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Magnetorheological landing gear: 2. Validation using experimental data

机译:磁流变起落架:2。使用实验数据进行验证

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摘要

Aircraft landing gears are subjected to a wide range of excitation conditions with conflicting damping requirements. A novel solution to this problem is to implement semi-active damping using magnetorheological (MR) fluids. In part 1 of this contribution, a methodology was developed that enables the geometry of a flow mode MR valve to be optimized within the constraints of an existing passive landing gear. The device was designed to be optimal in terms of its impact performance, which was demonstrated using numerical simulations of the complete landing gear system. To perform the simulations, assumptions were made regarding some of the parameters used in the MR shock strut model. In particular, the MR fluid's yield stress, viscosity, and bulk modulus properties were not known accurately. Therefore, the present contribution aims to validate these parameters experimentally, via the manufacture and testing of an MR shock strut. The gas exponent, which is used to model the shock strut's nonlinear stiffness, is also investigated. In general, it is shown that MR fluid property data at high shear rates are required in order to accurately predict performance prior to device manufacture. Furthermore, the study illustrates how fluid compressibility can have a significant influence on the device time constant, and hence on potential control strategies.
机译:飞机起落架在各种各样的激励条件下,其阻尼要求相互矛盾。解决此问题的新方法是使用磁流变(MR)流体实现半主动阻尼。在此贡献的第1部分中,开发了一种方法,该方法使流动模式MR阀的几何形状能够在现有被动起落架的限制内得到优化。该设备在冲击性能方面经过了优化设计,这已通过完整起落架系统的数值模拟得到了证明。为了执行模拟,对MR减震支柱模型中使用的某些参数进行了假设。特别是,MR流体的屈服应力,粘度和体积模量特性尚不清楚。因此,本发明旨在通过制造和测试MR减震支柱来通过实验验证这些参数。还研究了用于模拟减震支柱非线性刚度的气体指数。通常,已表明需要高剪切速率下的MR流体属性数据,以便在制造设备之前准确预测性能。此外,该研究说明了流体可压缩性如何对设备时间常数以及潜在的控制策略产生重大影响。

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