Joint Optimization of Energy Replenishment and Sailing Speed for Inland Electric Vessels Under Time-of-Use Pricing

Battery-powered propulsion offers a pathway for reducing inland shipping emissions. However, low battery energy density limits sailing range and may require energy replenishment during a voyage, thereby complicating energy and voyage planning for inland electric vessels. Time-of-use (TOU) pricing creates cost-saving opportunities but further complicates planning because energy replenishment and sailing speed are closely coupled. This study develops a joint optimization framework for an inland electric vessel under TOU pricing that determines replenishment ports, technologies, amounts, and leg-specific sailing speeds to minimize total replenishment costs. The problem is formulated as a mixed-integer nonlinear programming model and reformulated as a mixed-integer linear programming approximation through equivalent linearization and speed discretization. A Yangtze River case study with five operating conditions evaluates the proposed framework. The results show that, under the proposed framework, TOU pricing reduces total replenishment costs by 42.4–43.4% compared to fixed pricing. Relative to a sailing-speed optimization benchmark, joint optimization under TOU pricing reduces replenishment costs by 9.8–12.5% and energy consumption by 4.2–5.6%. The cost-saving potential also varies with the voyage time limit, voyage start time, relative charging and battery swapping rates, and the availability of opportunity charging.

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Publication Details

Journal
Journal of Marine Science and Engineering
Published
2026-09-04
DOI
https://doi.org/10.3390/jmse14171644
Primary Topic
Maritime Transport Emissions and Efficiency
Type
article
Field-Weighted Citation Impact
0.00

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article

Joint Optimization of Energy Replenishment and Sailing Speed for Inland Electric Vessels Under Time-of-Use Pricing

Siqing Guo, Lei Dai, Mingyuan Yue, Yubing Wang et al.
Journal of Marine Science and Engineering
Maritime Transport Emissions and Efficiency
article

Joint Optimization of Energy Replenishment and Sailing Speed for Inland Electric Vessels Under Time-of-Use Pricing

Siqing Guo, Lei Dai, Mingyuan Yue, Yubing Wang, Shaosong Zhu, Hao Hu, Yuni Li
article en

Abstract

Battery-powered propulsion offers a pathway for reducing inland shipping emissions. However, low battery energy density limits sailing range and may require energy replenishment during a voyage, thereby complicating energy and voyage planning for inland electric vessels. Time-of-use (TOU) pricing creates cost-saving opportunities but further complicates planning because energy replenishment and sailing speed are closely coupled. This study develops a joint optimization framework for an inland electric vessel under TOU pricing that determines replenishment ports, technologies, amounts, and leg-specific sailing speeds to minimize total replenishment costs. The problem is formulated as a mixed-integer nonlinear programming model and reformulated as a mixed-integer linear programming approximation through equivalent linearization and speed discretization. A Yangtze River case study with five operating conditions evaluates the proposed framework. The results show that, under the proposed framework, TOU pricing reduces total replenishment costs by 42.4–43.4% compared to fixed pricing. Relative to a sailing-speed optimization benchmark, joint optimization under TOU pricing reduces replenishment costs by 9.8–12.5% and energy consumption by 4.2–5.6%. The cost-saving potential also varies with the voyage time limit, voyage start time, relative charging and battery swapping rates, and the availability of opportunity charging.

Journal of Marine Science and EngineeringVol. 14(17)
Shanghai Jiao Tong University (CN), China Ocean Shipping (China) (CN), Shanghai Ocean University (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 17%
Maritime Transport Emissions and Efficiency
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