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Mechanical cycling experiments reveal that the cyclic degradation resistance of NiTi is strongly dependent on crystallographic orientation.
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The mechanical cycling was performed in a mechanical stress simulator (Model ER-11000, ERIOS, São Paulo, Brazil).
The fatigue life under thermomechanical cycling was significantly inferior to that obtained in isothermal mechanical cycling.
Thermal cycling established that the transition was irreversible in the time frame of the cycling experiments.
To simulate the harsh conditions of the oral environment, several studies have used combinations of thermal and mechanical cycling [13 17].
Cycling experiments revealed a good photochemical stability of the Bi Bi2O2CO3 heterojunction under repeated irradiation.
Mechanical cycling at room temperature did not lead to structural evolution, but elevated temperature cycling did alter the grain boundary network.
Thermal cycling experiments with proteins show, in addition to random features, also discrete features.
They also demonstrate reversible martensitic transformation in constant-stress thermal cycling experiments.
Cycling experiments in full cells show improved cycling performance and rate capability, which can be attributed to cathode passivation during the first cycle.
Whatever the length, SiNWs are stable after these cycling experiments, as observed on post-experimental SEM images (Figure 4).
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