Research Article

EVALUATING INTEGRATION OF BIOMASS GASIFICATION PROCESS WITH SOLID OXIDE FUEL CELL AND TORREFACTION PROCESS

Volume: 5 Number: 6 October 8, 2019
  • Alibakhsh Kasaeian *
EN

EVALUATING INTEGRATION OF BIOMASS GASIFICATION PROCESS WITH SOLID OXIDE FUEL CELL AND TORREFACTION PROCESS

Abstract

In the present study, the integration of a solid oxide fuel cell with the biomass gasification process in which the torrefied biomass produced in a torrefaction process is used as the feedstock has been investigated. This novel design gives the power generation system the advantage of eliminating the filtration of the fuel cell inlet gas. This is because of the absence of sulfur and its derivatives in the synthesized gas owing to the terrified biomass, as the feedstock of the gasification process. Moreover, the integration of the processes makes it possible to employ the heat recovery methods. Therefore, by using the high-grade thermal energies for preheating process flows, the presented design considers the maximum available heat recovery and minimum heat and mass losses. The optimum design is determined by the sensitivity analysis and then simulated using the ASPEN PLUS software and its performance has been studied. It was specified that in the optimum operation state, the gasifier outlet temperature and pressure are 950 °C and 5 bar, respectively. Also, the oxygen flow rate in the anode of SOFC and the combustion chamber are 3.03 and 0.81 kmol/h, respectively. Moreover, the results showed that the presented design causes an improvement in the performance of the fuel cell. The electrical efficiency and the overall efficiency of the system are determined to be in the range of 63-69% and 80-85%, respectively. Also, it was revealed that the presented design has the power generation capacity of 100 to 997 kW.

Keywords

References

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Details

Primary Language

English

Subjects

Engineering

Journal Section

Research Article

Authors

Alibakhsh Kasaeian * This is me
Iran

Publication Date

October 8, 2019

Submission Date

February 9, 2018

Acceptance Date

February 26, 2018

Published in Issue

Year 2019 Volume: 5 Number: 6

APA
Kasaeian, A. (2019). EVALUATING INTEGRATION OF BIOMASS GASIFICATION PROCESS WITH SOLID OXIDE FUEL CELL AND TORREFACTION PROCESS. Journal of Thermal Engineering, 5(6), 230-239. https://doi.org/10.18186/thermal.654637
AMA
1.Kasaeian A. EVALUATING INTEGRATION OF BIOMASS GASIFICATION PROCESS WITH SOLID OXIDE FUEL CELL AND TORREFACTION PROCESS. Journal of Thermal Engineering. 2019;5(6):230-239. doi:10.18186/thermal.654637
Chicago
Kasaeian, Alibakhsh. 2019. “EVALUATING INTEGRATION OF BIOMASS GASIFICATION PROCESS WITH SOLID OXIDE FUEL CELL AND TORREFACTION PROCESS”. Journal of Thermal Engineering 5 (6): 230-39. https://doi.org/10.18186/thermal.654637.
EndNote
Kasaeian A (October 1, 2019) EVALUATING INTEGRATION OF BIOMASS GASIFICATION PROCESS WITH SOLID OXIDE FUEL CELL AND TORREFACTION PROCESS. Journal of Thermal Engineering 5 6 230–239.
IEEE
[1]A. Kasaeian, “EVALUATING INTEGRATION OF BIOMASS GASIFICATION PROCESS WITH SOLID OXIDE FUEL CELL AND TORREFACTION PROCESS”, Journal of Thermal Engineering, vol. 5, no. 6, pp. 230–239, Oct. 2019, doi: 10.18186/thermal.654637.
ISNAD
Kasaeian, Alibakhsh. “EVALUATING INTEGRATION OF BIOMASS GASIFICATION PROCESS WITH SOLID OXIDE FUEL CELL AND TORREFACTION PROCESS”. Journal of Thermal Engineering 5/6 (October 1, 2019): 230-239. https://doi.org/10.18186/thermal.654637.
JAMA
1.Kasaeian A. EVALUATING INTEGRATION OF BIOMASS GASIFICATION PROCESS WITH SOLID OXIDE FUEL CELL AND TORREFACTION PROCESS. Journal of Thermal Engineering. 2019;5:230–239.
MLA
Kasaeian, Alibakhsh. “EVALUATING INTEGRATION OF BIOMASS GASIFICATION PROCESS WITH SOLID OXIDE FUEL CELL AND TORREFACTION PROCESS”. Journal of Thermal Engineering, vol. 5, no. 6, Oct. 2019, pp. 230-9, doi:10.18186/thermal.654637.
Vancouver
1.Alibakhsh Kasaeian. EVALUATING INTEGRATION OF BIOMASS GASIFICATION PROCESS WITH SOLID OXIDE FUEL CELL AND TORREFACTION PROCESS. Journal of Thermal Engineering. 2019 Oct. 1;5(6):230-9. doi:10.18186/thermal.654637

Cited By

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