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首页> 外文期刊>Coatings >Top Coating Anti-Erosion Performance Analysis in Wind Turbine Blades Depending on Relative Acoustic Impedance. Part 1: Modelling Approach
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Top Coating Anti-Erosion Performance Analysis in Wind Turbine Blades Depending on Relative Acoustic Impedance. Part 1: Modelling Approach

机译:基于相对声阻抗的风力涡轮机叶片涂层抗腐蚀性能分析。第1部分:建模方法

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摘要

Top coating are usually moulded, painted or sprayed onto the wind blade Leading-Edge surface to prevent rain erosion due to transverse repeated droplet impacts. Wear fatigue failure analysis based on Springer model has been widely referenced and validated to quantitatively predict damage initiation. The model requires liquid, coating and substrate speed of sound measurements as constant input parameters to define analytically the shockwave progression due to their relative vibro-acoustic properties. The modelling assumes a pure elastic material behavior during the impact event. Recent coating technologies applied to prevent erosion are based on viscoelastic materials and develop high-rate transient pressure build-up and a subsequent relaxation in a range of strain rates. In order to analyze the erosion performance by using Springer model, appropriate impedance characterization for such viscoelastic materials is then required and represents the main objective of this work to avoid lack of accuracy. In the first part of this research, it is proposed a modelling methodology that allows one to evaluate the frequency dependent strain-stress behavior of the multilayer coating system under single droplet impingement. The computational tool ponders the operational conditions (impact velocity, droplet size, layer thickness, etc.) with the appropriate variable working frequency range for the speed of sound measurements. The second part of this research defines in a complementary paper, the ultrasonic testing characterization of different viscoelastic coatings and the methodology validation. The modelling framework is then used to identify suitable coating and substrate combinations due to their acoustic matching optimization and to analyze the anti-erosion performance of the coating protection system.
机译:顶部涂层通常是模制,涂漆或喷涂到风叶片前缘表面上,以防止由于横向重复液滴的雨雨侵蚀。基于Springer模型的磨损疲劳失效分析已被广泛引用和验证以定量预测损伤启动。该模型需要声音测量的液体,涂层和基板速度作为恒定的输入参数,以在其相对振动声学特性引起的分析性地限定冲击波进展。模型在冲击事件期间假设纯弹性材料行为。最近应用于防止腐蚀的涂层技术基于粘弹性材料,并在一系列应变速率下发挥高速瞬态压力积聚和随后的弛豫。为了通过使用Springer模型来分析侵蚀性能,然后需要对这种粘弹性材料进行适当的阻抗表征,并且代表了避免缺乏准确性的工作的主要目标。在本研究的第一部分中,提出了一种建模方法,其允许人们在单滴撞击下评估多层涂层系统的频率依赖应力行为。计算工具通过适当的可变工作频率范围达到操作条件(冲击速度,液滴尺寸,层厚度等),以获得声音测量的速度。该研究的第二部分在互补纸上定义,超声波检测表征不同的粘弹性涂层和方法验证。然后使用模拟框架来识别由于其声匹配优化,并分析涂层保护系统的抗腐蚀性能,鉴定合适的涂层和基板组合。

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