首页> 外文会议>International Congress on Sound and Vibration >CHARACTERIZATION OF THE HIGH-SPEED-STAGE BEARING SKIDDING OF WIND TURBINE GEARBOXES INDUCED BY DYNAMIC ELECTRICITY GRID EVENTS
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CHARACTERIZATION OF THE HIGH-SPEED-STAGE BEARING SKIDDING OF WIND TURBINE GEARBOXES INDUCED BY DYNAMIC ELECTRICITY GRID EVENTS

机译:动态电网事件诱导风力涡轮机箱的高速级轴承轴承的特征

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Bearing behavior is an important factor for wind turbine drivetrain reliability. Extreme loads and dynamic excitations pose challenges to the bearing design and therefore its performance. Excessive skidding of the bearing rollers should be avoided because it can cause scuffing failures. Excitations coming from wind and the electricity grid can subject the drivetrain to fluctuating torque and nontorque loads. Wind-induced excitations have been investigated predominantly in literature. However, modern wind turbines are subjected more and more to grid-induced loads because of stricter electricity grid regulations. For example, during fault-ride-through events, turbines are required to stay connected for a longer period of time during the grid failure. This work investigates the influence of electrically induced excitations on the skidding behaviour of the tapered roller bearings on the high-speed stage of a wind turbine gearbox. This skidding behaviour during dynamic events is described as a potential bearing failure initiator by many researchers; however, only limited full-scale dynamic testing is documented. Therefore, a dedicated grid-loss-type event is defined in the paper and conducted in a dynamometer test on a full-scale wind turbine nacelle. During the event, a complete electricity grid failure is simulated while the turbine is at rated speed and predefined torque levels. Particular focus is on the characterization of the high-speed shaft tapered roller bearing slip behavior. Strain-gauge bridges in grooves along the circumference of the outer ring are used to characterize the bearing load zone in detail. It is shown that during the torque reversals of the transient event, roller slip can be induced. This indicates the potential of the applied load case to go beyond the preload of the tapered roller bearing. Furthermore, the relation between the applied torque and skidding level is studied.
机译:轴承行为是风力涡轮机传动变化可靠性的重要因素。极端负荷和动态刺激对轴承设计构成挑战,从而构成其性能。应避免过度打开轴承辊,因为它会导致磨损故障。来自风的激励和电网可以使动力传动系统进行波动扭矩和非驾驶载荷。在文献中主要研究了风引起的激动。然而,由于电力电网规范更严格,现代风力涡轮机越来越多地进行网格诱导的负载。例如,在故障骑行事件期间,在网格故障期间,需要涡轮机保持较长段时间。这项工作研究了电引起激发对风力涡轮机齿轮箱高速级的锥形滚子轴承的滑动行为的影响。这种动态事件中的滑动行为被描述为许多研究人员的潜在轴承失效引发器;但是,记录了有限的全尺寸动态测试。因此,在纸上定义了专用的网格损耗型事件,并在全尺寸风力涡轮机舱的测力计测试中进行。在事件期间,在涡轮机处于额定速度和预定义的扭矩水平时模拟了完整的电网故障。特别焦点是高速轴圆锥滚子轴承滑动行为的表征。沿着外圈的圆周的凹槽中的应变计桥用于详细表征轴承负载区。结果表明,在瞬态事件的扭矩逆转期间,可以诱导滚子滑动。这表明所施加的载荷壳体超出圆锥滚子轴承的预载荷的潜力。此外,研究了施加的扭矩和滑动水平之间的关系。

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