Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/16868
Title: 3-D finite element simulations of indentation on BaTiO3 single crystal using phase-field based constitutive theory
Authors: Chorma, Sumit
Dadhich, Ramanand
Singh, I.
Keywords: Batio3 Single Crystals;Finite Element Simulations;Indentation;Phase Transformation;Piezoceramics;Chromium Compounds;Elasticity;Indentation;Single Crystals;Strain;3-d Finite Elements;Batio 3;Batio3 Single Crystal;Finite Elements Simulation;Indentation-induced Phase Transformation;Normal Strain;Phase Fields;Phases Transformation;Piezo-ceramics;T-phase;Barium Titanate;Phase Transitions
Issue Date: 2026
Publisher: Elsevier Ltd
Citation: Chorma, S., Dadhich, R., & Singh, I. (2026). 3-D finite element simulations of indentation on BaTiO3 single crystal using phase-field based constitutive theory. European Journal of Mechanics, A/Solids, 116. https://doi.org/10.1016/j.euromechsol.2025.105865
Abstract: Indentation experiments on BaTiO<inf>3</inf> single crystals have shown domain switching and phase transformation on the indented surface, which have been attributed to normal or circumferential normal stresses. However, the underlying mechanics of indentation-induced phase transformation is not well understood. Though experiments have provided some insights on the phase transformation over the indented surface, but it is very difficult to understand the nature of phase transformation beneath the indenter from these experiments. Thus, the mechanics of indentation-induced phase transformation in BaTiO<inf>3</inf> is still not well understood. Therefore, 3-D finite element (FE) simulations of indentation are performed on [001] poled BaTiO<inf>3</inf> single crystals by employing a phase-field based constitutive model. Results show that compressive normal strain along the indentation direction (ϵ<inf>33</inf>) must increase beyond a threshold level for tetragonal (T) to orthorhombic (O) or T-to-T phase transformation. Further, if in-plane shear strain (γ<inf>12</inf>) is significant, and in-plane normal strains are identical (ϵ<inf>11</inf> = ϵ<inf>22</inf>), then T-to-O transformation would occur, otherwise, T-to-T phase transformation takes place. By contrast, T phase transitions to monoclinic (M) phase if ϵ<inf>33</inf> is not compressive enough. It has also been shown that spontaneous strains at a point in the indentation-affected region must reach beyond a threshold level associated with a particular phase for that phase to develop. However, if this condition is unsatisfied, the M phase will develop in the indentation affected zone. © 2025 Elsevier B.V., All rights reserved.
URI: https://dx.doi.org/10.1016/j.euromechsol.2025.105865
https://dspace.iiti.ac.in:8080/jspui/handle/123456789/16868
ISSN: 0997-7538
Type of Material: Journal Article
Appears in Collections:Department of Mechanical Engineering

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