RII Track-4: Superparamagnetic Iron Oxide Nanoparticles as Recoverable Microwave Susceptors for Pre-hydrolysis of Waste Activated Sludge prior to Anaerobic Digestion
RII Track-4: Superparamagnetic Iron Oxide Nanoparticles as Recoverable Microwave Susceptors for Pre-hydrolysis of Waste Activated Sludge prior to Anaerobic Digestion
批准号:
2132018
负责人:
Onur Apul
金额:
$13.07万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2022
资助国家:
美国
项目状态:
未结题
起止时间:
2022-02-01 至 2025-01-31
中文摘要
在美国,市政污水处理厂每年产生650万吨剩余污泥。这些剩余污泥的运输和处置占废水处理总成本的一半,每年超过20亿美元,年增长率稳定在1%。稳定废弃污泥的一种常见做法是在处置前进行厌氧消化(AD)。这项技术可以被描述为在没有游离氧气的情况下将污泥微生物转化为沼气。从AD生产的沼气是一种有价值的绿色燃料,其热值与天然气相当。此外,消化后的污泥经过AD处理后更易于运输和处置。尽管有这些环境和经济优势,AD的反应时间长,工艺产率低。即使在滞留20-30天的情况下,污泥的分解也是不完全的,留下35%-45%的污泥没有消化。该项目利用极具活性、可回收的磁性氧化铁纳米颗粒(或超顺磁性氧化铁纳米颗粒)来提高污泥消化的效率,并改善该工艺的经济效益和环境效益。这个RII Track-4:NSF项目旨在最大限度地减少与剩余污水污泥管理相关的成本和环境影响。这项奖学金将在耶鲁大学化学与环境工程系内举行,涉及对研究生培训的支持。超顺磁性氧化铁纳米颗粒(SPION)是具有开创性的纳米材料,在许多行业具有显著的应用潜力。SPIONS可以快速、高效地响应磁畴,而不会产生明显的剩磁。此外,它们还可以在微波(MW)辐射下快速加热。它们的特性使其在污泥预处理应用中具有广阔的应用前景。首先,它们有可能结合到污泥絮凝组件的组件上,并从战略上向细胞或细胞外聚合物提供即时和高强度的微波加热。毫瓦辐射产生一个振荡的电磁场,使SPION的电偶极矩和磁矩都旋转,产生内部振动,以局部热量的形式耗散能量。其次,由于SPION的尺寸(通常为50 nm),SPION具有填充在微小物理区域内的自旋电子,该区域可以响应磁场而不存在剩磁(即,显示顺磁和铁磁材料的性质)。因此,SPION没有磁滞的负担,这使得它们即使在复杂的反应堆安装中也能够有效和快速地从泥浆中回收。这项拟议研究的主要优点是,Spion的性能可以进行战略性调整,以获得卓越的介电加热和磁反应性,同时保持材料的完整性,以实现重复使用的微波前处理。通过RII Track-4:NSF奖学金,PI旨在开发一种实用技术,该技术将量身定做并使用SPIONS作为介电和可回收的感应器,用于微波诱导废水污泥的预水解。首先,PI和一名研究生将学习高级Spion合成的方案。接下来,该团队将专注于至少三个在顺磁能力、兆瓦加热和可重复使用的材料完整性方面表现出希望的SPION。最后,将优化废水处理工艺,并将进行实验,以确定温度、水化学、泥浆粘度和羟基自由基的形成等基本控制因素对水解路径的作用,以确保数据质量。这项奖学金将在耶鲁大学化学和环境工程系内举行。这一奖项反映了NSF的法定使命,并通过使用基金会的智力优势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
Municipal sewage treatment plants generate 6.5 million metric tons of excess sludge every year in the United States. Transportation and disposal of this excess sludge comprise half of the total wastewater treatment cost, exceeding $2 billion per year with a steady 1% annual increase. A common practice to stabilize waste sludge is anaerobic digestion (AD) prior to disposal. This technology can be described as the microbial transformation of sludge into biogas in the absence of free oxygen. The biogas produced from AD is a valuable green fuel, and it has comparable calorific value to natural gas. Furthermore, the digested sludge becomes easier to transport and dispose of after AD. Despite these environmental and economic advantages, AD has long reaction times, and low process yields. Even under 20-30 days of retention, sludge decomposition is incomplete, leaving 35-45% of the sludge undigested. This project utilizes extremely reactive, recoverable magnetic iron oxide nanoparticles (or superparamagnetic iron oxide nanoparticles) to improve the efficiency of sludge digestion and improve the economic and environmental benefits of the process. This RII Track-4:NSF project aims to minimize the costs and environmental impacts associated with excess sewage sludge management. This fellowship will take place at Yale University within the Department of Chemical and Environmental Engineering and involves support for a graduate trainee.Superparamagnetic iron oxide nanoparticles (SPIONs) are ground-breaking nanomaterials with remarkable application potential in a multitude of industries. SPIONs can respond to magnetic domains rapidly and efficiently without significant remanence. In addition, they can heat rapidly under microwave (MW) irradiation. Their properties make them promising candidates for sludge pretreatment applications. First, they have the potential to bind to components of sludge floc assemblies and deliver immediate and intense MW heating strategically to cells or extracellular polymers. MW irradiation creates an oscillating electromagnetic field that causes SPIONs to have both their electrical dipole moments and their magnetic moments rotate, creating internal vibrations that dissipate energy in the form of heat locally. Second, due to their size (typically 50 nm) SPIONs have spin electrons packed within a minuscule physical domain that can respond to the magnetic field without remanence magnetism (i.e., showing properties of both paramagnetic and ferromagnetic materials). Therefore, SPIONs do not have the burden of magnetic hysteresis, which empowers their effective and rapid recovery from slurries even in complicated reactor installations. The key merit of this proposed study is that SPION properties can be strategically tuned for superior dielectric heating and magnetic reactivity while maintaining material integrity to accomplish repeated use for MW pretreatment. Through this RII Track-4:NSF fellowship, the PI aims to develop a practical technology that will tailor and employ SPIONS as dielectric and recoverable susceptors for MW-induced pre-hydrolysis of wastewater sludges. First, the PI and a graduate trainee will learn protocols for advanced SPION synthesis. Next, the team will focus on at least three SPIONs that show promise in terms of paramagnetic abilities, MW heating, and material integrity for repeated use. Finally, the process for wastewater treatment will be optimized, and experiments to identify hydrolysis pathways such as the role of temperature, water chemistry, slurry viscosity and formation of hydroxyl radicals and other basic controls will be conducted to ensure data quality. This fellowship will take place at Yale University within the Department of Chemical and Environmental Engineering.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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会议论文
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