海上风电场动力学整体耦合模型的研究进展:第二阶段-基于数据驱动的单台风机降阶模型研究

Zi Lin, Adrian Stetco, J. Carmona-Sánchez, D. Cevasco, M. Collu, G. Nenadic, O. Marjanovic, M. Barnes
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引用次数: 1

摘要

目前,英国有超过1500台海上风力涡轮机(owt)在运行,容量为5.4吉瓦。到目前为止,研究主要集中在如何最大限度地降低资本支出,但运营和维护(O&M)可能占海上风电场生命周期成本的39%,这主要是由于资产的高成本和恶劣的运行环境。HOME Offshore研究项目(www.homeoffshore.org)专注于运营和维护,旨在通过对风电场的整体多物理场建模,得出对故障机制的高级解释。通过本文的工作,建立了一种先进的单台风力机动力学模型,能够识别气动-液压-伺服-弹性(AHSE)动力学与传动系动力学之间的耦合。使用AHSE动态模型建模的风力涡轮机机械部件,与变速直接驱动5MW永磁同步发电机(PMSG)及其全额定电压源转换器(VSCs)的详细表示相结合。利用所建立的风力发电机模型,进行了高于和低于额定工况的几个案例研究。首先,采用全阶耦合分析方法建立了风力机自由度响应时程模型。随后,应用回归分析将自由度与产生的转子转矩(分析中失效模式的目标自由度)关联起来,量化固有耦合效应的程度。最后,基于相关系数的强度,推导了单个海上风力机的降阶多物理场模型。讨论了所提降阶模型的精度,并将其与全阶耦合模型在统计数据和频谱方面进行了比较。在统计结果方面,所有的降阶模型与全阶结果有很好的一致性。在频谱方面,当感兴趣的频率低于0.75Hz时,所有降阶模型与全阶结果都有很好的一致性。
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Progress on the Development of a Holistic Coupled Model of Dynamics for Offshore Wind Farms: Phase II — Study on a Data-Driven Based Reduced-Order Model for a Single Wind Turbine
At present, over 1500 offshore wind turbines (OWTs) are operating in the UK with a capacity of 5.4GW. Until now, the research has mainly focused on how to minimise the CAPEX, but Operation and Maintenance (O&M) can represent up to 39% of the lifetime costs of an offshore wind farm, mainly due to the assets’ high cost and the harsh environment in which they operate. Focusing on O&M, the HOME Offshore research project (www.homeoffshore.org) aims to derive an advanced interpretation of the fault mechanisms through holistic multiphysics modelling of the wind farm. With the present work, an advanced model of dynamics for a single wind turbine is developed, able to identify the couplings between aero-hydro-servo-elastic (AHSE) dynamics and drive train dynamics. The wind turbine mechanical components, modelled using an AHSE dynamic model, are coupled with a detailed representation of a variable-speed direct-drive 5MW permanent magnet synchronous generator (PMSG) and its fully rated voltage source converters (VSCs). Using the developed model for the wind turbine, several case studies are carried out for above and below rated operating conditions. Firstly, the response time histories of wind turbine degrees of freedom (DOFs) are modelled using a full-order coupled analysis. Subsequently, regression analysis is applied in order to correlate DOFs and generated rotor torque (target degree of freedom for the failure mode in analysis), quantifying the level of inherent coupling effects. Finally, the reduced-order multiphysics models for a single offshore wind turbine are derived based on the strength of the correlation coefficients. The accuracy of the proposed reduced-order models is discussed, comparing it against the full-order coupled model in terms of statistical data and spectrum. In terms of statistical results, all the reduced-order models have a good agreement with the full-order results. In terms of spectrum, all the reduced-order models have a good agreement with the full-order results if the frequencies of interest are below 0.75Hz.
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