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An observer-based fault diagnosis in battery systems of hybrid vehicles

机译:基于观察者的混合动力汽车电池系统故障诊断

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Hybrid electric vehicles (HEVs) currently use Nickel-Metal Hydride (Ni-MH) batteries which have advantages of design flexibility, superior power, environmental acceptability and recyclability, long life, wide-range operating temperature and low cost. No matter how good a battery is, a failure can always occur in a battery leading to serious inconvenience, performance deterioration and costly replacement. Thus, it is desirable to be able to detect the underlying degradation and to predict level of unsatisfactory performance. By using current, voltage and temperature measurements of Ni-MH batteries, they can be modeled so that the internal dynamics of the batteries can be estimated and state of health of the batteries can be predicted for secure and long-life operations. An observer-based fault diagnosis approach is designed to analyze the state of health of the Ni-MH battery system of HEVs in this study. Real-world input data is used to assess the efficiency of the approach in the existence of uncertainties. The possible sensor faults and unexpected parameter deviations are diagnosed efficiently with statistical evaluation of the generated residuals.
机译:混合动力汽车(HEV)当前使用镍金属氢化物(Ni-MH)电池,这些电池具有设计灵活性,优异的功率,环境可接受性和可回收性,使用寿命长,工作温度范围宽和成本低等优点。无论电池的质量如何,电池总是会发生故障,从而导致严重的不便,性能下降和更换成本高昂。因此,期望能够检测潜在的退化并预测不令人满意的性能水平。通过使用Ni-MH电池的电流,电压和温度测量值,可以对它们进行建模,从而可以估算电池的内部动态,并可以预测电池的健康状态,以确保安全且使用寿命长。本文设计了一种基于观察者的故障诊断方法,以分析混合动力电动车镍氢电池系统的健康状态。在存在不确定性的情况下,真实世界的输入数据用于评估该方法的效率。通过对生成的残差进行统计评估,可以有效地诊断出可能的传感器故障和意外的参数偏差。

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