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SBIR Phase I: Compact, low-maintenance water treatment plant

SBIR Phase I: Compact, low-maintenance water treatment plant
SBIR 第一期:紧凑、低维护的水处理厂
批准号:
2212882
负责人:
Marcin Sawczuk
金额:
$25.58万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2023
资助国家:
美国
项目状态:
未结题
起止时间:
2023-02-15 至 2025-01-31

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中文摘要
翻译
这个小企业创新研究(SBIR)第一阶段项目的更广泛的影响/商业潜力将是开发一个低足迹的饮用水处理厂(WTP),适合促进急需的国家水基础设施升级。当今的饮用水处理系统正遭受大量产生的废物(每年每个典型工厂约100,000吨污泥)以及高维护要求和成本(每年4次为期一周的澄清器停用以进行清洁)的困扰。美国许多水处理厂的基础设施老化,使数百万美国人饮用水不足。这种情况,再加上供水运营商劳动力的老化和萎缩,导致供水中断和不合规的威胁越来越大。由于其占地面积小,能源和维护需求低,拟议的技术将提供一个易于实施的解决方案,可被世界各地的社区和供水系统采用,即使是在偏远地区。WTP的成功开发将为实现关键的全球可持续发展目标和促进人类健康和福祉提供独特的经济机会。这项技术将降低国家水基础设施升级的障碍,通过工厂实施引入长期延迟的升级创造就业机会。拟议的水处理厂正在开发的创新要素包括驱动自动混凝剂投加的自调节反馈/前馈控制器,其与高效水力絮凝器配对,该水力絮凝器利用湍流来促进絮凝物形成,同时保持无故障倾向的移动部件;配备有沉降板和用于有效去除污染物的污泥覆盖层系统的自清洁澄清器;对于给定的流量和床体积降低水力负荷速率的堆叠砂滤器,导致沉积颗粒的稳定性提高(即,减少的剪切和颗粒穿透);以及连续污泥脱水和处理系统,其减少产生的污泥的体积,同时还提供用于进一步处理的连续废物流。虽然早期的努力已经建立了一个概念验证,证明比传统系统少50%的能源需求,但需要继续研究和开发以提高系统性能和自主性。根据这一努力,第一阶段的努力将集中在:1)开发一个自动控制系统,精确的混凝剂剂量; 2)设计修改,以尽量减少废物流的体积;以及3)设计和建造具有15加仑/分钟容量的中试装置,适合满足~~社区的水处理需求该奖项反映了NSF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
The broader impact/commercial potential of this Small Business Innovation Research (SBIR) Phase I project will be the development of a low footprint drinking water treatment plant (WTP) suited to facilitate much-needed upgrades to the nation’s water infrastructure. Today’s drinking water treatment systems are suffering from high volumes of generated waste (~100,000 tons sludge per typical plant per year) and high maintenance requirements and costs (4x/year week-long clarifier decommissioning for cleaning). The aging infrastructure of many of the nation’s water treatment plants has left millions of Americans with inadequate drinking water. This situation, paired with the aging and shrinking water operator workforce, translates into a growing threat of water supply interruptions and noncompliance. Owing to its small footprint and low energy and maintenance demands, the proposed technology would deliver an easily implementable solution that could be adopted by communities and water systems around the world, even in remote areas. Successfully developed, the WTP will offer a unique economic opportunity to meet critical global sustainable development goals and promote human health and welfare. This technology will lower the barriers to upgrading the nation’s water infrastructure, creating jobs through the introduction of long-delayed upgrades through plant implementation.Elements of the innovation under development for the proposed water treatment plant include a self-modulating feedback/feedforward controller driving automated coagulant dosing, which is paired with a high-efficiency hydraulic flocculator that leverages turbulent flow to promote floc formation while remaining free of failure-prone moving parts; a self-cleaning clarifier fitted with settling plates and a sludge blanket system for efficient contaminant removal; a stacked sand filter that decreases the hydraulic loading rate for a given flow and bed volume, resulting in improved stability of the deposited particles (i.e., reduced shear and particle breakthrough); and a continuous sludge dewatering and treatment system that decreases the volume of produced sludge while also providing a continuous waste stream for further processing. While early efforts have established a proof-of-concept demonstrating operations at 50% less energy demand than conventional systems, continued research and development to improve system performance and autonomy are needed. In line with this effort, the Phase I effort will focus on: 1) development of an automated control system for precise coagulant dosing; 2) design modification to minimize waste stream volume; and 3) design and construction of a pilot plant with 15 gallons per minute capacity, suitable to meet the water treatment needs of communities of ~300 people.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.
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