首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Multiobjective Structure Topology Optimization of Wind Turbine Brake Pads Considering Thermal-Structural Coupling and Brake Vibration
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Multiobjective Structure Topology Optimization of Wind Turbine Brake Pads Considering Thermal-Structural Coupling and Brake Vibration

机译:考虑热-结构耦合和振动的风力机制动片多目标结构拓扑优化

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Brake pads of disc brake play an important role in the stable braking process of a large-megawatt wind turbine. There is always vibration, screaming, and severe nonuniform wear under the effect of both retardation pressure and friction. To solve these issues, this article aims to find a new structure of the brake pads to improve brake performance. A multiobjective structure topology optimization method considering thermal-structural coupling and brake vibration is carried out in this article. Based on topology optimization method of Solid Isotropic Microstructures with Penalization (SIMP), the compromise planning theory is applied to meet the stiffness requirement and vibration performance of brake pads. Structure of brake pads is optimized, and both the stiffness and vibration performance of brake pads are also improved. The disadvantages of single-objective optimization are avoided. Thermal-structural coupling analysis is tested with the actual working conditions. The results show that the new structure meets the stiffness requirement and improves the vibration performance well for the large-megawatt wind turbine. The effectiveness of the proposed method has been proved by the whole optimization process.
机译:盘式制动器的制动片在大兆瓦级风力涡轮机的稳定制动过程中起着重要作用。在减速压力和摩擦力的作用下,总会出现振动,尖叫和严重的不均匀磨损。为了解决这些问题,本文旨在寻找一种新的刹车片结构,以改善刹车性能。本文提出了一种考虑热-结构耦合和制动振动的多目标结构拓扑优化方法。基于带有罚分的固体各向同性微结构拓扑优化方法(SIMP),采用折衷规划理论来满足制动衬块的刚度要求和振动性能。优化了刹车片的结构,同时提高了刹车片的刚度和振动性能。避免了单目标优化的缺点。热结构耦合分析是在实际工作条件下进行的。结果表明,该新结构满足了刚度要求,并改善了大型兆瓦级风力发电机的振动性能。整个优化过程证明了该方法的有效性。

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