船舶结构高维优化技术的研究进展与展望

Research progress and prospects of high dimensional optimization technology for ship structures

  • 摘要: 随着船舶结构精细化设计需求的日益提升,船舶结构优化问题的设计变量维度大幅上升,可高达成百上千。结构有限元仿真分析也更加精细和耗时,结构优化设计问题进一步成为耗时的高维优化问题。近年来,研究高效的高维优化问题求解方法,发展船舶结构高维优化设计技术,已成为重要研究热点与主流发展趋势。对近年来高维优化方法及其在船舶结构高维优化应用研究进展进行了系统总结:首先,描述了高维优化问题的内涵,并详细概述了基于协同/分解优化框架的求解方法及其涉及的关键技术;接着,从高维约束优化问题和高维昂贵优化问题两大方向,对其求解方法做出了较为完整的阐述;之后,对船舶结构优化设计的先验知识以及近年来的工程应用进行了总结;最后,指出了船舶结构高维优化设计领域存在的主要问题与挑战,并从船舶结构高维优化设计的代理模型技术、多任务优化设计技术以及人工智能赋能的优化设计技术三个方面,对未来研究方向做出了展望。

     

    Abstract: With the increasing demand for refined design of ship structures, the dimensions of design variables for ship structure optimization problems have significantly increased, reaching hundreds or thousands. Structural finite element simulation analysis has also become more detailed and time-consuming, and structural optimization design problems have further become time-consuming high dimensional optimization problems. In recent years, studying efficient methods for solving high dimensional optimization problems and developing high dimensional optimization design techniques for ship structures have become important research hotspots and mainstream development trends. This paper systematically summarizes recent research progress in high dimensional optimization methods and their applications in ship structural optimization. First, the connotation of high dimensional optimization problems is described, and solution methods based on collaborative/decomposition optimization frameworks and the key technologies involved are outlined in detail. Subsequently, a comprehensive explanation of solution methods is provided from two major directions: high dimensional constrained optimization problems and high dimensional expensive optimization problems. Afterwards, domain knowledge in ship structural optimization design and its recent engineering applications are summarized. Finally, the main issues and challenges in the field of high dimensional optimization design for ship structures are pointed out, and prospects for future research directions of ship structural high dimensional optimization are outlined from three perspectives: surrogate model techniques, multitask optimization design techniques, and optimization design techniques empowered by artificial intelligence.

     

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