Collaborative Research: Mechanical and Electrical Reliability Maximization of Rechargeable Lithium-Ion Batteries through Microstructure Design
Collaborative Research: Mechanical and Electrical Reliability Maximization of Rechargeable Lithium-Ion Batteries through Microstructure Design
批准号:
0856491
负责人:
Edwin Garcia
金额:
$23.71万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-08-15 至 2013-07-31
中文摘要
该奖项的研究将:1)开发和实验验证数值模型,以模拟任意几何形状的真实可充电锂离子电池电极;2)改进电极电池材料和器件的等温化学应力建模与设计;3)开发解决局部焦耳加热产生的模型,以创建改进的电极几何形状。在每个推力中,微观结构将使用适合其长度尺度的成像方法(共聚焦显微镜,SEM和AFM)进行表征,以获得图像,其中每个相(活性物质,粘合剂,导电添加剂,孔隙率)被分解,从而通过通过数值模拟指导实验进行详细的模型验证和改进电池设计。这项研究的结果将建立对新兴电化学技术的基本理解,如可充电电池和弹性结构(电化学致动器)。通过了解导致系统局部机械、电气和热疲劳的机制,可以制造出具有显着提高可靠性的设备。通过了解微观结构、局部焦耳加热、晶体各向异性和维加德应力之间的关系,将开发可靠的更高功率密度。拟议研究的各个组成部分将整合到一个教育计划中,该计划将通过本研究开发的基本电化学概念整合到本科和研究生课程中,这些课程的重点将是引导未来几代材料工程师对电化学材料和器件进行详细的了解。
英文摘要
The research of this award will: 1) develop and experimentally validate numerical models to simulate real rechargeable lithium-ion battery electrodes of arbitrary geometries; 2) Isothermal chemical stresses modeling and design for improved electrode battery materials and devices; 3) Development of models that resolve the local Joule-heating generation to create improved electrode geometries. In each thrust, microstructures will be characterized using imaging methods appropriate to their length scale (confocal microscopy, SEM, and AFM) to obtain images where each of the phases (active material, binders, conductive additive, porosity) is resolved to enable detailed model validation and improved battery design by guiding the experiment through numerical simulation.The results of this research will build fundamental understanding for emerging electrochemical technologies, such as rechargeable batteries and nastic structures (electrochemical actuators). By understanding the mechanisms leading to the local mechanical, electrical, and thermal fatigue of the system, devices with dramatically improved reliabilities can be manufactured. By understanding the correlations between microstructure, local Joule heating, crystallographic anisotropy, and Vegard stresses, reliable higher power densities will be developed. The individual components of the proposed research will be integrated into an educational plan that will integrate the fundamental electrochemistry concepts developed through this research into undergraduate and graduate classes whose focus will be to lead future generations of materials engineers to develop a detailed understanding of electrochemical materials and devices.
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会议论文
NSF/DMR-BSF: Ceramic Electrode/Electrolyte Interfaces Fundamentals in all Solid State Li-ion Batteries
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批准号:1734763
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项目类别:Standard Grant
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资助金额:$45.0万
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财政年份:2017
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负责人:Edwin Garcia
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依托单位:
国内基金
海外基金
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