加勒比海岛电动汽车充电与再生制动动态无线能量传输仿真研究

A. Maharaj, S. Bahadoorsingh, C. Sharma, C. Powell, G. E. Mahadeo
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引用次数: 1

摘要

用于电动汽车(EV)充电的动态无线电力传输(DWPT)是一项新兴技术,其驱动因素是降低当前电池容量限制的需求。DWPT有可能增加行驶里程,缩短充电时间,同时管理电池相关因素,包括重量、外形因素和高昂的成本。在Matlab/Simulink中建立了一种新型的电动汽车充电DWPT集成模型,研究了加勒比海双岛特立尼达和多巴哥共和国低、中、高电动汽车密度(每公里电动汽车数量)下的长回路、分段回路和间隔回路三种感应功率传输(IPT)充电线圈配置。采用公路燃油经济性试验(HWFET)行驶工况。对比了在无再生制动的情况下,3种充电方式下3种电动汽车密度下再生制动和DWPT的仿真结果。结果表明,分段环和长环装药方式效果最好;在低电动汽车密度和中等电动汽车密度情况下,截面回路分别使行驶里程增加280.1%和13.1%,电池容量减少68.75%和9.5%,而在高电动汽车密度情况下,长回路配置使行驶里程增加43.2%,电池容量减少27.5%。
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A Simulation Study of Dynamic Wireless Power Transfer for EV Charging Versus Regenerative Braking in a Caribbean Island
Dynamic wireless power transfer (DWPT) for electric vehicle (EV) charging is an emerging technology driven by the need to reduce current battery capacity limitations. DWPT has the potential to increase driving range as well as reduce charging time while managing battery related factors including weight, form factor and prohibitive costs. A novel integrated DWPT model for EV charging in Matlab/Simulink was developed to investigate three inductive power transfer (IPT) charging coil configurations: long loop, sectional loop and spaced loop at low, medium and high EV densities (number of EVs per km) in the Caribbean twin island Republic of Trinidad and Tobago. The Highway Fuel Economy Test (HWFET) driving cycle was applied. Simulations of regenerative braking and DWPT using three charging configurations at three levels of EV densities without regenerative braking were compared. The results revealed that the sectional loop and long loop charging configurations offered the greatest benefits; the sectional loop allowed for a 280.1% and 13.1% increase in driving range and a 68.75% and 9.5% reduction in battery capacity for the low and medium EV density cases respectively while the long loop configuration allowed for a 43.2% increase in driving range and 27.5% reduction in battery capacity for the high EV density case.
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