SBIR Phase I: Viability of Low-Cost Cell Components for XL Batteries' Mild Aqueous Flow Battery
SBIR Phase I: Viability of Low-Cost Cell Components for XL Batteries' Mild Aqueous Flow Battery
批准号:
2014603
负责人:
Paul Evans
金额:
$22.42万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-06-01 至 2021-09-30
中文摘要
这个小型企业创新研究(SBIR)项目的更广泛影响/商业潜力是开发一种网格规模的电池,以实现大规模能量存储。这样的电池将提高现有电力基础设施的性能和可靠性,最终将能够存储来自风能和太阳能等间歇性可再生能源的备用电力。美国目前的电网存储容量不到每日发电量的0.01%,其中95%是受地理限制的抽水蓄能技术,该技术已经在可能的地方安装。作为权宜之计,人们越来越多地使用便携式锂离子技术,这体现了对新的网格级能源存储的需求,2019年的存储部署比2018年几乎翻了一番。具体地说,这个项目将实现一种新的电池,具有即时反应,廉价,具有20多年的稳定性,并且是不可燃的。该SBIR第一阶段项目建议验证在制造pH中性水性有机氧化还原液流电池(RFB)的电池组件时使用廉价且易于制造的材料。目前的商用RFB,如钒系统,使用昂贵的材料来承受腐蚀性电解液和极端的pH水平。这导致了电化学电池的高组件和制造成本,抑制了该技术的转化。在pH中性的条件下使用温和的化学物质可能会使使用廉价的电池材料成为可能。这项研究项目将致力于确保无处不在、廉价和易于制造的制造材料不会影响新型pH中性有机流动电池20+年寿命的稳定性。这些材料,如聚乙烯、聚丙烯、聚氯乙烯和其他常见的橡胶和塑料,将被系统地暴露在带电和中性的电解液中,以便随后通过核磁共振、LC/MS、质谱分析、表面表征、应力测试和各种其他技术进行分析,以确保它们的化学或物理性能不会发生退化。将进行更多的性能测试,并将开发一个原型。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
The broader impact/commercial potential of this Small Business Innovation Research (SBIR) project is the development of a grid-scale battery to enable large-scale energy storage. Such a battery would improve the performance and reliability of existing power infrastructure, and it would ultimately enable storing backup power from intermittent renewable sources, such as wind and solar. US grid storage capacity today is less than 0.01% of daily generation, 95% of which is geographically-limited pumped hydroelectric storage technology that is already installed where possible. The demand for new grid-level energy storage is seen in the growing use of portable lithium ion technology as a stopgap measure, with storage deployments in 2019 nearly doubling compared to 2018. Specifically, this project will enable a new battery with instant response that is inexpensive, has a 20+ year stability, and is non-flammable. This SBIR Phase I project proposes to validate the use of inexpensive and easy-to-manufacture materials in the fabrication of the cell components of a pH-neutral aqueous, organic redox flow battery (RFB). Current commercial RFBs, such as vanadium systems, utilize expensive materials to withstand their corrosive electrolytes and extreme pH levels. This leads to high component and fabrication costs for the electrochemical cell, inhibiting translation of the technology. Using mild chemistry in pH-neutral conditions is likely to enable the use of inexpensive cell materials. This research project will work to ensure that ubiquitous, inexpensive, and easy-to-manufacture fabrication materials do not impact the stability of a novel 20+ year lifetime pH-neutral aqueous organic flow battery. These materials, such as polyethylene, polypropylene, polyvinyl chloride and other common rubbers and plastics, will be systematically exposed to both the charged and neutral electrolyte for subsequent analysis by NMR, LC/MS, mass spectrometry, surface characterization, stress tests, and various other techniques to ensure that no degradation of their chemical or physical properties occurs. Additional performance tests will be conducted and a prototype will be developed.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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依托单位:
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