Testing Battery Parameters and Estimate Strategies for Electrical Vehicle

Shrikant Kapase, M. Murali, S. Mukhopadhyay
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Abstract

In the fast-growing market of Electrical Vehicles (EV), the State of Charge (SOC) of the battery is an important indicator of battery capacity. For designing the model of the battery, parameter estimation is a very important aspect to be considered in electric vehicles. The determination of SOC and other battery parameters is a challenging task for which there is a need to develop a technique for accurate estimation of these parameters. Researchers are working to find methods to reduce both the time needed for battery parameter estimation and the number of times the experiments must be conducted. Universal Adaptive Stabilization (UAS) methodology is one such technique that yields accurate estimations while simultaneously reducing the number of iterations to converge toward the true value. UAS technique is one of the best methods which can be easy to use for estimating other parameters of the battery model like output terminal voltage and series resistance as well. An important component of the UAS technique is a switching function. A particular class of switching functions, the Nussbaum type function, having Mittag-Leffler (ML) form, is discussed within this paper. This paper also presents a way to implement this technique successfully on a small electric vehicle (EV) prototype with continuous recalibrations done during run-time.
电动汽车电池参数测试及估计策略
在快速发展的电动汽车市场中,电池的荷电状态(SOC)是衡量电池容量的重要指标。在电动汽车电池模型设计中,参数估计是需要考虑的一个重要方面。SOC和其他电池参数的确定是一项具有挑战性的任务,需要开发一种准确估计这些参数的技术。研究人员正在努力寻找方法来减少电池参数估计所需的时间和必须进行的实验次数。通用自适应稳定(UAS)方法就是这样一种技术,它可以产生准确的估计,同时减少迭代次数以收敛于真实值。UAS技术是一种很好的方法,它可以很容易地用于估计电池模型的其他参数,如输出端电压和串联电阻。UAS技术的一个重要组成部分是切换功能。本文讨论了一类具有Mittag-Leffler (ML)形式的特殊开关函数Nussbaum型函数。本文还介绍了一种在小型电动汽车(EV)原型上成功实现该技术的方法,在运行期间进行连续重新校准。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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