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The enhancement of the modified thermosets' mechanical properties depends on the morphology adopted by the polymers.
The effect of hydrogenation on the morphology and mechanical properties depends on the outer block.
Thus, the ability of a FEM model to predict mechanical properties depends upon the accuracy of modeling the fiber geometry in a unit cell.
The change in the mechanical properties depends upon the nanostructure, particularly the concentration and size of the TiB2 nanocrystallites in the amorphous boron carbide matrix.
Although, the thermal stability and hence the start of sintering dependents on the Ca/P ratio, the final sintering density and hence the mechanical properties depends on the agglomeration characteristics and the particle size distribution.
The results show that the effect of the FRP-RA on the mentioned mechanical properties depends on the concrete strength, replacement ratio and the gradation-size of the NAs replaced.
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This quality provides heart tissue with different mechanical properties depending on the direction in which it is stretched.
The mechanical properties depend on the sintering of the HA bioceramic and the amount of pores.
The results show that the mechanical properties depend on the foam density and are strain rate sensitive.
Nevertheless, these mechanical properties depend strongly on the ratio of the specimen size to the cell size.
The sintered density depends primarily on the titanium powder size while the sintered microstructure and mechanical properties depend mainly on the master alloy type or diffusion of vanadium.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com