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In this study, the design of a flash power system driven by the process heat of continuous casting grade steel billet is proposed.
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To compensate for the high cost of a double flash power plant, an exergy analysis has been used as an effective tool to maximize the power output and hence improve the efficiency of the double flash power plant (Ameri et al. 2011; Pambudi et al. 2013).
The components of a dual flash power plant are similar to those of a single flash steam power plant.
This type of geothermal power plant offers a cost reduction of 32.2% compared to a single flash power plant.
The schematic diagram of a dual flash power plant is shown in Fig. 2.
In a dual flash power plant, the saturated liquid leaving the first separator is directed to a second separator at lower pressure, resulting in more steam production.
For a single flash power plant, Fig. 7 shows that the annual contribution to the total power demand cannot exceed 80% due the efficiency of the power plant and geothermal field source limitations.
The heat output is very high at high power outputs, and since it is a single flash power plant, the rest of the heat will not be effectively recycled.
However, at 80% contribution, the annual energy is 632 million kWh which is around 36% higher than when using a single flash power plant and at 90%, the annual energy reaches 711 million kWh while other power plants fail to produce energy at 90% contribution Figs. 14, 15.
The power factor in Fig. 11 decreases when increasing the total contribution to the demand with a similar trend as the single flash power plant, for which there is a decrease from 31too 16.8 at 10 and 80% contribution, respectively.
Moreover it has a high peak power produced by the multiplication of the flash power manifold, producing a light intensity at least 100 times greater than that of other two light technologies during the same operating time.
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CEO of Professional Science Editing for Scientists @ prosciediting.com