Santare, Michael H.Karlsson, Anette M.Engineering structures are often subjected to repeated, cyclic loading rather than a simple static load. It is well established that cyclic loading results in progressive degradation and can lead to catastrophic failures of structures. In this case, the structure fails at load levels that are well below the load levels required to fail the structure under static loading, and is commonly referred to as fatigue failures. ☐ Predicting fatigue crack growth and fatigue life is an important part of preventing fatigue failure. Up to now, experimental characterization has been the only realistic method to predict fatigue life, but is usually expensive, time-consuming and not always reliable. This dissertation...
Polymer electrolyte membrane (PEM) fuel cells are generally exposed to high magnitude road-induced v...
Fatigue failures are a major concern in aeronautics. The growth of fatigue cracks in metallic struct...
Fatigue crack growth is one of the main causes for failure in structures under predominantly cyclic...
The initiation and propagation of cracks in polymer electrolyte membranes is not well understood but...
Understanding the mechanisms of growth of defects in polymer electrolyte membrane (PEM) fuel cells i...
Paris-regime fatigue crack growth in polymers is simulated via a numerical procedure. The crack grow...
The suitability of using a proposed condition for simulating cyclic crack propagation in a numerical...
Fatigue crack growth is simulated using three dimensional elastic-plastic finite element analysis. T...
The swelling-driven fatigue behavior of polymer fuel cell membranes during relative humidity (RH) cy...
The crack growth rate during cyclic loading is investigated via numerical simulations. The crack adv...
In this paper, we present a theoretical modeling framework for pinhole growth in a polymer-electroly...
The life of proton exchange membrane fuel cells (PEMFC) is currently limited by the mechanical endur...
Santare, Michael H.The durability of Proton Exchange Membrane Fuel Cells (PEMFCs) has been a critica...
\u3cp\u3eCreep rupture (plasticity controlled failure) and slow crack growth are two important failu...
Polymer electrolyte membrane (PEM) fuel cells are generally exposed to high magnitude road-induced v...
Fatigue failures are a major concern in aeronautics. The growth of fatigue cracks in metallic struct...
Fatigue crack growth is one of the main causes for failure in structures under predominantly cyclic...
The initiation and propagation of cracks in polymer electrolyte membranes is not well understood but...
Understanding the mechanisms of growth of defects in polymer electrolyte membrane (PEM) fuel cells i...
Paris-regime fatigue crack growth in polymers is simulated via a numerical procedure. The crack grow...
The suitability of using a proposed condition for simulating cyclic crack propagation in a numerical...
Fatigue crack growth is simulated using three dimensional elastic-plastic finite element analysis. T...
The swelling-driven fatigue behavior of polymer fuel cell membranes during relative humidity (RH) cy...
The crack growth rate during cyclic loading is investigated via numerical simulations. The crack adv...
In this paper, we present a theoretical modeling framework for pinhole growth in a polymer-electroly...
The life of proton exchange membrane fuel cells (PEMFC) is currently limited by the mechanical endur...
Santare, Michael H.The durability of Proton Exchange Membrane Fuel Cells (PEMFCs) has been a critica...
\u3cp\u3eCreep rupture (plasticity controlled failure) and slow crack growth are two important failu...
Polymer electrolyte membrane (PEM) fuel cells are generally exposed to high magnitude road-induced v...
Fatigue failures are a major concern in aeronautics. The growth of fatigue cracks in metallic struct...
Fatigue crack growth is one of the main causes for failure in structures under predominantly cyclic...