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Optimization of Neural Network for Charpy Toughness of Steel Welds

Title
Optimization of Neural Network for Charpy Toughness of Steel Welds
Authors
Pak, JunhakJang, JaehoonBhadeshia, H. K. D. H.Karlsson, L.null
Date Issued
2009-01
Publisher
Taylor & Francis Inc.
Abstract
By their very nature, empirical models must be treated with care in order to avoid predictions which are not physically possible. One example is the calculation of the Charpy impact toughness of steel welds as a function of composition and processing, where the impact energy should not be negative. However, there is nothing to prevent a user from implementing inputs which lead to nonsensical results. We examine here whether a scheme used in kinetic theory can be generalized to create neural networks which are bounded. It is found that such procedures lead to bias. In the process of doing this work, some interesting trends have been discovered on the role of process parameters in determining the toughness of steel welds.
Keywords
Bias; Charpy energy; Neural networks; Welds; STRAIN-INDUCED TRANSFORMATION; TRIP-AIDED STEELS; LOW-ALLOY STEELS; RETAINED AUSTENITE; IMPACT TOUGHNESS; PHASE-CHANGE; STRENGTH; MICROSTRUCTURE; KINETICS; MODEL
URI
https://oasis.postech.ac.kr/handle/2014.oak/29191
DOI
10.1080/104269108025
ISSN
1042-6914
Article Type
Article
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