课题基金 / 基金详情

CBET-EPSRC: Characterizing the effects of supply hours and pressure of intermittent piped water supplies on water quality

CBET-EPSRC: Characterizing the effects of supply hours and pressure of intermittent piped water supplies on water quality
CBET-EPSRC:表征间歇性管道供水的供应时间和压力对水质的影响
批准号:
1804232
负责人:
Emily Kumpel
金额:
$32.14万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-09-01 至 2023-08-31

项目摘要

项目成果

Emily Kumpel的其他基金

相似基金

相关文献

中文摘要
翻译
流经饮用水分配系统的水可能由于供应中断或低水压期而受到污染。在美国,由于基础设施系统老化和自然灾害,这些中断目前更为常见。在美国以外,超过10亿人每天通过管道供水系统获得不到24小时的水。本项目将研究配水系统中定期压力损失对水质的影响。在与英国谢菲尔德大学的合作下,这项研究将更好地了解间歇性运行的管道供水系统对水质的影响,从而可以制定减少水传播疾病传播的战略。此外,该项目将有助于培养工程专业学生参与国际合作和全球劳动力。研究小组将从代表性不足的人群中招收本科生和研究生,并为K-12学生开发饮用水分配系统的教育模块,从而扩大工程学的参与。虽然已经研究了供水系统中其他连续供应的瞬时压力损失的影响,但长期供水中断对管道微生物的影响以前没有在受控条件下进行过研究。本研究的贡献是阐明慢性中断影响生物膜和水供应主体阶段微生物生态和病原体行为的基本机制。核心假设是,频繁中断加压供水会影响生物膜的结构和组成,细菌的生长,以及管道内肠道病原体的持续和释放。这些频繁的中断的总效果是负面的影响水的质量收到水龙头。为了验证这一假设,Emily Kumpel的研究小组与英国谢菲尔德大学的研究人员合作,将:1)描述连续和间歇供应管道中大量水和生物膜的微生物学;2)确定断续供应管道中病原微生物指标的去向和迁移;3)建立了间歇性供水中不同供水时间对水传播疾病风险的影响模型。这项拟议的研究将使用谢菲尔德大学的一个国际独特的600米长的温度控制,实际规模的管道回路设施。该设施的三个液压隔离回路将在单独的供应制度下运行,以建立基线质量参数,确定微生物群落的存在、组成和功能,研究生物膜的结构和组成,并调查病原体指标的生存和生长。最后,从这些实验中产生的数据将用于开发定量微生物风险评估模型,以评估不同供应时间对水传播疾病潜在风险的影响。通过对这些供应中断如何影响管道微生物学的更基本的了解,这项研究可以导致改善水质策略的发展。总的来说,这项研究可以通过识别和减少长期间歇性网络和连续加压分配系统中断对健康造成的风险来加强美国的水安全。该奖项反映了美国国家科学基金会的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Water flowing through drinking water distribution systems can become contaminated due to interruptions in supply or periods of low water pressure. In the US, these interruptions are currently more common due to aging infrastructure systems and natural disasters. Outside the US, more than one billion people receive water through piped distribution systems for less than 24 hours per day. This project will study the effect of regular pressure loss in water distribution systems on water quality. In collaboration with the University of Sheffield in England, this research will provide a better understanding of the effect of intermittently operated piped water systems on water quality which can lead to strategies for the reduction of the spread of waterborne diseases. Additionally, this project will help train engineering students for engagement in international collaborations and global workforces. The research team will broaden participation in engineering by recruiting undergraduate and graduate students from underrepresented populations and by developing education modules on drinking water distribution systems for K-12 audiences. While the influence of momentary loss of pressure in otherwise continuous supplies in water distribution systems has been studied, the effect of chronic water interruptions on the microbiology of pipes was not previously examined under controlled conditions. The contribution of this proposed research is to elucidate the fundamental mechanisms by which chronic interruptions influence the microbial ecology and behavior of pathogens in biofilms and in the bulk phase of the water supply. The central hypothesis is that frequent interruptions to pressurized water supply affect the structure and composition of biofilms, the growth of bacteria, and the persistence and release of enteric pathogens within the pipes. The sum effect of these frequent interruptions is negatively influencing the quality of the water received at the tap. To test this hypothesis, the research group of Emily Kumpel, in collaboration with researchers at the University of Sheffield in England, will: 1) describe the microbiology of bulk water and biofilms in continuously and intermittently supplied pipes; 2) determine the fate and transport of indicators of pathogenic organisms in intermittently supplied pipes; and 3) model the impact of varying hours of supply in intermittent supply on the risk of waterborne disease. This proposed research will use an internationally-unique 600 m long temperature-controlled, real-scale pipe loop facility at the University of Sheffield. The three hydraulically-isolated loops in this facility will be operated with separate supply regimes to establish baseline quality parameters, determine the presence, composition, and function of microbial communities, study the biofilm structure and composition, and investigate the survival and growth of pathogen indicators. Finally, data generated from these experiments will be used to develop a quantitative microbial risk assessment model to evaluate the impact of varying hours of supply on the potential risk of waterborne disease. By gaining a more fundamental understanding of how these supply interruptions affect the microbiology of pipes, this research can lead to the development of strategies for improving water quality. Overall, this research can strengthen US water security by identifying and reducing the risks to health posed by chronically intermittent networks and by interruptions to otherwise continuously pressurized distribution systems.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
SCC-CIVIC-PG Track B: Remote Monitoring of Small Rural Water Systems to Ensure Safe Drinking Water through Disasters and Natural Recovery
  • 批准号:
    2043847
  • 项目类别:
    Standard Grant
  • 资助金额:
    $5.0万
  • 财政年份:
    2021
  • 负责人:
    Emily Kumpel
  • 依托单位:
IRES Track 1: Envisioning the Water, Electricity, and Sanitation Utilities of the Future through a US-Kenya Collaboration
  • 批准号:
    1854133
  • 项目类别:
    Standard Grant
  • 资助金额:
    $30.0万
  • 财政年份:
    2019
  • 负责人:
    Emily Kumpel
  • 依托单位:
海外基金