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Kinetic model of biomass hydrolysis by a polysulfone membrane with chemically linked acidic ionic liquids via catalytic reactor

机译:通过催化反应器用化学连接的酸性离子液体用聚砜膜的生物质水解动力学模型

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摘要

A novel catalytic membrane was prepared from polysulfone powders covalently linked with acidic ionic liquids (PSF-ILs), as a heterogeneous catalyst to produce reducing sugar for biomass inulin hydrolysis in a catalytic membrane reactor. However, a complete kinetic model describing the relationship between catalyst physical properties and hydrolysis performance is lacking. The present work attempts to build a hydrolysis kinetic model for the relationship between the conversion and the structure of the PSF-ILs membrane (such as membrane thickness, pore size, porosity and specific surface area). The reaction parameters, such as the reaction time, reaction temperature as well as the nature of the catalyst were of crucial importance in terms of optimal conversion of the biomass inulin to reducing sugar or platform chemicals. The results showed that the structure of the PSF-ILs membrane has a significant effect on its catalytic performance. The PSF-ILs membrane with the best catalytic performance was selected and the maximum TRS yields were up to 100% after two rounds of inulin hydrolysis. The conversions obtained from the established model are in good agreement with the experimental data. Understanding the structure-property relationship of the PSF-ILs membrane will be helpful in designing the physical structure of the membrane to improve its catalytic activity and reusability. Therefore, it is a type of green catalyst with potential application prospects in many catalysis fields.
机译:用与酸性离子液体(PSF-ILS)共价连接的聚砜粉末制备一种新型催化膜,作为非均相催化剂,以在催化膜反应器中生产用于生物质菊粉水解的还原糖。然而,缺乏描述催化剂物理性质和水解性能之间关系的完整动力学模型。目前的作品试图为PSF-ILS膜的转化和结构之间的关系构建水解动力学模型(例如膜厚度,孔径,孔隙率和比表面积)。反应参数,例如反应时间,反应温度以及催化剂的性质,就生物质菊粉的最佳转化转化为还原糖或平台化学品而言至关重要。结果表明,PSF-ILS膜的结构对其催化性能具有显着影响。选择具有最佳催化性能的PSF-ILS膜,两轮菊粉水解后,最大TRS产率高达100%。从已建立的模型获得的转换与实验数据很好。了解PSF-ILS膜的结构性质关系将有助于设计膜的物理结构,以改善其催化活性和可重用性。因此,它是一种绿色催化剂,具有许多催化领域的潜在应用前景。

著录项

  • 来源
    《RSC Advances》 |2018年第21期|共11页
  • 作者

    Lu Peng; Cao Yong; Wang Xiaolan;

  • 作者单位

    Beijing Inst Technol Sch Chem &

    Chem Engn Beijing 102488 Peoples R China;

    Beijing Inst Technol Sch Chem &

    Chem Engn Beijing 102488 Peoples R China;

    Beijing Inst Technol Sch Chem &

    Chem Engn Beijing 102488 Peoples R China;

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

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