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Impact of Vehicle Charge and Discharge Cycles on the Thermal Characteristics of Lithium-ion Batteries

机译:车辆充放电循环对锂离子电池热特性的影响

摘要

The performance, life-cycle cost, and safety of electric and hybrid electric vehicles (EVs and HEVs) depend strongly on the vehicle’s energy storage system. Advanced batteries such as lithium-ion (Li-ion) polymer batteries are quite viable options for storing energy in EVs and HEVs. Battery temperature impacts battery performance, SOH, and may even present a safety risk. Therefore, thermal management is essential for achieving the desired performance and life-cycle from a vehicle battery pack comprised of a particular battery cell or module. This work presents the thermal characteristics of a prismatic pouch battery comprised of LiFePO4 electrode material and modules. Characterization is performed via experiments that enable development of an empirical battery thermal model for vehicle simulations. As well electrical data is presented for the validation of electrochemistry based battery thermal models. The research is organized into two parts.Part-I: An apparatus was designed to measure the surface temperature distribution, heat flux, and heat generation from a battery pouch cell undergoing various charge/discharge cycles. In this work, a prismatic lithium-ion pouch cell is cooled by two cold plates with 19 thermocouples and 3 heat flux sensors applied to the battery at distributed locations. The total heat generation from a particular battery is obtained at various discharge rates (1C, 2C, 3C, and 4C) and different cooling bath temperature (5 0C, 15 0C, 25 0C, and 35 0C). Results show that the heat generation rate is greatly affected by the both discharge rate and boundary conditions. The developed experimental facility can be used for the measurement of heat generation from any prismatic battery, regardless of chemistry. Thermal images obtained at different discharge rates are presented within to enable visualization of the temperature distribution. An empirical battery thermal model is developed and validated with collected data from a test bench in terms of temperature, SOC and voltage profile.In part-II: In-situ vehicle data was collected using three data loggers installed in three different Burlington Hydro Ford Escape vehicles (one pure EV and other two HEVs). The data collection infrastructure developed produced monthly reports for the EV, allowing Burlington Hydro to track the vehicle’s distance travelled, energy consumption, efficiency, and charging times. Five months of data for the EV indicated 792.6 km travelled and 222.6 kWh of grid electricity consumed. The real-world drive cycles from the EV were then performed with the lab apparatus and thermal data was collected and analyzed. In this study, a vehicle model using PSAT/Autonomie software is developed based on available specifications of the vehicle and is validated with the collected drive cycle.
机译:电动和混合动力汽车(EV和HEV)的性能,生命周期成本和安全性在很大程度上取决于车辆的储能系统。诸如锂离子(Li-ion)聚合物电池之类的高级电池是在电动汽车和混合动力汽车中存储能量的非常可行的选择。电池温度会影响电池性能,SOH,甚至可能会带来安全隐患。因此,热管理对于从包含特定电池单元或模块的车辆电池组中获得所需性能和生命周期至关重要。这项工作介绍了由LiFePO4电极材料和模块组成的棱形袋式电池的热特性。表征是通过实验进行的,这些实验使得能够开发用于车辆仿真的经验电池热模型。还提供了用于验证基于电化学的电池热模型的电数据。这项研究分为两个部分:第一部分:设计用于测量表面温度分布,热通量和经历各种充电/放电循环的电池袋电池单元产生的热量的设备。在这项工作中,棱柱形锂离子袋式电池由两个散热板冷却,该散热板带有19个热电偶和3个热通量传感器,分别应用于分布位置的电池。在不同的放电速率(1C,2C,3C和4C)和不同的冷却浴温度(5 0C,15 0C,25 0C和35 0C)下,可以获得特定电池的总热量。结果表明,生热率受排量和边界条件的影响很大。开发的实验设备可用于测量任何方形电池产生的热量,而无需考虑化学性质。在内部显示了以不同放电速率获得的热图像,以实现温度分布的可视化。建立了一个经验电池热模型,并使用了来自测试台的温度,SOC和电压曲线方面的数据进行了验证。第二部分:使用安装在三个不同的Burlington Hydro Ford Escape中的三个数据记录器收集了现场车辆数据车辆(一辆纯电动汽车和另外两辆混合动力汽车)。开发的数据收集基础设施每月为电动汽车生成报告,使Burlington Hydro能够跟踪车辆的行驶距离,能耗,效率和充电时间。电动汽车的五个月数据表明行驶了792.6公里,消耗了222.6千瓦时的电网电量。然后,使用实验室设备执行来自EV的实际驾驶循环,并收集和分析热数据。在这项研究中,基于车辆的可用规格开发了使用PSAT / Autonomie软件的车辆模型,并通过收集的行驶周期对其进行了验证。

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  • 作者

    Panchal Satyam;

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  • 年度 2014
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  • 原文格式 PDF
  • 正文语种 en
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