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Size of the spikelet plays a crucial role in determination of final grain weight (Wang et al. 2008; Song et al. 2015), mainly by modifying the grain filling rate, eventually affecting the grain weight (Wang et al. 2008).
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Grain boundary engineering (GBE) was applied to modify the grain boundary characteristics of this alloy to affect its oxidation resistance.
Aeration is a popular tool, used to modify the grain bulk microclimate and to control the product quality.
The addition of 1 and 5 at.% Cu into NbN coatings modified the grain size and morphology.
The cooperative introduction of Li, La and Zr elements into LLTO might modify the grain boundary region and thus change the electrical properties of the grain boundary, leading to the conductivity enhancement.
Besides their effect on recrystallization kinetics, the introduction of second-phase particles creates additional interfaces within the matrix, it also modifies the grain structure and crystallographic texture after recrystallization, which then either improves or deteriorates the associated mechanical properties of the investigated materials.
In this work, we choose MgO as the secondary phase to modify the grain boundaries.
There are some possible processes that efficiently modify the grain size distribution.
There are some possible processes that actively and rapidly modify the grain size distribution.
SEM top-view images indicated that low titanium contents modify the polygonal grain shape of the α-Al2O3 phase to a more cuboid-like form, while the highest titanium content applied (4.2 at.% Ti) causes a less dense coating topography.
The increased impact toughness of this alloy is related to breakage of the large aluminum dendrites and interdendritic networks of eutectic silicon in the first several passes, modified grain or grain fragment boundaries, ultrafine grains or grain fragments (about 300 nm), the production of fine particles (smaller than 1 μm) and a homogenized microstructure by multipass RD-ECAP.
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