生物炼制
生物量(生态学)
分馏
生物制品
生物燃料
生物能源
木质纤维素生物量
环境科学
工艺工程
热液循环
生化工程
蒸汽爆炸
废物管理
制浆造纸工业
工程类
化学
化学工程
色谱法
农学
生物
作者
Héctor A. Ruíz,Mats Galbe,Gil Garrote,Diana M. Ramirez-Gutierrez,Eduardo Ximenes,Shao Ni Sun,Daniel Lachos‐Perez,Rosa M. Rodríguez-Jasso,Run Cang Sun,Bin Yang,Michael R. Ladisch
标识
DOI:10.1016/j.biortech.2021.125961
摘要
Hydrothermal processes are an attractive clean technology and cost-effective engineering platform for biorefineries based in the conversion of biomass to biofuels and high-value bioproducts under the basis of sustainability and circular bioeconomy. The deep and detailed knowledge of the structural changes by the severity of biomasses hydrothermal fractionation is scientifically and technological needed in order to improve processes effectiveness, reactors designs, and industrial application of the multi-scale target compounds obtained by steam explosion and liquid hot water systems. The concept of the severity factor [log10 (Ro)] established>30 years ago, continues to be a useful index that can provide a simple descriptor of the relationship between the operational conditions for biomass fractionation in second generation of biorefineries. This review develops a deep explanation of the hydrothermal severity factor based in lignocellulosic biomass fractionation with emphasis in research advances, pretreatment operations and the applications of severity factor kinetic model.
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