Iranian Journal of Mechanical Engineering Transactions of ISME

Iranian Journal of Mechanical Engineering Transactions of ISME

Energy and Exergy Analysis of Two Configurations Rankin Organic Cycle in Heat Recovery of Internal Combustion Engine Heat

Authors
1 Associated professor, Flight & Engineering Department, Imam Ali University, Tehran, Iran
2 Flight and Engineering Department, Imam Ali University, Tehran
Abstract
Rising fuel prices and limited fossil fuels have motivated scientists to find some new methods to recover the heat dissipation from the internal combustion engines exhaust gases in recent decades. Only 30 percent of the fuel energy is converted to the useful work and the rest of it is lost through the exhaust gases of the engine and the engine coolant system. In this paper this issue has been considered and hence two different configurations of organic Rankine cycle with two operating fluids R113 and R123 have been designed and energy and exergy analysis have been applied in order to recovering the heat dissipation from the six cylinder internal combustion engine exhaust gases (in full load operating mode). Next, the performance of these cycles has been optimized by sensitivity analysis to find the optimum working temperature and pressure of these two cycles. the results shows the optimum points of the system which is calculated by the mention technique.
Keywords

Subjects


[1] Kim,Y.M., Shin, D.G., Kim,C.G., and Cho,G.B., "Single-loop Organic Rankine Cycles for Engine Waste Heat Recovery using Both Low-and High-temperature Heat Sources", Energy, Vol. 96, pp. 482-494, (2016).
[2]Sharma, S., Dwivedi, V., and Pandit, S., "Exergy Analysis of Single‐stage and Multi Stage Thermoelectric Cooler", International Journal of Energy Research, Vol. 38, No. 2, pp. 213-222, (2014).
[3] Liang, X., Wang, X., Shu, G., Wei, H., Tian, H., and Wang, X., "A Review and Selection of Engine Waste Heat Recovery Technologies using Analytic Hierarchy Process and Grey Relational Analysis", International Journal of Energy Research , Vol. 39, No. 4, pp. 453-471, (2015).
[4] Patel, P.S., and Doyle, E.F., "Compounding the Truck Diesel Engine with an Organic Rankine-cycle System", SAE Technical Paper, Vol. 2, pp. 1-16, (1976).
[5] Bailey, M.M., "Comparative Evaluation of Three Alternative Power Cycles for Waste Heat Recovery from the Exhaust of Adiabatic Diesel Engines", Nasa TM. 86953, pp. 1-26, (1985).
[6] Chammas, R., and Clodic, El D., "Combined Cycle for Hybrid Vehicles", SAE Technical Paper, Vol. 4, pp. 1-12, (2005).
[7] Arias, D.A., Shedd, T.A., and Jester, R.K., "Theoretical Analysis of Waste Heat Recovery from an Internal Combustion Engine in a Hybrid Vehicle", SAE Transaction, Vol. 115, Section. 3, pp. 777-784, (2006).
[8] Mago, P., Chamra, L., and Somayaji, C., "Performance Analysis of Different Working Fluids for use in Organic Rankine Cycles", Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy, Vol. 221, No. 3, pp. 255-263, (2007).
[9] Ringler, J., Seifert, M., Guyotot, V., and Hübner, W., "Rankine Cycle for Waste Heat Recovery of IC Engines", SAE International Journal of Engines, Vol. 2, No. 1, pp. 67-76, (2009).
[10] Srinivasan, K.K., Mago, P.J., and Krishnan, S.R., "Analysis of Exhaust Waste Heat Recovery from a Dual Fuel Low Temperature Combustion Engine using an Organic Rankine Cycle", Energy, Vol. 35, No. 6, pp. 2387-239, (2010).
[11] Vaja, I., and Gambarotta, A., "Internal Combustion Engine (ICE) Bottoming with Organic Rankine Cycles (ORCs)", Energy, Vol. 35, No. 2, pp. 1084-1093, (2010).
[12] Quoilin, S., Declaye, S., Tchanche, B.F., and Lemort, V., "Thermo-economic Optimization of Waste Heat Recovery Organic Rankine Cycles", Applied Thermal Engineering", Vol. 31, No. 14-15, pp. 2885-2893, (2011).
[13] He, M., Zhang, X., Zeng, K., and Gao, K., "A Combined Thermodynamic Cycle used for Waste Heat Recovery of Internal Combustion Engine", Energy, Vol. 36, No. 12, pp. 6821-6829, (2011).
[14] Katsanos, C., Hountalas, D., and Pariotis, E., "Thermodynamic Analysis of a Rankine Cycle Applied on a Diesel Truck Engine using Steam and Organic Medium", Energy Conversion and Management", Vol. 60, pp. 68-76, (2012).
[15] Peng, Z., Wang, T., He, Y., Yang, X., and Lu, L., "Analysis of Environmental and Economic Benefits of Integrated Exhaust Energy Recovery (EER) for Vehicles", Applied energy, Vol. 105, pp. 238-243, (2013).
[16] Shu, G., Wang, X., and Tian, H., "Theoretical Analysis and Comparison of Rankine Cycle and Different Organic Rankine Cycles as Waste Heat Recovery System for a Large Gaseous Fuel Internal Combustion Engine", Applied Thermal Engineering, Vol. 108, pp. 525-537, (2016).
[17] Yang, F., Zhang, H., Yu, Z., Wang, E., Meng, Liu, F. H., and Wang, J., "Parametric Optimization and Heat Transfer Analysis of a Dual Loop ORC (Organic Rankine Cycle) System for CNG Engine Waste Heat Recovery", Energy, Vol. 118, pp. 753-775, (2017).
[18] Mohammadkhani, F., Yari, M., and Ranjbar, F., "A zero-dimensional Model for Simulation of a Diesel Engine and Exergoeconomic Analysis of Waste Heat Recovery from Its Exhaust and Coolant Employing a High-temperature Kalina Cycle", Energy Conversion and Management, Vol. 198, pp. 111782, (2019).
[19] Mohammadkhani, F., and Yari, M,. "A 0D Model for Diesel Engine Simulation and Employing a Transcritical Dual Loop Organic Rankine Cycle (ORC) for Waste Heat Recovery from Its Exhaust and Coolant: Thermodynamic and Economic Analysis", Applied Thermal Engineering", Vol. 150, pp. 329-347, (2019).
[20] Liu, X., Manh, Q.N., Jianchu, C. L., and Maogang, H., "A Novel Waste Heat Recovery System Combing Steam Rankine Cycle and Organic Rankine Cycle for Marine Engine", Journal of Cleaner Production, Vol. 265, pp. 121-135, (2020).
[21] Mohammed, A.G., Mosleh, M. M., Wael, E., and Nader, R.A., "Performance Analysis of Supercritical ORC Utilizing Marine Diesel Engine Waste Heat Recovery", Alexandria Engineering Journal", Vol. 59, No. 2, pp. 893-904, (2020).
[22] Zhi, Li.H., Peng, H., Long-Xiang, C., and Gang, Z., "Performance Analysis and Optimization of Engine Waste Heat Recovery with an Improved Transcritical-subcritical Parallel Organic Rankine Cycle Based on Zeotropic Mixtures", Applied Thermal Engineering, Vol. 181, pp. 185-196, (2020).
[23] Li, G., "Organic Rankine Cycle Performance Evaluation and Thermoeconomic Assessment with Various Applications Part I: Energy and Exergy Performance Evaluation", Renewable and Sustainable Energy Reviews, Vol. 53, pp. 477-499, (2016).
[24] Abdolalipouradl, M., Khalilarya, Sh., and afarmadar, S., "Energy and Exergy Analysis of a New Power, Heating, Oxygen and Hydrogen Cogeneration Cycle Based on the Sabalan Geothermal Wells", International Journal of Engineering, Vol. 32, pp. 445-450, (2019).
[25] Abdolalipouradl, M., Mohammadkhani, F., Khalilarya, Sh., and Jafarmadar, S., "Thermodynamic Analysis of New Cogeneration Cycle Based on Gaynarje Hotspring", International Journal of Engineering, Vol. 33, pp. 1149-1155, (2020).
[26] Behzadi, A., Gholamian, E., Houshfar, E., and Habibollahzade, A., "Multi-objective Optimization and Exergoeconomic Analysis of Waste Heat Recovery from Tehran's waste-to-energy Plant Integrated with an ORC Unit", Energy, Vol. 160, pp. 1055-1068, (2018).
[27] Abdolalipouradl, M., Khalilarya, Sh., and Jafarmadar, S., "Exergoeconomic Analysis of a Novel Integrated Transcritical CO2 and Kalina 11 Cycles from Sabalan Geothermal Power Plant", Energy Conversion and Management, Vol. 195, pp. 420-435, (2019).
[28] Abdolalipouradl, M., Mohammadkhani , F., Khalilarya, Sh., and Yari, M., "Thermodynamic and Exergoeconomic Analysis of Two Novel tri-generation Cycles for Power, Hydrogen and Freshwater Production from Geothermal Energy", Energy Conversion and Management, Vol. 226, pp. 113-128, (2020).
[29] Abdolalipouradl, M., Mohammadkhani, F., and Khalilarya, Sh., "A Comparative Analysis of Novel Combined Flash-binary Cycles for Sabalan Geothermal Wells: Thermodynamic and Exergoeconomic Viewpoints", Energy, Vol. 209, pp. 118-135, (2020).
[30] Dai, Y., Wang, J., and Gao, L., "Parametric Optimization and Comparative Study of Organic Rankine Cycle (ORC) for Low Grade Waste Heat Recovery", Energy Conversion and Management, Vol. 50, No. 3, pp. 576-582, (2009).

  • Receive Date 28 July 2020
  • Revise Date 11 December 2020
  • Accept Date 18 January 2021