炭黑填充弹性体的稳态和动态振荡剪切性能

E. Norton, A. Isayev
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引用次数: 2

摘要

通过评估Cox-Merz规则和Philippoff最初提出的用于稀聚合物溶液的替代方法,发现了炭黑填充橡胶的稳定剪切粘度和复杂动态粘度之间的相关性,但后来应用于非定形聚合物和浓悬浮液。这是通过测量含有CB N660的16种工业上重要的橡胶混合物在体积浓度为20%和35%时的流变特性来完成的。采用了不同剪切速率下的毛细管流变仪和小振幅和大振幅振荡剪切流变仪(SAOS和LAOS)。测量了表观粘度、存储损耗模量、复动态粘度和傅里叶变换谐波。总的来说,剪切应力、储存模量和损耗模量随CB载荷的增加而增加。第三次和第五次应力谐波与第一次应力谐波的比值随应变幅值和填料载荷的增加而增加。黏性Lissajous图(剪切应力与剪切速率)显示,应变幅值为14%时,含CB体积比为20%的化合物具有近似线性响应。其他剪切应力响应均表现出较强的非线性。当应变幅值为140%时,含有35%体积CB的化合物的应力波形呈现出高度填充化合物所期望的向后倾斜形状。在应变幅度为1000%时,应力波形趋向于纯聚合物所期望的矩形。在应变幅值为14%和140%时,填料和应变幅值为10000%时,橡胶基体对复合材料的非线性响应起主导作用。Cox-Merz规则不适用于复合动态粘度大于表观粘度的化合物。然而,Philippoff提出的一种修正方法在表观粘度和复杂动态粘度之间提供了合理的一致性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Steady State and Dynamic Oscillatory Shear Properties of Carbon Black Filled Elastomers
A correlation between the steady shear viscosity and complex dynamic viscosity of carbon black (CB) filled rubbers was found by evaluating the Cox-Merz rule and an alternative approach originally proposed by Philippoff for dilute polymer solutions, but since applied to amorphous polymers and concentrated suspensions. This was done by measuring the rheological properties of 16 industrially important rubber mixes containing CB N660 at concentrations of 20 and 35% by volume. A capillary rheometer at various shear rates and a dynamic oscillatory shear rheometer at small and large amplitude oscillatory shear (SAOS and LAOS) were used. The apparent viscosity, storage and loss moduli, complex dynamic viscosity and Fourier transform harmonics were measured. Generally, the shear stress, storage and loss moduli increased with increasing CB loading. Also, the ratio of third and fifth stress harmonics to first harmonics increased with increasing strain amplitude and filler loading. Viscous Lissajous figures (shear stress versus shear rate) at a strain amplitude of 14% showed a nearly linear response for compounds containing CB at 20% by volume. All other shear stress responses demonstrated a strong nonlinearity. The stress waveforms at a strain amplitude of 140% for compounds containing 35% CB by volume displayed a backwards tilted shape expected for highly filled compounds. The stress waveforms at a strain amplitude of 1,000% tended toward a rectangular shape expected for pure polymer. Generally, the nonlinear response of the compounds appeared to be dominated by the filler at strain amplitudes of 14% and 140% and by the rubber matrix at a strain amplitude of 1,000%. The Cox-Merz rule was not applicable for any of the compounds with their complex dynamic viscosity being greater than the apparent viscosity. However, a modification of the approach proposed by Philippoff provided reasonable agreement between the apparent viscosity and complex dynamic viscosity.
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