Performance and Efficiency Analysis for Lithium-ion Battery Using State of Charge Method

Walter Udeze, Sarhan M. Musa
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Abstract

Companies throughout the world are making an innovative switch from oil and gas to renewable energy sources, such as wind and solar power. As the world transitions to renewable energy, the demand for electric vehicles (EVs) has increased significantly. EVs mainly use Lithium-ion batteries because of their durability and efficiency. However, as the number of Lithium-ion batteries increases with the goal of reduction of emission and low energy cost, it comes with a major drawback of safety which affects efficiency. To address these challenges, this study investigates ways on how to improve the storage management system in an EV. In this research, different Lithium-ion battery states of an EV were monitored to effectively improve the battery management system (BMS). Two different drive cycles, federal test procedure (FTP) 75 and wide-open throttle (WOT) simulation time of 2474 seconds are used to obtain the results. The implementation of State of charge (SOC) technique has been applied to evaluate the energy remaining in the battery as well as the aging effects/dynamic load. The results obtained show a rate that gradually slows down in a linear manner. In addition, EVs have a less likely chance of experiencing power loss due to a very sophisticated gear system and it is very similar to a hybrid electric vehicle or internal combustion engine.
用充电状态法分析锂离子电池的性能和效率
世界各地的公司正在进行从石油和天然气到可再生能源(如风能和太阳能)的创新转变。随着世界向可再生能源过渡,对电动汽车(ev)的需求大幅增加。电动汽车主要使用锂离子电池,因为它的耐用性和效率。然而,随着以减少排放和降低能源成本为目标的锂离子电池数量的增加,它的一个主要缺点是安全,影响效率。为了应对这些挑战,本研究探讨了如何改进电动汽车的存储管理系统。本研究通过监测电动汽车锂离子电池的不同状态,有效地改进电池管理系统(BMS)。采用两种不同的驱动循环,联邦测试程序(FTP) 75和大开油门(WOT)模拟时间2474秒来获得结果。应用荷电状态(SOC)技术对电池剩余能量以及老化效应/动态负载进行评估。得到的结果表明,速率以线性方式逐渐减慢。此外,由于非常复杂的齿轮系统,电动汽车经历功率损失的可能性较小,它与混合动力汽车或内燃机非常相似。
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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