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Lipid products from agriculture by-products and pyrolytic oil.

机译:来自农业副产品和热解油的脂质产品。

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摘要

This body of research focuses on two major areas related to microalgae-based fuel and chemical production. The first area is to produce algal lipid by utilizing fractionated pyrolytic bio-oil as feedstocks. The second area is the use of agriculture by-products as substrates for fermentative production of eicosapentaenoic acid (EPA).;The hypothesis of the first part of this work was that fractionated bio-oil can be used as feedstock for lipid-based fuel production by the microalga Chlamydomonas reinhardtii. The acetic acid-rich fraction of bio-oil derived from fast pyrolysis of softwood contains myriads of other compounds, some of which are toxic to C. reinhardtii. To enhance the fermentability of the acetic acid-rich bio-oil fraction by microalgae, activated carbon treatment was used to reduce the toxicity of this bio-oil fraction, while metabolic evolution was used to enhance the toxicity tolerance of the microalgae strain. Combining activated carbon treatment and using adapted algal strains through metabolic evolution resulted in significant improvement to algal growth performance on acetic acid-rich bio-oil fraction. A viable approach was discovered to produce fuels and chemicals from lignocellulosic biomass through the hybrid (fast pyrolysis-fermentation) process.;The hypothesis of the second part of this work was that agriculture by-products, including rendered animal proteins and thin stillage derived from corn ethanol production, can be used as nutritional sources for microbial growth and EPA (omega-3 fatty acid) synthesis. Rendered animal proteins were hydrolyzed into small peptides and free amino acids to facilitate nutrient absorption by the microalga Schizochytrium limacinum and the fungus Pythium irregulare. The utilities of using protein hydrolysates for growing microorganisms depended on the hydrolysis method used and the type of microorganism. The enzymatic hydrolysates supported better cell growth performance than did alkali hydrolysates. P. irregulare displayed better overall growth performance on the experimental hydrolysates compared to S. limacinum. Under selected conditions for P. irregulare culture, cell growth, lipid synthesis, and omega-3 fatty acid production were similar to cultures using commercial yeast extract.;Thin stillage from dry-grind ethanol production contained various compounds that were ideal for fungal growth. Thin stillage concentration and temperature played important roles in fungal growth and EPA production. When 50% thin stillage was used in a stepwise temperature shift culture process, the cell density reached 23 g/L at day 9 with EPA yield and productivity of 243 mg/L and 27 mg/L·day, respectively. The fungal culture also generated a nutrient-depleted liquid by removing organic compounds from the raw thin stillage.
机译:这项研究主要集中在与微藻类燃料和化学生产有关的两个主要领域。第一个领域是利用分馏的热解生物油作为原料生产藻类脂质。第二个领域是利用农业副产品作为发酵生产二十碳五烯酸(EPA)的底物。这项工作的第一部分的假设是,分馏的生物油可以用作生产脂质燃料的原料。由微藻衣藻(Chlamydomonas reinhardtii)。来自软木快速热解的生物油中富含乙酸的馏分包含无数其他化合物,其中一些对莱茵衣藻有毒。为了增强微藻对富含乙酸的生物油馏分的发酵能力,使用活性炭处理可降低该生物油馏分的毒性,同时通过代谢进化来增强微藻菌株的毒性耐受性。结合活性炭处理和通过代谢进化使用适应的藻类菌株,可显着改善藻类在富含乙酸的生物油馏分上的生长性能。发现了一种可行的方法,该方法通过混合(快速热解发酵)过程从木质纤维素生物质生产燃料和化学品。这项工作的第二部分的假设是农业副产品,包括提炼的动物蛋白和稀薄的釜馏物玉米乙醇的生产,可用作微生物生长和EPA(ω-3脂肪酸)合成的营养来源。将提炼的动物蛋白水解为小肽和游离氨基酸,以促进微藻Schizochytrium limacinum和真菌不规则腐霉菌对养分的吸收。使用蛋白质水解物来生长微生物的实用性取决于所使用的水解方法和微生物的类型。酶水解产物比碱水解产物支持更好的细胞生长性能。与S. limacinum相比,不规则疟原虫在实验水解产物上显示出更好的总体生长性能。在不规则疟原虫培养的选定条件下,细胞生长,脂质合成和omega-3脂肪酸的生产与使用商业酵母提取物的培养相似。;干磨乙醇生产的稀釜馏物包含各种最适合真菌生长的化合物。稀釜馏物浓度和温度在真菌生长和EPA产生中起重要作用。当在逐步温移培养过程中使用50%的稀釜馏物时,第9天的细胞密度达到23 g / L,EPA产量和生产力分别为243 mg / L和27 mg / L·天。真菌培养还通过从稀稀料中除去有机化合物而产生了营养贫乏的液体。

著录项

  • 作者

    Liang, Yi.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Engineering Agricultural.;Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 108 p.
  • 总页数 108
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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