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Development of Fuzzy Logic-Based Lead Acid Battery Management Techniques with Applications to 42V Systems

机译:基于模糊逻辑的铅酸电池管理技术的开发应用于42V系统

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As the implementation of 42 volt systems is being phased into commercial vehicles, the battery technology is being developed with little time for adequate long-term testing and modeling to assess battery performance before their implementation into vehicles. Reliable battery monitoring and management systems for these 42 volt systems will be critical for optimizing performance. Furthermore, these battery monitoring and management systems must be developed and implemented rapidly and be adaptable to the changing characteristics of the batteries as they age. Over the last five years, Villanova University and US Nanocorp have been jointly developing patented fuzzy logic-based technology for estimating the state-of-charge (SOC) and state-of-health (SOH) of batteries. This methodology has proven to be both a simple and a powerful means to model battery characteristics accurately and robustly. The methodology can be interfaced to any battery interrogation technique including coulomb counting, voltage recovery, and battery impedance methods. Furthermore, the use of neural network-based algorithms can be used to adaptively modify the fuzzy algorithms based on changing battery conditions. Finally, the fuzzy logic methodology lends itself well to rapid system design and development, and can be implemented efficiently in existing on-board vehicle microprocessors. In this paper, we will describe how impedance measurements and voltage response measurements combined with fuzzy logic data analysis have been used to estimate the SOC of spirally wound 2V lead acid cells. We will also describe how this approach may be extended to 42V battery systems.
机译:随着42伏系统的实施正在被分阶定到商用车辆中,电池技术正在开发出足够的时间,以适当的长期测试和建模,以评估在其进入车辆之前的电池性能。对于这些42伏系统的可靠电池监控和管理系统对于优化性能至关重要。此外,必须快速开发和实施这些电池监控和管理系统,并适应电池的变化特性。在过去的五年中,Villanova University和US Nanocorp一直在共同开发专利的模糊逻辑技术,用于估算电池的充电状态(SOC)和健康状态(SOH)。这种方法已被证明是一种简单而强大的方法,可以准确且强大地模拟电池特性。该方法可以接地到包括库仑计数,电压回收和电池阻抗方法的任何电池询问技术。此外,可以使用基于神经网络的算法的使用来基于改变电池条件自适应地修改模糊算法。最后,模糊逻辑方法非常适合快速系统的设计和开发,可以在现有的车载车辆微处理器中有效地实现。在本文中,我们将描述使用模糊逻辑数据分析的阻抗测量和电压响应测量已被用于估算螺旋缠绕2V铅酸细胞的SOC。我们还将描述这种方法如何扩展到42V电池系统。

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