Department of Aeronautics and Astronautics, National Cheng Kung University, Tainan 701, Taiwan; Research Center for Smart Sustainable Circular Economy, Tunghai University, Taichung 407, Taiwan.
University of Split, FESB, Rudjera Boskovica 32, 21000 Split, Croatia.
Bioresour Technol. 2022 Jan;344(Pt A):126207. doi: 10.1016/j.biortech.2021.126207. Epub 2021 Oct 26.
In recent years, lignocellulosic biomass has emerged as one of the most versatile energy sources among the research community for the production of biofuels and value-added chemicals. However, biomass pretreatment plays an important role in reducing the recalcitrant properties of lignocellulose, leading to superior quality of target products in bioenergy production. Among existing pretreatment techniques, liquid hot water (LHW) pretreatment has several outstanding advantages compared to others including minimum formation of monomeric sugars, significant removal of hemicellulose, and positive environmental impacts; however, several constraints of LHW pretreatment should be clarified. This contribution aims to provide a comprehensive analysis of reaction mechanism, reactor characteristics, influencing factors, techno-economic aspects, challenges, and prospects for LHW-based biomass pretreatment. Generally, LHW pretreatment could be widely employed in bioenergy processing from biomass, but circular economy-based advanced pretreatment techniques should be further studied in the future to achieve maximum efficiency, and minimum cost and drawbacks.
近年来,木质纤维素生物质作为研究社区生产生物燃料和高附加值化学品的最通用能源之一而崭露头角。然而,生物质预处理在降低木质纤维素的顽固性方面起着重要作用,从而在生物能源生产中获得更高质量的目标产品。在现有的预处理技术中,与其他技术相比,液态热水(LHW)预处理具有几个突出的优点,包括单体糖的最小形成、半纤维素的显著去除和积极的环境影响;然而,LHW 预处理的几个限制因素仍需澄清。本研究旨在对基于 LHW 的生物质预处理的反应机制、反应器特性、影响因素、技术经济方面、挑战和前景进行全面分析。一般来说,LHW 预处理可以广泛应用于生物质的生物能源加工,但未来应进一步研究基于循环经济的先进预处理技术,以实现最高效率、最低成本和最小缺点。