Modeling and simulation of strain-induced phase transformations under compression and torsion in a rotational diamond anvil cell

dc.contributor.author Levitas, Valery
dc.contributor.author Zarechnyy, Oleg
dc.contributor.author Levitas, Valery
dc.contributor.department Aerospace Engineering
dc.date 2018-02-13T18:12:48.000
dc.date.accessioned 2020-06-29T22:45:48Z
dc.date.available 2020-06-29T22:45:48Z
dc.date.copyright Fri Jan 01 00:00:00 UTC 2010
dc.date.embargo 2013-11-25
dc.date.issued 2010-11-23
dc.description.abstract <p>Strain-induced phase transformations (PTs) under compression and torsion in rotational diamond anvils are simulated using a finite-element approach. Results are obtained for three ratios of yield strengths of low-pressure and high-pressure phases and are compared with those for the compression without torsion from Levitas and Zarechnyy <a href="http://dx.doi.org/10.1103/PhysRevB.82.174123">Phys. Rev. B <strong>82</strong> 174123 (2010)</a>. Various experimental effects are reproduced, including a pressure self-multiplication effect, plateau at pressure distribution at the diffuse interface, simultaneous occurrence of direct and reverse PTs, and irregular stress distribution for PT to a weaker phase. The obtained results change the fundamental understanding of strain-induced PT in terms of interpretation of experimental measurements and the extracting of information on material processes from sample behavior. Intense radial plastic flow moves the high-pressure phase to the low-pressure region, which may lead to misinterpretation of measurements. Various interpretations based on a simplified equilibrium equation (for example, about zero yield strength of phase mixture and hydrostatic conditions during PT) appears to be wrong because of inapplicability of this equation for cases with large gradients of phase concentration and yield strength. The approach developed represents a tool for designing experiments for different purposes and for controlling PTs, and it opens unexpected ways to extract material information by combining simulation and experiment.</p>
dc.description.comments <p>This article is from <em>Physical Review B</em> 82 (2010): 174124, doi:<a href="http://dx.doi.org/10.1103/PhysRevB.82.174124" target="_blank">10.1103/PhysRevB.82.174124</a>. Posted with permission.</p>
dc.format.mimetype application/pdf
dc.identifier archive/lib.dr.iastate.edu/aere_pubs/23/
dc.identifier.articleid 1023
dc.identifier.contextkey 4854616
dc.identifier.s3bucket isulib-bepress-aws-west
dc.identifier.submissionpath aere_pubs/23
dc.identifier.uri https://dr.lib.iastate.edu/handle/20.500.12876/2021
dc.language.iso en
dc.source.bitstream archive/lib.dr.iastate.edu/aere_pubs/23/0-2010_LevitasVI_ModelingSimulationStrainInduced_SupplementaryMa.pdf|||Fri Jan 14 22:45:23 UTC 2022
dc.source.bitstream archive/lib.dr.iastate.edu/aere_pubs/23/2010_LevitasVI_ModelingSimulationStrainInduced.pdf|||Fri Jan 14 22:45:24 UTC 2022
dc.source.uri 10.1103/PhysRevB.82.174124
dc.subject.disciplines Aerospace Engineering
dc.subject.disciplines Materials Science and Engineering
dc.subject.disciplines Mechanical Engineering
dc.subject.keywords Mechanical Engineering
dc.subject.keywords Materials Science and Engineering
dc.supplemental.bitstream 2010_LevitasVI_ModelingSimulationStrainInduced_SupplementaryMaterial.pdf
dc.title Modeling and simulation of strain-induced phase transformations under compression and torsion in a rotational diamond anvil cell
dc.type article
dc.type.genre article
dspace.entity.type Publication
relation.isAuthorOfPublication 850871e3-115a-428e-82cc-cbfafef5cf66
relation.isOrgUnitOfPublication 047b23ca-7bd7-4194-b084-c4181d33d95d
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