船舶直流推进系统稳定性研究综述:多物理场耦合机理与增强技术体系

Stability of Marine DC Propulsion Systems: A Review of Multiphysics Coupling Mechanisms and Hierarchical Enhancement Architectures

  • 摘要: 【目的】为提升船舶在现代高能效应用中的运行稳定性,针对多物理场耦合特性带来的严峻挑战,对船舶直流推进系统的稳定性问题进行了系统分析。【方法】基于“电磁—机械—流体”三维技术模型,对近年来船舶直流推进系统的稳定性研究动态进行归纳与比较,重点分析电压振荡、谐波谐振及机电失稳等关键问题在核心技术路线、能效特征与控制策略中的演化机制。【结果】研究表明:电压振荡阶段(近年来)通过优化电力电子器件与控制策略,可将电压波动控制在±15%;谐波谐振阶段(2021-2023年)采用提升响应时间与自适应调节方式,实现谐波抑制率达到60%,同时增强系统容错性;当前体系化阶段(2024年以后)融合数字孪生技术、高频元件与多场耦合模型,有效提升系统稳定裕度至2倍,电力系统响应时间提升40%,故障预测准确率达到92%。【结论】船舶直流推进系统的稳定性研究正加速从单一领域向多物理场协同、从被动应对向主动智能调控转变。通过融合先进电力电子技术与数字孪生平台的研究框架已成为下一代高能效船舶设计的主流方向,标志着系统稳定性研究向更高精度、更低能耗的新阶段跃迁,为未来船舶的智能化与高效能运行奠定了坚实基础。

     

    Abstract: Objectives In order to enhance the operational stability of ships in modern high-energy applications, the stability of ship DC propulsion systems is systematically analyzed in response to the severe challenges posed by the coupled characteristics of multi-physical fields. Methods Based on the “electromagnetic-mechanical-fluid” three-dimensional technology model, we summarize and compare the stability research dynamics of ship DC propulsion system in recent years, and focus on analyzing the evolution mechanism of voltage oscillation, harmonic resonance, and electro-mechanical instability in the core technology route, energy efficiency characteristics, and control strategy. The key issues such as voltage oscillation, harmonic resonance and electromechanical instability are analyzed in terms of core technology routes, energy efficiency characteristics and control strategies. Results The study shows that: the voltage oscillation stage (in recent years) can control the voltage fluctuation at ±15% by optimizing the power electronic devices and control strategies; the harmonic resonance stage (2021-2023) adopts the enhancement of the response time and adaptive regulation to achieve the harmonic suppression rate up to 60%, and at the same time enhances the fault tolerance of the system; and the current systematic stage (2024 onwards) integrates the digital twin technology, high-frequency components and multi-field coupling model, effectively improving the system stability margin to two times, power system response time by 40%, fault prediction accuracy of 92%. Conclusions The stability study of ship DC propulsion system is accelerating the transformation from single field to multi-physical field synergy, and from passive response to active intelligent regulation. The research framework by integrating advanced power electronics technology and digital twin platform has become the mainstream direction for the design of next-generation energy-efficient ships, marking the system stability research leaping to a new stage of higher precision and lower energy consumption, and laying a solid foundation for the intelligent and high-efficiency operation of future ships.

     

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