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Ultracapacitor Enabled Gatekeeper Energy Management Strategy for Single Mode eCVT Hybrid Vehicle Propulsion

机译:用于单模式eCVT混合动力车辆驱动器的启用超级电容器的网守能源管理策略

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Power split electronic continuously variable transmissions (eCVT''s) have evolved rapidly since the introduction of the Toyota Prius concept sedan at the 1995 Tokyo auto show. Exhibiting smooth and seamless speed transitions by virtue of its lack of clutch or step ratio gear change transmission, the eCVT has found remarkable acceptance in the marketplace in both economy and performance optimized hybrids. Performance places increased demands on the vehicle energy storage system (ESS) in the form of higher power cycling and thermal dissipation. Energy management strategies (EMS) have become very prominent in the need to manage the multiple power sources via efficiency optimizing control of engine output, floating bus voltage level on the generator and motor, electronically controlled brakes, and converter buffering of the traction battery. This investigation proposes a novel gatekeeper EMS that relies on the ultracapacitor as the power cache focal point for all ESS energy transactions. It is found that controlled power circulation to replenish the battery significantly reduces battery cycling and provides state of charge (SOC) control that facilitates battery size reduction
机译:自1995年东京车展的丰田普锐斯概念轿车引入以来,电力分配电子连续变速器(ECVT')已经迅速发展。凭借其缺乏离合器或步进比齿轮变速传输,展示平滑和无缝速度过渡,ECVT在经济和性能优化的混合动力车中发现了卓越的验收。性能在较高的功率循环和热耗散的形式上增加了车辆能量存储系统(ESS)的需求。能源管理策略(EMS)在需要通过发动机输出的效率优化控制需要管理多电源来源,浮动总线电压水平,电动机和电动机的浮动汇流电压和牵引电池的转换器缓冲的需要非常突出。本调查提出了一种依赖于Ultracapacitor的新型门卫EMS作为所有ESS能源交易的权力缓存焦点。发现受控电源循环以补充电池可显着降低电池循环,并提供充电状态(SOC)控制,便于减少电池尺寸

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