海港微电网与冷熨一体化的滨海港口运营优化与能源管理系统

Nur Najihah Abu Bakar , Najmeh Bazmohammadi , Juan C. Vasquez , Josep M. Guerrero
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引用次数: 0

摘要

港口操作电气化需要对系统操作进行新的调整,这带来了新的复杂性和操作挑战。冷熨烫的碳捕获正在引起人们的关注,以减少航运排放,但实施它会影响传统的工作流程调度,并增加港口的能源负担。因此,需要优化操作调度和新的能源管理策略。本文提出了一个两级优化框架来解决协调问题。第一级优化针对泊位分配问题(BAP)、冷熨分配问题(CIAP)和码头起重机分配问题(QCAP)这三个不同的作业调度问题开发了算法,以最小化船舶停留时间。同时,在第二层提出了一个多目标优化问题,以最小化海港微电网的能源运行成本和港口排放。数值模拟的结果表明,在运营绩效、成本节约和减排方面有了实质性的改善,这对港口运营商和航运公司都有好处。通过综合优化策略协调这两个问题,港口可以可靠地采用创新的电气化解决方案,同时保持竞争力。此外,还向港口运营商提供了帕累托最优解集,使他们能够进行权衡分析并纳入战略优先级。这种综合方法为下一代港口运营管理系统奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Seaside port operation optimization and energy management system with integrated seaport microgrid and cold ironing

Seaside port operation optimization and energy management system with integrated seaport microgrid and cold ironing
Electrification of port operations requires new adaptations to system operation which introduces new complexities and operating challenges. The carbon capture of cold ironing is gaining attention to mitigate shipping emissions, but implementing it impacts conventional workflow scheduling and increases the energy burden at ports. Hence, it necessitates optimal coordination of operations scheduling and novel energy management strategies. This research proposes a two-level optimization framework to address coordination problems. The first level of optimization develops the algorithm for three different operation scheduling problems: the berth allocation problem (BAP), the cold ironing assignment problem (CIAP), and the quay crane allocation problem (QCAP) to minimize the ship stay duration. Meanwhile, a multi-objective optimization problem is formulated at the second level to minimize energy operation costs and port emissions from the seaport microgrid. The output from numerical simulations demonstrates substantial improvements in operation performance, cost savings, and emission reduction, which benefit both port operators and shipping companies. By coordinating these two problems through an integrated optimization strategy, ports can reliably adopt innovative electrification solutions while maintaining competitive performance. Besides, the set of Pareto optimal solutions is provided to the port operators, enabling them to perform a tradeoff analysis and incorporate strategic priorities. This integrated approach lays the groundwork for next-generation operation management systems at ports.
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