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DOE OSTI · 1907740

Damage Accumulations Predictions for Boiler Components Via Microstructurally Informed Material Models

Abstract

The goal of the project was to model material behavior and degradation during cyclic plasticity— with and without hold time—for nickel-based superalloys used in USC (ultra-super-critical) and A-USC (advanced-ultra-super-critical) boiler components. The study provided physically informed models, capturing the microstructural changes taking place in the industrial components under cyclic loading and long duration stress (up to 300,000 hours) and high temperature exposure (1100°F/593°C to 1400°F/760°C). The major developments were: 1) Qualitative and quantitative understanding of microstructure evolution (gamma prime precipitates), deformation (dislocation density), and damage mechanisms of Haynes ® 282 alloy. 2) Qualitative understanding of microstructural features generating local strain variations. 3) A continuum damage mechanics model (CDM) for Haynes ® 282 alloy at 1100°F to 1400°F capturing cyclic behavior with and without hold time. 4) Structural analysis for creep and LCF life predictions of an USC thick-wall Grade 91 superheater steel header and understanding life sensitivity to wall thickness of an AUSC Haynes ® 282 header.

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BibTeXRIS

Soare, Monica, Gupta, Vipul, Ganta, Reddy, Karadge, Mallikarjun, Shen, Chen. 2022-12-31. Damage Accumulations Predictions for Boiler Components Via Microstructurally Informed Material Models. https://doi.org/10.2172/1907740

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