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Rapid manufacture of solid-state battery structures by additive manufacturing and Flash sintering

Rapid manufacture of solid-state battery structures by additive manufacturing and Flash sintering
通过增材制造和闪速烧结快速制造固态电池结构
批准号:
10007480
负责人:
金额:
$30.61万
依托单位:
依托单位国家:
英国
项目类别:
Collaborative R&D
财政年份:
2021
资助国家:
英国
项目状态:
已结题
起止时间:
2021 至 --

项目摘要

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中文摘要
翻译
随着英国政府要求到2050年实现净零碳排放,以及到2030年禁止销售新的汽油和柴油汽车,毫无疑问,电池市场将在未来10年内经历快速增长。固态电池是增强和取代当前锂离子技术的关键技术,因为它们具有更高的安全性和实现更大能量/功率密度的潜力。项目合作伙伴Lucideon,KWSP和拉夫堡大学将评估两种互补技术,增材制造(AM)和非接触式场增强烧结(c-Flash),以制造薄,用于锂离子和钠离子电池的固体电解质的纹理/设计膜。这种新的制造方法解决了固态电池的三个主要技术挑战:薄膜处理,增加电解质/电极界面面积和最大限度地减少离子挥发。该项目将同时以资源和能源效率方面的效益为目标,评估将两种新型高效技术相结合以发挥两种系统优势的可能性。这些工艺和中试规模制造将同时开发,以加快技术开发。增材制造提供了显著的优势,例如数字化生产灵活性,减少材料浪费和减轻部件重量。AM固有的卓越设计自由度将促进薄膜沉积,最终目标是在固态下实现阳极、电解质、阴极的互穿3D结构,消除传统约束并打破当前系统的能量-功率限制。c-Flash是为加工陶瓷薄膜而开发的,具有显著的优势,如显著减少烧结时间和降低峰值烧结温度。通过c-闪存处理的微观结构变化,增强陶瓷的电气和机械性能也是可能的。陶瓷强度的增加将使厚度减小和电阻降低,有利于固态电池的设计和性能。c-Flash可用于快速致密化电解质材料,从而显著减少加工过程中的离子挥发。该项目将由代表电池供应链横截面的行业指导委员会指导。该委员会将提供建议,并讨论/指导开发的技术,因为目标是满足。从这个项目的突破可能会创造一个独特的技术开发在英国。这项技术将使英国成为低能耗和低废物制造方法的领导者。通过这一途径生产的固态电池可能会占据电动汽车电池市场的重要份额,英国电池供应链的采用将增强英国在这一领域的增长和竞争能力。
英文摘要
With the UK government's mandate to achieve net-zero carbon emissions by 2050, together with the ban on sales of new petrol and diesel cars by 2030, there is no doubt that the battery market is going to experience rapid growth over the next 10 years. Solid-state batteries are a key technology to augment and replace current lithium-ion technology due to their increased safety and potential to achieve greater energy/power densities.Project partners, Lucideon, KWSP and Loughborough University will assess two complementary technologies, Additive Manufacturing (AM) and contactless Field Enhanced Sintering (c-Flash) to manufacture thin, textured/designed films of solid electrolytes for Li-ion and Na-ion batteries. This new method of manufacturing addresses three of the main technological challenges with solid-state batteries: thin film processing, increasing electrolyte/electrode interfacial area and minimising ion volatilisation. This project will simultaneously target benefits in resource and energy efficiency, assessing the possibility of combining two novel and highly efficient technologies to exploit the strengths of both systems. The processes and pilot scale manufacturing will be developed in parallel to expedite technology exploitation.AM offers significant benefits such as digital production flexibility, reduced material waste and component weight reduction. The exceptional design freedom inherent in AM will facilitate thin film deposition ultimately aiming for interpenetrating 3D structures of anode, electrolyte, cathode in solid-state, eliminating the conventional constraints and breaking the energy-power limit of current systems. c-Flash, developed for processing thin ceramic films, has significant benefits such as dramatically reducing sintering times and lowering peak sintering temperature. Enhanced ceramic electrical and mechanical properties are also possible, via microstructural changes from c-Flash processing. An increase in ceramic strength would enable thickness reduction and lower resistance with benefits for solid-state battery design and performance. c-Flash can be used to rapidly densify electrolyte material resulting in significant reduction of ion volatilisation during processing.The project will be guided by an industrial steering committee, representing a cross-section of the battery supply chain. The committee will offer advice and discuss/steer exploitation of technology as objectives are met.A breakthrough from this project could create a unique technology for exploitation in the UK. This technology would allow the UK to become a leader in low energy and low waste manufacturing methods. Solid-state batteries made by this route could take significant shares of the EV battery market and adoption by the UK battery supply chain would reinforce the UK's ability to grow and compete in this sector.
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