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It can be concluded, in line with Meyers et al. [14], that grain size, grain shape, strain rate sensitivity and deformation mechanisms are connected, and it is possible through the manipulation of the nanostructure to increase deviation from spherical shapes and mechanical properties.
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Two phenomena were observed; first, as the current density increased, deviation from Ohmic behavior was observed, manifested in an increase in output potential difference.
There it describes an increasing deviation from local equilibrium as the initial alloy composition is moved inside the one-phase field for the new phase.
The amount of shape recovery in the D03-ordered crystals showed a maximum near 23.0at.%Al and decreased with increasing deviation from this Al concentration.
By contrast, the force-extension of the dsDNA containing 6.6% modified-bases showed an increasing deviation from that of the control as the dsDNA extension approached the molecule's contour length.
The increased deviation from the near centrosymmetry of the octahedral complexes is due to the replacement of an equatorial water oxygen in [VO(H2O 5]SO4 by a sulfate oxygen in [VO SO4)(H2O)4]·H2O.
It should be noted that both trends of increasing and decreasing mechanical properties with increasing deviation from spherical grains have been observed by Meyers et al. [14].
It is suggested that [14, 29] a way of increasing deviation from spherical grains is by increasing the strain rate with the explanation that this allows the specimen to sustain more plastic strain prior to necking.
Note that the measured ( {updelta mathrm{D}}_{{mathrm{H}}_2mathrm{O}}hbox {updelta mathrm{D}}_{{mathrm{H}}_2} ) relationship showed increased deviation from the theoretically expected relationship in batches with higher ( {updelta mathrm{D}}_{{mathrm{H}}_2mathrm{O}} ) values (deviations of <26‰ for A1 and A2, <42‰ for A3 and A4, and <100‰ for A5 and A6).
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