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Using in-situ viscosimetry and morphogranulometry to explore hydrolysis mechanisms of filter paper and pretreated sugarcane bagasse under semi-dilute suspensions

机译:在半稀释悬浮液下探讨滤纸和预处理甘蔗泡沫的水解机制,探讨半稀悬浮液下的水解机理

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摘要

The relationship betweenin-situviscosimetry,in- andex-situmorphogranulometry, and biochemistry has been investigated during enzymatic hydrolysis of pretreated sugarcane bagasse (SCB, 3% w/v) and filter paper (FP, 1.5% w/v) at various enzyme dosages (0.3–25FPU/g cellulose). Semi-dilute conditions (1.5–2 times higher than critical concentrations) were considered in order to generate non-Newtonian rheological behaviors and to avoid neglecting particle–particle interactions in opposition to dilute conditions. Observed phenomena as well as hydrolysis mechanisms including solvation, separation, fragmentation, and solubilization appeared to depend strongly on initial substrate properties. For both FP and SCB, suspension viscosities were correlated with particle size distributions and volume fractions during hydrolysis, but they exhibited strongly different trends. With SCB, a viscosity overtaking was clearly observed at enzyme loading ≤10FPU/g cellulose. This phenomenon is explained by the separation of agglomerates into individual fragments, leading to an increase in the total number of particles and a morphological shift of particles from sphere-like into fiber-like. With FP, the viscosity collapsed at the initial stage in relation to the volume reduction of coarse particles and the number increase of fine particles. Suspension viscosity was strongly dependent on the fraction of coarse population and nearly independent from the glucose conversion yield.
机译:原位的关系 viscosimetry, - 和前地 morphogranulometry,以及在各种酶剂量(0.3-25FPU / G纤维素)的预处理甘蔗蛋白(SCB,3%w / v)和滤纸(FP,1.5%w / v)的酶水解过程中研究了生物化学。考虑半稀释条件(比临界浓度高1.5-2倍),以产生非牛顿流变行为,并避免忽略反对稀释条件的颗粒颗粒相互作用。观察到的现象以及包括溶剂化,分离,碎裂和溶解的水解机制,似乎在初始基质性质上强烈依赖。对于FP和SCB来说,在水解过程中悬浮粘度与粒度分布和体积分数相关,但它们表现出强烈不同的趋势。用SCB,在酶负载≤10fpu/ g纤维素中清楚地观察到粘度超车。通过将附聚物分离成单个碎片来解释这种现象,导致颗粒总数的增加和颗粒的形态转向从球状到纤维状。用FP,粘度在初始阶段与粗颗粒的体积减少和细颗粒的数量增加而塌陷。悬浮液粘度强烈依赖于粗群的级分,几乎独立于葡萄糖转化率。

著录项

  • 来源
    《Biochemical Engineering Journal》 |2017年第2017期|共12页
  • 作者单位

    Laboratoire d’Ingénierie des Systèmes Biologiques et des Procédés (LISBP) Université de Toulouse INSA INRA UMR792 CNRS UMR5504;

    Fédération de Recherche FERMAT (Fluides Energie Réacteurs Matériaux et Transferts) Université de Toulouse CNRS INPT INSA UPS;

    Laboratoire de Chimie des Polymères Organiques (LCPO);

    Laboratoire d’Ingénierie des Systèmes Biologiques et des Procédés (LISBP) Université de Toulouse INSA INRA UMR792 CNRS UMR5504;

    Laboratoire d’Ingénierie des Systèmes Biologiques et des Procédés (LISBP) Université de Toulouse INSA INRA UMR792 CNRS UMR5504;

    Center for Research and Development in Biotechnology (CRDB) Schools of Biotechnology and Food Technology (SBFT) Hanoi University of Science and Technology;

    Center for Research and Development in Biotechnology (CRDB) Schools of Biotechnology and Food Technology (SBFT) Hanoi University of Science and Technology;

    Laboratoire d’Ingénierie des Systèmes Biologiques et des Procédés (LISBP) Université de Toulouse INSA INRA UMR792 CNRS UMR5504;

    Laboratoire d’Ingénierie des Systèmes Biologiques et des Procédés (LISBP) Université de Toulouse INSA INRA UMR792 CNRS UMR5504;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学技术;
  • 关键词

    In-situviscosity; Particle size distribution; Filter paper; Sugar cane bagasse; Enzyme; Hydrolysis;

    机译:出位于出境;粒度分布;滤纸;甘蔗Bagasse;酶;水解;

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