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Investigating the effect of carbon tax and carbon quota policy to achieve low carbon logistics operations

机译:调查碳税和碳配额政策实现低碳物流业务的影响

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Developing a low-carbon economy and reducing carbon dioxide emission have become a consensus for both academics and practitioners. However, the existing literature did not pay enough attention in interrogating the impacts of Carbon Tax (CT) and Carbon Quota (CQ) policy on distribution costs and carbon dioxide emission in the field of vehicle routing problem. Moreover, the investigated subsidies factor is also incomplete. This research stands on the position of the company to study the impact of CT and CQ policy on aforementioned two aspects. A mathematical model is developed to achieve the best low carbon vehicle routing under the optimal policy. The optimization goal of this research is to minimize the total cost that includes vehicle-using, transportation, CT, CQ, and raw material subsidy costs. An improved optimization algorithm, namely Genetic Algorithm-Tabu Search (GA-TS), is proposed to solve a given business case. In the simulation experiments, GA-TS and a traditional GA are compared and the results show the advantage of GA-TS on reducing the total cost and carbon dioxide emission. Furthermore, the experiments also explore the total cost and carbon dioxide emission under three scenarios (Benchmark, CT and CQ), incorporating four policies: CT, Carbon Tax Subsidy (CTS), CQ, and Carbon Quota Subsidy (CQS). It is concluded that CQS is the ideal policy to minimize distribution cost and carbon dioxide emission. In addition, the impact of vehicles' capacities on the total cost and carbon dioxide emission is also analyzed in this research. This research also aimed at assisting practitioners in better formulating delivery routes, as well as policy makers in developing carbon policies. Finally, the limitations and the future research directions of this research are also discussed.
机译:开发低碳经济并降低二氧化碳排放已成为学者和从业者的共识。然而,现有文献在询问碳税(CT)和碳配额(CQ)政策对车辆路径问题领域的分配成本和二氧化碳排放的影响方面没有足够的重视。此外,调查补贴因子也不完整。本研究代表了公司的位置,研究CT和CQ政策对上述两个方面的影响。开发了一种数学模型,以在最佳政策下实现最佳的低碳车辆路由。本研究的优化目标是最大限度地减少包括车辆使用,运输,CT,CQ和原料补贴成本的总成本。提出了一种改进的优化算法,即遗传算法 - 禁忌搜索(GA-TS),以解决给定的商业案例。在模拟实验中,比较GA-TS和传统的GA,结果表明了GA-TS在降低总成本和二氧化碳排放方面的优势。此外,实验还探讨了三种情况下的总成本和二氧化碳排放(基准,CT和CQ),包括四项政策:CT,碳税额(CTS),CQ和碳配额补贴(CQS)。得出结论,CQS是最大限度地减少分配成本和二氧化碳排放的理想政策。此外,在本研究中还分析了车辆对总成本和二氧化碳排放的能力的影响。该研究还旨在协助从业人员更好地制定交付路线,以及制定碳政策的决策者。最后,还讨论了该研究的局限性和未来的研究方向。

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