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Understanding the Mechanistic Role of Lithium in Accelerated Corrosion of Zirconium Alloys Using Advanced Characterization and Atomistic Simulation. / Garner, Alistair; Gillen, Conor; Stephens, Gareth Frank et al.
2023. 356-386.

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Garner, A, Gillen, C, Stephens, GF, Styman, P, Armson, S, Jacqueline, R, Liu, J, Carruthers, A, Pickering, F, Sherry, S, ChoenMay, C, Fenwick, M, Hulme, H, Ortner, S, Riley, C, Grovenor, C, Frankel, P, Middleburgh, S & Cole-Baker, A 2023, 'Understanding the Mechanistic Role of Lithium in Accelerated Corrosion of Zirconium Alloys Using Advanced Characterization and Atomistic Simulation', tt. 356-386. https://doi.org/10.1520/STP164520220054

APA

Garner, A., Gillen, C., Stephens, G. F., Styman, P., Armson, S., Jacqueline, R., Liu, J., Carruthers, A., Pickering, F., Sherry, S., ChoenMay, C., Fenwick, M., Hulme, H., Ortner, S., Riley, C., Grovenor, C., Frankel, P., Middleburgh, S., & Cole-Baker, A. (2023). Understanding the Mechanistic Role of Lithium in Accelerated Corrosion of Zirconium Alloys Using Advanced Characterization and Atomistic Simulation. 356-386. https://doi.org/10.1520/STP164520220054

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TY - CONF

T1 - Understanding the Mechanistic Role of Lithium in Accelerated Corrosion of Zirconium Alloys Using Advanced Characterization and Atomistic Simulation

AU - Garner, Alistair

AU - Gillen, Conor

AU - Stephens, Gareth Frank

AU - Styman, Paul

AU - Armson, Sam

AU - Jacqueline, Robinson

AU - Liu, Junliang

AU - Carruthers, Alexander

AU - Pickering, Felicity

AU - Sherry, Sarah

AU - ChoenMay, Chan

AU - Fenwick, Mark

AU - Hulme, Helen

AU - Ortner, Susan

AU - Riley, Chris

AU - Grovenor, Chris

AU - Frankel, Philipp

AU - Middleburgh, Simon

AU - Cole-Baker, Aidan

PY - 2023/11/1

Y1 - 2023/11/1

N2 - Significant cost benefits through plant simplification can be achieved if a soluble boron-free lithiated primary water chemistry can be demonstrated to be viable for small modular reactor operation. However, the mechanisms of accelerated corrosion behavior of the zirconium alloy clad material under lithiated and boron-free autoclave conditions have yet to be fully identified. Advanced microstructural characterization of selected samples from the testing program, combined with atomistic simulation, have allowed for a significant development in the understanding of the mechanism of lithium-enhanced acceleration under boron-free conditions. Density functional theory has been used to identify the most stable accommodation mechanisms for lithium in tetragonal, monoclinic, and amorphous ZrO2 and its impact upon the defect population at an atomic scale. Atom probe tomography has confirmed that lithium predominantly segregates to oxide grain boundaries under elevated lithium conditions. The combination of modeling and advanced characterization has suggested that lithium-enhanced acceleration is linked to a local grain boundary effect caused by the segregation of lithium that increases the oxygen vacancy concentration within the usually protective barrier layer and leads to accelerated corrosion rates.

AB - Significant cost benefits through plant simplification can be achieved if a soluble boron-free lithiated primary water chemistry can be demonstrated to be viable for small modular reactor operation. However, the mechanisms of accelerated corrosion behavior of the zirconium alloy clad material under lithiated and boron-free autoclave conditions have yet to be fully identified. Advanced microstructural characterization of selected samples from the testing program, combined with atomistic simulation, have allowed for a significant development in the understanding of the mechanism of lithium-enhanced acceleration under boron-free conditions. Density functional theory has been used to identify the most stable accommodation mechanisms for lithium in tetragonal, monoclinic, and amorphous ZrO2 and its impact upon the defect population at an atomic scale. Atom probe tomography has confirmed that lithium predominantly segregates to oxide grain boundaries under elevated lithium conditions. The combination of modeling and advanced characterization has suggested that lithium-enhanced acceleration is linked to a local grain boundary effect caused by the segregation of lithium that increases the oxygen vacancy concentration within the usually protective barrier layer and leads to accelerated corrosion rates.

KW - Zirconium

KW - Corrosion

KW - Transmission Kikuchi Diffraction (TKD)

KW - Density Functional Theory (DFT)

KW - Transmission Electron Microscopy (TEM)

KW - Nanoporosity

U2 - 10.1520/STP164520220054

DO - 10.1520/STP164520220054

M3 - Paper

SP - 356

EP - 386

ER -