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(a) Cooling time of 1.1 s, (b) cooling time of 5.1 s, (c) cooling time of 10.6 s, and (d) cooling time of 56.1 s.
(a) Cooling time of 1.0 s, (b) cooling time of 5.0 s, (c) cooling time of 10.2 s, and (d) cooling time of 55.5 s. Figure 5 shows that the stress evolution of the post is significantly correlated with the radial locations of the post from the center of the embossed part during cooling.
Subcutaneous adipose tissue thickness alters cooling time during cryotherapy.
The melt temperature was the prominent parameter followed by packing pressure, cooling time and packing time.
A cooling time of 900 s was considered in the numerical simulations.
Also, it was shown the significant reduction in scarp and cooling time.
Finally, the effect of cooling time on the disposal area is illustrated.
The effect of pulse width and cooling time for pulsed operation is quantified.
The optimization of cooling time in the first stage is based on the energy balance.
Error rates were consistent across the range of considered enrichment, cooling time, and burnup values.
The HELIOS/ORIGEN-2 procedure showed a good accuracy for a short period of cooling time.
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