Ming Yang, Huang Xiangming, Zhou Dongdong, Ren Yinghui
Hunan University, College of Mechanical and Vehicle Engineering Changsha 410082 China
Nanoscale Adv. 2022 Mar 21;4(9):2159-2170. doi: 10.1039/d2na00041e. eCollection 2022 May 3.
Nano/micro-scaled suspensions used in damping systems, bulletproof materials and flexible machining regions are developing towards external energy field control and multi-type and multi-scale dispersed phase particles. However, the above-mentioned changes make the rheological properties of the fluid more complex, which cannot be characterized efficiently with high quality by traditional constitutive equations. In order to solve the above-mentioned problems, based on the multi-peak fitting characterization method of the Gaussian function, the field-induced rheological constitutive equation of a multi-scale particle suspension turbidity system (MRSTPF as an example) was established. Under the condition of shear distribution and external magnetic field affection, the rheological characteristic curves of the dispersion system were measured using an Antompa MCR301 rheometer. The Origin software was used to fit and characterize the above-mentioned rheological data. The results indicate that the method can effectively establish field-induced constitutive equations of different dispersed systems, and the fitting goodness evaluation parameters are above 95% (-square) and 90% (adjusted -square) respectively.
用于阻尼系统、防弹材料和柔性加工领域的纳米/微米级悬浮液正朝着外部能量场控制以及多类型、多尺度分散相颗粒的方向发展。然而,上述变化使得流体的流变特性更加复杂,传统本构方程无法高效、高质量地表征这些特性。为了解决上述问题,基于高斯函数的多峰拟合表征方法,建立了多尺度颗粒悬浮液浊度系统(以MRSTPF为例)的场致流变本构方程。在剪切分布和外部磁场作用条件下,使用安东帕MCR301流变仪测量了分散系统的流变特性曲线。利用Origin软件对上述流变数据进行拟合和表征。结果表明,该方法能够有效建立不同分散系统的场致本构方程,拟合优度评估参数分别高于95%(决定系数)和90%(调整后决定系数)。