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Dive into the research topics where Elisabeth M. Francis is active.

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Featured researches published by Elisabeth M. Francis.


17th International Symposium on Zirconium in the Nuclear Industry | 2015

Effect of Sn on Corrosion Mechanisms in Advanced Zr-Cladding for Pressurised Water Reactors

Philipp Frankel; J. Wei; Elisabeth M. Francis; A.N. Forsey; Na Ni; Sergio Lozano-Perez; Antoine Ambard; M. Blat-Yrieix; Robert J. Comstock; Lars Hallstadius; Richard Moat; C.R.M. Grovenor; S.B. Lyon; R.A. Cottis; Michael Preuss

The desire to improve the corrosion resistance of Zr cladding material to allow high burnup has resulted in a general trend among fuel manufacturers to develop alloys with reduced levels of Sn. While the detrimental effect of Sn on high temperature aqueous corrosion performance is widely accepted, the reason for it remains unclear. High-Energy synchrotron X-ray diffraction was used to characterise the oxides formed by autoclave exposure on Zr-Sn-Nb alloys with tin concentrations ranging from 0.01 to 0.92 wt.%. The alloys studied included the commercial alloy ZIRLO® and two variants of ZIRLO with significantly lower tin levels, referred to here as A-0.6Sn and A-0.0Sn. The nature of the oxide grown on tube samples from each alloy during autoclave testing at 360°C was investigated by cross-sectional Scanning and Transmission Electron Microscopy (SEM & TEM). Non-destructive synchrotron X-ray diffraction analysis on the oxides revealed that the monoclinic and tetragonal oxide phases display highly compressive in-plane residual stresses with the magnitudes dependent on both phase and alloy. Additional in-situ Synchrotron X-ray diffraction experiments during oxidation at 550°C provided further confirmation of the trends seen for autoclave tested samples and demonstrated the presence of elevated levels of tetragonal phase in the initial stages of oxidation. In-situ and ex-situ measurements demonstrate unambiguously that the amount of tetragonal phase present and, more importantly, the degree of transformation from tetragonal to monoclinic oxide both decrease with decreasing tin levels, suggesting that tin stabilises the tetragonal phase. It is proposed that in Zr-Nb-Sn alloys with low Sn, the tetragonal phase is mainly stabilised by very small grain size and therefore remains stable throughout the corrosion process. By contrast, in alloys with higher tin levels larger, stress stabilised, tetragonal grains can form initially, but then become unstable as the corrosion front progresses inwards and stresses in the existing oxide relax.


Acta Materialia | 2014

High-temperature deformation mechanisms in a polycrystalline nickel-base superalloy studied by neutron diffraction and electron microscopy

Elisabeth M. Francis; B. Grant; J. Quinta da Fonseca; Patrick J. Phillips; M.J. Mills; M.R. Daymond; Michael Preuss


Acta Materialia | 2012

Deformation behaviour of an advanced nickel-based superalloy studied by neutron diffraction and electron microscopy

B. Grant; Elisabeth M. Francis; João Quinta da Fonseca; M.R. Daymond; Michael Preuss


Journal of Materials Research | 2015

Effects of alloying elements on the formation of -component loops in Zr alloy Excel under heavy ion irradiation.

Yasir Idrees; Elisabeth M. Francis; Zhongwen Yao; Andreas Korinek; M. A. Kirk; Mohammad Sattari; Michael Preuss; M.R. Daymond


Acta Materialia | 2015

Compositional variations for small-scale gamma prime (γ′) precipitates formed at different cooling rates in an advanced Ni-based superalloy

Ying Chen; Elisabeth M. Francis; J.D. Robson; Michael Preuss; Sarah J. Haigh


Journal of Nuclear Materials | 2014

Iron redistribution in a zirconium alloy after neutron and proton irradiation studied by energy-dispersive X-ray spectroscopy (EDX) using an aberration-corrected (scanning) transmission electron microscope

Elisabeth M. Francis; Allan Harte; Philipp Frankel; Sarah J. Haigh; D Jädernäs; Javier Romero; Lars Hallstadius; Michael Preuss


Ultramicroscopy | 2014

Measurement of size-dependent composition variations for gamma prime (γ′) precipitates in an advanced nickel-based superalloy

Ying Chen; Thomas J. A. Slater; Edward A. Lewis; Elisabeth M. Francis; M.G. Burke; Michael Preuss; Sarah J. Haigh


Journal of Materials Research | 2015

Advances in synchrotron x-ray diffraction and transmission electron microscopy techniques for the investigation of microstructure evolution in proton-and neutron-irradiated zirconium alloys

Allan Harte; Thomas Seymour; Elisabeth M. Francis; Philipp Frankel; Sp Thompson; D Jädernäs; Javier Romero; Lars Hallstadius; Michael Preuss


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2013

The effect of γ′ size and alloy chemistry on dynamic strain ageing in advanced polycrystalline nickel base superalloys

B. Grant; Elisabeth M. Francis; João Quinta da Fonseca; Michael Preuss; Mark R. Daymond


Journal of Nuclear Materials | 2015

Corrigendum to “Iron redistribution in a zirconium alloy after neutron and proton irradiation studied by energy-dispersive X-ray spectroscopy using an aberration-corrected (scanning) transmission electron microscope” [J. Nucl. Mater. 454 (1–3) (2014) 387–397]

Elisabeth M. Francis; Allan Harte; Philipp Frankel; Sarah J. Haigh; D Jädernäs; Javier Romero; Lars Hallstadius; Michael Preuss

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Michael Preuss

University of Manchester

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Sarah J. Haigh

University of Manchester

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Allan Harte

University of Manchester

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B. Grant

University of Manchester

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Ying Chen

University of Manchester

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