Microstructure and cleavage in lath martensitic steels

In this paper we discuss the microstructure of lath martensitic steels and the mechanisms by which it controls cleavage fracture. The specific experimental example is a 9Ni (9 wt% Ni) steel annealed to have a large prior austenite grain size, then examined and tested in the as-quenched condition to...

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Main Author: John W Morris Jr, Chris Kinney, Ken Pytlewski and Y Adachi
Format: Article
Language:English
Published: Taylor & Francis Group 2013-01-01
Series:Science and Technology of Advanced Materials
Online Access:http://dx.doi.org/10.1088/1468-6996/14/1/014208
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spelling doaj-8c3ddd0064d44bc5955cb48b5396450d2020-11-24T22:35:12ZengTaylor & Francis GroupScience and Technology of Advanced Materials1468-69961878-55142013-01-01141014208Microstructure and cleavage in lath martensitic steelsJohn W Morris Jr, Chris Kinney, Ken Pytlewski and Y AdachiIn this paper we discuss the microstructure of lath martensitic steels and the mechanisms by which it controls cleavage fracture. The specific experimental example is a 9Ni (9 wt% Ni) steel annealed to have a large prior austenite grain size, then examined and tested in the as-quenched condition to produce a relatively coarse lath martensite. The microstructure is shown to approximate the recently identified 'classic' lath martensite structure: prior austenite grains are divided into packets, packets are subdivided into blocks, and blocks contain interleaved laths whose variants are the two Kurjumov–Sachs relations that share the same Bain axis of the transformation. When the steel is fractured in brittle cleavage, the laths in the block share {100} cleavage planes and cleave as a unit. However, cleavage cracks deflect or blunt at the boundaries between blocks with different Bain axes. It follows that, as predicted, the block size governs the effective grain size for cleavage.http://dx.doi.org/10.1088/1468-6996/14/1/014208
collection DOAJ
language English
format Article
sources DOAJ
author John W Morris Jr, Chris Kinney, Ken Pytlewski and Y Adachi
spellingShingle John W Morris Jr, Chris Kinney, Ken Pytlewski and Y Adachi
Microstructure and cleavage in lath martensitic steels
Science and Technology of Advanced Materials
author_facet John W Morris Jr, Chris Kinney, Ken Pytlewski and Y Adachi
author_sort John W Morris Jr, Chris Kinney, Ken Pytlewski and Y Adachi
title Microstructure and cleavage in lath martensitic steels
title_short Microstructure and cleavage in lath martensitic steels
title_full Microstructure and cleavage in lath martensitic steels
title_fullStr Microstructure and cleavage in lath martensitic steels
title_full_unstemmed Microstructure and cleavage in lath martensitic steels
title_sort microstructure and cleavage in lath martensitic steels
publisher Taylor & Francis Group
series Science and Technology of Advanced Materials
issn 1468-6996
1878-5514
publishDate 2013-01-01
description In this paper we discuss the microstructure of lath martensitic steels and the mechanisms by which it controls cleavage fracture. The specific experimental example is a 9Ni (9 wt% Ni) steel annealed to have a large prior austenite grain size, then examined and tested in the as-quenched condition to produce a relatively coarse lath martensite. The microstructure is shown to approximate the recently identified 'classic' lath martensite structure: prior austenite grains are divided into packets, packets are subdivided into blocks, and blocks contain interleaved laths whose variants are the two Kurjumov–Sachs relations that share the same Bain axis of the transformation. When the steel is fractured in brittle cleavage, the laths in the block share {100} cleavage planes and cleave as a unit. However, cleavage cracks deflect or blunt at the boundaries between blocks with different Bain axes. It follows that, as predicted, the block size governs the effective grain size for cleavage.
url http://dx.doi.org/10.1088/1468-6996/14/1/014208
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