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Effect of the plate surface characteristics and gap height on yield stresses of a magnetorheological fluid

机译:板表面特性和间隙高度对磁流变流体屈服应力的影响

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Effects of the plate material, surface roughness and measuring gap height on static and dynamic yield stresses of a magnetorheological (MR) fluid were investigated with a commercial plate-plate magnetorheometer. Magnetic and non-magnetic plates with smooth (Ra0.3μm) and rough (Ra10μm) surface finishes were used. It was shown by Hall probe measurements and finite element simulations that the use of magnetic plates or higher gap heights increases the level of magnetic flux density and changes the shape of the radial flux density profile. The yield stress increase caused by these factors was determined and subtracted from the measured values in order to examine only the effect of the wall characteristics or the gap height. Roughening of the surfaces offered a significant increase in the yield stresses for non-magnetic plates. With magnetic plates the yield stresses were higher to start with, but roughening did not increase them further. A significant part of the difference in measured stresses between rough non-magnetic and magnetic plates was caused by changes in magnetic flux density rather than by better contact of the particles to the plate surfaces. In a similar manner, an increase in gap height from 0.25 to 1.00mm can lead to over 20% increase in measured stresses due to changes in the flux density profile. When these changes were compensated the dynamic yield stresses generally remained independent of the gap height, even in the cases where it was obvious that the wall slip was present. This suggests that with MR fluids the wall slip cannot be reliably detected by comparison of flow curves measured at different gap heights.
机译:使用市售的板-板磁流变仪研究了板材料,表面粗糙度和测量间隙高度对磁流变(MR)流体的静态和动态屈服应力的影响。使用具有光滑(Ra0.3μm)和粗糙(Ra10μm)表面光洁度的磁性和非磁性板。霍尔探针测量和有限元模拟表明,使用磁板或更高的间隙高度会增加磁通密度水平,并改变径向磁通密度分布图的形状。确定由这些因素引起的屈服应力增加,并从测量值中减去,以便仅检查壁特性或间隙高度的影响。表面的粗糙化大大增加了非磁性板的屈服应力。对于磁性板,开始时的屈服应力较高,但是粗糙化并不会进一步增加它们。粗糙的非磁性板和磁性板之间的很大一部分测量应力差异是由磁通密度的变化引起的,而不是由颗粒与板表面的更好接触引起的。以类似的方式,由于通量密度分布的变化,间隙高度从0.25mm增加到1.00mm会导致测量应力增加20%以上。当这些变化得到补偿后,动态屈服应力通常仍与间隙高度无关,即使在明显存在壁滑的情况下也是如此。这表明,对于MR流体,无法通过比较在不同间隙高度处测得的流动曲线来可靠地检测到壁滑。

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