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Algal biofilms, microbial fuel cells, and implementation of state-of-the-art research into chemical and biological engineering laboratories.

机译:藻类生物膜,微生物燃料电池以及对化学和生物工程实验室的最新研究的实施。

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摘要

Alternative energy technologies become more attractive as the price of energy from fossil fuels becomes more expensive and the environmental concerns from their use mount. While a number of biological alternative energy technologies currently exist, a complete understanding of these technologies has yet to be developed. This dissertation characterizes an aspect of biological alternative energy technologies: the production of algal biofuels and energy conversion in microbial fuel cells. Specifically, this dissertation addresses the characterization of microalgae as a biofilm and the characterization of the power limitations of microbial fuel cells.;The attachment and detachment of algae were observed using temporal microscopic imaging in a flow-cell with autofluorescence and staining techniques as part of a collaborative Montana State University and Idaho National Laboratory project. Colonies of algae exhibit many characteristics seen in bacterial biofilms: adherence; detachment and sloughing; difference in structure of an attached colony; varying strength of attachment on different surfaces; association of other organisms in an EPS matrix; and the heterogeneous nature of attached colonies.;The characterization of a microbial fuel cell was completed in less than 30 minutes using an empirical procedure to predict the maximum sustainable power that can be generated by a microbial fuel cell over a short period of time. In this procedure, the external resistance was changed incrementally, in steps of 500 O every 60 seconds, and the anode potential, the cathode potential, and the cell current were measured. This procedure highlights the inherent limitations of energy conversion in a microbial fuel cell. A voltage/current characterization of the microbial fuel was also completed from the data collected.;This dissertation also includes the evaluation of A Hands-On Introduction to Microbial Fuel Cells, a laboratory developed for an introductory chemical and biological engineering course. The experiment has been updated to include a voltage/current characterization of the microbial fuel cell. Learning objectives have been identified and pre- and post-laboratory activities have been developed for further implementation into a chemical and biological engineering curriculum.
机译:随着来自化石燃料的能源价格变得更加昂贵,以及替代能源技术对环境的关注日益增加,替代能源技术变得越来越具有吸引力。尽管目前存在许多生物替代能源技术,但尚未开发出对这些技术的完整理解。本论文的特点是生物替代能源技术的一个方面:藻类生物燃料的生产和微生物燃料电池中的能量转换。具体来说,本论文解决了微藻作为生物膜的表征以及微生物燃料电池的功率限制的表征。;在流动池中使用自发荧光和染色技术,使用时相显微镜成像观察了藻类的附着和脱离。蒙大拿州立大学和爱达荷州国家实验室合作项目。藻类菌落表现出许多在细菌生物膜中看到的特征:依附性;附着力脱落和脱落附着菌落的结构差异;不同表面上的附着强度不同; EPS矩阵中其他生物的关联;微生物燃料电池的表征使用经验程序在不到30分钟的时间内完成,以预测微生物燃料电池在短时间内可以产生的最大可持续功率。在此过程中,外部电阻每60秒以500 O的步长逐渐变化,并测量阳极电势,阴极电势和电池电流。该程序突出了微生物燃料电池中能量转换的固有局限性。还从收集到的数据中完成了微生物燃料的电压/电流表征。;本论文还包括对“微生物燃料电池动手入门”的评估,该实验室是为化学和生物工程入门课程开发的。实验已更新为包括微生物燃料电池的电压/电流特性。确定了学习目标,并开展了实验室前和实验室后的活动,以进一步实施到化学和生物工程课程中。

著录项

  • 作者单位

    Montana State University.;

  • 授予单位 Montana State University.;
  • 学科 Alternative Energy.;Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 126 p.
  • 总页数 126
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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