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Fig. 5 Influence of the maximum heating temperature.
The effects of prestraining and maximum heating temperature on the obtained recovery stress have been studied.
The tobacco sample in the quartz reactor was placed in an electrical heater furnace whose maximum heating temperature is 1000 °C.
Only D05IB74 (#74) contains saponite, which suggests that the maximum heating temperature experienced by the #74 particle did not exceed ca. 600°C (Nozaki et al., 2006).
The tobacco sample in the quartz reactor was placed in an electrical heater furnace whose maximum heating temperature is 1000 °C with heating rate of ~20 °C/s.
The influence in the determination of the subcooling of experimental conditions such as the cooling rate, the maximum heating temperature, and the holding time at the maximum temperature has been researched.
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However, this technology has few drawbacks, a maximum heat input temperature slightly higher than 2,273 K, the cycle working temperature of the endothermic step must be optimized to be compatible with dish or tower technologies, and to reduce sample vaporization.
The maximum heat storage temperature (85 °C) is reached when the aspect ratio of the receiver is near to 2. Beyond this value, the temperature decreases because the effect of heat losses particularly radiation in the receiver is greater than the amount of solar radiation intercepted.
Maximum heat sink temperature (°C).
Figure 15 shows that the maximum heat storage temperature is greatly affected by maximal solar radiation, which may change depending on the season and geographic location.
It was found that the cogeneration systems have good performance, with energy and exergy efficiencies of ∼28% and 55 60%, respectively, for the base-case studied (at maximum heat input temperature of 450 °C).
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