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Coupled Magnetic and CFD Modelling of a Structural Magnetorheological Vibration Absorber with Experimental Validation

机译:实验验证结构磁流变振动吸收器的耦合磁性和CFD模型

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Magnetorheological fluid is a smart material which can change its viscosity in milliseconds depending on the magnetic field applied. This brings a great advantage to create variable damping ability if it is used in an absorber. The stiffness of the absorber can be manipulated by an external magnetic field which effects the apparent viscosity of the magnetorheological fluid inside the absorber. Various control algorithms can be used to provide an effective absorption for any kind of structural vibration. Because of these features, magnetorheological absorbers have received great attention of researchers in the last decade. In this study, it is aimed to simulate a magnetorheological absorber under a sinusoidal vibration with Computational Fluid Dynamics and Magnetic Field Finite Elements Analysis. The magnetorheological fluid is modelled as a Non-Newtonian fluid and Herschel-Bulkley viscosity model is used to determine the apparent viscosity. Magnetic field is modelled for a constant current which generates different magnetic flux densities inside the absorber body. The Computational Fluid Dynamics and Finite Elements Analysis solutions are coupled in a two-dimensional axisymmetric domain and the results are revealed. The coupled solution of both are realized for the first time in the literature by means of an apparent viscosity approach. The numerical solution is compared with the experiments. A good agreement is observed between both results.
机译:磁流变流体是一种智能材料,其可以根据所施加的磁场改变其毫秒的粘度。如果在吸收器中使用,这会产生很大的优势。吸收器的刚度可以通过外部磁场操纵,其效果吸收器内的磁流变流体的表观粘度。各种控制算法可用于提供任何类型的结构振动的有效吸收。由于这些特征,磁流变吸收剂在过去十年中得到了研究人员的重视。在本研究中,旨在在具有计算流体动力学和磁场有限元分析的朝状振动下模拟磁流变吸收器。磁流变液被建模,因为非牛顿液和Herschel-Bulkley粘度模型用于确定表观粘度。磁场模拟用于恒定电流,该电流在吸收体内产生不同的磁通密度。计算流体动力学和有限元分析溶液在二维轴对称域中耦合,结果显示。两者的耦合解决方案通过表观粘度方法在文献中首次实现。将数值溶液与实验进行比较。两种结果之间观察到良好的一致性。

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