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深远海漂浮式风电平台的技术演进与优化设计综述

Research Progress and Prospect of Floating Offshore Wind Power Generation Technology

  • 摘要:
    目的 漂浮式风电技术是实现深远海风能规模化开发的关键技术。在风、浪、流强耦合的环境下,漂浮式平台、风机与柔性结构之间存在显著的多体非线性耦合特性。这种耦合特性进一步放大了工程设计中结构安全裕度与项目度电成本之间的矛盾冲突,成为制约漂浮式海上风电产业实现商业化、规模化发展的核心技术瓶颈。
    方法 文章围绕安全与成本的协同优化这一主题,从主流平台构型、模型试验、全耦合时域仿真以及多学科优化4个方面进行分析。
    结果 漂浮式风电已从示范验证阶段逐步向商业示范过渡,平台技术路线向可规模化类型收敛,模型试验从缩尺试验向混合试验、中尺度原位试验升级,全耦合仿真工具实现从线性简化到非线性精细化建模的跨越,多学科优化形成仿真-代理模型-全局优化算法的高效路径。
    结论 未来需聚焦平台构型创新、试验技术升级、仿真精度提升及多学科优化完善的协同攻关,通过多维度技术融合突破安全与成本的核心矛盾,为深远海风能高效开发与海上风电产业可持续发展提供技术支撑。

     

    Abstract:
    Objective Floating offshore wind power technology is a key technology to realize the large-scale development of offshore wind energy in deep and far seas. Under the strongly coupled environment of wind, wave and current, there are significant multi-body nonlinear coupling characteristics between floating platforms, wind turbines and flexible structures. This coupling characteristic further amplifies the contradictory conflict between structural safety margin and project levelized cost of energy in engineering design, and has become a core technical bottleneck restricting the commercialized and large-scale development of the floating offshore wind power industry.
    Method Focusing on the theme of collaborative optimization of safety and cost, this paper conducted analysis from four aspects: mainstream platform configurations, model testing, fully coupled time-domain simulation and multidisciplinary optimization.
    Result Floating offshore wind power has gradually transitioned from the demonstration verification stage to commercial demonstration, and the platform technical route has converged to scalable types. Model testing has upgraded from scale model testing to hybrid testing and mesoscale offshore in-situ testing; Fully coupled simulation tools have achieved a leap from linear simplification to nonlinear refined modeling; Multidisciplinary optimization has formed an efficient path of simulation-surrogate model-global optimization algorithm.
    Conclusion In the future, it is necessary to focus on the collaborative research of platform configuration innovation, test technology upgrading, simulation accuracy improvement and multidisciplinary optimization improvement. Through multi-dimensional technology integration, the core contradiction between safety and cost will be broken, providing technical support for the efficient development of deep-sea wind energy and the sustainable development of the offshore wind power industry.

     

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