AbstractFatigue crack growth of austenitic and martensitic NiTi shape memory alloys was analyzed, with the purpose of capturing the effects of distinct stress-induced transformation mechanics in the two crystal structures. Mode I crack growth experiments were carried out, and near-crack-tip displacements were captured by in-situ digital image correlation (DIC). A special fitting procedure, based on the William's solution, was used to estimate the effective stress intensity factor (SIF). The SIF was also computed by linear elastic fracture mechanics (LEFM) as well as by a special analytical model that takes into account the unique thermomechanical response of SMAs. A significant difference in the crack growth rate for the two alloys was obse...
Nickel titanium (NiTi) alloys possess unique characteristics that provide them the ability to recove...
We present a new phase field framework for modelling fracture and fatigue in Shape Memory Alloys (SM...
Superelastic NiTi self-expanding stents push the boundaries of our current understanding of material...
Crack tip stress-induced phase transformation mechanisms in nickel-titanium alloys (NiTi) were analy...
Understanding of fatigue crack growth phenomena in shape memory alloys under superelastic conditions...
Shape-memory alloys (SMAs) have been the materials of choice for decades in applications that includ...
Shape-memory alloys (SMAs) have been the materials of choice for decades in applications that includ...
Shape-memory alloys (SMAs) have been the materials of choice for decades in applications that includ...
Abstract. A new analytical prediction of the phase transformation zone around the crack tip is propo...
The aim of the present paper is to examine both the fatigue behaviour and the phase transition mecha...
AbstractIn this paper new fracture control parameters for Nickel–Titanium (NiTi) based shape memory ...
Crack tip stress-induced phase transformation mechanisms in nickel-titanium alloys (NiTi) were anal...
Shape memory alloys (SMAs) can handle large deformations through martensitic phase transformation an...
Nickel titanium (NiTi) alloys possess unique characteristics that provide them the ability to recove...
We present a new phase field framework for modelling fracture and fatigue in Shape Memory Alloys (SM...
Nickel titanium (NiTi) alloys possess unique characteristics that provide them the ability to recove...
We present a new phase field framework for modelling fracture and fatigue in Shape Memory Alloys (SM...
Superelastic NiTi self-expanding stents push the boundaries of our current understanding of material...
Crack tip stress-induced phase transformation mechanisms in nickel-titanium alloys (NiTi) were analy...
Understanding of fatigue crack growth phenomena in shape memory alloys under superelastic conditions...
Shape-memory alloys (SMAs) have been the materials of choice for decades in applications that includ...
Shape-memory alloys (SMAs) have been the materials of choice for decades in applications that includ...
Shape-memory alloys (SMAs) have been the materials of choice for decades in applications that includ...
Abstract. A new analytical prediction of the phase transformation zone around the crack tip is propo...
The aim of the present paper is to examine both the fatigue behaviour and the phase transition mecha...
AbstractIn this paper new fracture control parameters for Nickel–Titanium (NiTi) based shape memory ...
Crack tip stress-induced phase transformation mechanisms in nickel-titanium alloys (NiTi) were anal...
Shape memory alloys (SMAs) can handle large deformations through martensitic phase transformation an...
Nickel titanium (NiTi) alloys possess unique characteristics that provide them the ability to recove...
We present a new phase field framework for modelling fracture and fatigue in Shape Memory Alloys (SM...
Nickel titanium (NiTi) alloys possess unique characteristics that provide them the ability to recove...
We present a new phase field framework for modelling fracture and fatigue in Shape Memory Alloys (SM...
Superelastic NiTi self-expanding stents push the boundaries of our current understanding of material...