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A probabilistic fleet analysis for energy consumption, life cycle cost and greenhouse gas emissions modelling of bus technologies

机译:公交技术的能耗,生命周期成本和温室气体排放模型的概率车队分析

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Introducing alternative bus fleet technologies requires investigation into life cycle impacts, risks and benefits. Previous modelling approaches comparatively assess individual vehicle energy demands and life cycle impacts, assuming alternative technologies can fulfil identical life cycle functions to a diesel baseline. This assumption neglects the influence that service frequency, capacity and range limitations have on daily operations and fleet and infrastructure sizing. The goal of this study was to develop a framework to investigate bus fleet operation in terms of the risk and uncertainty of an alternative drivetrain technology's ability to mitigate life cycle costs and greenhouse gas emissions. Probabilistic simulation enabled risk and uncertainty quantification of diesel, micro-hybrid, mild-hybrid and battery-electric fleet scenarios for a UK case study. The fleet analysis approach revealed decreased potential to reduce life cycle costs and greenhouse gas emissions from battery-electric buses. Compared to a baseline single-deck diesel fleet at low risk levels, the micro-hybrid double-deck fleet delivers the largest life cycle cost savings (18.7%). The largest life cycle greenhouse gas emissions savings come from the mild-hybrid lithium-titanate single-deck fleet (20.8%). Double-deck micro and mild hybrid fleets are the most effective at saving both life cycle costs and greenhouse gas emissions. The modelling approach adds a novel probabilistic capability for making comparative fleet-wide assertions, supporting the decision-making process for implementing new sustainable fleet technologies.
机译:引入替代公交车队技术需要调查生命周期的影响,风险和收益。假设替代技术可以实现与柴油基准相同的生命周期功能,则先前的建模方法会比较评估单个车辆的能源需求和生命周期影响。该假设忽略了服务频率,容量和航程限制对日常运营以及机队和基础设施规模的影响。这项研究的目的是建立一个框架,以研究替代动力传动系统技术减轻生命周期成本和温室气体排放的能力的风险和不确定性。概率模拟可以对英国案例研究中的柴油,微混合动力,轻度混合动力和电池电力车队情景进行风险和不确定性量化。车队分析方法显示,降低生命周期成本和电池电动公交车温室气体排放的潜力正在降低。与低风险水平的基准单甲板柴油机队相比,微混合双层甲板机队可最大程度地节省生命周期成本(18.7%)。生命周期内最大的温室气体排放节省来自温和混合的钛酸锂单层船队(20.8%)。双层微型和轻度混合动力车队在节省生命周期成本和温室气体排放方面最有效。该建模方法增加了一种新颖的概率能力,可用于对整个机队进行比较,从而支持实施新的可持续机队技术的决策过程。

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