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APPLICATION OF STRUCTURAL MONITORING DATA FOR FATIGUE LIFE PREDICTIONS OF MONOPILE-SUPPORTED OFFSHORE WIND TURBINES

机译:结构监测数据在摩托车寿命预测中的应用,单行支持离岸风力涡轮机

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Support structure fatigue is a key component in determining the structural lifetime of an offshore wind turbine (OWT). As the currently installed assets age, turbine operators are exploring options for lifetime extension to potentially increase the long-term financial return. Strain monitoring at critical points on a turbine is commonly performed to improve understanding of structural integrity and ultimately reassess its remaining useful life. Reliable application of the findings of a time-limited structural monitoring programme in predicting structural response over a turbine's lifetime requires a good understanding of the representativeness of the dataset. Uncertainties arise in fatigue damage estimations due to the stochastic nature of the environmental loading. Statistical treatment of the environmental loads and the corresponding structural response is made by defining measured load cases (MLCs), within which the turbine operational state and associated range of environmental parameters are specified. For OWTs, this leads to a multi-dimensional problem, as both wind and wave parameters need to be accounted for. The complexity of the analysis is thus increased, requiring identification of the critical external and operational parameters that influence overall fatigue. The associated statistical uncertainty can then be estimated by considering repeated measurements throughout the monitoring period. The work presented in this paper investigates the application of statistical resampling techniques in evaluating the uncertainty in total measured fatigue damage experienced by an offshore wind turbine. Direct fatigue computation over the given measured dataset has been contrasted with statistical approaches applying probability distributions of MLCs to give indication of the influence of the key environmental parameters. Strain monitoring data from a 2.3MW OWT was utilised in conjunction with the corresponding operational and environmental measurements. The methods and outcomes of this study can be used to improve the remaining fatigue life prediction of installed turbine foundations, by assessing the representativeness of strain measurements. As structural design uses industry defined safety margins, comparison of design predictions against operational measurement data will allow verifying that these safety margins are not exceeded, within the bounds of the given uncertainties. Finally, an understanding of data uncertainties will allow estimates to be made regarding the reliability of the consequent fatigue lifetime reassessment or of the numerical model validation procedures. Such information is useful to wind turbine operators as it provides the first step towards data-driven lifetime extension and informs on measurement campaign utilisation.
机译:支持结构疲劳是确定海上风力涡轮机(OWT)的结构寿命的关键组成部分。作为目前安装的资产年龄,涡轮机运营商正在探索终身延长的选项,以增加长期财务回报。通常进行涡轮机关键点的应变监测,以提高对结构完整性的理解,并最终重新评估其剩余的使用寿命。可靠地在预测涡轮机的寿命上预测结构响应时的有限结构监测计划的调查结果需要良好地了解数据集的代表性。由于环境负荷随机性质,疲劳损伤估算中出现的不确定性。通过定义测量的负载箱(MLC)来制备环境载荷和相应的结构响应的统计处理,在此确定涡轮机操作状态和环境参数相关范围。对于owts来说,这导致了多维问题,因为需要占风和波参数。因此增加了分析的复杂性,需要识别影响整体疲劳的关键外部和操作参数。然后可以通过在整个监测期间考虑重复的测量来估计相关的统计不确定性。本文提出的工作调查了统计重采采样技术在评估海上风力涡轮机经历的总测量疲劳损伤中的不确定性。对给定测量数据集的直接疲劳计算与应用MLC概率分布的统计方法形成对比,以指示关键环境参数的影响。 2.3MW OWT的应变监测数据与相应的操作和环境测量结合使用。该研究的方法和结果可用于通过评估应变测量的代表性来改善安装的涡轮机基础的剩余疲劳寿命预测。由于结构设计使用行业定义的安全利润率,对操作测量数据的设计预测的比较将允许在给定的不确定因素的范围内验证这些安全利润率不超过这些安全利润率。最后,对数据不确定性的理解将允许估计是对随后的疲劳寿命重新评估或数值模型验证程序的可靠性作出的估计。这些信息对于风力涡轮机运营商非常有用,因为它为数据驱动的寿命扩展提供了第一步,并通知了测量活动利用率。

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