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Dynamic characteristics of magnetorheological fluid squeeze flow considering wall slip and inertia

机译:考虑壁滑移和惯性的磁流变流体挤压流动的动力学特性

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Magnetorheological fluid has been investigated intensively nowadays, and magnetorheological fluid shows large force capabilities in squeeze mode with wide application potential such as control valve, engine mounts, and impact dampers. In these applications, magnetorheological fluid is flowing in a dynamic environment due to the transient nature of inputs and system characteristics. Hence, this article undertakes a comprehensive study of magnetorheological fluid squeeze flow dynamics behaviors with wall slip, yield, and inertia. First, the dynamic model with the bi-viscous constitutive of magnetorheological fluid squeeze flow including wall slip and inertial force is presented. Then, the mathematical model is validated, matching magnetorheological fluid squeeze dynamic test results very well. Finally, the dynamics behavior and mechanism of magnetorheological fluid squeeze flow with inertia, yield, and wall slip are explored. Results show that (1) increasing yield stress and decreasing initial gap will increase the magnetorheological fluid vertical force greatly; (2) the wall slip affects the yield surface of magnetorheological fluids in the squeeze zone and affects the squeeze force; (3) the inertial force is increasing tremendously as the increased excitation frequency and yield stress and should be included with high-frequency excitation or yield stress.
机译:如今,磁流变流体已经得到了广泛的研究,磁流变流体在挤压模式下显示出很大的受力能力,具有广阔的应用潜力,例如控制阀,发动机支架和减震器。在这些应用中,由于输入的瞬态特性和系统特性,磁流变流体在动态环境中流动。因此,本文对具有壁滑移,屈服和惯性的磁流变流体挤压流动动力学行为进行了全面的研究。首先,提出了具有磁黏性流体挤压流动双黏性本构关系的动力学模型,包括壁滑移和惯性力。然后,对数学模型进行了验证,很好地匹配了磁流变液的动态试验结果。最后,探讨了磁流变流体挤压流动的惯性,屈服和壁滑现象的动力学行为和机理。结果表明:(1)增大屈服应力,减小初始间隙将大大增加磁流变流体的垂直力; (2)壁面滑移会影响挤压区内磁流变流体的屈服面并影响挤压力; (3)惯性力随着激振频率和屈服应力的增加而急剧增加,应包括在高频激振或屈服应力中。

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