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Methods of analysis for fermentation science products using various analytical techniques.

机译:使用各种分析技术对发酵科学产品进行分析的方法。

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摘要

Fermentation science, the study of microorganisms as they digest food sources to produce usable products for consumption, has been around since the dawn of modern civilization. Historically, the fermentation process has been utilized for the production of alcoholic beverages. More recently, however, the production of bioethanol and biodiesel as a fuel source alternative to classical fossil fuels has gained increased popularity. As with any synthetic process, derivations and optimizations for ideal production are needed. As such, analytical techniques must be implemented to ensure quality control and pinnacle efficiency. This body of work describes analytical techniques providing key qualitative and quantitative information about various steps in the fermentation process. Experiences and conclusions drawn about biofuel production are described in two quantitative projects: Storage Analysis of Sugar Saccharification using Ultrahigh Performance Liquid Chromatography using Corona Charged Aerosol Detection (UPLC-CAD), and Thermal Energy Quantitation of Residual Biomass Using Oxygen Bomb Calorimetry (OBC).;The first major technique employs liquid chromatography to separate and quantitate major sugars (xylose and glucose) in the saccharification of biomass (switchgrass). Storage conditions can determine the economic viability of switchgrass as an alternative fuel source. As such, the extent of degradation of switchgrass over a course of one year, and limitations of useable sugars produced needed to be assessed. Results showed no significant loss in sugar production over the course of one year from three distinct storage conditions. From an industrial perspective, this provides low cost storage with minimal to no loss in bioethanol and biodiesel. In addition to biofuels, biomass, switchgrass for example, can be used directly as a combustion source to produce thermal energy. The energy produced (BTU/lb.) can be used mainly to power boiler systems or residential stoves to provide heat, and electricity through a steam turbine. Using OBC, the amount of thermal energy produced by biomass, was obtained and similar degradation studies were accessed. As with the sugar production, the extent of degradation was found to be insignificant.;An additional preliminary study explored as an alternative to the pretreatment phase: Ionic Liquid (IL) pretreatment of lignin, characterized by Direct Analysis in Real Time Mass Spectrometry (DART-MS). The goal of these projects was the development of methods to characterize and quantitate specific products during major stages of biofuel production applied which can be easily to many fermentation studies. These methods can then be used as a template for further fermentation studies, both in biofuel and alcoholic beverage production.
机译:自现代文明诞生以来,人们就一直在研究发酵科学,即微生物在消化食物来源以生产可消费产品时的微生物。历史上,发酵过程已经用于生产酒精饮料。然而,最近,作为传统化石燃料的替代燃料来源的生物乙醇和生物柴油的生产已经越来越受欢迎。与任何合成过程一样,需要对理想的生产进行推导和优化。因此,必须实施分析技术以确保质量控制和最高效率。本工作内容介绍了分析技术,可提供有关发酵过程中各个步骤的关键定性和定量信息。在两个定量项目中描述了有关生物燃料生产的经验和结论:使用超高效液相色谱(使用电晕带电气溶胶检测(UPLC-CAD)进行糖化糖的存储分析)和使用氧弹量热法(OBC)对残留生物质的热能定量。 ;第一种主要技术是利用液相色谱法来分离和定量生物质(柳枝))糖化过程中的主要糖(木糖和葡萄糖)。储存条件可以决定柳枝as作为替代燃料来源的经济可行性。因此,一年中柳枝degradation的降解程度以及所产生的可用糖类的局限性都需要进行评估。结果表明,在三种不同的储存条件下,一年之内糖产量没有显着下降。从工业角度看,这提供了低成本的存储,而生物乙醇和生物柴油的损失极少甚至没有。除了生物燃料之外,生物质(例如柳枝switch)也可以直接用作燃烧源以产生热能。产生的能量(BTU / lb。)可主要用于为锅炉系统或住宅炉灶提供动力,以通过蒸汽轮机提供热量和电力。使用OBC,可以获得由生物质产生的热能数量,并可以进行类似的降解研究。与制糖一样,发现降解程度不重要。;探索了另一种初步研究作为预处理阶段的替代方法:木质素的离子液体(IL)预处理,其特征在于实时质谱法(DART)直接分析-多发性硬化症)。这些项目的目标是开发在生物燃料生产的主要阶段中表征和定量特定产品的方法,这些方法很容易进行许多发酵研究。这些方法然后可以用作生物燃料和酒精饮料生产中进一步发酵研究的模板。

著录项

  • 作者

    Howdieshell, Casey Jay.;

  • 作者单位

    Eastern Kentucky University.;

  • 授予单位 Eastern Kentucky University.;
  • 学科 Alternative Energy.;Chemistry.;Physical chemistry.
  • 学位 M.S.
  • 年度 2015
  • 页码 138 p.
  • 总页数 138
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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