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Adaptive control of normal load at the friction interface of bladed disks using giant magnetostrictive material

机译:巨大磁致伸缩材料在叶片盘摩擦界面上对正常载荷的自适应控制

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摘要

A novel application of magnetostrictive actuators in underplatform dampers of bladed disks is proposed for adaptive control of the normal load at the friction interface to achieve the desired friction damping in the structure. Friction damping in a bladed disk depends on operating parameters, such as rotational speed, engine excitation order, nodal diameter normal contact load, and contact interface parameters, such as contact stiffness and friction coefficient. The operating parameters have a fixed value, whereas the contact interface parameters vary in an unpredictable way at an operating point. However, the ability to vary some of these parameters such as the normal contact load in a controlled manner is desirable to attain an optimum damping in the bladed disk at different operating conditions. Under the influence of an external magnetic field, magnetostrictive materials develop an internal strain that can be exploited to vary the normal contact load at the friction interface, which makes them a potentially good candidate for this application. A commercially available magnetostrictive alloy, Terfenol-D is considered in this analysis that is capable of providing magnetostrain up to 2 x 10(-3) under prestress and a blocked force over 1500 N. A linearized model of the magnetostrictive material, which is accurate enough for a direct current application, is employed to compute the output force of the actuator. A nonlinear finite element contact analysis is performed to compute the normal contact load between the blade platform and the underplatform damper as a result of magnetostrictive actuation. The nonlinear contact analysis is performed for different actuator mounting configurations and the obtained results are discussed. The proposed solution is potentially applicable to adaptively control vibratory stresses in bladed disks and consequently to reduce failure due to high-cycle fatigue. Finally, the practical challenges in employing magnetostrictive actuators in underplatform dampers are discussed.
机译:提出了磁致伸缩致动器在叶片盘的平台下阻尼器中的新应用,用于自适应控制摩擦界面处的法向载荷,以在结构中实现所需的摩擦阻尼。叶片盘中的摩擦阻尼取决于运行参数,例如转速,发动机励磁阶数,节点直径法向接触载荷以及接触界面参数,例如接触刚度和摩擦系数。操作参数具有固定值,而触点接口参数在操作点处以不可预测的方式变化。但是,希望能够以受控的方式改变这些参数中的一些参数,例如正常的接触负载,以在不同的工作条件下在叶片盘中获得最佳的阻尼。在外部磁场的影响下,磁致伸缩材料会产生内部应变,可以利用该内部应变来改变摩擦界面处的正常接触载荷,这使其成为该应用的潜在良好选择。在此分析中考虑了市售的磁致伸缩合金Terfenol-D,它能够在预应力和1500 N以上的受力下提供高达2 x 10(-3)的磁应变。磁致伸缩材料的线性模型是精确的足够用于直流应用,用于计算执行器的输出力。进行了非线性有限元接触分析,以计算由于磁致伸缩致动而导致的叶片平台与平台下阻尼器之间的法向接触载荷。针对不同的执行器安装配置执行了非线性接触分析,并讨论了获得的结果。提出的解决方案可能适用于自适应控制叶片盘中的振动应力,从而减少由于高周疲劳引起的故障。最后,讨论了在平台下阻尼器中采用磁致伸缩执行器的实际挑战。

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