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首页> 外文期刊>Journal of structural engineering >Fatigue Life Fragilities and Performance-Based Design of Wind Turbine Tower Base Connections
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Fatigue Life Fragilities and Performance-Based Design of Wind Turbine Tower Base Connections

机译:疲劳寿命脆弱性和风力发电机塔架基础连接的性能设计

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Wind turbines are typically designed for a target service life of 20years because of fatigue-related failures of the moving components such as the rotors and blades. Designing the tower to have the same lifetime as other components is clearly desirable for optimization of the wind turbine system. This study focuses on the fatigue life of the tower base connection subjected to wind loading. A simplified finite-element model for wind turbines subjected to nonlinear wind loading in time domain was developed specifically for application in this study. The relative motion between the wind speed and moving blades in the flapwise direction only creates force nonlinearity for the applied wind load and hence, necessitates application of a simple fluid/structure interaction model. Then, a model for fatigue assessment (Mode I), including crack propagation, was developed for the tower base connection. The inclusion of crack propagation is expected to extend the service life of the tower compared with conventional fatigue life analysis using the characteristic S-N approach. By varying the tower thickness, diameter, and considering predefined levels of crack propagation, fragility curves based on a fatigue life limit state are developed for application of performance-based design. The desired fatigue life of a wind turbine tower for different wind sites can be obtained based on the fragilities. Finally, performance-based design for a typical 5MW wind turbine is used as an illustrative example in this study.
机译:由于诸如转子和叶片之类的运动部件的疲劳相关故障,风力涡轮机通常被设计为目标使用寿命为20年。为了优化风力涡轮机系统,显然需要将塔架设计为具有与其他组件相同的寿命。这项研究的重点是受风荷载作用下的塔基连接的疲劳寿命。专门为该研究应用开发了简化的时域非线性风荷载风力涡轮机有限元模型。风速和动叶片之间在襟翼方向上的相对运动仅对施加的风载荷产生力非线性,因此,有必要应用简单的流体/结构相互作用模型。然后,为塔架基础连接开发了疲劳评估模型(模式I),包括裂纹扩展。与使用特征性S-N方法进行的传统疲劳寿命分析相比,裂纹扩展的出现有望延长塔架的使用寿命。通过改变塔架的厚度,直径并考虑预定的裂纹扩展水平,可以开发基于疲劳寿命极限状态的脆性曲线,以用于基于性能的设计。可以基于脆弱性获得对于不同风场的风力涡轮机塔架的期望疲劳寿命。最后,本研究以典型5MW风力发电机的基于性能的设计为例。

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