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It is demonstrated that although an applied stress affects the microstructural development of a two-phase alloy during both the nucleation and growth stages, it is most effective to apply stresses during the initial nucleation stage for producing anisotropic precipitate alignment.
The most efficient way to change in situ the magnetoelastic energy is to apply stresses during measurements.
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Creep testing of the alloy was conducted at 650 750 °C under applied stresses between 85 380 MPa.
Measurements were performed on magnesia chromite material at different temperatures and applied stresses.
Most models of internal stress superplasticity predict a linear relationship between the applied stress and the plastic strain per cycle, and are only valid at low applied stresses.
At small applied stresses, this deformation mechanism is characterized by a deformation rate which is proportional to the applied stress and is higher than for conventional creep mechanisms.
Contribution of thermal stresses and applied stresses is included in the computations.
These dependences are measured under applied stresses, σa.
The failure of underground pipelines occurs when the applied stresses exceed its structural resiliency.
The four applied stresses exerting on the element edges are assumed to be uniformly distributed.
The I-V characterizations with different applied stresses are shown in Figure 3.
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