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Multi-objective electric vehicle scheduling considering customer and system objectives

机译:考虑客户和系统目标的多目标电动汽车调度

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Electric vehicle (EV) scheduling is a multi-objective optimization problem with conflicting system and customer interests. They bear the potential to support the grid while providing incentives to the customers through energy transactions, demand response and grid support. Vehicle-to-grid operations provide the customer with attractive avenues for earning revenues but degrade the battery life. Efficient and economical solutions require a balance between customer incurred costs, battery degradation costs and system health. In this paper, the relationships between these objectives have been explored using a multi-objective optimization technique called augmented epsilon-constraint method (AUGMECON). The Pareto optimal solutions will provide day-ahead strategies for coordinating electric vehicles which can then be used for selecting mutually beneficial outcomes.
机译:电动汽车(EV)调度是一个多目标的优化问题,具有相互冲突的系统和客户利益。他们有潜力支持电网,同时通过能源交易,需求响应和电网支持为客户提供激励。车辆到电网的运营为客户提供了赚钱的诱人途径,但会缩短电池寿命。高效,经济的解决方案需要在客户产生的成本,电池降级成本和系统运行状况之间取得平衡。在本文中,已经使用称为增强ε约束方法(AUGMECON)的多目标优化技术探索了这些目标之间的关系。帕累托最优解决方案将提供协调电动汽车的超前策略,然后可用于选择互惠互利的结果。

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