首页> 外文期刊>Journal of Applied Polymer Science >Correlations in rheological behavior between large amplitude oscillatory shear and steady shear flow of silica-filled star-shaped styrene-butadiene rubber compounds: Experiment and simulation
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Correlations in rheological behavior between large amplitude oscillatory shear and steady shear flow of silica-filled star-shaped styrene-butadiene rubber compounds: Experiment and simulation

机译:二氧化硅填充星形苯乙烯 - 丁二烯橡胶化合物大振幅振荡剪切和稳态剪切流程中流变行为的相关性:实验与仿真

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The large amplitude oscillatory shear (LAOS) and steady shear behavior of star-shaped SSBR/silica 60 phr (21 vol%) compounds with various filler surface areas was measured and simulated. An SBR gum and SBR compounds containing four different silicas with surface areas of 55, 135, 160, and 195 m(2)/g were utilized. Rheological behavior indicated clear correlation with surface area. LAOS tests showed an increase in dynamic moduli, shear stress, and higher order harmonic contributions with surface area. Elastic and viscous Lissajous figures showed significant distortion at intermediate and higher strain amplitudes. Additionally, ratios of third and fifth order stress harmonics to the first stress harmonic (I-3/1 and I-5/1, respectively) showed a ''bump'' at intermediate strain amplitudes for the three highest surface area compounds. With regards to steady shear, all materials showed strong shear thinning behavior, and an increase in shear viscosity with surface area. The Cox-Merz rule was shown to be valid for the SBR gum but not for the filled compounds. However, the complex viscosity as a function of shear rate amplitude at various frequencies at high strain amplitudes and the steady shear viscosity as a function of shear rate coincided. This correlation, referred to as the Philippoff approach, has important ramifications for the rubber industry, providing quick data for predicting processing behavior. The Simhambhatla-Leonov model was successfully employed to simulate rheological behavior for the SBR gum and the lowest surface area silica compound, but the model yielded mixed results for the higher surface area silica compounds.
机译:测量并模拟了具有不同填料表面积的60份(21 vol%)星形SSBR/二氧化硅化合物的大振幅振荡剪切(老挝)和稳态剪切行为。使用了一种SBR胶和含有四种不同硅的SBR化合物,其表面积分别为55、135、160和195 m(2)/g。流变行为表明与表面积有明显的相关性。老挝试验表明,动态模量、剪切应力和高次谐波随表面积的增加而增加。弹性和粘性李萨如图形在中等和较高应变振幅下显示出显著的变形。此外,三阶和五阶应力谐波与一阶应力谐波的比率(分别为I-3/1和I-5/1)表明,对于三种表面积最高的化合物,在中等应变振幅下存在“凸起”。对于稳定剪切,所有材料都表现出强烈的剪切稀化行为,剪切粘度随表面积的增加而增加。Cox-Merz规则对SBR胶有效,但对填充化合物无效。然而,在高应变振幅下,复粘度作为不同频率下剪切速率振幅的函数与稳定剪切粘度作为剪切速率的函数是一致的。这种相关性被称为Philippoff方法,对橡胶行业具有重要影响,为预测加工行为提供了快速数据。Simhambhatla-Leonov模型成功地用于模拟SBR胶和表面积最低的二氧化硅化合物的流变行为,但该模型对表面积较高的二氧化硅化合物产生了混合结果。

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