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The results indicate that the maximal temperature difference within the load, as well as the thermal hysteresis time, decreases with preheating temperature, and increases with heating rate.
By changing the chips arrangement on the substrate, temperature field optimization is conducted with maximal temperature difference of the substrate as the target function.
The transient temperature field within the load was obtained and the relationship among thermal hysteresis time, maximal temperature difference, heating temperature and heating rate was analyzed in detail.
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In Table 1 shows the maximal observed temperature difference that was obtained by variation of one parameter, while other parameters were kept constant.
Table 1 Maximal measured temperature difference obtained by variation of one parameter Condition ΔT max−min (K) ν osc 55.1 Changed Φ GS 37.3 Changed Φ MB 31.2 Beaker size 23.9 Grinding stock material (Φ GS = const).
Maximal lumen wall temperature difference without a catheter (ΔT=0.12 °C, flow=75 cm3 min−1) was considered the reference.
Subsequently, the influences of maximal temperature/pressure, pinch temperature difference, component pressure drop, and preheated air temperature on the cycle efficiency are studied.
Primer sequences were between 20 and 22 bp, contained at least one 3′-GC clamp, displayed a maximal T m (melting temperature) difference of 1°C, a maximal poly-X value of 3, maximal 3′-complementarity of 2, and a T m between 60 and 62°C.
This last temperature corresponds to the maximal temperature observed in different coral reefs during mass bleaching events [ 11, 60, 71- 76].
It is shown that the difference in maximal temperature for various floorplans can reach even 7.2 K for a typical case.
ΔT Dimensionless temperature difference (ΔT = TH - TC). Error1 Maximal relative error of velocities between two adjacent time layers.
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