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A regenerative braking system for internal combustion engine vehicles using supercapacitors as energy storage elements - Part 1: System analysis and modelling

机译:使用超级电容器作为储能元件的内燃机车辆再生制动系统第1部分:系统分析和建模

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摘要

In this two-part work, an electric kinetic energy recovery system (e-KERS) for internal combustion engine vehicle (ICEV) is presented, and its performance evaluated through numerical simulations. The KERS proposed is based on the use of a supercapacitor as energy storage, interfaced to a brushless machine through a properly designed power converter. In part 1, the system is described and analysed, and the mathematical model used for the simulations is presented. For each component of the KERS, the real efficiency, and the power or energy limitations are adequately considered. In part 2, the energetic and economic advantages attainable by the proposed KERS are evaluated using MATLAB Simulink, considering a widely diffused passenger car and two reference driving cycles (ECE-15 and Artemis Urban). Energy savings of the order of 20% were found, with a slight increase in vehicle weight (+2%) and with an overall commercial cost that would be compensated in 5 years thanks to the fuel economy improvement, to which corresponds an equal reduction of CO2 emissions. The low complexity of the system, never proposed for ICEV, the moderate weight of its components, and their availability on the market, make the solution presented ready for the introduction in current vehicle production.
机译:在这个由两部分组成的工作中,提出了用于内燃机车辆(ICEV)的电动动能回收系统(e-KERS),并通过数值模拟对其性能进行了评估。提出的KERS基于使用超级电容器作为能量存储,并通过适当设计的功率转换器连接到无刷电机。在第1部分中,对系统进行了描述和分析,并给出了用于仿真的数学模型。对于KERS的每个组件,都应充分考虑实际效率以及功率或能量限制。在第2部分中,考虑到广泛分布的乘用车和两个参考驾驶周期(ECE-15和Artemis Urban),使用MATLAB Simulink评估了提出的KERS可获得的能量和经济优势。发现节省了大约20%的能源,车辆重量略有增加(+ 2%),并且由于燃油经济性的提高,总的商业成本将在5年内得到补偿,相当于减少了20%的能耗。二氧化碳排放量。该系统的低复杂性(从未为ICEV提出过),其部件的适中重量以及它们在市场上的可用性,使得该解决方案可以立即引入当前的汽车生产中。

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