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FAILURE BEHAVIOR AND SCALING OF GRAPHENE NANOCOMPOSITES

机译:石墨烯纳米复合材料的失效行为和结垢

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This work proposes an investigation on the structural scaling of polymer/graphene nanocomposites. To this end, fracture tests on geometrically scaled Single Edge Notch Bending (SENB) specimens with varying contents of graphene nanoparticles were conducted to study the effects of nanomodification on the scaling.rnIt is shown that, while the strength of the pristine polymer scales according to Linear Elastic Fracture Mechanics (LEFM), this is not the case for nanocomposites, even for very low graphene contents. In fact, small specimens exhibited a more pronounced ductility with limited scaling and a significant deviation from LEFM whereas larger specimens behaved in a more brittle way, with scaling of nominal strength closer to the one predicted by LEFM. This behavior, due to the significant size of the Fracture Process Zone (FPZ) compared to the specimen size, needs to be taken into serious consideration. In fact, it is shown that, for the specimen sizes investigated in this work, neglecting the non-linear effects of the FPZ can lead to an underestimation of the fracture energy as high as 113 %, this error decreasing for increasing specimen sizes.rnA study on a large bulk of literature data confirmed that this is not a salient feature of polymer/graphene nanocomposites only but also of several other nanocomposites. It is shown that most of the specimen sizes investigated in the literature belong to the transitional region between ductile and brittle behavior where LEFM cannot characterize the fracturing behavior of these nanocomposites. In such cases, neglecting the non-linear effects of the FPZ can lead to an underestimation of the fracture energy as high as 156.8 %, the underestimation being more significant for smaller specimen sizes and higher weight contents of nanofiller.
机译:这项工作提出了对聚合物/石墨烯纳米复合材料的结构缩放比例的研究。为此,对具有石墨烯纳米粒子含量变化的几何尺寸单边缺口弯曲(SENB)标本进行了断裂试验,以研究纳米改性对水垢的影响.rn表明,原始聚合物的强度根据线性弹性断裂力学(LEFM),即使对于非常低的石墨烯含量,纳米复合材料也并非如此。实际上,小尺寸试样的延展性更强,缩放比例有限,并且与LEFM的偏差显着,而较大的试样则表现得更脆,标称强度的缩放比例更接近LEFM预测的范围。由于与样品尺寸相比断裂过程区(FPZ)的尺寸较大,因此需要认真考虑这一行为。实际上,已经表明,对于在这项工作中研究的样本尺寸,忽略FPZ的非线性效应会导致断裂能低估至113%,随着样本尺寸的增加,该误差会减小。对大量文献数据的研究证实,这不仅不是聚合物/石墨烯纳米复合材料的显着特征,而且还不是其他几种纳米复合材料的显着特征。结果表明,文献中研究的大多数标本大小都属于延性和脆性行为之间的过渡区域,在这些区域中,LEFM无法表征这些纳米复合材料的断裂行为。在这种情况下,忽略FPZ的非线性效应可能导致断裂能低估至156.8%,对于较小的样品尺寸和较高的纳米填料重量含量,这种低估更为明显。

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    Department of Aeronautics and Astronautics, University of Washington Guggenheim Hall, Seattle, WA, 98195, USA;

    Department of Aeronautics and Astronautics, University of Washington Guggenheim Hall, Seattle, WA, 98195, USA;

    Department of Aeronautics and Astronautics, University of Washington Guggenheim Hall, Seattle, WA, 98195, USA salviato@aa.washington.edu;

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