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The rolling process was analysed using a unique method of deformation zone layer modelling.
Finally, a parametric study is conducted to investigate the effect of key operating and design conditions on the thickness of the reaction zone layer in an SOFC anode.
An electrode in the present model is composed of two distinct layers referred to as the backing layer and the reaction zone layer.
In other words, an electrode is treated as a reaction zone layer having triple phase boundaries (TPBs) scattered throughout the electrode, consistent with the micro modeling approach of treating electrodes.
The visualized zone (layer 71) in the figure is the youngest (37 Mya) facies within the Mangahewa reservoir.
Histologic analysis of P21 mice revealed a thicker cerebral cortex from rostral to caudal telencephalon, a blurring of the gray white junction, a smaller marginal zone (Layer I) and apparent lamination defects (Fig. 2A and B) in the mutant.
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The important characteristic of this model is the consideration of reaction zone layers as finite volumes.
In addition, the effect of Knudsen diffusion is accounted in the porous electrode (backing) and reaction zone layers.
However, the transferability of observation operators across the whole root zone layers was not successful.
Reaction zone layers are thin layers in the vicinity of the electrolyte where electrochemical reactions takes place to produce electrons, oxide ions and water vapor (and/or carbon dioxide).
Thickness of pay zone layers (m).
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