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Constitutive modeling for isotropic materials (HOST)The results of the third year of work on a program which is part of the NASA Hot Section Technology program (HOST) are presented. The goals of this program are: (1) the development of unified constitutive models for rate dependent isotropic materials; and (2) the demonstration of the use of unified models in structural analyses of hot section components of gas turbine engines. The unified models selected for development and evaluation are those of Bodner-Partom and of Walker. A test procedure was developed for assisting the generation of a data base for the Bodner-Partom model using a relatively small number of specimens. This test procedure involved performing a tensile test at a temperature of interest that involves a succession of strain-rate changes. The results for B1900+Hf indicate that material constants related to hardening and thermal recovery can be obtained on the basis of such a procedure. Strain aging, thermal recovery, and unexpected material variations, however, preluded an accurate determination of the strain-rate sensitivity parameter is this exercise. The effects of casting grain size on the constitutive behavior of B1900+Hf were studied and no particular grain size effect was observed. A systematic procedure was also developed for determining the material constants in the Bodner-Partom model. Both the new test procedure and the method for determining material constants were applied to the alternate material, Mar-M247 . Test data including tensile, creep, cyclic and nonproportional biaxial (tension/torsion) loading were collected. Good correlations were obtained between the Bodner-Partom model and experiments. A literature survey was conducted to assess the effects of thermal history on the constitutive behavior of metals. Thermal history effects are expected to be present at temperature regimes where strain aging and change of microstructure are important. Possible modifications to the Bodner-Partom model to account for these effects are outlined. The use of a unified constitutive model for hot section component analyses was demonstrated by applying the Walker model and the MARC finite-element code to a B1900+Hf airfoil problem.
Document ID
19900004074
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Chan, Kwai S.
(Southwest Research Inst. San Antonio, TX., United States)
Lindholm, Ulric S.
(Southwest Research Inst. San Antonio, TX., United States)
Bodner, S. R.
(Southwest Research Inst. San Antonio, TX., United States)
Hill, Jeff T.
(Southwest Research Inst. San Antonio, TX., United States)
Weber, R. M.
(Southwest Research Inst. San Antonio, TX., United States)
Meyer, T. G.
(Pratt and Whitney Aircraft East Hartford, CT., United States)
Date Acquired
September 6, 2013
Publication Date
August 1, 1986
Subject Category
Aircraft Propulsion And Power
Report/Patent Number
NASA-CR-179522
NAS 1.26:179522
SWRI-7576/45
Report Number: NASA-CR-179522
Report Number: NAS 1.26:179522
Report Number: SWRI-7576/45
Accession Number
90N13390
Funding Number(s)
PROJECT: RTOP 533-04-1A
PROJECT: SWRI PROJ. 06-7576
CONTRACT_GRANT: NAS3-23925
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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