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Material Data Representation of Hysteresis Loops for Hastelloy X Using Artificial Neural NetworksThe artificial neural network (ANN) model proposed by Rumelhart, Hinton, and Williams is applied to develop a functional approximation of material data in the form of hysteresis loops from a nickel-base superalloy, Hastelloy X. Several different ANN configurations are used to model hysteresis loops at different cycles for this alloy. The ANN models were successful in reproducing the hysteresis loops used for its training. However, because of sharp bends at the two ends of hysteresis loops, a drift occurs at the corners of the loops where loading changes to unloading and vice versa (the sharp bends occurred when the stress-strain curves were reproduced by adding stress increments to the preceding values of the stresses). Therefore, it is possible only to reproduce half of the loading path. The generalization capability of the network was tested by using additional data for two other hysteresis loops at different cycles. The results were in good agreement. Also, the use of ANN led to a data compression ratio of approximately 22:1.
Document ID
19940019078
Acquisition Source
Legacy CDMS
Document Type
Technical Memorandum (TM)
Authors
Alam, Javed
(Youngstown State Univ. OH., United States)
Berke, Laszlo
(NASA Lewis Research Center Cleveland, OH, United States)
Murthy, Pappu L. N.
(NASA Lewis Research Center Cleveland, OH, United States)
Date Acquired
September 6, 2013
Publication Date
December 1, 1993
Subject Category
Structural Mechanics
Report/Patent Number
NASA-TM-105990
NAS 1.15:105990
E-7301
Report Number: NASA-TM-105990
Report Number: NAS 1.15:105990
Report Number: E-7301
Accession Number
94N23551
Funding Number(s)
PROJECT: RTOP 505-63-5B
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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