This paper presents a fatigue damage model to estimate fatigue lives of microelectromechanical systems (MEMS) devices and account for the effects of topological randomness of material microstructure. For this purpose, the damage mechanics modeling approach is incorporated into a new Voronoi finite-element model (VFEM). The VFEM developed for this investigation is able to consider both intergranular crack initiation (debonding) and propagation stages. The model relates the fatigue life to a damage parameter D which is a measure of the gradual material degradation under cyclic loading. The fatigue damage model is then used to ...
International audienceThis paper presents a continuum damage model based on two mechanisms: decohesi...
AbstractFatigue life formulas are still based on phenomenological models which adopt simple relation...
This paper presents the results of an experimental stydy of the micromechanisms of fatigue crack nuc...
This paper presents a fatigue damage model to estimate fatigue lives of microelectromechanical syste...
Fatigue initiation and failure of various microelectromechanical systems (MEMS) is of ...
One of the most unavoidable modes of failure for mechanical components is fatigue. Fatigue mechanism...
Mechanical components subjected to cyclic loadings below the ultimate strength of the material often...
The utilization of piezoelectric materials in MEMS devices under harsh environments has gained affor...
The mechanical design of microelectromechanical systems-particularly for micropower generation appli...
A comparatively large scatter of both local material properties and random geometrical imperfections...
Micro electromechanical systems (MEMS) are nowadays used in many applications, such as airbag accele...
A model to calculate fatigue life is developed based on the assumption that fatigue life is entirely...
AbstractIn fatigue life, crack initiation and crack propagation is considered separately. Behavior o...
This study aims at investigating the effect of defect on the high cycle fatigue behavior of polycrys...
This dissertation provides methodologies for the quantification of different forms of fatigue damage...
International audienceThis paper presents a continuum damage model based on two mechanisms: decohesi...
AbstractFatigue life formulas are still based on phenomenological models which adopt simple relation...
This paper presents the results of an experimental stydy of the micromechanisms of fatigue crack nuc...
This paper presents a fatigue damage model to estimate fatigue lives of microelectromechanical syste...
Fatigue initiation and failure of various microelectromechanical systems (MEMS) is of ...
One of the most unavoidable modes of failure for mechanical components is fatigue. Fatigue mechanism...
Mechanical components subjected to cyclic loadings below the ultimate strength of the material often...
The utilization of piezoelectric materials in MEMS devices under harsh environments has gained affor...
The mechanical design of microelectromechanical systems-particularly for micropower generation appli...
A comparatively large scatter of both local material properties and random geometrical imperfections...
Micro electromechanical systems (MEMS) are nowadays used in many applications, such as airbag accele...
A model to calculate fatigue life is developed based on the assumption that fatigue life is entirely...
AbstractIn fatigue life, crack initiation and crack propagation is considered separately. Behavior o...
This study aims at investigating the effect of defect on the high cycle fatigue behavior of polycrys...
This dissertation provides methodologies for the quantification of different forms of fatigue damage...
International audienceThis paper presents a continuum damage model based on two mechanisms: decohesi...
AbstractFatigue life formulas are still based on phenomenological models which adopt simple relation...
This paper presents the results of an experimental stydy of the micromechanisms of fatigue crack nuc...