SBIR Phase I: Air-breathing electrochemical devices for long-duration grid-scale energy storage
SBIR Phase I: Air-breathing electrochemical devices for long-duration grid-scale energy storage
批准号:
1819740
负责人:
William Woodford
金额:
$22.33万
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:
2018-07-01 至 2018-12-31
中文摘要
小型企业创新研究(SBIR)项目的更广泛影响/商业潜力是,通过用与化石燃料的可分配性和可靠性相匹配的超低成本能源存储来增加这些发电资产,充分释放风能和太阳能光伏等可再生能源的潜力。可再生能源与超低成本、持续时间长的能源储存相结合,形成了一种新的发电资产“基本负荷可再生能源”,这将进一步推动美国的能源独立和在风能和太阳能行业的领先地位。由于它们的基本成本状况和/或无法扩展,现有的储能技术无法满足这些长期储能应用的价格和性能要求;即使是最激进的定价预测也表明,锂离子电池对于这些应用来说太贵了一个数量级。该SBIR第一阶段项目建议开发超低成本(20美元/千瓦时)、长持续时间(24小时额定持续时间)的能量存储解决方案,使可再生能源成为化石燃料发电的一种具有成本效益的、广泛的、插电式替代能源。吸气式水硫电池为满足这些严格的成本和性能目标的系统级长寿命存储资产的开发提供了独特的平台。该技术平台利用硫磺、水和空气等低成本、丰富的化学品,实现了超低成本的电化学储能系统。在这项SBIR的第一阶段,将开发一种吸气式储能装置的原型,并证明它将显著降低这项技术的电力成本(美元/千瓦)。这将通过系统地研究和优化电化学活性和非活性材料,以及设计针对长时间呼吸空气的电化学系统而优化的电池和系统架构来实现。该奖项反映了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 to unleash the full potential of renewable electricity generation sources such as wind and solar photovoltaic by augmenting those generation assets with ultra-low-cost energy storage that matches the dispatchability and dependability of fossil fuels. The combination of renewable generation sources with ultra-low-cost, long-duration energy storage enables a new class of generation assets "baseload renewables" which further US energy independence and leadership in the wind and solar industries. Due to their fundamental cost positions and/or inability to scale, existing energy storage technologies are unable to meet the price and performance requirements for these long-duration energy storage applications; even the most aggressive forecasts for pricing indicate that lithium ion batteries are an order of magnitude too expensive for these applications. This SBIR Phase I project proposes to develop ultra-low-cost ($20/kWh), long-duration (24h rated duration) energy storage solutions to enable renewable generation sources to be a cost effective, widespread, drop-in replacement to fossil fuel electricity generation. Air-breathing aqueous sulfur batteries provide a unique platform for the development of system-level long-duration storage assets meeting these stringent cost and performance targets. The technology platform leverages low-cost, abundant chemicals such as sulfur, water, and air, to enable an ultra-low-cost electrochemical energy storage system. In Phase I of this SBIR, a prototype air-breathing energy storage device will be developed and demonstrated that significantly reduces the power cost ($/kW) of this technology. This will be achieved by systematically investigating and optimizing the electrochemical active and inactive materials and by designing cell and system architectures which are optimized for long-duration air-breathing electrochemical 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.
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