Revealing relationships between porosity, microstructure and mechanical properties of laser powder bed fusion 316L stainless steel through heat treatment

Выявление взаимосвязей между пористостью, микроструктурой и механическими свойствами нержавеющей стали 316L, изготовленной методом лазерного плавления порошкового полотна, с помощью термообработки
Paul A. Hooper, Tobias Rønneberg, Catrin M. Davies
2020-01-18

316L stainless steelanisotropic yield behaviorisothermal heat treatmentlack of fusion porositylaser powder bed fusion
The understanding of relationships between processing, microstructure and mechanical properties in laser powder bed fusion is currently incomplete. Microstructure-property relations in 316L stainless steel are revealed in this study using isothermal heat treatments as an investigative tool. As-built material was heat treated to selectively remove microstructural features such as melt pool boundaries, microsegregations and the as-built grain structure to evaluate their influence on yield and failure behaviour. Anisotropic yield behaviour was found to be caused by microstructural features alone and not influenced by porosity. However, ductility and failure were dominated by lack of fusion porosity. The alignment of pores between tracks along layer boundaries was found to cause anisotropic ductility. Three strengthening mechanisms in as-built material were identified as grain boundaries, chemical segregation and dislocation density. Heat treatments were categorised into three regimes: recovery, homogenisation and annealing. The findings of this study show that the shape, size, orientation and distribution of pores are crucial parameters for evaluating the structural integrity of parts produced by laser powder bed fusion.
1
Anisotropic yield behaviour in L-PBF 316L is caused by microstructural features alone and is not influenced by porosity.
2
Ductility and failure are dominated by lack-of-fusion porosity; pore alignment between tracks along layer boundaries causes anisotropic ductility.
3
Heat treatments fall into three regimes—recovery, homogenisation and annealing—each affecting microstructure and mechanical response differently.
4
Isothermal heat treatments selectively removed melt pool boundaries, microsegregations and as-built grain structure to evaluate their influence on yield and failure behaviour.
5
Shape, size, orientation and distribution of pores are crucial parameters for evaluating structural integrity of L-PBF parts.
6
Three strengthening mechanisms in as-built 316L were identified: grain boundaries, chemical segregation, and high dislocation density.

Laser powder bed fusion 316L stainless steel parts (porosity and microstructure features in as-built and heat-treated material)

Relationships between porosity, specific microstructural features (melt pool boundaries, microsegregation, grain structure, dislocation density), heat-treatment regimes (recovery, homogenisation, annealing), and mechanical properties (anisotropic yield behavior, ductility, failure mechanisms, strengthening contributions)

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2020-01-18
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Paul A. Hooper
Tobias Rønneberg
Catrin M. Davies
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