Analysis of processes in magnetorheological sealer considering for magnetic fluid deformation

S. Nesterov, I. Egorov
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Abstract

The small size of the working gap in the sealer makes many physical measurements difficult or impossible. The main way to study the processes inside the device is to use analytical and numerical mathematical modeling. Most researchers apply finite-element calculation of magnetic field and analytically find the difference in pressure. Currently, there are few studies devoted to multiphysics numerical calculations of the processes in magnetorheological seal. The use of numerical models allows considering the dependence of rheological properties of magnetic fluid on hydrodynamic, temperature and magnetic fields, the real geometry of the working zone. Compared to the analytical models, a numerical one includes a smaller number of assumptions and allows visualizing various flow parameters, which are especially important for the analysis. The purpose of this study is to analyze the effect of the deformation of the magnetorheological plug in case of pressure difference held by the sealer. The study is based on the developed numerical model with the related calculation of magnetic and hydrodynamic fields. The study is carried out based on the theories of ferrohydrodynamics, hydrodynamics and electromagnetic field. Integrated finite-element modeling of the magnetic and hydrodynamic fields of the magnetorheological sealer in Comsol Мultiphysics has been used. A numerical model of the magnetorheological sealer characterized by automatic rearrangement of the boundaries of the liquid plug based on the balance of pressures inside the liquid has been developed. The distribution results of magnetic induction and pressure in the working gap of the sealer, considering changes in the boundaries of the magnetic fluid, has been obtained. Comparison of the results of the obtained retained pressure drop and the results of other models has been carried out. A numerical mathematical model that considers the deformation of the magnetorheological plug has been developed. The model makes it possible to estimate the influence of centrifugal forces of the rotating shaft on the retained pressure drop. The results can be used to create high-speed seal components. The difference of the value of analytical calculation does not exceed 5 %. The assumption about full filling of the working gap with magnetic fluid 2,5 times underestimates the retained pressure difference at high shaft rotation speeds.
考虑磁流体变形的磁流变密封工艺分析
密封机工作间隙的小尺寸使许多物理测量变得困难或不可能。研究装置内部过程的主要方法是利用解析和数值数学建模。大多数研究人员采用磁场的有限元计算,解析求出压力差。目前,对磁流变密封过程进行多物理场数值计算的研究较少。使用数值模型可以考虑磁流体流变特性对流体动力、温度和磁场的依赖,以及工作区域的实际几何形状。与解析模型相比,数值模型包含的假设数量较少,并且可以可视化各种流动参数,这对分析尤为重要。本研究的目的是分析在密封器保持压差的情况下磁流变塞变形的影响。该研究是在建立的数值模型的基础上进行的,并进行了磁场和水动力的相关计算。该研究基于铁流体力学、流体力学和电磁场理论。Comsol Мultiphysics磁流变密封器的磁场和流体动力的集成有限元建模已经被使用。建立了基于液体内部压力平衡的以液体塞边界自动重排为特征的磁流变密封器的数值模型。得到了考虑磁流体边界变化的密封机工作间隙内磁感应强度和压力的分布结果。并将所得的保留压降与其他模型的计算结果进行了比较。建立了考虑磁流变塞变形的数值数学模型。该模型可以估计转轴离心力对保留压降的影响。其结果可用于制造高速密封部件。分析计算值的差异不超过5%。用磁流体完全填充工作间隙的假设低估了在高轴转速下的保留压差。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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