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New magneto-rheological fluids with high stability: Experimental study and constitutive modelling

机译:具有高稳定性的新型磁流变液:实验研究和本构型建模

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Magneto-rheological fluids (MRF) are known as a category of smart materials because they exhibit sudden viscosity changes upon application of magnetic field. In contrast to normal fluids, MRFs can sustain shear up to a yield stress. Stability and resistance against movement are important factors which determine the extent of application of a MRF. In this work, new MRFs are developed using engine oil as carrier liquid, carbonyl iron powder as magnetic particle, stearic acid and CHRYSO (R) Optima100 as additives. Stability of the samples is measured over time. The samples are exposed to magneto-rheological tests with combined liquid and Peltier temperature control. Samples A, B and C are prepared with low, medium and high particle fractions respectively and tested at different temperatures (-10 degrees C, 5 degrees C, 60 degrees C) but for samples D, E, F and G the rheology tests are conducted in room temperature (25 degrees C) but at variable magnetic field and shear rate. Inherent assumption of the existing constitutive models is that the flow curve of MRF is shifted by a field-dependent yield stress. In this paper the effect of magnetic field is formulated and based on the physical properties of MRFs, a new method is introduced for identification of material parameters. This method predicts the yield stress by comparing the storage and shear moduli. Obtained results are compared with those obtained from fitting the experimental flow curves and also with those obtained from Bingham model. It is shown that, results of the proposed model are in good agreement with the experimental data. Moreover, the calculated sedimentation ratio shows that simultaneous use of stearic acid and Optima100 significantly improves stability of MRFs.
机译:磁流变液(MRF)称为智能材料类别,因为它们在施加磁场时表现出突然的粘度变化。与正常流体相比,MRF可以保持剪切至屈服应力。稳定性和抵抗运动是决定MRF应用程度的重要因素。在这项工作中,新的MRFS使用发动机油作为载体液,羰基铁粉作为磁性颗粒,硬脂酸和Chryso(R)Optima100作为添加剂。随着时间的推移测量样品的稳定性。将样品暴露于液体流变液试验,液体和珀耳帖温度控制。样品A,B和C分别用低,培养基和高粒子级分制备,并在不同的温度下测试(-10℃,5℃,60℃),但对于样品D,E,F和G流变测试是在室温(25摄氏度)中进行,但在可变磁场和剪切速率下进行。现有本构模型的固有假设是MRF的流曲线被依赖性屈服应力移位。在本文中,磁场的作用被配制并基于MRF的物理性质,引入了一种新方法,用于识别材料参数。该方法通过比较存储和剪切模量来预测屈服应力。将得到的结果与从拟合实验流程曲线的那些进行比较,并且还与从宾汉模型获得的那些。结果表明,所提出的模型的结果与实验数据吻合良好。此外,计算出的沉降比表明,同时使用硬脂酸和OPTOMA100显着提高了MRF的稳定性。

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