Review of Experimental Research on Supercritical and Transcritical Thermodynamic Cycles Designed for Heat Recovery Application

Обзор экспериментальных исследований сверхкритических и транскритических термодинамических циклов, предназначенных для рекуперации тепла
Steven Lecompte, Erika Ntavou, Bertrand Tchanche, George Kosmadakis, Aditya Pillai, Dimitris Manolakos, Michel De Paepe
2019-06-25

carbon dioxideclosed Brayton cyclesheat recoverysupercritical thermodynamic cyclestranscritical organic Rankine cycles
Supercritical operation is considered a main technique to achieve higher cycle efficiency in various thermodynamic systems. The present paper is a review of experimental investigations on supercritical operation considering both heat-to-upgraded heat and heat-to-power systems. Experimental works are reported and subsequently analyzed. Main findings can be summarized as: steam Rankine cycles does not show much studies in the literature, transcritical organic Rankine cycles are intensely investigated and few plants are already online, carbon dioxide is considered as a promising fluid for closed Brayton and Rankine cycles but its unique properties call for a new thinking in designing cycle components. Transcritical heat pumps are extensively used in domestic and industrial applications, but supercritical heat pumps with a working fluid other than CO2 are scarce. To increase the adoption rate of supercritical thermodynamic systems further research is needed on the heat transfer behavior and the optimal design of compressors and expanders with special attention to the mechanical integrity.
1
Carbon dioxide is considered promising for closed Brayton and Rankine cycles, but its distinctive properties require new approaches to component design.
2
Experimental research on steam Rankine cycles under supercritical conditions remains limited compared with other supercritical technologies.
3
Further adoption requires research on heat-transfer behavior and optimal compressor and expander designs, particularly regarding mechanical integrity.
4
Supercritical operation is identified as a major pathway for improving efficiency in thermodynamic heat-recovery and heat-to-power systems.
5
Transcritical organic Rankine cycles are extensively investigated, and several plants are already operating commercially.

Supercritical and transcritical thermodynamic cycles for heat recovery, including heat-to-upgraded-heat and heat-to-power systems

Experimental performance, heat-transfer behavior, component design, and mechanical integrity of supercritical and transcritical cycles

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2019-06-25
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Authors
Steven Lecompte
Erika Ntavou
Bertrand Tchanche
George Kosmadakis
Aditya Pillai
Dimitris Manolakos
Michel De Paepe
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