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Passive control of marine hydrokinetic turbine blades

机译:船用水动力涡轮机叶片的被动控制

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摘要

Marine hydrokinetic (MHK) turbine blades are generally constructed from fiber reinforced polymer composites and are subject to large, highly dynamic fluid forces. The bend-twist deformation coupling behavior of these materials can be hydroelastically tailored to improve system performance over the expected life of the turbine by way of rapid, passive pitch control that can increase lifetime power generation, reduce hydrodynamic instabilities, and improve load shedding and structural performance. There are practical concerns, however, that make the design of these devices complex. Constraints on system components such as the rated power of the generator system, maximum rotational speed, or material degradation can affect the extent to which passive control can enhance performance. Using a previously validated boundary element method-finite element method solver, this paper examines the capabilities of passive pitch adaptation under both instantaneous and long-term variable amplitude loading to better describe potential benefits while considering practical design and operational restrictions.
机译:船用流体动力学(MHK)涡轮机叶片通常由纤维增强的聚合物复合材料制成,并承受较大的高动态流体力。这些材料的弯扭变形耦合行为可以通过水力弹性调整,以通过快速,被动的变桨控制来提高涡轮机在预期寿命内的系统性能,从而可以增加使用寿命,减少流体动力不稳定性,改善甩负荷和结构性能。但是,实际存在使这些设备的设计复杂化的问题。对系统组件的约束(例如发电机系统的额定功率,最大转速或材料退化)会影响无源控制可增强性能的程度。本文使用先前验证过的边界元方法-有限元方法求解器,研究了瞬时和长期可变幅度载荷下的被动音高自适应能力,以在考虑实际设计和操作限制的同时更好地描述潜在的优势。

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