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A high performance power supply for an Electric Vehicle with solar PV, battery and ultracapacitor support for extended range and enhanced dynamic response

机译:具有太阳能光伏电池,电池和超级电池的电动汽车的高性能电源,用于扩展范围和增强的动态响应

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This paper proposes a highly reliable, extended range power supply for an Electric Vehicle (EV). The power supply consists of solar PV source and is supported by dual storage comprising battery and Ultracapacitor (UC). Battery is the main source of power, which is supported by the UC during the transient phase such as starting and braking (regeneration) and solar PV during the steady- state operation. The net effect of this arrangement is enhanced travel range, reduced battery size, enhanced battery life and excellent dynamic response during the dynamic phase. Improved dynamic performance results in smooth ride, optimal energy utilization and optimal sizing of energy sources. All the sources are interfaced with the common DC link through dedicated DC-DC converters. Battery and UC converters provide controllable bi-directional power flow capability. Solar PV source is operated with Maximum Power Point Tracking (MPPT). The paper describes control strategies for all the converters under various operating modes to ensure stability and fuel efficiency of the EV. The control strategy includes the inner current and outer voltage correcting loops for the storage interfaces to render fast dynamic response. Detailed modeling and design is provided for compensators used with storage and source interfaces. To validate the analytically developed controllers, the complete system is simulated and the steady state and dynamic performances are evaluated. Experimental verification of representative results are provided with a scaled down laboratory prototype.
机译:本文提出了一种高度可靠的电动车辆(EV)的扩展范围电源。电源由太阳能光伏电源组成,并由包括电池和超级电池(UC)的双存储器支持。电池是电力的主要源,其在瞬态相位期间由UC支撑,例如在稳态操作期间的起动和制动(再生)和太阳能光伏期间。这种布置的净效果是增强的行驶范围,降低电池尺寸,增强的电池寿命和动态阶段的优异动态响应。改进的动态性能导致平稳的乘坐,最佳能源利用和能源的最佳施胶。所有源通过专用的DC-DC转换器与公共直流链路接口。电池和UC转换器提供可控的双向功率流动能力。太阳能光伏源采用最大功率点跟踪(MPPT)运行。本文描述了各种操作模式下所有转换器的控制策略,以确保EV的稳定性和燃料效率。控制策略包括用于存储接口的内部电流和外部电压校正环,以呈现快速动态响应。提供了详细的建模和设计,用于存储和源接口的补偿器。为了验证分析开发的控制器,模拟完整的系统,评估稳态和动态性能。代表性结果的实验​​验证提供了缩小的下降实验室原型。

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