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PERFORMANCE ANALYSIS AND THERMODYNAMIC MODELING OF A POLY GENERATION SYSTEM BY INTEGRATING A MULTI-EFFECT-DESALINATION THERMO-VAPOR COMPRESSION (MED-TVC) SYSTEM WITH A COMBINED COOLING, HEATING AND POWER (CCHP) SYSTEM

Year 2018, Volume: 4 Issue: 3, 1963 - 1983, 22.03.2018
https://doi.org/10.18186/journal-of-thermal-engineering.410264

Abstract

In the present study,
performance analysis of a multi effect distillation with thermos vapor
compressor (MED-TVC) desalination system coupled to a combined cooling, heating
and power (CCHP) system with gas turbine prime mover has been carried out to
cogeneration of cooling, heating, power and potable water. The system
incorporates air compressor, combustion chamber, gas turbine, triple pressure
heat recovery system generator (HRSG), absorption chiller and MED-TVC. A
thermodynamic modeling based on mass and energy balance equations is applied
for each component of the integrated system. The engineering equation solver
(EES) software was used for modeling. It is found that the efficiency of the
integrated system reached to 84% (the efficiency of the gas turbine cycle was
32%). Furthermore, a parametric study has been presented in order to
investigate the effects of the operational parameters on the performance of the
integrated system.

References

  • [1] Dincer, I. (2000). Renewable energy and sustainable development: a crucial review. Renewable and sustainable energy reviews, 4(2), 157-175.
  • [2] Dincer, I., & Rosen, M. A. (1998). A worldwide perspective on energy, environment and sustainable development. International Journal of Energy Research, 22(15), 1305-1321.
  • [3] Dincer, I. (1998). Energy and environmental impacts: present and future perspectives. Energy sources, 20(4-5), 427-453.
  • [4] Dincer, I., & Rosen, M. A. (1999). Energy, environment and sustainable development. Applied energy, 64(1-4), 427-440.
  • [5] Ghaebi, H., Amidpour, M., Karimkashi, S., & Rezayan, O. (2011). Energy, exergy and thermoeconomic analysis of a combined cooling, heating and power (CCHP) system with gas turbine prime mover. International Journal of Energy Research, 35(8), 697-709.
  • [6] Ghaebi, H., Saidi, M. H., & Ahmadi, P. (2012). Exergoeconomic optimization of a trigeneration system for heating, cooling and power production purpose based on TRR method and using evolutionary algorithm. Applied thermal engineering, 36, 113-125.
  • [7] Orhan, M. F., Dincer, I., Naterer, G. F., & Rosen, M. A. (2010). Coupling of copper–chloride hybrid thermochemical water splitting cycle with a desalination plant for hydrogen production from nuclear energy. International Journal of Hydrogen Energy, 35(4), 1560-1574.
  • [8] Uche, J., Serra, L., & Valero, A. (2001). Thermoeconomic optimization of a dual-purpose power and desalination plant. Desalination, 136(1-3), 147-158.
  • [9] Zamen, M., Amidpour, M., & Soufari, S. M. (2009). Cost optimization of a solar humidification–dehumidification desalination unit using mathematical programming. Desalination, 239(1-3), 92-99.
  • [10] Wang, Y., & Lior, N. (2006). Performance analysis of combined humidified gas turbine power generation and multi-effect thermal vapor compression desalination systems—Part 1: The desalination unit and its combination with a steam-injected gas turbine power system. Desalination, 196(1-3), 84-104.
  • [11] J. Johansen, R.F. Babus'Haq, S.D. Probert, An integrated CHP and desalination plant, Appl. Energy 53 (1996) 157–178.
  • [12] Wade, N. M. (1999). Energy and cost allocation in dual-purpose power and desalination plants. Desalination, 123(2-3), 115-125.
  • [13] Cardona, E., & Piacentino, A. (2004). Optimal design of cogeneration plants for seawater desalination. Desalination, 166, 411-426.
  • [14] Darwish, M. A. (2004). Co-generation power desalting plants: new outlook with gas turbines. Desalination, 161(1), 1-12.
  • [15] Rensonnet, T., Uche, J., & Serra, L. (2007). Simulation and thermoeconomic analysis of different configurations of gas turbine (GT)-based dual-purpose power and desalination plants (DPPDP) and hybrid plants (HP). Energy, 32(6), 1012-1023.
  • [16] Wang, Y., & Lior, N. (2006). Performance analysis of combined humidified gas turbine power generation and multi-effect thermal vapor compression desalination systems—Part 1: The desalination unit and its combination with a steam-injected gas turbine power system. Desalination, 196(1-3), 84-104.
  • [17] Wang, Y., & Lior, N. (2007). Performance analysis of combined humidified gas turbine power generation and multi-effect thermal vapor compression desalination systems—Part 2: The evaporative gas turbine based system and some discussions. Desalination 207, 243–256.
  • [18] Chacartegui, R., Sanchez, D., Di Gregorio, N., Jiménez-Espadafor, F. J., Munoz, A., & Sanchez, T. (2009). Feasibility analysis of a MED desalination plant in a combined cycle based cogeneration facility. Applied thermal engineering, 29(2-3), 412-417.
  • [19] Manesh, M. K., & Amidpour, M. (2009). Multi-objective thermoeconomic optimization of coupling MSF desalination with PWR nuclear power plant through evolutionary algorithms. Desalination, 249(3), 1332-1344.
  • [20] Ansari, K., Sayyaadi, H., & Amidpour, M. (2010). Thermoeconomic optimization of a hybrid pressurized water reactor (PWR) power plant coupled to a multi effect distillation desalination system with thermo-vapor compressor (MED-TVC). Energy, 35(5), 1981-1996.
  • [21] Hosseini, S. R., Amidpour, M., & Behbahaninia, A. (2011). Thermoeconomic analysis with reliability consideration of a combined power and multi stage flash desalination plant. Desalination, 278(1-3), 424-433.
  • [22] Hosseini, S. R., Amidpour, M., & Shakib, S. E. (2012). Cost optimization of a combined power and water desalination plant with exergetic, environment and reliability consideration. Desalination, 285, 123-130.
  • [23] Shakib, S. E., Amidpour, M., & Aghanajafi, C. (2012). A new approach for process optimization of a METVC desalination system. Desalination and Water Treatment, 37(1-3), 84-96.
  • [24] Shakib, S. E., Amidpour, M., & Aghanajafi, C. (2012). Simulation and optimization of multi effect desalination coupled to a gas turbine plant with HRSG consideration. Desalination, 285, 366-376.
  • [25] Esfahani, I. J., & Yoo, C. (2014). Feasibility study and performance assessment for the integration of a steam-injected gas turbine and thermal desalination system. Desalination, 332(1), 18-32.
  • [26] Almutairi, A., Pilidis, P., Al-Mutawa, N., & Al-Weshahi, M. (2016). Energetic and exergetic analysis of cogeneration power combined cycle and ME-TVC-MED water desalination plant: Part-1 operation and performance. Applied Thermal Engineering, 103, 77-91.
  • [27] Hanafi, A. S., Mostafa, G. M., Fathy, A., & Waheed, A. (2015). Thermo-economic analysis of combined cycle MED-TVC desalination system. Energy Procedia, 75, 1005-1020.
  • [28] Sanaye, S., & Asgari, S. (2013). Four E analysis and multi-objective optimization of combined cycle power plants integrated with Multi-stage Flash (MSF) desalination unit. Desalination, 320, 105-117.
  • [29] Bejan, A., & Tsatsaronis, G. (1996). Thermal design and optimization. John Wiley & Sons.
  • [30] Korakianitis, T., & Wilson, D. G. (1994). Methods for prediction the performance of Brayton-cycle engines. ASME Journal of Engineering for Gas Turbines and Power, 166, 381–388.
  • [31] Herold, K. E., Radermacher, R., & Klein, S. A. (2016). Absorption chillers and heat pumps. CRC press.
  • [32] Kamali, R. K., Abbassi, A., & Vanini, S. S. (2009). A simulation model and parametric study of MED–TVC process. Desalination, 235(1-3), 340-351.
  • [33] Sayyaadi, H., & Saffari, A. (2010). Thermoeconomic optimization of multi effect distillation desalination systems. Applied Energy, 87(4), 1122-1133.
Year 2018, Volume: 4 Issue: 3, 1963 - 1983, 22.03.2018
https://doi.org/10.18186/journal-of-thermal-engineering.410264

Abstract

References

  • [1] Dincer, I. (2000). Renewable energy and sustainable development: a crucial review. Renewable and sustainable energy reviews, 4(2), 157-175.
  • [2] Dincer, I., & Rosen, M. A. (1998). A worldwide perspective on energy, environment and sustainable development. International Journal of Energy Research, 22(15), 1305-1321.
  • [3] Dincer, I. (1998). Energy and environmental impacts: present and future perspectives. Energy sources, 20(4-5), 427-453.
  • [4] Dincer, I., & Rosen, M. A. (1999). Energy, environment and sustainable development. Applied energy, 64(1-4), 427-440.
  • [5] Ghaebi, H., Amidpour, M., Karimkashi, S., & Rezayan, O. (2011). Energy, exergy and thermoeconomic analysis of a combined cooling, heating and power (CCHP) system with gas turbine prime mover. International Journal of Energy Research, 35(8), 697-709.
  • [6] Ghaebi, H., Saidi, M. H., & Ahmadi, P. (2012). Exergoeconomic optimization of a trigeneration system for heating, cooling and power production purpose based on TRR method and using evolutionary algorithm. Applied thermal engineering, 36, 113-125.
  • [7] Orhan, M. F., Dincer, I., Naterer, G. F., & Rosen, M. A. (2010). Coupling of copper–chloride hybrid thermochemical water splitting cycle with a desalination plant for hydrogen production from nuclear energy. International Journal of Hydrogen Energy, 35(4), 1560-1574.
  • [8] Uche, J., Serra, L., & Valero, A. (2001). Thermoeconomic optimization of a dual-purpose power and desalination plant. Desalination, 136(1-3), 147-158.
  • [9] Zamen, M., Amidpour, M., & Soufari, S. M. (2009). Cost optimization of a solar humidification–dehumidification desalination unit using mathematical programming. Desalination, 239(1-3), 92-99.
  • [10] Wang, Y., & Lior, N. (2006). Performance analysis of combined humidified gas turbine power generation and multi-effect thermal vapor compression desalination systems—Part 1: The desalination unit and its combination with a steam-injected gas turbine power system. Desalination, 196(1-3), 84-104.
  • [11] J. Johansen, R.F. Babus'Haq, S.D. Probert, An integrated CHP and desalination plant, Appl. Energy 53 (1996) 157–178.
  • [12] Wade, N. M. (1999). Energy and cost allocation in dual-purpose power and desalination plants. Desalination, 123(2-3), 115-125.
  • [13] Cardona, E., & Piacentino, A. (2004). Optimal design of cogeneration plants for seawater desalination. Desalination, 166, 411-426.
  • [14] Darwish, M. A. (2004). Co-generation power desalting plants: new outlook with gas turbines. Desalination, 161(1), 1-12.
  • [15] Rensonnet, T., Uche, J., & Serra, L. (2007). Simulation and thermoeconomic analysis of different configurations of gas turbine (GT)-based dual-purpose power and desalination plants (DPPDP) and hybrid plants (HP). Energy, 32(6), 1012-1023.
  • [16] Wang, Y., & Lior, N. (2006). Performance analysis of combined humidified gas turbine power generation and multi-effect thermal vapor compression desalination systems—Part 1: The desalination unit and its combination with a steam-injected gas turbine power system. Desalination, 196(1-3), 84-104.
  • [17] Wang, Y., & Lior, N. (2007). Performance analysis of combined humidified gas turbine power generation and multi-effect thermal vapor compression desalination systems—Part 2: The evaporative gas turbine based system and some discussions. Desalination 207, 243–256.
  • [18] Chacartegui, R., Sanchez, D., Di Gregorio, N., Jiménez-Espadafor, F. J., Munoz, A., & Sanchez, T. (2009). Feasibility analysis of a MED desalination plant in a combined cycle based cogeneration facility. Applied thermal engineering, 29(2-3), 412-417.
  • [19] Manesh, M. K., & Amidpour, M. (2009). Multi-objective thermoeconomic optimization of coupling MSF desalination with PWR nuclear power plant through evolutionary algorithms. Desalination, 249(3), 1332-1344.
  • [20] Ansari, K., Sayyaadi, H., & Amidpour, M. (2010). Thermoeconomic optimization of a hybrid pressurized water reactor (PWR) power plant coupled to a multi effect distillation desalination system with thermo-vapor compressor (MED-TVC). Energy, 35(5), 1981-1996.
  • [21] Hosseini, S. R., Amidpour, M., & Behbahaninia, A. (2011). Thermoeconomic analysis with reliability consideration of a combined power and multi stage flash desalination plant. Desalination, 278(1-3), 424-433.
  • [22] Hosseini, S. R., Amidpour, M., & Shakib, S. E. (2012). Cost optimization of a combined power and water desalination plant with exergetic, environment and reliability consideration. Desalination, 285, 123-130.
  • [23] Shakib, S. E., Amidpour, M., & Aghanajafi, C. (2012). A new approach for process optimization of a METVC desalination system. Desalination and Water Treatment, 37(1-3), 84-96.
  • [24] Shakib, S. E., Amidpour, M., & Aghanajafi, C. (2012). Simulation and optimization of multi effect desalination coupled to a gas turbine plant with HRSG consideration. Desalination, 285, 366-376.
  • [25] Esfahani, I. J., & Yoo, C. (2014). Feasibility study and performance assessment for the integration of a steam-injected gas turbine and thermal desalination system. Desalination, 332(1), 18-32.
  • [26] Almutairi, A., Pilidis, P., Al-Mutawa, N., & Al-Weshahi, M. (2016). Energetic and exergetic analysis of cogeneration power combined cycle and ME-TVC-MED water desalination plant: Part-1 operation and performance. Applied Thermal Engineering, 103, 77-91.
  • [27] Hanafi, A. S., Mostafa, G. M., Fathy, A., & Waheed, A. (2015). Thermo-economic analysis of combined cycle MED-TVC desalination system. Energy Procedia, 75, 1005-1020.
  • [28] Sanaye, S., & Asgari, S. (2013). Four E analysis and multi-objective optimization of combined cycle power plants integrated with Multi-stage Flash (MSF) desalination unit. Desalination, 320, 105-117.
  • [29] Bejan, A., & Tsatsaronis, G. (1996). Thermal design and optimization. John Wiley & Sons.
  • [30] Korakianitis, T., & Wilson, D. G. (1994). Methods for prediction the performance of Brayton-cycle engines. ASME Journal of Engineering for Gas Turbines and Power, 166, 381–388.
  • [31] Herold, K. E., Radermacher, R., & Klein, S. A. (2016). Absorption chillers and heat pumps. CRC press.
  • [32] Kamali, R. K., Abbassi, A., & Vanini, S. S. (2009). A simulation model and parametric study of MED–TVC process. Desalination, 235(1-3), 340-351.
  • [33] Sayyaadi, H., & Saffari, A. (2010). Thermoeconomic optimization of multi effect distillation desalination systems. Applied Energy, 87(4), 1122-1133.
There are 33 citations in total.

Details

Primary Language English
Subjects Engineering
Journal Section Articles
Authors

Hadi Ghaebi This is me

Publication Date March 22, 2018
Submission Date December 28, 2016
Published in Issue Year 2018 Volume: 4 Issue: 3

Cite

APA Ghaebi, H. (2018). PERFORMANCE ANALYSIS AND THERMODYNAMIC MODELING OF A POLY GENERATION SYSTEM BY INTEGRATING A MULTI-EFFECT-DESALINATION THERMO-VAPOR COMPRESSION (MED-TVC) SYSTEM WITH A COMBINED COOLING, HEATING AND POWER (CCHP) SYSTEM. Journal of Thermal Engineering, 4(3), 1963-1983. https://doi.org/10.18186/journal-of-thermal-engineering.410264
AMA Ghaebi H. PERFORMANCE ANALYSIS AND THERMODYNAMIC MODELING OF A POLY GENERATION SYSTEM BY INTEGRATING A MULTI-EFFECT-DESALINATION THERMO-VAPOR COMPRESSION (MED-TVC) SYSTEM WITH A COMBINED COOLING, HEATING AND POWER (CCHP) SYSTEM. Journal of Thermal Engineering. March 2018;4(3):1963-1983. doi:10.18186/journal-of-thermal-engineering.410264
Chicago Ghaebi, Hadi. “PERFORMANCE ANALYSIS AND THERMODYNAMIC MODELING OF A POLY GENERATION SYSTEM BY INTEGRATING A MULTI-EFFECT-DESALINATION THERMO-VAPOR COMPRESSION (MED-TVC) SYSTEM WITH A COMBINED COOLING, HEATING AND POWER (CCHP) SYSTEM”. Journal of Thermal Engineering 4, no. 3 (March 2018): 1963-83. https://doi.org/10.18186/journal-of-thermal-engineering.410264.
EndNote Ghaebi H (March 1, 2018) PERFORMANCE ANALYSIS AND THERMODYNAMIC MODELING OF A POLY GENERATION SYSTEM BY INTEGRATING A MULTI-EFFECT-DESALINATION THERMO-VAPOR COMPRESSION (MED-TVC) SYSTEM WITH A COMBINED COOLING, HEATING AND POWER (CCHP) SYSTEM. Journal of Thermal Engineering 4 3 1963–1983.
IEEE H. Ghaebi, “PERFORMANCE ANALYSIS AND THERMODYNAMIC MODELING OF A POLY GENERATION SYSTEM BY INTEGRATING A MULTI-EFFECT-DESALINATION THERMO-VAPOR COMPRESSION (MED-TVC) SYSTEM WITH A COMBINED COOLING, HEATING AND POWER (CCHP) SYSTEM”, Journal of Thermal Engineering, vol. 4, no. 3, pp. 1963–1983, 2018, doi: 10.18186/journal-of-thermal-engineering.410264.
ISNAD Ghaebi, Hadi. “PERFORMANCE ANALYSIS AND THERMODYNAMIC MODELING OF A POLY GENERATION SYSTEM BY INTEGRATING A MULTI-EFFECT-DESALINATION THERMO-VAPOR COMPRESSION (MED-TVC) SYSTEM WITH A COMBINED COOLING, HEATING AND POWER (CCHP) SYSTEM”. Journal of Thermal Engineering 4/3 (March 2018), 1963-1983. https://doi.org/10.18186/journal-of-thermal-engineering.410264.
JAMA Ghaebi H. PERFORMANCE ANALYSIS AND THERMODYNAMIC MODELING OF A POLY GENERATION SYSTEM BY INTEGRATING A MULTI-EFFECT-DESALINATION THERMO-VAPOR COMPRESSION (MED-TVC) SYSTEM WITH A COMBINED COOLING, HEATING AND POWER (CCHP) SYSTEM. Journal of Thermal Engineering. 2018;4:1963–1983.
MLA Ghaebi, Hadi. “PERFORMANCE ANALYSIS AND THERMODYNAMIC MODELING OF A POLY GENERATION SYSTEM BY INTEGRATING A MULTI-EFFECT-DESALINATION THERMO-VAPOR COMPRESSION (MED-TVC) SYSTEM WITH A COMBINED COOLING, HEATING AND POWER (CCHP) SYSTEM”. Journal of Thermal Engineering, vol. 4, no. 3, 2018, pp. 1963-8, doi:10.18186/journal-of-thermal-engineering.410264.
Vancouver Ghaebi H. PERFORMANCE ANALYSIS AND THERMODYNAMIC MODELING OF A POLY GENERATION SYSTEM BY INTEGRATING A MULTI-EFFECT-DESALINATION THERMO-VAPOR COMPRESSION (MED-TVC) SYSTEM WITH A COMBINED COOLING, HEATING AND POWER (CCHP) SYSTEM. Journal of Thermal Engineering. 2018;4(3):1963-8.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK http://eds.yildiz.edu.tr/journal-of-thermal-engineering