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Processes 2020, 8, 1461 15 of 18 19. Li, M.; Tang, S.; Wang, F.; Zhao, Q.; Tao, W. Gas-side fouling, erosion and corrosion of heat exchangers for middle/low temperature waste heat utilization: A review on simulation and experiment. Appl. Therm. Eng. 2017, 126, 737–761. [CrossRef] 20. Lei, B.; Wu, Y.; Ma, C.; Wang, W.; Zhi, R. Theoretical analyses of pressure losses in organic Rankine cycles. Energy Convers. Manag. 2017, 153, 157–162. [CrossRef] 21. Hipólito-Valencia, B.; Rubio-Castro, E.; Ponce-Ortega, J.; Serna-González, M.; Nápoles-Rivera, F.; El-Halwagi, M. Optimal integration of organic Rankine cycles with industrial processes. Energy Convers. Manag. 2013, 73, 285–302. [CrossRef] 22. Stijepovic, M.; Linke, P. Optimal waste heat recovery and reuse in industrial zones. Energy 2011, 36, 4019–4031. 23. Dou, Y.; Togawa, T.; Dong, L.; Fujii, M.; Ohnishi, S.; Tanikawa, H.; Fujita, T. Innovative planning and evaluation system for district heating using waste heat considering spatial configuration: A case in Fukushima, Japan. Resour. Conserv. Recycl. 2018, 128, 406–416. [CrossRef] 24. Li, C.; Wang, H. Power cycles for waste heat recovery from medium to high temperature flue gas sources—From a view of thermodynamic optimization. Appl. Energy 2016, 180, 707–721. [CrossRef] 25. Poullikkas, A. An overview of current and future sustainable gas turbine technologies. Renew. Sustain. Energy Rev. 2005, 9, 409–443. [CrossRef] 26. Chen, Y.; Lundqvist, P. The CO2 transcritical power cycle for low grade heat recovery-discussion on temperature profiles in system heat exchangers. In Proceedings of the ASME 2011 Power Conference (POWER2011), Denver, CO, USA, 12–14 June 2011. 27. Boewe, D.; Bullard, C.; Yin, J.; Hrnjak, P. Contribution of internal heat exchanger to transcritical R-744 cycle performance. HVAC&R Res. 2001, 7, 155–168. 28. Marcus, Y. Some Advances in Supercritical Fluid Extraction for Fuels, Bio-Materials and Purification. Processes 2019, 7, 156. [CrossRef] 29. Bae, S.; Lee, J.; Ahn, Y.; Lee, J. Preliminary studies of compact Brayton cycle performance for small modular high temperature gas-cooled reactor system. Ann. Nucl. Energy 2015, 75, 11–19. [CrossRef] 30. Bell, L. Cooling, heating, generating power, and recovering waste heat with thermoelectric systems. Science 2008, 321, 1457–1461. [CrossRef] 31. Lee, S.; Yang, Y.; Lee, H.; Ghasemi, H.; Kraemer, D.; Chen, G.; Cui, Y. An electrochemical system for efficiently harvesting low-grade heat energy. Nat. Commun. 2014, 5, 3942. [CrossRef] 32. Duan, J.; Feng, G.; Yu, B.; Li, J.; Chen, M.; Yang, P.; Feng, J.; Liu, K.; Zhou, J. Aqueous thermogalvanic cells with a high Seebeck coefficient for low-grade heat harvest. Nat. Commun. 2018, 9, 5146. [CrossRef] 33. Pandya, S.; Wilbur, J.; Kim, J.; Gao, R.; Dasgupta, A.; Dames, C.; Martin, L. Pyroelectric energy conversion with large energy and power density in relaxor ferroelectric thin films. Nat. Mater. 2018, 17, 432. [CrossRef] [PubMed] 34. Feher, E. The supercritical thermodynamic power cycle. Energy Convers. Manag. 1968, 8, 85–90. [CrossRef] 35. Siddiqui, M.; Taimoor, A.; Almitani, K. Energy and Exergy Analysis of the S-CO2 Brayton Cycle Coupled with Bottoming Cycles. Processes 2018, 6, 153. [CrossRef] 36. Siddiqui, M.; Almitani, K. Energy Analysis of the S-CO2 Brayton Cycle with Improved Heat Regeneration. Processes 2019, 7, 3. [CrossRef] 37. Siddiqui, M.; Almitani, K. Energy and Exergy Assessment of S-CO2 Brayton Cycle Coupled with a Solar Tower System. Processes 2020, 8, 1264. [CrossRef] 38. Mehrpooya, M.; Esfilar, R.; Moosavian, S. Introducing a novel air separation process based on cold energy recovery of LNG integrated with coal gasification, transcritical carbon dioxide power cycle and cryogenic CO2 capture. J. Clean. Prod. 2017, 42, 1749–1764. [CrossRef] 39. Khaw, K.; Shaw, P.; Parat, N.; Pandey, S.; Falconer, J. Compound identification and in vitro cytotoxicity of the supercritical carbon dioxide extract of papaya freeze-dried leaf juice. Processes 2020, 8, 610. [CrossRef] 40. Sánchez, D.; Chacartegui, R.; Jiménez-Espadafor, F.; Sánchez, T. A new concept for high temperature fuel cell hybrid systems using supercritical carbon dioxide. J. Fuel Cell Sci. Technol. 2009, 6, 021306. [CrossRef] 41. Sanchez, D.; de Escalona, J.; Chacartegui, R.; Munoz, A.; Sanchez, T. A comparison between molten carbonate fuel cells based hybrid systems using air and supercritical carbon dioxide Brayton cycles with state of the art technology. J. Power Sources 2011, 196, 4347–4354. [CrossRef] 42. Bae, S.; Ahn, Y.; Lee, J.; Lee, J. Various supercritical carbon dioxide cycle layouts study for molten carbonate fuel cell application. J. Power Sources 2014, 270, 608–618. [CrossRef]PDF Image | s-CO2) Power Cycle for Waste Heat Recovery
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