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Thermodynamic analysis of biomass gasification for biomethane production

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  • Wang, Sheng
  • Bi, Xiaotao
  • Wang, Shudong

Abstract

A thermodynamic analysis has been performed to predict the biomass gasification performance on the basis of the minimization of Gibbs free energy. The theoretical methane yield was further predicted based on the equilibrium in the downstream processes. A C–H–O ternary diagram is proposed to predict the boundary for the formation of carbon deposit. Three zones, namely carbon deposit, carbon-free and intermediate zone, are defined, with possible carbon formation or elimination mechanisms being postulated. The biomass gasification performance using different gasifying agents, namely H2O, CO2, O2 or air, was then analyzed. Results showed that the steam addition is conductive to enhance carbon conversion and shrink the carbon deposit zone, but the use of air, O2 and CO2 will impose a negative impact on the methane yield and H2/CO ratio. The maximum methane yield can be achieved at the temperature at which carbon is completely converted. The effects of pressure are dependent on whether or not solid carbon is absent. Based on the analysis on thermodynamic and exergetic efficiencies, it is concluded that steam gasification is the preferred conversion scheme for biomethane production.

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  • Wang, Sheng & Bi, Xiaotao & Wang, Shudong, 2015. "Thermodynamic analysis of biomass gasification for biomethane production," Energy, Elsevier, vol. 90(P2), pages 1207-1218.
  • Handle: RePEc:eee:energy:v:90:y:2015:i:p2:p:1207-1218
    DOI: 10.1016/j.energy.2015.06.073
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    1. Ptasinski, Krzysztof J. & Prins, Mark J. & Pierik, Anke, 2007. "Exergetic evaluation of biomass gasification," Energy, Elsevier, vol. 32(4), pages 568-574.
    2. Chaiwatanodom, Paphonwit & Vivanpatarakij, Supawat & Assabumrungrat, Suttichai, 2014. "Thermodynamic analysis of biomass gasification with CO2 recycle for synthesis gas production," Applied Energy, Elsevier, vol. 114(C), pages 10-17.
    3. Prins, Mark J. & Ptasinski, Krzysztof J. & Janssen, Frans J.J.G., 2007. "From coal to biomass gasification: Comparison of thermodynamic efficiency," Energy, Elsevier, vol. 32(7), pages 1248-1259.
    4. Prins, Mark J. & Ptasinski, Krzysztof J. & Janssen, Frans J.J.G., 2006. "More efficient biomass gasification via torrefaction," Energy, Elsevier, vol. 31(15), pages 3458-3470.
    5. Juraščík, Martin & Sues, Anna & Ptasinski, Krzysztof J., 2010. "Exergy analysis of synthetic natural gas production method from biomass," Energy, Elsevier, vol. 35(2), pages 880-888.
    6. Lv, Pengmei & Yuan, Zhenhong & Ma, Longlong & Wu, Chuangzhi & Chen, Yong & Zhu, Jingxu, 2007. "Hydrogen-rich gas production from biomass air and oxygen/steam gasification in a downdraft gasifier," Renewable Energy, Elsevier, vol. 32(13), pages 2173-2185.
    7. Ngo, Son Ich & Nguyen, Thanh D.B. & Lim, Young-Il & Song, Byung-Ho & Lee, Uen-Do & Choi, Young-Tai & Song, Jae-Hun, 2011. "Performance evaluation for dual circulating fluidized-bed steam gasifier of biomass using quasi-equilibrium three-stage gasification model," Applied Energy, Elsevier, vol. 88(12), pages 5208-5220.
    8. Valero, Antonio & Usón, Sergio, 2006. "Oxy-co-gasification of coal and biomass in an integrated gasification combined cycle (IGCC) power plant," Energy, Elsevier, vol. 31(10), pages 1643-1655.
    9. Wang, Jianliang & Feng, Lianyong & Zhao, Lin & Snowden, Simon, 2013. "China's natural gas: Resources, production and its impacts," Energy Policy, Elsevier, vol. 55(C), pages 690-698.
    10. Zeng, Xianyang & Ma, Yitai & Ma, Lirong, 2007. "Utilization of straw in biomass energy in China," Renewable and Sustainable Energy Reviews, Elsevier, vol. 11(5), pages 976-987, June.
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