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Due to destruction of the electrode material degradation is also observed with increasing current density.
A sub-model for material degradation is implemented to account for the loss of mechanical properties.
The kinetics of braided material degradation is thus an important factor in determining the success of the product.
In particular, sintered silver reliability due to thermal fatigue material degradation is one of the main concerns.
Therefore, understanding the physics and extent of material degradation is crucial for designing a product that does not fail prematurely.
Such a change of material degradation is influenced by the severity of the material damage in the PZT ceramic.
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No material degradation was observed after the experiments.
Problems on the identification of two-dimensional spatial domains arising in the detection and characterization of material degradation are considered.
Overall material degradation was determined by measuring the strength degradation of samples using the standard laboratory procedure.
Material degradation was monitored by oscillatory shear rheology over the course of 14 days, where overall degradation of the gels vary from 5%to70%0%.
The causes of the material degradation were studied by non-destructive testing using ultrasound thickness meter, microstructure observing, hydrostatic pressure testing, and mechanical properties characterization.
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