4.5 Article

Technical and Economic Feasibility Analysis of Solar Inlet Air Cooling Systems for Combined Cycle Power Plants

期刊

ENERGIES
卷 16, 期 14, 页码 -

出版社

MDPI
DOI: 10.3390/en16145352

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combined cycle power plant; absorption chiller; solar collector; cooling capacity; inlet air cooling; solar cooling

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This study simulated the thermodynamic behavior of a combined cycle power plant with integrated solar-driven inlet air cooling for Tehran, Phoenix, and Houston during warm-hot seasons. Output power decreased significantly due to lower air density and mass flow rate to the turbines in hot ambient conditions. The research focused on utilizing solar cooling systems to achieve low inlet air temperature and high-electricity yields. The integration of a solar inlet air cooling (SIAC) system was found to prevent the reduction in output power without impacting efficiency. The combination of the evacuated flat plate collector (EFPC) and double-effect absorption chiller displayed the best economic performance.
In this study, the thermodynamic behavior of a combined cycle power plant with integrated solar-driven inlet air cooling was simulated for Tehran, Phoenix, and Houston during warm-hot seasons. A considerable reduction in the output power was realized during hot ambient conditions due to the lower density of the air and lower mass flow rate to the turbines. The output power decreases from 306.6 to 260.8 MW as ambient temperature increases from 15 to 45 & DEG;C. This research focuses on utilizing solar cooling systems to achieve low inlet air temperature to generate high-electricity yields. Four different types of solar collectors and two different absorption chiller units were selected and simulated for each city to achieve the required goal. It was identified that integrating a solar inlet air cooling (SIAC) system can avert the reduction in output power with no impact on efficiency. The humid climatic condition in Houston and the low electricity cost in Tehran posed some challenges in designing a feasible SIAC system. However, by optimizing the solar collectors and cooling capacities, an optimal solution for utilizing inlet air cooling in humid climates is presented. In terms of overall impact, the evacuated flat plate collector (EFPC) coupled with a double-effect absorption chiller displayed the best economic performance among the four variants under study. In Phoenix, this combination can maintain output power during hot days with a DPR of 2.96 years.

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