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A Comparative Study on the Routing Problem of Electric and Fuel Vehicles Considering Carbon Trading

机译:考虑碳交易的电动和燃料车辆路径问题的比较研究

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摘要

In order to explore the impact of using electric vehicles on the cost and environment of logistics enterprises, this paper studies the optimization of vehicle routing problems with the consideration of carbon trading policies. Both the electric vehicle routing model and the traditional fuel vehicle routing model are constructed aiming at minimizing the total costs, which includes the fixed costs of vehicles, depreciation costs, penalty costs for violating customer time window, energy costs and carbon trading costs. Then a hybrid genetic algorithm (HGA) is proposed to address these two models, the advantages of greedy algorithm and random full permutation are combined to set the initial population, at the same time, the crossover operation is improved to retain the excellent gene fragments effectively and the hill climbing algorithm is embedded to enhance the local search ability of HGA. Furthermore, a case data is used with HGA to carry out computational experiments in these two models and the results indicate that first using electric vehicles for distribution can indeed reduce the carbon emissions, but results in a low customer satisfaction compared with using fuel vehicles. Besides, the battery capacity and charge rate have a great influence on total costs of using electric vehicles. Second, carbon price plays an important role in the transformation of logistics companies. As the carbon price changes, the total costs, carbon trading costs, and carbon emissions of using electric vehicles and fuel vehicles are affected accordingly, yet the trends are different. The changes of carbon quota have nothing to do with the distribution scheme and companies’ transformation but influence the total costs of using electric and fuel vehicles for distribution, and the trends are the same. These reasonable proposals can support the government on carbon trading policy, and also the logistics companies on dealing the relationship between economic and social benefits.
机译:为了探讨使用电动汽车对物流企业的成本和环境的影响,本文在考虑碳交易政策的情况下研究了车辆路径优化问题。电动汽车路线模型和传统燃料汽车路线模型均旨在最小化总成本,包括车辆的固定成本,折旧成本,违反客户时间窗的罚款成本,能源成本和碳交易成本。然后针对这两个模型提出了一种混合遗传算法(HGA),结合了贪婪算法和随机全置换的优点来设置初始种群,同时改进了交叉操作以有效保留优秀的基因片段。嵌入了爬山算法,提高了HGA的局部搜索能力。此外,案例数据与HGA一起在这两个模型中进行了计算实验,结果表明,首先使用电动汽车进行分配确实可以减少碳排放,但是与使用燃料汽车相比,其客户满意度较低。此外,电池容量和充电率对使用电动汽车的总成本有很大影响。其次,碳价在物流公司的转型中起着重要作用。随着碳价的变化,使用电动汽车和燃料汽车的总成本,碳交易成本和碳排放量也受到影响,但趋势却有所不同。碳配额的变化与分配方案和公司的转型无关,但会影响使用电动和燃料车辆进行分配的总成本,趋势是相同的。这些合理的建议可以支持政府的碳交易政策,也可以支持物流公司处理经济和社会利益之间的关系。

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