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Identification of the interdependance of aging and internal pressure evolution of commercial Li-ion cells.

机译:商业锂离子电池老化与内压演变之间的相互关系的鉴定。

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摘要

The demand for high power and energy coupled with long cycle life, low cost, and increased safety have become the driving factors in the development of lithium-ion batteries. This demand continues to expand with the sustained capability expansion of high power military applications, electric vehicles, grid-tie energy storage, and other renewable energy applications. Unlike the short innovation cycles that technologies like portable electronics experience, these applications are focused on an affordable long term product lifecycle that is safe. In order to achieve these long term goals, a better understanding of the chief degradation mechanisms as well as a more sophisticated approach for battery life prediction is needed.;This research examined the use of internal pressure evolution of commercial lithium-ion cells as a metric for predicting aging or damage. A novel test chamber was designed and manufactured that enabled commercial cells to be punctured in an inert environment and tested inside of the chamber during full lifecycle, and damage event testing. Three studies were undertaken to examine the internal pressure behavior of li-ion cells: the single cycle internal pressure evolution of a LiFePO4/C6 cell over high-rate lifecycle testing, over-discharge characterization of various li-ion chemistries, and a more extensive study aimed at correlating the internal pressure rise and capacity degradation of LiCoO2/C6 cells cycled at elevated rates. These studies examined the pressure evolution behavior of the cells and compared this behavior with degradation analysis including electrochemical impedance spectroscopy, capacity fade, DC equivalent series resistance, differential capacity, gas chromatography-mass spectroscopy, and scanning electron microscope imaging.;Through the measurement and understanding of the bulk internal pressure behavior, these studies confirmed the ability to detect degradation events like over-discharge, the ability to measure the apparent bulk volume change of the electrodes and correlate this change to the capacity fade of the cell, and the ability to directly correlate the pressure rise with the capacity fade of various cells cycled at high-rate charge and discharge. The addition of internal pressure as an in-situ measurement may be used as a substitute or to supplement other more conventional diagnostic tools. Additionally, this method may be of particular use for systems that are cycled at high rate, high temperatures, or both.
机译:对高功率和能量的需求以及长循环寿命,低成本和更高的安全性已成为锂离子电池发展的驱动因素。随着高功率军事应用,电动汽车,并网储能和其他可再生能源应用的持续能力扩展,这种需求持续增长。与便携式电子产品等技术所经历的短暂创新周期不同,这些应用程序侧重于负担得起的长期安全产品生命周期。为了实现这些长期目标,需要对主要的降解机理有更深入的了解,并需要一种更复杂的电池寿命预测方法。这项研究研究了商业锂离子电池内部压力演变的度量用于预测老化或损坏。设计和制造了一种新颖的测试室,该测试室使商业电池能够在惰性环境中穿刺,并在整个生命周期和损坏事件测试期间在室内进行测试。进行了三项研究以检查锂离子电池的内部压力行为:在高速率生命周期测试中LiFePO4 / C6电池的单周期内部压力演变,各种锂离子化学物质的过放电特性以及更广泛的应用一项旨在将以升高的速率循环的LiCoO2 / C6细胞的内部压力升高与容量降低相关联的研究。这些研究检查了细胞的压力演化行为,并将此行为与降解分析(包括电化学阻抗谱,容量衰减,直流等效串联电阻,差分电容,气相色谱-质谱和扫描电子显微镜成像)进行了比较。在了解整体内部压力行为后,这些研究证实了检测退化事件(如过放电)的能力,测量电极的表观体积变化并将其与电池容量衰减相关联的能力以及直接将压力上升与以高倍率充放电循环的各种电池的容量衰减相关联。可以将内部压力添加为原位测量值,以替代或补充其他更常规的诊断工具。另外,该方法对于以高速率,高温或两者循环的系统可能特别有用。

著录项

  • 作者

    Matasso, Anthony.;

  • 作者单位

    The University of Texas at Arlington.;

  • 授予单位 The University of Texas at Arlington.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 148 p.
  • 总页数 148
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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