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Decoupling thermal and non-thermal effects of the microwaves for lignocellulosic biomass pretreatment

机译:微波对木质纤维素生物质预处理的热和非热效应解耦

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In order to develop an efficient biorefinery concept based on the sustainable use of biomass, pretreatments are a major issue as they consume a considerable amount of energy, among others. Competitive and sustainable bioconversion technologies are required and microwave (MW) treatment has emerged as an interesting option during the recent years. Nevertheless, MW action mode on lignocellulosic biomass is not yet fully understood. With some exceptions, experimental investigations dealing with MW pretreatment do not address this important aspect nor energy and power level effects on biomass conversion.To study the action mode of MW on lignocellulosic biomass and its energy absorption behavior, MW assisted pretreatments of three types of grass biomass of industrial interest were performed at several solid to liquid (S/L) ratios, i.e. 1/21 or 1/9, with different solvents (water, ethanol, acid water or alkaline water) and different MW power densities (2.38 or 4.76 W/g). Incident, reflected and absorbed MW power levels and the reaction temperatures were monitored on-line. Thermal and non-thermal MW effects were studied by comparing experiments performed with a glass reactor and an in-house-made jacketed glass reactor designed to avoid the heating of sample. Under the tested conditions, only thermal MW effects have been detected. In an attempt to optimize the bio-solubilization of biomass components, microwave pretreatment with increased pressure and incident power density (7.5 W/g) was also tested. The cell wall was significantly impacted with a solubilization of 33% of hemicelluloses, which opens the way to industrial applications.To our knowledge, this is the first reported experimental study that addresses the non-thermal MW effects on biomass by decoupling heating effect from irradiation.
机译:为了基于生物质的可持续利用发展高效的生物精炼概念,预处理是一个主要问题,因为预处理消耗大量能源。需要竞争性和可持续性的生物转化技术,近年来,微波(MW)处理已成为一种有趣的选择。然而,对木质纤维素生物质的MW作用方式尚未完全了解。除某些例外,有关兆瓦前处理的实验研究未解决这一重要方面,也未解决能量和功率水平对生物量转化的影响。为了研究兆瓦对木质纤维素生物量的作用方式及其能量吸收行为,兆瓦辅助对三种类型草的预处理具有工业意义的生物质以几种固液比(S / L)(即1/21或1/9)和不同的溶剂(水,乙醇,酸性水或碱性水)和不同的MW功率密度(2.38或4.76)进行W / g)。在线监测入射,反射和吸收的MW功率水平以及反应温度。通过比较在玻璃反应器和为避免样品加热而设计的自制夹套玻璃反应器中进行的实验,研究了热和非热兆瓦效应。在测试条件下,仅检测到热MW效应。为了优化生物质组分的生物增溶作用,还测试了压力增加和入射功率密度(7.5 W / g)的微波预处理。 33%的半纤维素溶解会显着影响细胞壁,这为工业应用开辟了道路。据我们所知,这是第一个报道的实验研究,通过将辐射的热效应解耦来解决非热MW对生物质的影响。

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