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Contribution of country-specific electricity mix and charging time to environmental impact of battery electric vehicles: A case study of electric buses in Germany

机译:特定国家的电力结构和充电时间对电池电动车的环境影响的贡献:以德国的电动公交车为例

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In many countries, the replacement of internal combustion engine vehicles (ICEVs) with battery electric vehicles (BEVs) offers an opportunity to reduce CO2 equivalent (CO2eq) emissions in traffic. BEVs have significantly greater energy conversion efficiency from energy storage to wheel (tank-to-wheel [TTW]) and zero tailpipe emissions; these features are in stark contrast to the environmental burdens posed by vehicle production and electricity generation (well-to-tank PATTTD. Since CO2eq emissions from vehicle use of BEVs account for the majority of the entire life cycle emissions, it is important to closely examine the CO2eq intensity of electricity generation, which varies based on the sources of energy in the electricity mix of each country and time of day.This paper compares the environmental impact of diesel and electric buses in the city of Aachen throughout their life cycles and analyzes the effects of electricity generation with reference to variation in charging time. Based on recorded driving profiles, the vehicle dynamics of the longitudinal motion are simulated, and the energy demand as a function of the altitude profile and ambient temperature is calculated. The calculation of the quarter-hourly CO2eq intensity is combined with the vehicle life cycle model in order to examine the effects of electricity generation on BEV life cycle emissions. To analyze the correlation between charging time and BEV environmental impact, different charging scenarios are defined, and CO2eq savings from replacing ICEVs with BEVs are estimated. Scenario analyses are conducted over both short- and long-term time scales to predict the future environmental and economic benefits and costs of BEVs compared to ICEVs.The results demonstrate a significant dependency of BEV environmental impact on charging time, which varies by time of day and season. At night, the contribution of renewable energies to the electricity mix is low, and the variation in CO2eq intensity is limited; therefore, the environmental impact of charging time is lower compared to charging at noon. The larger CO2eq emissions of BEV production are compensated for all scenarios within the first year of operation. However, if BEVs are charged with electricity generated exclusively by lignite fired power plants, more CO2eq emissions are released over their lifetimes compared to ICEVs; this scenario also holds when ICEVs are fueled with biodiesel. Overall, the positive environmental balance of BEVs is not based on a low CO2eq intensity, but on the greater energy conversion efficiency and the possibility of recuperating braking energy. These properties are particularly advantageous in urban traffic.
机译:在许多国家,用电池电动汽车(BEV)替代内燃机汽车(ICEV)提供了减少交通中的CO2当量(CO2eq)排放的机会。 BEV的能量转换效率大大提高,从能量存储到车轮(油箱到车轮[TTW]),并且尾气排放为零;这些特征与车辆生产和发电所造成的环境负担形成鲜明的对比(从桶到桶的PATTTD。由于使用BEV的车辆产生的CO2eq排放量占整个生命周期排放量的大部分,因此重要的是仔细检查发电的二氧化碳当量强度,根据每个国家/地区电力组合中的能源和一天中的时间而有所不同。本文比较了亚琛市柴油和电动公共汽车在其整个生命周期中对环境的影响,并分析了充电时间变化对发电的影响。基于记录的行驶曲线,模拟车辆的纵向运动动力学,并计算出与海拔曲线和环境温度有关的能量需求。每小时CO2eq强度与车辆生命周期模型相结合,以检查电的影响BEV生命周期排放的核算。为了分析充电时间与BEV环境影响之间的相关性,定义了不同的充电方案,并估算了用BEV替代ICEV所节省的二氧化碳当量。情景分析在短期和长期范围内进行,以预测与ICEV相比,BEV的未来环境和经济效益以及成本,结果表明BEV环境对充电时间的依赖性很大,并且每天的时间会有所不同和季节。在晚上,可再生能源对电力结构的贡献很小,CO2eq强度的变化受到限制;因此,与中午充电相比,充电时间对环境的影响较小。 BEV生产中较大的CO2eq排放量将在运营的第一年内针对所有方案进行补偿。但是,如果BEV完全由褐煤发电厂发电,则与ICEV相比,在其使用寿命期间会释放更多的CO2eq排放量;当ICEV用生物柴油作为燃料时,这种情况也适用。总体而言,BEV的积极环境平衡不是基于较低的CO2eq强度,而是基于更高的能量转换效率和回收制动能量的可能性。这些特性在城市交通中特别有利。

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