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Technical and economical assessment of thermo-mechanical extrusion pretreatment for cellulosic ethanol production.

机译:用于纤维素乙醇生产的热机械挤压预处理的技术和经济评估。

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摘要

The Renewable Fuel Standard (RFS) in the Energy Independence and Security Act of 2007 has set the goal of 36 billion gallons of annual ethanol production in the U.S. by 2022, which is equivalent to 17.5% of the current gasoline consumption in the U.S. However, corn ethanol is expected to plateau at a level of 7.3% of current gasoline consumption on an energy-equivalent basis. Thus, it is essential to utilize a variety of substrates including lignocellulosic biomass from perennial energy crops such as switch grass, crop residues such as corn and sorghum stover, and agri-industrial co-products such as soybean hulls and wheat bran.;Lignocellulosic substrates have a recalcitrant nature and require a pretreatment step that is critical for efficient enzymatic hydrolysis of cellulose and hemicellulose to fermentable sugars. In this study, soybean hulls were used as a model substrate for cellulosic ethanol. A novel thermo-mechanical pretreatment process using extrusion was investigated and compared with two traditional pretreatment methods, dilute acid and alkali hydrolysis, with regard to structural changes in the lignocellulosic substrate, and glucose and ethanol yields. The effect of extrusion parameters, such as barrel temperature, in-barrel moisture and screw speed, on glucose yield from soybean hulls was determined. Optimum processing conditions were screw speed of 350 rpm, maximum barrel temperature of 80°C and 40% in-barrel moisture content, resulting in 95% cellulose conversion to glucose. Compared with untreated soybean hulls, the cellulose to glucose conversion of soybean hulls increased by 69.5, 128.4 and 132.2% for dilute acid, alkali and thermo-mechanical pretreatments, respectively. Glucose and other hexose sugars such as mannose and galactose were effectively fermented by Saccharomyces cerevisiae, resulting in ethanol yields of 13.04--15.44 g/L. Fermentation inhibitors glycerol, furfural, 5-(hydroxymethyl)-2-furaldehyde (HMF) and acetic acid were found in the thermo-mechanically pretreated substrate, ranging in concentrations from 0.072--0.431, 0--0.049, 0--0.023 and 0.181--0.278 g/L, respectively, which were lower than those reported from acid hydrolyzed substrates. The economic feasibility of commercial cellulosic ethanol production processes employing dilute acid hydrolysis and thermo-mechanical pretreatment were compared using a system dynamics modeling approach. It was concluded that low feedstock cost and high sugar conversion are important factors that can make cellulosic ethanol production commercially viable. Thermo-mechanical pretreatment was a more promising technology as compared to dilute acid hydrolysis because of the lower capital and operating costs, and higher sugar conversion.
机译:2007年《能源独立与安全法案》中的可再生燃料标准(RFS)设定了到2022年在美国每年生产360亿加仑乙醇的目标,相当于美国当前汽油消耗量的17.5%。但是,以能量当量计,玉米乙醇预计将达到当前汽油消耗量的7.3%的水平。因此,必须利用多种基质,包括多年生能源作物(如转基因草)的木质纤维素生物质,诸如玉米和高粱秸秆的农作物残留物以及诸如大豆壳和麦麸的农业工业副产品;木质纤维素基质具有顽固性,需要预处理步骤,这对于将纤维素和半纤维素有效酶水解为可发酵糖至关重要。在这项研究中,大豆皮被用作纤维素乙醇的模型基质。研究了一种使用挤压的新型热机械预处理工艺,并将其与两种传统的预处理方法(稀酸和碱水解)进行了比较,以了解木质纤维素基质的结构变化以及葡萄糖和乙醇的产率。确定了挤出参数(如料筒温度,料筒内水分和螺杆转速)对大豆皮葡萄糖产量的影响。最佳加工条件为:螺杆转速为350 rpm,最高料筒温度为80°C,且料筒内水分含量为40%,从而使95%的纤维素转化为葡萄糖。与未处理的大豆壳相比,稀酸,碱和热机械预处理的大豆壳的纤维素转化为葡萄糖的转化率分别增加了69.5%,128.4和132.2%。酿酒酵母有效地发酵了葡萄糖和其他己糖,例如甘露糖和半乳糖,导致乙醇产量为13.04--15.44 g / L。在热机械预处理的底物中发现了发酵抑制剂甘油,糠醛,5-(羟甲基)-2-糠醛(HMF)和乙酸,浓度范围为0.072--0.431、0--0.049、0--0.023和分别为0.181--0.278 g / L,低于酸水解底物的报告值。使用系统动力学建模方法,比较了采用稀酸水解和热机械预处理的商业纤维素乙醇生产工艺的经济可行性。结论是低的原料成本和高的糖转化率是使纤维素乙醇生产在商业上可行的重要因素。与较低的酸水解相比,热机械预处理是一种更有前途的技术,因为它的投资和运行成本较低,糖转化率较高。

著录项

  • 作者

    Yoo, Juhyun.;

  • 作者单位

    Kansas State University.;

  • 授予单位 Kansas State University.;
  • 学科 Alternative Energy.;Agriculture General.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 114 p.
  • 总页数 114
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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