Shape memory ceramics (SMCs) are promising candidates for actuators in extreme environments such as high temperature and corrosive applications. Despite outstanding energy dissipation, compared to metallic shape memory materials, SMCs suffer from a sudden brittle fracture. While the interaction of crack propagation and phase transformation in SMCs have been subject of several experimental and theoretical studies, mainly at the macroscale, the fundamental understanding of the dynamic interaction of crack propagation and martensitic transformation is poorly understood. In this work, we use the phase field framework to fully couple the martensitic transformation to the variational formulation of brittle fracture. The model is parameterized for...
Bulk shape memory ceramics (SMCs) are attractive for their high transformation temperatures and tran...
Abstract Zirconia-based shape memory ceramics (SMCs) exhibit anisotropic mechanical r...
A phase-field model based on a modified form of the regularized formulation of Griffith\u27s fractur...
Shape memory ceramics (SMCs) are promising candidates for actuators in extreme environments such as ...
Shape memory ceramics (SMCs) are promising candidates for actuators in extreme environments such as ...
Mechanical degradation of shape memory materials (SMM) has been a long-lasting challenge that has pr...
Despite the vast applications of transformable ceramics, such as zirconia-based ceramics, in differe...
In this work, the influence of partial or full reversibility of a stress-induced phase transformatio...
Zirconia based ceramics are strong, hard, inert, and smooth, with low thermal conductivity and good ...
Finite element analysis is used to study the crack growth behaviour of ceramics containing tetragona...
Abstract-Finite element analysis is used to study the crack growth behaviour of ceramics containing ...
Shape memory alloys (SMAs) exhibit two very important properties: shape memory phenomenon and supere...
Martensitic tetragonal-to-monoclinic transformation in zirconia is a double-edged sword , enabling ...
This paper presents a family of phase-field models for the coupled simulation of the microstructure...
A new class of shape memory materials has been proposed based on zirconia-based ceramics, which offe...
Bulk shape memory ceramics (SMCs) are attractive for their high transformation temperatures and tran...
Abstract Zirconia-based shape memory ceramics (SMCs) exhibit anisotropic mechanical r...
A phase-field model based on a modified form of the regularized formulation of Griffith\u27s fractur...
Shape memory ceramics (SMCs) are promising candidates for actuators in extreme environments such as ...
Shape memory ceramics (SMCs) are promising candidates for actuators in extreme environments such as ...
Mechanical degradation of shape memory materials (SMM) has been a long-lasting challenge that has pr...
Despite the vast applications of transformable ceramics, such as zirconia-based ceramics, in differe...
In this work, the influence of partial or full reversibility of a stress-induced phase transformatio...
Zirconia based ceramics are strong, hard, inert, and smooth, with low thermal conductivity and good ...
Finite element analysis is used to study the crack growth behaviour of ceramics containing tetragona...
Abstract-Finite element analysis is used to study the crack growth behaviour of ceramics containing ...
Shape memory alloys (SMAs) exhibit two very important properties: shape memory phenomenon and supere...
Martensitic tetragonal-to-monoclinic transformation in zirconia is a double-edged sword , enabling ...
This paper presents a family of phase-field models for the coupled simulation of the microstructure...
A new class of shape memory materials has been proposed based on zirconia-based ceramics, which offe...
Bulk shape memory ceramics (SMCs) are attractive for their high transformation temperatures and tran...
Abstract Zirconia-based shape memory ceramics (SMCs) exhibit anisotropic mechanical r...
A phase-field model based on a modified form of the regularized formulation of Griffith\u27s fractur...