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Improving the cathode conditions by pressurizing and carbon dioxide addition to enhance the practicality of MFC treatment of wastewater.

机译:通过加压和添加二氧化碳改善阴极条件,以提高MFC处理废水的实用性。

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摘要

An increasing global energy demand coupled with a more rigorous governmental regulatory environment (including identifying carbon dioxide as a pollutant) is becoming more and more incompatible with engineering practices that were developed in an era of lower energy costs and less regulation. It is, therefore, not a surprise that researchers are looking towards bioelectrochemical systems (BESs) as a potential superior technology to produce environmentally-benign and sustainable energy, replace energy intensive processes, and/or produce chemical products.;The overall tenet of my thesis-based research was to understand the important mechanisms that limit the power output for BESs during wastewater treatment and to use this understanding to enhance power output and add practicality. Chapter 1 of my thesis is an introduction and shares the individual aims and organization of the thesis. In chapter 2, I evaluated the quantity of stored chemical energy in wastewater and the microbial metabolic processes, which are used to metabolize organic substrates into electricity. In addition, wastewater pre-acidification was identified as necessary to initiate waste hydrolysis into soluble substrates, which are more easily consumed by the BES anodic microbial community. In chapter 3, I developed an engineering evaluation of a laboratory-scale BES, which developed a better understanding of BES rate limitations by the ion fluxes. This work resulted in several realizations on how the BESs performance could be improved. In chapter 4, I performed a laboratory study to demonstrate that a pressurized BES cathode improved oxygen reduction reaction kinetics and increased power densities. The study also highlighted the influence of importance of transmembrane ion gradients and electroosmotic drag on the BES ion flux. In chapter 5, I used a CO2/bicarbonate buffered water process to maintain a stable acidic BES catholyte pH without adding any other buffer. This also increased the anolyte pH, alkalinity, and conductivity, which aided in a superior performance. By including the CO 2/bicarbonate buffering, the study coupled BES wastewater treatment with a potential CO2 remediation technology. Finally, in chapter 6, I summarized my findings and discussed which future activities should be performed to fasten the technology transfer of BESs from the bench to the real world.
机译:全球能源需求的增长,加上更严格的政府监管环境(包括将二氧化碳识别为污染物),越来越与能源成本较低和监管较少的时代所开发的工程实践相矛盾。因此,研究人员将生物电化学系统(BES)视为产生环境友好和可持续能源,替代能源密集型过程和/或生产化学产品的潜在高级技术也就不足为奇了;我的总体宗旨基于论文的研究旨在了解限制废水处理过程中BES功率输出的重要机制,并以此理解来提高功率输出并增加实用性。本文的第一章是绪论,介绍了论文的个人目的和组织结构。在第2章中,我评估了废水中的化学能存储量以及用于将有机底物代谢为电能的微生物代谢过程。此外,已确定废水预酸化是引发废物水解成可溶底物的必要条件,可溶底物更易被BES阳极微生物群落消耗。在第3章中,我对实验室规模的BES进行了工程评估,从而更好地了解了离子通量对BES速率的限制。这项工作使人们对如何提高BES的性能有了一些认识。在第4章中,我进行了一项实验室研究,以证明加压的BES阴极改善了氧还原反应动力学并提高了功率密度。该研究还强调了跨膜离子梯度和电渗阻力对BES离子通量的影响。在第5章中,我使用了CO2 /碳酸氢盐缓冲水工艺来维持稳定的酸性BES阴极电解液pH值,而无需添加任何其他缓冲液。这也增加了阳极电解液的pH值,碱度和电导率,从而有助于提高性能。通过包括CO 2 /碳酸氢盐缓冲,该研究将BES废水处理与潜在的CO2修复技术结合在一起。最后,在第6章中,我总结了我的发现,并讨论了未来应采取哪些行动来加快BES从实验室到现实世界的技术转移。

著录项

  • 作者

    Fornero, Jeffrey Joseph.;

  • 作者单位

    Washington University in St. Louis.;

  • 授予单位 Washington University in St. Louis.;
  • 学科 Engineering Environmental.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 238 p.
  • 总页数 238
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 环境污染及其防治;
  • 关键词

  • 入库时间 2022-08-17 11:37:40

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