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Flash Pyrolysis and Fractional Pyrolysis of Oleaginous Biomass in a Fluidized-bed Reactor.

机译:流化床反应器中油质生物质的快速热解和部分热解。

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摘要

Thermochemical conversion methods such as pyrolysis have the potential for converting diverse biomass feedstocks into liquid fuels. In particular, bio-oil yields can be maximized by implementing flash pyrolysis to facilitate rapid heat transfer to the solids along with short vapor residence times to minimize secondary degradation of bio-oils. This study first focused on the design and construction of a fluidized-bed flash pyrolysis reactor with a high-efficiency bio-oil recovery unit. Subsequently, the reactor was used to perform flash pyrolysis of soybean pellets to assess the thermochemical conversion of oleaginous biomass feedstocks.;The fluidized bed reactor design included a novel feed input mechanism through suction created by flow of carrier gas through a venturi which prevented plugging problems that occur with a more conventional screw feeders. In addition, the uniquely designed batch pyrolysis unit comprised of two tubes of dissimilar diameters. The bottom section consisted of a 1" tube and was connected to a larger 3" tube placed vertically above. At the carrier gas flow rates used in these studies, the feed particles remained fluidized in the smaller diameter tube, but a reduction in carrier gas velocity in the larger diameter "disengagement chamber" prevented the escape of particles into the condensers. The outlet of the reactor was connected to two Allihn condensers followed by an innovative packed-bed dry ice condenser. Due to the high carrier gas flow rates in fluidized bed reactors, bio-oil vapors form dilute aerosols upon cooling which that are difficult to coalesce and recover by traditional heat exchange condensers. The dry ice condenser provided high surface area for inertial impaction of these aerosols and also allowed easy recovery of bio-oils after natural evaporation of the dry ice at the end of the experiments.;Single step pyrolysis was performed between 250-610°C with a vapor residence time between 0.3-0.6s. At 550°C or higher, 70% of the initial feed mass was recovered as bio-oil. However, the mass of high calorific lipid-derived components in the collected bio-oils remained nearly constant at reaction temperatures above 415°C; between 80-90% of the feedstock lipids were recovered in the bio-oil fraction. In addition, multi-step fractional flash pyrolysis experiments were performed to assess the possibility of producing higher quality bio-oils since a large fraction of protein and carbohydrates degrade at lower temperatures (320-400°C). A low temperature pyrolysis step was first performed and was followed by pyrolysis of the residues at higher temperature. This fractional pyrolysis approach which produced higher quality bio-oil with low water- and nitrogen- content from the higher temperature steps.
机译:诸如热解的热化学转化方法具有将多种生物质原料转化成液体燃料的潜力。特别地,通过进行快速热解以促进快速的热传递到固体以及短的蒸气停留时间以最小化生物油的二次降解,可以最大化生物油的产率。这项研究首先关注具有高效生物油回收装置的流化床闪速热解反应器的设计和建造。随后,该反应器用于大豆颗粒的快速热解,以评估油脂性生物质原料的热化学转化。发生在更常规的螺旋进料器中。此外,独特设计的间歇式热解装置由两个直径不同的管组成。底部由一个1“的管子组成,并与垂直放置在上方的较大的3”的管子相连。在这些研究中使用的载气流速下,进料颗粒在较小直径的管中保持流态化,但是较大直径“分离室”中载气速度的降低阻止了颗粒逸出到冷凝器中。反应器的出口连接到两个Allihn冷凝器,然后连接一个创新的填充床干冰冷凝器。由于流化床反应器中载气的流速很高,生物油蒸气在冷却时会形成稀薄的气溶胶,这些气溶胶很难通过传统的热交换冷凝器凝聚和回收。干冰冷凝器为这些气溶胶的惯性撞击提供了较大的表面积,并且在实验结束后干冰自然蒸发后还可以轻松回收生物油。;在250-610°C之间进行单步热解蒸气停留时间在0.3-0.6s之间。在550°C或更高温度下,原始进料质量的70%被回收为生物油。但是,在高于415°C的反应温度下,收集的生物油中高热量脂质衍生成分的质量几乎保持恒定;在生物油馏分中回收了80-90%的原料脂质。另外,由于大部分蛋白质和碳水化合物在较低的温度(320-400°C)下会降解,因此进行了多步分馏快速热解实验,以评估生产更高质量的生物油的可能性。首先执行低温热解步骤,然后在较高温度下对残留物进行热解。这种分馏热解方法可通过较高的温度步骤生产出具有较低水和氮含量的高质量生物油。

著录项

  • 作者

    Urban, Brook.;

  • 作者单位

    The University of Toledo.;

  • 授予单位 The University of Toledo.;
  • 学科 Chemical engineering.;Energy.;Alternative Energy.;Environmental engineering.
  • 学位 M.S.
  • 年度 2015
  • 页码 105 p.
  • 总页数 105
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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