Hybrid sCO2 and ORC systems improve thermodynamic efficiency in waste heat recovery, suggesting new energy solutions.
The integration of hybrid supercritical carbon dioxide and Organic Rankine Cycle systems offers a novel approach to enhance waste heat recovery and power generation efficiency. This study evaluates the thermodynamic performance of a hybrid sCO2 and ORC system, focusing on heat recovery across a wide temperature range. The high-temperature recuperator achieved an effectiveness of 98.35%, preheating the sCO2 stream to 491.97°C, while the low-temperature recuperator maintained an effectiveness of 91.92%. The ORC subsystem further captured low-grade waste heat, generating an additional 11.85 MW at an efficiency of 17.66%. Machine learning models were employed to optimize key parameters, including pressure ratios and temperature differences, achieving a cycle efficiency of 60%. The results underline the synergistic operation of the hybrid system, ensuring cascade utilization of heat and minimizing exergy losses. The study demonstrates the system potential to significantly improve the efficiency and sustainability of waste heat recovery processes, making it a promising solution for advanced energy systems. This approach provides critical insights into optimizing thermodynamic cycles for diverse industrial and power generation applications, promoting the adoption of sustainable energy technologies.
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Khan et al. (2025) studied this question.
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