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The continuum based cell level simulation results show that the battery performance can be improved significantly by increasing operating temperature.
Besides, increasing operating temperature substantially enhances CWPO, finding a 80% of 4-NP removal at 110 °C.
It is found that the thermal efficiency and the power output of the system both increase with increasing operating temperature difference (difference between warm and cold water inlet temperature).
As shown in Figure 8, the evaporating HTC enhancement ratio decreases slightly with increasing operating temperature.
Both samples showed increases in the open circuit voltages, closed circuit current, and power density with increasing operating temperature.
Figure 3 shows the comparison of oxygen fluxes for the experimental data and the simulated results with increasing operating temperature for different thickness of BSCF membranes.
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Efficiencies and operating characteristics can be improved by increasing operating temperatures.
With increasing operating temperatures, pervaporation data indicated simultaneous increase in permeation flux and concentration of water in permeate.
The improvements are primarily aimed at increasing operating pressures in order to increase the throughput or at increasing operating temperatures in order to accommodate a variety of coal feeds.
Different powers have been supplied to the tower at different temperatures and complete maps of the temperature distribution have been reconstructed in order to evaluate the silicon detectors efficiency and performance with increasing operating temperatures.
The results provide a good explanation on why both GAH and NAG retentions decrease with increasing operating temperatures (Fig. 6a, b).
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