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Environmental Sustainability of Wastewater Treatment Plants Integrated with Resource Recovery: The Impact of Context and Scale.

机译:与资源回收相结合的污水处理厂的环境可持续性:背景和规模的影响。

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摘要

This research seeks to investigate the environmental sustainability of wastewater treatment plants (WWTPs) integrating resource recovery (e.g., water reuse, energy recovery and nutrient recycling) in different contexts (developing versus developed world) and at different scales (household, community, and city). The over-arching hypothesis guiding this research is that: Context and scale impact the environmental sustainability of WWTPs integrated with resource recovery. Three major research tasks were designed to contribute to a greater understanding of the environmental sustainability of resource recovery integrated with wastewater treatment systems. They include a framework development task (Chapter 2), scale assessment task (Chapter 3), and context assessment task (Chapter 4).;The framework development task includes a critical review of literature and models used to design a framework to assess the environmental sustainability of wastewater treatment and integrated resource recovery strategies. Most studies used life cycle assessment (LCA) to assess these systems. Acomprehensive system boundary was selected to assess the life cycle impacts of collection, treatment, and distribution over the construction and operation and maintenance life stages. Additionally, resource recovery offsets associated with water reuse, energy recovery, and nutrient recycling are considered. The framework's life cycle inventory includes material production and delivery, equipment operation, energy production, sludge disposal, direct greenhouse gas (GHG) emissions, and nutrients discharged to the environment.;The scale assessment task investigates how scale impacts the environmental sustainability of three wastewater treatment systems integrated with resource recovery in a U.S. context. Household, community, and city scale systems using mechanized technologies applicable to a developed world setting were investigated. The household system was found to have the highest environmental impacts due high electricity usage for treatment and distribution, methane emissions from the septic tank, and high nutrient discharges. Consequently, the life cycle impacts of passive nutrient reduction systems with low energy usage at the household level merit further investigation. The community scale system highlights trade-offs between global impacts (e.g., embodied energy and carbon footprint) and local impacts (e.g., eutrophication potential) where low nutrient pollution can be achieved at the cost of a high embodied energy and carbon footprint. The city scale system had the lowest global impacts due to economies of scale and the benefits of integrating all three forms of resource recovery: Energy recovery, water reuse, and nutrient recycling. Integrating these three strategies at the city scale led to a 49% energy offset, which mitigates the carbon footprint associated with water reuse.;The context assessment task investigates how context impacts the environmental sustainability of selected community scale systems in both Bolivia and the United States. In this task, rural developing world and urban developed world wastewater management solutions with resource recovery strategies are compared. Less mechanized treatment technologies used in rural Bolivia were found to have a lower carbon footprint and embodied energy than highly mechanized technologies used in urban United States. However, the U.S. community system had a lower eutrophication potential than the Bolivia systems, highlighting trade-offs between global and local impacts. Furthermore, collection and direct methane emissions had more important energy and carbon implications in Bolivia, whereas treatment electricity was dominant for the U.S. community system. Water reuse offsets of embodied energy and carbon footprint were higher for the U.S. community system, because high quality potable water is replaced instead of river water. In contrast, water reuse offsets of eutrophication potential were high for the Bolivia systems, highlighting the importance of matching treatment level to end-use application. One of the Bolivia systems benefits from the integration of water, energy, and nutrient recovery leading to beneficial offsets of both global and local impacts. (Abstract shortened by UMI.).
机译:这项研究旨在研究废水处理厂(WWTP)在不同背景下(发展中世界与发达世界)和不同规模(家庭,社区和城市)整合资源回收(例如,水的再利用,能源回收和养分循环利用)的环境可持续性)。指导本研究的总体假设是:背景和规模影响污水处理厂与资源回收相结合的环境可持续性。设计了三项主要的研究任务,以加深对与废水处理系统集成的资源回收的环境可持续性的了解。它们包括框架开发任务(第2章),规模评估任务(第3章)和上下文评估任务(第4章)。框架开发任务包括对文献和模型的严格审查,这些文献和模型用于设计评估环境的框架废水处理的可持续性和综合资源回收策略。大多数研究使用生命周期评估(LCA)来评估这些系统。选择了全面的系统边界来评估在施工,运营和维护生命周期中收集,处理和分配的生命周期影响。此外,还考虑了与水再利用,能量回收和养分循环有关的资源回收补偿。框架的生命周期清单包括材料生产和交付,设备运行,能源生产,污泥处置,直接温室气体(GHG)排放以及排放到环境中的养分。;规模评估任务调查规模如何影响三种废水的环境可持续性美国环境中整合了资源回收的污水处理系统。研究了适用于发达国家环境的机械化家庭,社区和城市规模系统。由于用于处理和分配的高电力消耗,化粪池的甲烷排放以及大量的营养物排放,发现家庭系统对环境的影响最大。因此,在家庭层面上低能耗的被动式营养减少系统的生命周期影响值得进一步研究。社区规模体系强调了全球影响(例如,体现的能源和碳足迹)与局部影响(例如,富营养化潜力)之间的权衡取舍,在这些地方可以以高的体现的能源和碳足迹来实现低养分污染。由于规模经济以及整合资源回收,能源再利用,水的再利用和养分循环这三种资源回收的好处,城市规模的系统对全球的影响最小。将这三种策略在城市范围内整合会导致49%的能源抵消,从而减少与水回用相关的碳足迹。上下文评估任务调查了上下文如何影响玻利维亚和美国选定的社区规模系统的环境可持续性。在此任务中,比较了具有资源回收策略的农村发展中国家和城市发达国家的废水管理解决方案。与美国城市使用的高度机械化技术相比,玻利维亚农村使用的机械化较少的处理技术具有更低的碳足迹和具体化的能源。但是,美国社区系统的富营养化潜力比玻利维亚系统低,突出了全球和本地影响之间的权衡。此外,收集和直接甲烷排放在玻利维亚具有更重要的能源和碳影响,而处理电在美国社区系统中占主导地位。对于美国社区系统而言,体现在能源和碳足迹上的水再利用抵消较高,因为代替了河水,替代了高质量的饮用水。相反,对于玻利维亚系统,富营养化潜力的中水回用补偿很高,突出了将处理水平与最终用途匹配的重要性。玻利维亚的一种系统受益于水,能源和养分回收的整合,从而抵消了全球和局部影响。 (摘要由UMI缩短。)。

著录项

  • 作者

    Cornejo, Pablo K.;

  • 作者单位

    University of South Florida.;

  • 授予单位 University of South Florida.;
  • 学科 Environmental engineering.;Sustainability.;Water resources management.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 196 p.
  • 总页数 196
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:13

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