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Thus, under a tensile loaded condition, all glass experiences static fatigue and eventually fails.
Therefore the static fatigue for Si3N4 ceramics may be ignored.
Fatigue can be divided into several categories; these include cyclic fatigue and static fatigue.
One serious consequence, as a result of static fatigue (creep failure), is a premature failure which is usually catastrophic.
Such a microstructure is capable of inhibiting static fatigue and slow crack growth while the ceramic is under load.
Additional tests performed at different load rates have allowed an evaluation of the effects of static fatigue.
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In this work, three dimensional quasi-static fatigue crack growth has been studied in FGMs.
Subsequently, the damage mechanisms that occur under quasi-static, fatigue and impact loading are discussed.
The healing efficacy is discussed within broad categories of mechanical loading and damage conditions, and includes quasi-static, fatigue, impact, and macroscale material loss.
For instance, Stolarska et al. (Stolarska et al. 2001) used the extended finite element method, in conjunction with the level set method, to solve the elastic-static fatigue crack problem.
Quasi-static fatigue cycles were applied in a diffractometer at the same stress amplitudes and temperatures (120 and 300 °C) as those used in prior off-line fatigue testing.
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