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Thermal Modeling and Optimization of Lithium-Ion Batteries for Electric Vehicles

机译:电动汽车锂离子电池的热建模和优化

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摘要

This dissertation contributes to the modeling and optimization of Lithium-ion battery's thermal management for electrified vehicles (EVs). EVs in automotive technology is one of the principal solutions to today's environmental concerns such as air pollution and greenhouse impacts.;Light duty and heavy duty EVs can decrease the amount of the pollution efficiently. EV's receive their power from installed rechargeable batteries in the car. These batteries are not just utilized to power the car but used for the functioning of lights, wipers and other electrical accessories. The Lithium-ion batteries (LIBs) have attracted a lot of research interest in recent years, due to their high potential as compared to the conventional aqueous based batteries, high gravimetric and volumetric energy density, and high power capability. However, Li-ion batteries suffer from high self-heating, particularly during high power applications and fast charging, which confines their lifetime and cause safety, reliability and environmental concerns. Therefore, the first part of this study consists of the experimental investigation of the charge-discharge behavior and heat generation rate of lithium ion cells at different C-rates to monitor and record the thermal behavior of the cell. A further concern regarding LIBs is strongly dependent on the quality and efficiency of battery thermal management system. Hence, this is extremely important to identify a reliable and accurate battery management system (BMS). Here in the second part, we show that thermal management and the reliability of Li-ion batteries can be drastically improved using optimization technique.;Furthermore, a LIB is a compact system including high energy materials which may undergo thermal runaway and explode the battery if overcharged due to the decomposition of battery materials within the electrolyte and electrodes that generate flammable gaseous species. The application of this kind of technology needs many laboratory experiments and simulations to identify the fundamental thermal characteristics of the system before passing it to the real use. An accurate battery model proposes a method to simulate the complex situations of the system without performing time-consuming actual tests, thus a reliable scheme to identify the source of heat generation and required parameters to optimize the cell performance is necessary.;For this reason, the latest phase of this research covers the development and comparison of a model based on adjustable design parameters to predict and optimize battery performances. This kind of model provides a relationship with the accuracy and simplicity to estimate the cell dynamics during charge and discharge.
机译:本文为电动汽车锂离子电池的热管理建模和优化做出了贡献。汽车技术中的电动汽车是解决诸如空气污染和温室效应等当今环境问题的主要解决方案之一。轻型和重型电动汽车可以有效地减少污染量。电动汽车从汽车上已安装的可充电电池获得电力。这些电池不仅用于为汽车供电,还用于照明灯,雨刮器和其他电气附件的功能。锂离子电池(LIB)由于与传统的水基电池相比具有很高的潜力,高的重量和体积能量密度以及高的功率能力,近年来吸引了许多研究兴趣。然而,锂离子电池遭受高的自发热,特别是在高功率应用和快速充电期间,这限制了它们的寿命并引起安全性,可靠性和环境问题。因此,本研究的第一部分包括在不同的C速率下对锂离子电池的充放电行为和生热速率进行实验研究,以监视和记录电池的热行为。有关LIB的另一个问题在很大程度上取决于电池热管理系统的质量和效率。因此,这对于确定可靠且准确的电池管理系统(BMS)极为重要。在第二部分中,我们显示了使用优化技术可以大大改善锂离子电池的热管理和可靠性。此外,锂离子电池是一个紧凑的系统,其中包含高能材料,如果发生这种情况,锂离子电池可能会发生热失控并爆炸。由于电解质和电极中电池材料的分解而产生过量的过度充电,从而产生易燃气体。这种技术的应用需要大量的实验室实验和模拟,以识别系统的基本热特性,然后才能将其传递给实际使用。准确的电池模型提出了一种在不执行耗时的实际测试的情况下模拟系统复杂情况的方法,因此需要一种可靠的方案来识别热量的产生源和优化电池性能所需的参数。该研究的最新阶段涉及基于可调整设计参数的模型的开发和比较,以预测和优化电池性能。这种模型提供了一种准确性和简单性之间的关系,以估算充电和放电期间的电池动态。

著录项

  • 作者

    Ghalkhani, Maryam.;

  • 作者单位

    University of Windsor (Canada).;

  • 授予单位 University of Windsor (Canada).;
  • 学科 Electrical engineering.;Mechanical engineering.;Chemical engineering.;Energy.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 157 p.
  • 总页数 157
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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