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首页> 外文期刊>Engineering Fracture Mechanics >Enhanced fatigue and durability of carbon black/natural rubber composites reinforced with graphene oxide and carbon nanotubes
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Enhanced fatigue and durability of carbon black/natural rubber composites reinforced with graphene oxide and carbon nanotubes

机译:用石墨烯和碳纳米管增强炭黑/天然橡胶复合材料的增强疲劳和耐久性

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摘要

Graphene oxide (GO) sheets and carbon nanotubes (CNTs) are of nanometer size and offer large shape factors which are beneficial in reducing crack propagation rates of composites when used in carbon black (CB) reinforced natural rubber (NR), thereby prolonging the service lives of rubber composites. In this research, CNT-CB/NR and GO-CB/NR composites were prepared by partially replacing CB with one-dimensional CNTs and two-dimensional flaky graphene oxide GO, respectively. The results showed that the complex filler dispersion in NR matrices was improved due to the isolation effect between the different fillers. The strain-induced crystallization (SIC) ability of CB/NR was effectively enhanced by the addition of both GO and CNT. The modulus at 100% strain and tear strength of the composites were also improved. More branching and deflections were observed at the crack tips of the composites and both effectively hindered crack propagation in the materials. Under uniaxial and mull-axial cyclic loading, the fatigue lives of CNT-CB/NR and GO-CB/NR composites greatly increased when compared with the fatigue lives of CB/NR composites. The GO-CB/NR composites exhibited evident advantages in respect of fatigue resistance and durability among the three composites.
机译:石墨烯氧化物(GO)片材和碳纳米管(CNT)具有纳米尺寸,并提供大规模因子,在炭黑(CB)增强天然橡胶(NR)中使用时,有利于减少复合材料的裂纹传播速率,从而延长服务橡胶复合材料的寿命。在该研究中,通过分别用一维CNT和二维片状石墨烯氧化物部分替换CB来制备CNT-CB / NR和GO-CB / NR复合材料。结果表明,由于不同填料之间的隔离效果,改善了NR基质中的复合填充分散体。通过添加GO和CNT,有效地增强了CB / NR的应变诱导的结晶(SiC)能力。还改善了100%菌株和复合材料撕裂强度的模量。在复合材料的裂纹尖端观察到更多的分支和偏转,并且在材料中有效地阻碍了裂纹繁殖。在单轴和Mull轴向循环载荷下,与CB / NR复合材料的疲劳寿命相比,CNT-CB / NR和GO-CB / NR复合材料的疲劳寿命大大增加。 Go-CB / NR复合材料表现出三种复合材料中的疲劳抗性和耐久性的显着优点。

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