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Fatigue-induced dual stiffness behavior of filled styrene-butadiene rubber

机译:疲劳引起的填充丁苯橡胶的双重刚度行为

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Payne and Mullins effects are widely observed in reinforced rubber materials. The mechanisms by which these two effects work are not fully understood. Several models have been proposed, including molecular slippage model, bond rupture model, and filler rupture model. In this study, two different compounds of styrene-butadiene rubber were prepared using carbon black and silica as reinforcement fillers, respectively, and subjected to cyclic fatigue process. Tensile, creep, and relaxation tests were performed on fatigued samples to assess the residual stress-strain behavior by comparing with the results from similar tests using pristine (no fatigue) samples. When the tensile stiffness behavior of fatigued specimens was evaluated, we noted that the stiffness versus strain behavior which exhibited a monotonic decreasing-increasing behavior with the pristine specimens changed to what we call "dual-stiffness" condition, where the specimens went through a first (low) turning point as with the pristine samples, but then dropped off of a peak to go through a second softening stage, similar to the first softening stage of the pristine material. We believe that such spiking (dual) stiffness behavior characterized by a "Peak" point represents a combination of both Payne and the Mullins effects active during fatigue loading. We conclude that molecular slippage and bond rupture are the main factors affecting the physical properties of carbon black-filled compounds, while breakage and recombination of the filler are the key mechanisms affecting the silica-filled compounds during the fatigue process.
机译:在增强橡胶材料中广泛观察到Payne和Mullins效应。这两种效应发挥作用的机制尚不完全清楚。已经提出了几种模型,包括分子滑移模型,键断裂模型和填料断裂模型。在这项研究中,分别使用炭黑和二氧化硅作为补强填料制备了两种不同的丁苯橡胶化合物,并进行了循环疲劳过程。通过与使用原始(无疲劳)样品的类似测试结果进行比较,对疲劳样品进行了拉伸,蠕变和松弛测试,以评估残余应力-应变行为。当评估疲劳样品的拉伸刚度行为时,我们注意到刚度样品表现出单调递减行为的刚度与应变行为改变为所谓的“双刚度”条件,即样品首先经历(低)转折点与原始样品相同,但随后从峰上掉下来,经过第二个软化阶段,类似于原始材料的第一个软化阶段。我们认为,这种以“峰值”点为特征的尖峰(双)刚度行为代表了Payne和穆林斯效应在疲劳载荷过程中的有效结合。我们得出的结论是,分子滑移和键断裂是影响炭黑填充化合物物理性能的主要因素,而填料的断裂和重组是在疲劳过程中影响二氧化硅填充化合物的关键机制。

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