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Modelling and implementation of an energy management simulator based on agents using optimised fuzzy rules: application to an electric vehicle

机译:基于代理使用优化模糊规则的基于代理的能量管理模拟器的建模与实现:应用于电动车辆的应用

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This paper presents an intelligent algorithm based on multi agent systems to manage the energy in a hybrid electrical vehicle using a model of lithium metal polymer (LMP) battery and a model of an electrical double layer capacitor (EDLC). The algorithm uses fuzzy rules optimised by a genetic algorithm to control the flow of energy inside the system. The LMP battery is linked to a boost converter to insure the autonomy of the electrical vehicle, while the EDLC is linked to a back boost converter that provides the highly demanded energy in a short time and guarantees the temporarily energy storage when the vehicle is braking (no energy is demanded). The hybrid electrical vehicle is simulated in different driving cycles to analyse the behaviour of the LMP battery and the EDLC. Results showed that the used hybrid strategy was able to ensure the autonomy of the vehicle in terms of energy since it has performed a minimum energy cost and a maximum profit in autonomy, which means a longer life of the hybrid electric source.
机译:本文介绍了一种基于多代理系统的智能算法,用于使用锂金属聚合物(LMP)电池(LMP)电池模型和电双层电容器(EDLC)模型管理混合动力电动车辆中的能量。该算法使用遗传算法优化的模糊规则来控制系统内的能量流。 LMP电池与升压转换器连接以确保电动车辆的自主权,而EDLC与后升压转换器连接,在短时间内提供高度要求的能量,并在车辆制动时保证暂时的能量存储器(要求没有能量)。混合电动车辆在不同的驱动周期中模拟,以分析LMP电池和EDLC的行为。结果表明,使用的混合策略能够确保在能量方面的自主权,因为它已经在最低能源成本和最大的自主利润中进行了最大的利润,这意味着混合电源的寿命更长。

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