodner-Partom model, further examined procedures for determining the material-specific constants in the models, and exercised the MARC code for a turbine blade under simulated flight spectrum loading. Results are summarized.
Document ID
19890003533
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Lindholm, Ulric S.
(Southwest Research Inst. San Antonio, TX, United States)
Chan, Kwai S.
(Southwest Research Inst. San Antonio, TX, United States)
Date Acquired
September 5, 2013
Publication Date
October 1, 1986
Publication Information
Publication: NASA, Lewis Research Center, Turbine Engine Hot Section Technology 1986
Subject Category
Structural Mechanics
Accession Number
89N12904
Funding Number(s)
CONTRACT_GRANT: NAS3-23925
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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