Fatigue life prediction and fracture mechanism of styrene-butadiene-styrene thermoplastic elastomer under uniaxial tension

Yuxin Liu, Rulong Wu, Liangyan Liao
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Abstract

The fatigue life and prediction of styrene-butadiene-styrene thermoplastic elastomer (SBS) under the action of uniaxial tension was investigated, and the fatigue fracture mechanism was analyzed. With the increases of amplitude and frequency, the fatigue life of SBS decreases. The fatigue life of SBS under the amplitude and frequency was predicted, and the shift factor was applied to predict the fatigue life of SBS at the other frequency and amplitude. With the increase of temperature, the fatigue life decreases first and then increases. The fatigue fracture surface presents crack source region, crack propagation region, and instantaneous fracture region. At – 40°C, the crack source region is rough, and the crack propagation region and instantaneous fracture region are rough with the rib morphology. With the increase of temperature at 23°C, the crack source region is relatively flat, and the crack propagation region presents the undulant surface. With the temperature further increased up to 50°C, the fracture surface is very flat, and the shell lines could be clearly seen. The crack growth rate of SBS increases with the increase of temperature. The gel structure of SBS is formed at high temperature through the chemical crosslinking.
苯乙烯-丁二烯-苯乙烯热塑性弹性体单轴拉伸疲劳寿命预测及断裂机理
研究了苯乙烯-丁二烯-苯乙烯热塑性弹性体(SBS)在单轴拉伸作用下的疲劳寿命及预测,并分析了其疲劳断裂机理。随着振幅和频率的增加,SBS的疲劳寿命减小。预测了SBS在幅值和频率下的疲劳寿命,并应用位移因子预测了SBS在其他频率和幅值下的疲劳寿命。随着温度的升高,疲劳寿命先减小后增大。疲劳断口表面有裂纹源区、裂纹扩展区和瞬时断裂区。- 40℃时,裂纹源区粗糙,裂纹扩展区和瞬时断裂区粗糙,呈肋状形貌。在23℃时,随着温度的升高,裂纹源区域相对平坦,裂纹扩展区域呈现波浪形表面。当温度进一步升高至50℃时,断口表面非常平整,可以清晰地看到壳线。随着温度的升高,SBS的裂纹扩展速率增大。SBS的凝胶结构是在高温下通过化学交联形成的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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