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The typical structure is designed: Top ordered hexagonal nanohole arrays can trap above-bandgap photons to enhance the absorption in the silicon wafer, and TiO2/SiO2 bilayer films are deposited on the bottom side of the wafer to improve the transmission of the below-bandgap photons.
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For this purpose, 2.5 g of model fuel containing DBT 500 ppmw, as a representative sulfur compound because of having a typical structure, was added to 5 g of CNPs solution.
When both methods didn't get the same result, subjective criteria of similarity with the typical structure were used.
Occasional deviations from the typical structure are mostly supported by their occurrence in more than one jakobid.
Several typical structures were detected.
The typical structures are PUS and UPS branches (P represents the prismatic joint).
The typical structures are chosen as having asymmetric walls in a rectangular plan.
As can be seen in the figure, all the typical structures are symmetrical about axis X.
Story heights for all the typical structures are 4.00 m for lowermost story and 3.00 m for upper stories.
The method is implemented in a finite element setting and numerical simulations of typical structures are considered.
All of them are composed of 3.50 × 5.00 modulesles and have six axes in the direction Y. Schematic floor plans of typical structures are shown in Fig. 2.
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