Modeling of Quenching, Residual-Stress Formation, and Quench Cracking

Author:

Wallis Ronald A.1

Affiliation:

1. Wyman Gordon Forgings

Abstract

Abstract This article provides information on the boundary conditions that must be applied to model the heat-transfer coefficient (HTC) in a component being cooled. It describes the historical perspective of various experiments to determine the HTCs. Computational fluid dynamics codes have also been used to predict the HTCs around a part. The article provides information on the various modeling studies used to predict cooling rates in a component. The prediction of residual stresses by validation and optimization of residual stress models is also discussed. Several techniques, such as models neglecting and incorporating material transformation effects, used to predict residual stresses are reviewed. The article also explains the various aspects of models used to prevent cracking during heating and quenching.

Publisher

ASM International

Reference189 articles.

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3. A Study of Fin Effects in the Measurement of Temperature Using Surface-Mounted Thermocouples;Tszeng;Trans. ASME, J. Heat Transf.,2003

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1. Heat Treatment Metallurgy of Nickel-Base Alloys;Heat Treating of Nonferrous Alloys;2016-06-01

2. Simulation trends in quenching technology for automotive components;International Heat Treatment and Surface Engineering;2013-12-06

3. Integration and Automation of Residual Stress and Service Stress Modeling for Superalloy Component Design;Superalloys 2012;2012-10-02

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