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A correlative approach to evaluating the links between local microstructural parameters and creep initiated cavities

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posted on 2024-04-26, 14:36 authored by S He, E Horton, S Moore, E Galliopoulou, PJ Thomas, A Fernandez-Caballero, E Elmukashfi, M Salvini, M Mostafavi, DM Knowles, PEJ Flewitt, TL Martin

The study and modelling of material degradation processes, such as the initiation and growth of creep cavities in high-temperature applications, require a correlative and comprehensive knowledge of the microstructure. However, individual microscopy is limited to a small region and specific microstructural information of the specimen. This work demonstrates a novel correlative microscopy approach for characterising creep cavitation and establishing correlations with local microstructural parameters in a statistical manner. This approach combines datasets from stitched higher-resolution backscattered electron (BSE) images, XeF2 Focused Ion Beam (FIB) images, and backscattered electron diffraction (EBSD) maps with advanced image correlation techniques. Deep-learning image segmentation techniques and statistical analysis are applied to find relations between creep cavitation and local microstructural environment. This approach is demonstrated in a cyclic creep-tested 316H stainless steel specimen with extensive creep cavities. The results show that in this material, strain localization, grain boundary misorientation, and substantial precipitation dominate the nucleation of cavities, whereas other microstructural properties such as grain size and Schmid factor play smaller roles. This study presents the use of the correlative microscopy approach to provide new insights into creep cavitation behaviour and its implications for establishing creep cavitation damage models.

Funding

The Physics and Mechanics of Creep Cavity Nucleation and Sintering in Energy Materials

Engineering and Physical Sciences Research Council

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Cutting the Edge - a Plasma Focused Ion Beam (PFIB) facility for supporting UK research in novel 3D materials research and device fabrication

Engineering and Physical Sciences Research Council

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A National Focused Ion Beam Facility for Active Materials

Engineering and Physical Sciences Research Council

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Active Nano Mapping Facility - ANM NNUF2

Engineering and Physical Sciences Research Council

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History

Author affiliation

College of Science & Engineering/Engineering

Version

  • VoR (Version of Record)

Published in

Materials & Design

Volume

241

Pagination

112905 - 112905

Publisher

Elsevier BV

issn

0264-1275

Copyright date

2024

Available date

2024-04-26

Language

en

Deposited by

Dr Elsiddig Elmukashfi

Deposit date

2024-04-23

Data Access Statement

Data will be made available on request.

Rights Retention Statement

  • No

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