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Techno-economic analysis of the thermal liquefaction of sugarcane bagasse in ethanol to produce liquid fuels

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  • Ramirez, Jerome A.
  • Brown, Richard
  • Rainey, Thomas J.

Abstract

A plant converting sugarcane bagasse to liquid fuels through thermal liquefaction in an Australian setting was modelled in ASPEN Plus. Ethanol was investigated as a liquefaction solvent due to its effect of higher yields and higher biocrude heating value compared to water (i.e. hydrothermal liquefaction). The plant produced 0.67 kg biocrude per kg dry feed, which was further processed to 0.46 kg liquid fuels per kg of dry feed for a total of 25.8 million L/y of biofuel product. Ethanol losses incurred the highest share in operating costs, although there are opportunities for cost reduction around lower solvent to biomass ratio. Over the plant life and with a corporate tax rate of 30%, it was determined that the minimum selling price for the fuel products is US$ 0.99/L, which was comparable to other liquefaction studies using water as solvent. It was demonstrated that continuous operation mode was economically more advantageous than semi-batch production. Product price, hydrodeoxygenation conversion efficiency and plant capacity were determined to be the factors to which NPV is most sensitive, while biocrude yield and hydrodeoxygenation conversion efficiency were the key factors in decreasing the minimum selling price of the product to a level that can be competitive.

Suggested Citation

  • Ramirez, Jerome A. & Brown, Richard & Rainey, Thomas J., 2018. "Techno-economic analysis of the thermal liquefaction of sugarcane bagasse in ethanol to produce liquid fuels," Applied Energy, Elsevier, vol. 224(C), pages 184-193.
  • Handle: RePEc:eee:appene:v:224:y:2018:i:c:p:184-193
    DOI: 10.1016/j.apenergy.2018.04.127
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    References listed on IDEAS

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    1. Puri, Munish & Abraham, Reinu E. & Barrow, Colin J., 2012. "Biofuel production: Prospects, challenges and feedstock in Australia," Renewable and Sustainable Energy Reviews, Elsevier, vol. 16(8), pages 6022-6031.
    2. Tzanetis, Konstantinos F. & Posada, John A. & Ramirez, Andrea, 2017. "Analysis of biomass hydrothermal liquefaction and biocrude-oil upgrading for renewable jet fuel production: The impact of reaction conditions on production costs and GHG emissions performance," Renewable Energy, Elsevier, vol. 113(C), pages 1388-1398.
    3. Zhu, Yunhua & Biddy, Mary J. & Jones, Susanne B. & Elliott, Douglas C. & Schmidt, Andrew J., 2014. "Techno-economic analysis of liquid fuel production from woody biomass via hydrothermal liquefaction (HTL) and upgrading," Applied Energy, Elsevier, vol. 129(C), pages 384-394.
    4. Kosinkova, Jana & Doshi, Amar & Maire, Juliette & Ristovski, Zoran & Brown, Richard & Rainey, Thomas J., 2015. "Measuring the regional availability of biomass for biofuels and the potential for microalgae," Renewable and Sustainable Energy Reviews, Elsevier, vol. 49(C), pages 1271-1285.
    5. Magdeldin, Mohamed & Kohl, Thomas & Järvinen, Mika, 2017. "Techno-economic assessment of the by-products contribution from non-catalytic hydrothermal liquefaction of lignocellulose residues," Energy, Elsevier, vol. 137(C), pages 679-695.
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    Cited by:

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    4. Chen, Hao & Su, Xin & He, Jingjing & Zhang, Peng & Xu, Hongming & Zhou, Chenglong, 2021. "Investigation on combustion characteristics of cyclopentanol/diesel fuel blends in an optical engine," Renewable Energy, Elsevier, vol. 167(C), pages 811-829.
    5. Feng, Weiliang & Xiong, Huan & Wang, Weiguo & Duan, Xiaoling & Yang, Tong & Wu, Cheng & Yang, Fang & Wang, Teilin & Wang, Cunwen, 2020. "A facile and mild one-pot process for direct extraction of lipids from wet energy insects of black soldier fly larvae," Renewable Energy, Elsevier, vol. 147(P1), pages 584-593.
    6. Safder, Usman & Nguyen, Hai-Tra & Ifaei, Pouya & Yoo, ChangKyoo, 2021. "Energetic, economic, exergetic, and exergorisk (4E) analyses of a novel multi-generation energy system assisted with bagasse-biomass gasifier and multi-effect desalination unit," Energy, Elsevier, vol. 219(C).

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