首页> 外文学位 >Improvements in non-aseptic methods for fungal cultivation on corn-ethanol thin stillage and continuous hydrothermal liquefaction of fungal biomass feedstock.
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Improvements in non-aseptic methods for fungal cultivation on corn-ethanol thin stillage and continuous hydrothermal liquefaction of fungal biomass feedstock.

机译:玉米-乙醇稀釜馏物上真菌培养的非无菌方法的改进以及真菌生物质原料的连续水热液化。

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摘要

Cultivation of Rhizopus oligosporus and Mucor circinelloides on corn-ethanol thin stillage has been reported to significantly remove COD, TSS, glycerol and organic acids; making in-plant water reuse much more viable while producing a protein-rich animal feed biomass with a high oil content and valuable fatty acids. As fungal biomass cultivation is scaled up from lab to bench and pilot scale, aseptic methods become difficult and cost prohibitive. Non-aseptic fungal cultivation on thin stillage has been reported to have fungal and bacterial contaminants resulting in reduced biomass yields. Chemical oxidizers sodium hypochlorite, chlorine dioxide, iodophor and ozone along with antibiotics penicillin-streptomycin were tested as potential selective disinfectants to enhance fungal biomass yields.;Fungal biomass grown on thin stillage also has the potential to be a promising feedstock for advanced biofuels due to its short 2-3 day fermentation period and high oil content. Drop-in biofuel consumption is projected to more than double from 2014-2019. Fungal biomass feedstock for thermochemical processing to produce bio-crude oil that is upgradable to drop-in renewable diesel could help to meet this increasing demand. Suspended growth fungal biomass cultivated in thin stillage has a high moisture content making aqueous-phase processing through hydrothermal liquefaction (HTL) a favorable thermochemical process for generating biofuels compared to dry feedstock required for traditional gasification and pyrolysis. Continuous HTL of fungal biomass using a 1.5L supercritical flow reactor to produce bio-crude oil was accomplished. The fungal bio-crude oil was then analyzed and compared with microalgae bio-crude oil produced by like methods.
机译:据报道,在玉米-乙醇稀釜馏物上栽培低聚根霉和圆环毛霉可显着去除COD,TSS,甘油和有机酸。使工厂内的水再利用更加可行,同时生产出具有高油含量和宝贵脂肪酸的富含蛋白质的动物饲料生物质。随着真菌生物质的培养从实验室扩大到试验台和中试规模,无菌方法变得困难且成本高昂。据报道,在稀釜馏物上进行的非无菌真菌培养具有真菌和细菌污染物,导致生物量产量降低。测试了化学氧化剂次氯酸钠,二氧化氯,碘伏和臭氧以及抗生素青霉素-链霉素作为提高真菌生物量产量的潜在选择性消毒剂。稀釜馏物上生长的真菌生物量也有可能成为先进生物燃料的有希望原料其2-3天的短发酵期和高油含量。从2014年至2019年,直接生物燃料的消费量预计将增加一倍以上。用于热化学加工以生产可升级为直接使用可再生柴油的生物原油的真菌生物质原料可以帮助满足这一不断增长的需求。与传统气化和热解所需的干原料相比,稀薄的酒糟中悬浮的生长真菌生物质具有较高的水分含量,使得通过水热液化(HTL)进行水相处理成为生成生物燃料的有利热化学过程。使用1.5L超临界流反应器对真菌生物质进行连续HTL,以生产生物原油。然后对真菌生物原油进行分析,并将其与通过类似方法生产的微藻生物原油进行比较。

著录项

  • 作者

    McMahon, Jeremiah John.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Environmental engineering.
  • 学位 M.S.
  • 年度 2015
  • 页码 95 p.
  • 总页数 95
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:52

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