Design of ORC Plant for Low-Grade Waste Heat Recovery

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Energies 2020, 13, 5846 22 of 23 27. Ziviani, D.; Woodland, B.J.; Georges, E.; Groll, E.A.; Braun, J.E.; Horton, W.T.; Van den Broek, M.; De Paepe, M. Development and validation of a charge Sensitive organic Rankine cycle (ORC) simulation tool. Energies 2016, 9, 389. [CrossRef] 28. Liu, L.; Zhu, T.; Ma, J. Working fluid charge oriented off-design modeling of a small scale organic Rankine cycle system. Energy Convers. Manag. 2017, 148, 944–953. [CrossRef] 29. Desideri, A.; Amicabile, S.; Alberti, F.; Vitali-Nari, S.; Quoilin, S.; Crema, L.; Lemort, V. Dynamic modeling and control strategies analysis of a novel small CSP biomass plant for cogeneration applications in building. In Proceedings of the SWC 2015/ISES Conference Proceedings, Daegu, Korea, 8–12 November 2015. [CrossRef] 30. Alobaid, F.; Mertens, N.; Starkloff, R.; Lanz, T.; Heinze, C.; Epple, B. Progress in dynamic simulation of thermal power plants. Prog. Energy Combust. Sci. 2017, 59, 79–162. [CrossRef] 31. Vodicka, V.; Novotny, V.; Mascuch, J.; Kolovratnik, M. Impact of major leakages on characteristics of a rotary vane expander for ORC. Energy Procedia 2017, 129, 387–394. [CrossRef] 32. Dickes, R.; Dumont, O.; Lemort, V. Experimental assessment of the fluid charge distribution in an organic Rankine cycle (ORC) power system. Appl. Therm. Eng. 2020, 179, 115689. [CrossRef] 33. Sun, H.; Qin, J.; Hung, T.C.; Huang, H.; Yan, P.; Lin, C.H. Effect of flow losses in heat exchangers on the performance of organic Rankine cycle. Energy 2019, 172, 391–400. [CrossRef] 34. Dumont, O.; Parthoens, A.; Dickes, R.; Lemort, V. Experimental investigation and optimal performance assessment of four volumetric expanders (scroll, screw, piston and roots) tested in a small-scale organic Rankine cycle system. Energy 2018, 165, 1119–1127. [CrossRef] 35. Bianchi, M.; Branchini, L.; Casari, N.; De Pascale, A.; Melino, F.; Ottaviano, S.; Pinelli, M.; Spina, P.R.; Suman, A. Experimental analysis of a micro-ORC driven by piston expander for low-grade heat recovery. Appl. Therm. Eng. 2019, 148, 1278–1291. [CrossRef] 36. Chatzopoulou, M.A.; Simpson, M.; Sapin, P.; Markides, C.N. Off-design optimisation of organic Rankine cycle (ORC) engines with piston expanders for medium-scale combined heat and power applications. Appl. Energy 2019, 238, 1211–1236. [CrossRef] 37. Badr, O.; Probert, S.D.; O’Callaghan, P. Performances of multi-vane expanders. Appl. Energy 1985, 20, 207–234. [CrossRef] 38. Quoilin, S.; Aumann, R.; Grill, A.; Schuster, A.; Lemort, V.; Spliethoff, H. Dynamic modelling and optimal control strategy of waste heat recovery organic Rankine cycles. Appl. Energy 2011, 88, 2183–2190. [CrossRef] 39. Yang, B.; Peng, X.; He, Z.; Guo, B.; Xing, Z. Experimental investigation on the internal working process of a CO2 rotary vane expander. Appl. Therm. Eng. 2009, 29, 2289–2296. [CrossRef] 40. Garg, P.; Karthik, G.M.; Kumar, P.; Kumar, P. Development of a generic tool to design scroll expanders for ORC applications. Appl. Therm. Eng. 2016, 109, 878–888. [CrossRef] 41. Dickson, J.; Ellis, M.; Rousseau, T.; Smith, J. Validation and design of heavy vehicle cooling system with waste heat recovery condenser. SAE Int. J. Commer. Veh. 2014, 7, 458–467. [CrossRef] 42. White, M.T.; Oyewunmi, O.A.; Chatzopoulou, M.A.; Pantaleo, A.M.; Haslam, A.J.; Markides, C.N. Computer-aided working-fluid design, thermodynamic optimisation and thermoeconomic assessment of ORC systems for waste-heat recovery. Energy 2018, 161, 1181–1198. [CrossRef] 43. Emadi, M.A.; Chitgar, N.; Oyewunmi, O.A.; Markides, C.N. Working-fluid selection and thermoeconomic optimisation of a combined cycle cogeneration dual-loop organic Rankine cycle (ORC) system for solid oxide fuel cell (SOFC) waste-heat recovery. Appl. Energy 2020, 261, 114384. [CrossRef] 44. Shu, G.; Wang, X.; Tian, H.; Liu, P.; Jing, D.; Li, X. Scan of working fluids based on dynamic response characters for organic Rankine cycle using for engine waste heat recovery. Energy 2017, 133, 609–620. [CrossRef] 45. Fatigati, F.; Di Bartolomeo, M.; Cipollone, R. Dual intake rotary vane expander technology: Experimental and theoretical assessment. Energy Convers. Manag. 2019, 186, 156–167. [CrossRef] 46. Wang, E.H.; Zhang, H.G.; Fan, B.Y.; Ouyang, M.G.; Zhao, Y.; Mu, Q.H. Study of working fluid selection of organic Rankine cycle (ORC) for engine waste heat recovery. Energy 2011, 36, 3406–3418. [CrossRef] 47. Song, J.; Li, X.; Wang, K.; Markides, C.N. Parametric optimisation of a combined supercritical CO2 (S-CO2) cycle and organic Rankine cycle (ORC) system for internal combustion engine (ICE) waste-heat recovery. Energy Convers. Manag. 2020, 218, 112999. [CrossRef] 48. Mikielewicz, D.; Wajs, J.; Ziółkowski, P.; Mikielewicz, J. Utilisation of waste heat from the power plant by use of the ORC aided with bleed steam and extra source of heat. Energy 2016, 97, 11–19. [CrossRef]

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