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Hot water flow through pretreatment of cellulosic biomass for biofuel production.

机译:热水通过纤维素生物质的预处理以生产生物燃料。

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摘要

Pretreatment operated in a flow through (FT) mode offers several performance advantages compared to pretreatment in non FT configurations at the same temperature and residence time. The impact of hydrothermal FT pretreatment severity on pretreatment and solubilization performance metrics was evaluated for three milled feedstocks (corn stover, bagasse, and poplar), highlighting key performance trends and advantages. Experimental results with sugarcane bagasse showed that the typical tradeoff between increased fiber reactivity and increased sugar degradation could be substantially mitigated by carrying out pretreatment in a FT mode. However, operation of FT configurations in a practical context is challenging. Arranging a reactor of biomass in a flow type configuration at elevated temperature and pressure is mechanically complex. Higher water usage compared to non-flow configuration may dilute sugar streams and increase energy consumption. These crucial challenges to practical implementation were studied to define the feasible regions of hot water FT pretreatment. Furthermore, a model incorporating both kinetics and mass transfer was developed to simulate performance of pretreatment in plug flow, counter-current flow, cross flow, discrete counter-current and partial FT configurations. Using sugarcane bagasse without particle size reduction, the instability of the reactor during pretreatment above 140 kg/m3 set an upper bound on the allowable concentration for continuous stable flow. Simulated results compared well to the literature for bagasse pretreated in both batch and FT configurations. A variety of FT configurations resulted in very low sugar degradation and high solids reactivity, but sequential plug and cross flow configuration was recommended for fluid mechanical reasons. Economic considerations were favorable to practical commercial implementation of FT pretreatment. Sugar dilution was not a limiting factor, and energy consumption was managed through energy integration within the biorefinery. It was possible to integrate a plant making ethanol from sugarcane bagasse and trash to a plant making sugar from sugarcane, while maintaining energy self-sufficiency.
机译:与在相同温度和停留时间的非FT配置中进行预处理相比,以流通(FT)模式进行的预处理具有多项性能优势。对三种磨碎的原料(玉米秸秆,蔗渣和杨树)评估了热液FT预处理严重程度对预处理和增溶性能指标的影响,突出了关键的性能趋势和优势。用甘蔗渣处理的实验结果表明,通过在FT模式下进行预处理,可以大大减轻纤维反应性增加和糖降解增加之间的典型权衡。然而,在实际情况下FT配置的操作是具有挑战性的。在高温和高压下将生物质的反应器布置成流动型构造在机械上是复杂的。与非流动配置相比,较高的用水量可能会稀释糖流并增加能耗。研究了实际实施中的这些关键挑战,以定义热水FT预处理的可行区域。此外,开发了一个结合动力学和传质的模型,以模拟预处理在塞流,逆流,错流,离散逆流和部分FT构型下的性能。使用不减小粒度的甘蔗渣,反应器在140 kg / m3以上的预处理过程中的不稳定性为连续稳定流动的允许浓度设定了上限。对于批次和FT配置进行了预处理的蔗渣,模拟结果与文献进行了比较。多种FT构型可导致极低的糖降解和高固体反应性,但出于流体力学原因,建议采用顺序塞流和错流构型。经济上的考虑有利于FT预处理的实际商业实施。糖的稀释不是限制因素,并且通过生物精炼厂内的能量整合来控制能量消耗。可以将甘蔗渣和蔗糖生产乙醇的工厂整合到甘蔗生产糖的工厂中,同时保持能源的自给自足。

著录项

  • 作者单位

    Dartmouth College.;

  • 授予单位 Dartmouth College.;
  • 学科 Chemical engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 179 p.
  • 总页数 179
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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