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Process integration and exergy analysis of the autothermal reforming of glycerol using supercritical water

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  • Gutiérrez Ortiz, F.J.
  • Ollero, P.
  • Serrera, A.
  • Galera, S.

Abstract

The most thermodynamically favorable operating conditions at which glycerol can be converted into hydrogen with maximum hydrogen yield by autothermal reforming using supercritical water were identified in a previous paper. As a second part of the study, a conceptual design based on energy integration and exergy analysis of the whole process has been performed. In the proposed scheme, the huge pressure energy of the gas product just at the outlet of the reforming reactor is converted into electrical power and a fraction of the expanded gas used to provide energy support for the process by burning it in a furnace, if needed. By using the optimal conditions found in the previous work, a severe deficit of energy arises in the process. Thus, both water-to-glycerol and oxygen-to-glycerol mole ratios at which thermoneutral conditions are achieved in the reformer are computed by burning all the product gas from the reformer, both for pure and pretreated crude glycerol, at different reforming and preheating temperatures. The pressure used is 240 atm. The effects of the main operating parameters are investigated by sensitivity analysis to identify optimal conditions to maximize power production under autothermal conditions, evaluating the results by energy and exergy analyses. The computations are made with the aid of AspenPlus™, using the predictive Soave–Redlich–Kwong equation of state as the thermodynamic method in the simulation of the supercritical region.

Suggested Citation

  • Gutiérrez Ortiz, F.J. & Ollero, P. & Serrera, A. & Galera, S., 2012. "Process integration and exergy analysis of the autothermal reforming of glycerol using supercritical water," Energy, Elsevier, vol. 42(1), pages 192-203.
  • Handle: RePEc:eee:energy:v:42:y:2012:i:1:p:192-203
    DOI: 10.1016/j.energy.2012.03.069
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    2. Aghbashlo, Mortaza & Tabatabaei, Meisam & Rastegari, Hajar & Ghaziaskar, Hassan S. & Roodbar Shojaei, Taha, 2018. "On the exergetic optimization of solketalacetin synthesis as a green fuel additive through ketalization of glycerol-derived monoacetin with acetone," Renewable Energy, Elsevier, vol. 126(C), pages 242-253.
    3. Aghbashlo, Mortaza & Tabatabaei, Meisam & Rastegari, Hajar & Ghaziaskar, Hassan S. & Valijanian, Elena, 2018. "Exergy-based optimization of a continuous reactor applied to produce value-added chemicals from glycerol through esterification with acetic acid," Energy, Elsevier, vol. 150(C), pages 351-362.
    4. Cao, Changqing & Guo, Liejin & Jin, Hui & Cao, Wen & Jia, Yi & Yao, Xiangdong, 2017. "System analysis of pulping process coupled with supercritical water gasification of black liquor for combined hydrogen, heat and power production," Energy, Elsevier, vol. 132(C), pages 238-247.
    5. Ruya, Petric Marc & Lim, Siew Shee & Purwadi, Ronny & Zunita, Megawati, 2020. "Sustainable hydrogen production from oil palm derived wastes through autothermal operation of supercritical water gasification system," Energy, Elsevier, vol. 208(C).
    6. Hajjaji, Noureddine & Chahbani, Amna & Khila, Zouhour & Pons, Marie-Noëlle, 2014. "A comprehensive energy–exergy-based assessment and parametric study of a hydrogen production process using steam glycerol reforming," Energy, Elsevier, vol. 64(C), pages 473-483.
    7. Wang, Guoqiang & Wang, Feng & Li, Longjian & Zhang, Guofu, 2013. "Experiment of catalyst activity distribution effect on methanol steam reforming performance in the packed bed plate-type reactor," Energy, Elsevier, vol. 51(C), pages 267-272.

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