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Performance, Modeling, and Characteristics of LFP pack for HEV using FUDS (depleting) in Hot and Arid Conditions.

机译:在炎热和干旱条件下使用FUDS(消耗)的HEV LFP包装的性能,建模和特性。

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摘要

There was a growing trend in the automotive market on the adoption of Hybrid Electric Vehicles (HEVs) for consumers to purchase. This was partially due to external pressures such as the effects of global warming, cost of petroleum, governmental regulations, and popularity of the vehicle type. HEV technology relied on a variety of factors which included the powertrain (PT) of the system, external driving conditions, and the type of driving pattern being driven. The core foundation for HEVs depended heavily on the battery pack and chemistry being adopted for the vehicle performance and operations. This paper focused on the effects of hot and arid temperatures on the performance of LiFePO4 (LFP) battery packs and presented a possible modeling method for overall performance.;Lithium-ion battery (LIB) packs were subjected to room and high temperature settings while being cycled under a current profile created from a drive cycle. The Federal Urban Driving Schedule (FUDS) was selected and modified to simulate normal city driving situation using an electric only drive mode. Capacity and impedance fade of the LIB packs were monitored over the lifetime of the pack to determine the overall performance through the variables of energy and power fade. Regression analysis was done on the energy and power fade of the LIB pack to determine the duration life of LIB packs for HEV applications. This was done by comparing energy and power fade with the average lifetime mileage of a vehicle.;The collected capacity and impedance data was used to create an electrical equivalent model (EEM). The model was produced through the process of a modified Randles circuit and the creation of the inverse constant phase element (ICPE). Results indicated the model had a potential for high fidelity as long as a sufficient amount of data was gathered. X-ray powder diffraction (XRD) and a scanning electron microscope (SEM) was performed on a fresh and cycled LFP battery. SEM results suggested a dramatic growth on LFP crystals with a reduction in carbon coating after cycling. XRD effects showed a slight uniformed strain and decrease in size of LFP olivine crystals after cycling.
机译:在汽车市场上,采用混合动力电动汽车(HEV)供消费者购买的趋势正在增长。这部分是由于外部压力,例如全球变暖的影响,石油成本,政府法规以及汽车类型的普及。混合动力汽车技术依赖于多种因素,包括系统的动力总成(PT),外部驾驶条件以及所驱动的驾驶方式的类型。混合动力汽车的核心基础在很大程度上取决于电池组以及车辆性能和操作所采用的化学物质。本文着重研究了高温和干旱温度对LiFePO4(LFP)电池组性能的影响,并提出了一种可能的整体性能建模方法。锂离子电池(LIB)电池组在室温和高温下均处于高温状态根据行驶周期创建的当前配置文件进行循环。选择并修改了联邦城市驾驶时间表(FUDS),以使用纯电动驾驶模式模拟正常的城市驾驶情况。在电池组的整个生命周期内对LIB电池组的容量和阻抗衰减进行监控,以通过能量和功率衰减变量来确定整体性能。对LIB电池组的能量和功率衰减进行回归分析,以确定HEV应用中LIB电池组的使用寿命。通过将能量衰减和功率衰减与车辆的平均使用寿命相比较来完成此工作。所收集的容量和阻抗数据用于创建电等效模型(EEM)。该模型是通过修改Randles电路的过程和逆恒定相位元素(ICPE)的创建而产生的。结果表明,只要收集到足够数量的数据,该模型就具有很高的保真度。在新鲜的循环LFP电池上进行X射线粉末衍射(XRD)和扫描电子显微镜(SEM)。 SEM结果表明,循环后LFP晶体显着生长,碳涂层减少。 XRD效应显示出轻微的均匀应变,循环后LFP橄榄石晶体尺寸减小。

著录项

  • 作者

    Opitz, Andrew.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Automotive engineering.;Applied mathematics.;Alternative Energy.;Energy.
  • 学位 M.S.
  • 年度 2016
  • 页码 102 p.
  • 总页数 102
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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