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Intensified levulinic acid/ester production from cassava by one-pot cascade prehydrolysis and delignification

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  • Zhao, Weijie
  • Li, Yingwen
  • Song, Changhua
  • Liu, Sijie
  • Li, Xuehui
  • Long, Jinxing

Abstract

A novel and efficient process for levulinic acid/ester production from non-edible cassava is proposed via a one-pot cascade processes of prehydrolysis and delignification. The intensification effect of monosaccharide formation (prehydrolysis) and the solvent effect for delignification were investigated extensively. The influences of reaction conditions, such as, reaction temperature, time and catalyst concentration, were examined. The results show that prehydrolysis and delignification have significant promotional effects on levulinic acid/ester production. 60.36% levulinic acid/ester yield at a process efficiency of 88.90% can be obtained at 160°C for 3.0h when cassava is pretreated at 100°C for 1.0h. However, only 32.18% yield and 46.98% process efficiency are observed without prehydrolysis. Characterization of the starting feedstock and residues using compositional analysis, Fourier transform infrared spectroscopy, and elemental analysis demonstrate that efficient lignin removal has a positive influence for levulinic acid/ester formation. Moreover, this process is robust and suitable for scale-up, indicating that it has a great potential for industrial levulinic acid/ester production.

Suggested Citation

  • Zhao, Weijie & Li, Yingwen & Song, Changhua & Liu, Sijie & Li, Xuehui & Long, Jinxing, 2017. "Intensified levulinic acid/ester production from cassava by one-pot cascade prehydrolysis and delignification," Applied Energy, Elsevier, vol. 204(C), pages 1094-1100.
  • Handle: RePEc:eee:appene:v:204:y:2017:i:c:p:1094-1100
    DOI: 10.1016/j.apenergy.2017.03.116
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    1. Long, Jinxing & Xu, Ying & Wang, Tiejun & Yuan, Zhengqiu & Shu, Riyang & Zhang, Qi & Ma, Longlong, 2015. "Efficient base-catalyzed decomposition and in situ hydrogenolysis process for lignin depolymerization and char elimination," Applied Energy, Elsevier, vol. 141(C), pages 70-79.
    2. Xu, Feng & Yu, Jianming & Tesso, Tesfaye & Dowell, Floyd & Wang, Donghai, 2013. "Qualitative and quantitative analysis of lignocellulosic biomass using infrared techniques: A mini-review," Applied Energy, Elsevier, vol. 104(C), pages 801-809.
    3. Feng, Junfeng & Jiang, Jianchun & Xu, Junming & Yang, Zhongzhi & Wang, Kui & Guan, Qian & Chen, Shuigen, 2015. "Preparation of methyl levulinate from fractionation of direct liquefied bamboo biomass," Applied Energy, Elsevier, vol. 154(C), pages 520-527.
    4. Yan, Kai & Chen, Aicheng, 2013. "Efficient hydrogenation of biomass-derived furfural and levulinic acid on the facilely synthesized noble-metal-free Cu–Cr catalyst," Energy, Elsevier, vol. 58(C), pages 357-363.
    5. Tsapekos, P. & Kougias, P.G. & Treu, L. & Campanaro, S. & Angelidaki, I., 2017. "Process performance and comparative metagenomic analysis during co-digestion of manure and lignocellulosic biomass for biogas production," Applied Energy, Elsevier, vol. 185(P1), pages 126-135.
    6. Yoon, S.-Y. & Han, S.-H. & Shin, S.-J., 2014. "The effect of hemicelluloses and lignin on acid hydrolysis of cellulose," Energy, Elsevier, vol. 77(C), pages 19-24.
    7. Zhang, Xinghua & Chen, Lungang & Kong, Wei & Wang, Tiejun & Zhang, Qi & Long, Jinxing & Xu, Ying & Ma, Longlong, 2015. "Upgrading of bio-oil to boiler fuel by catalytic hydrotreatment and esterification in an efficient process," Energy, Elsevier, vol. 84(C), pages 83-90.
    8. Wang, Tiejun & Li, Kai & Liu, Qiying & Zhang, Qing & Qiu, Songbai & Long, Jinxing & Chen, Lungang & Ma, Longlong & Zhang, Qi, 2014. "Aviation fuel synthesis by catalytic conversion of biomass hydrolysate in aqueous phase," Applied Energy, Elsevier, vol. 136(C), pages 775-780.
    9. Nikodinoska, Natasha & Buonocore, Elvira & Paletto, Alessandro & Franzese, Pier Paolo, 2017. "Wood-based bioenergy value chain in mountain urban districts: An integrated environmental accounting framework," Applied Energy, Elsevier, vol. 186(P2), pages 197-210.
    10. Kim, Tae Hoon & Kim, Tae Hyun, 2014. "Overview of technical barriers and implementation of cellulosic ethanol in the U.S," Energy, Elsevier, vol. 66(C), pages 13-19.
    11. Zhang, Xinghua & Wang, Tiejun & Ma, Longlong & Zhang, Qi & Huang, Xiaoming & Yu, Yuxiao, 2013. "Production of cyclohexane from lignin degradation compounds over Ni/ZrO2–SiO2 catalysts," Applied Energy, Elsevier, vol. 112(C), pages 533-538.
    12. Daroch, Maurycy & Geng, Shu & Wang, Guangyi, 2013. "Recent advances in liquid biofuel production from algal feedstocks," Applied Energy, Elsevier, vol. 102(C), pages 1371-1381.
    13. Raspolli Galletti, Anna Maria & Antonetti, Claudia & Ribechini, Erika & Colombini, Maria Perla & Nassi o Di Nasso, Nicoletta & Bonari, Enrico, 2013. "From giant reed to levulinic acid and gamma-valerolactone: A high yield catalytic route to valeric biofuels," Applied Energy, Elsevier, vol. 102(C), pages 157-162.
    14. Peng, Lincai & Lin, Lu & Li, Hui & Yang, Qiulin, 2011. "Conversion of carbohydrates biomass into levulinate esters using heterogeneous catalysts," Applied Energy, Elsevier, vol. 88(12), pages 4590-4596.
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