Abstract

The present work deals with the thermomechanical fatigue and low-cycle fatigue behavior of C-263 in two different material conditions. Microstructural characteristics and fracture modes are investigated with light and electron microscopy. The experimental results indicate that viscoplastic deformations depend on the heat treatment or rather on the current state of the microstructure. The measured data are used to adjust the parameters of a Chaboche type model and a fracture-mechanics based model for fatigue lifetime prediction. The Chaboche model is able to describe the essential phenomena of time and temperature dependent cyclic plasticity including the complex cyclic hardening during thermo-cyclic loading of both material conditions with a unique set of material parameters. This could be achieved by including an additional internal variable into the Chaboche model which accounts for changes in the precipitation microstructure during high temperature loading. Furthermore, the proposed lifetime model is well suited for a common fatigue life prediction of both investigated heats. The deformation and lifetime models are implemented into a user defined material routine. In this work, the material routine is applied for the lifetime prediction of a critical power plant component using the finite element method.

Highlights

  • The nickel-based Alloy C-263 is a candidate for application in flexible generation fossil fuel power plants

  • The Chaboche model is able to describe the essential phenomena of time and temperature dependent cyclic plasticity including the complex cyclic hardening during thermo-cyclic loading of both material conditions with a unique set of material parameters

  • This could be achieved by including an additional internal variable into the Chaboche model which accounts for changes in the precipitation microstructure during high temperature loading

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Summary

Introduction

The nickel-based Alloy C-263 is a candidate for application in flexible generation fossil fuel power plants. Ni Cr Co Mo Al Ti C bal. 20.09 19.84 5.80 0.42 2.09 0.06 and lifetime models that comprise the microstructural evolution of the material

Material and experimental
Experimental results
Chaboche model
Ci d ci dθ
Mechanism based lifetime model
Discussion
Application
Full Text
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