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Microstructure and anisotropic mechanical properties of graphene nanoplatelet toughened biphasic calcium phosphate composite

机译:石墨烯纳米片增韧双相磷酸钙复合材料的微观结构和各向异性力学性能

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摘要

Graphene nanoplatelets (GNPs) reinforced biphasic calcium phosphate (BCP) composites were prepared by hot pressing (HP). Based on in-depth mechanical test and observation of microstructure, the influence of GNPs on BCP matrix was investigated. A preferred orientation of GNPs occurred during sintering, leading to anisotropic mechanical properties. The mechanical properties of GNPs/BCP composite measured along the direction parallel to the HP direction are higher than those measured along the perpendicular direction. Parallel to the HP direction, the composite containing 1.5 wt% GNPs exhibited the maximun bending strength and fracture toughness of 151.82 MPa and 1.74 MPa m~(1/2), about 55% and 76% higher than those of monolithic BCP, respectively. The improvement in mechanical properties was mainly attributable to crack deflection, crack branching, bridging, pullout and fracture of GNPs. Especially GNPs can force crack to propagate not only in two but also in three dimensions.
机译:通过热压(HP)制备石墨烯纳米片(GNP)增强的双相磷酸钙(BCP)复合材料。在深入的机械测试和微观结构观察的基础上,研究了GNPs对BCP基质的影响。 GNP的优选取向发生在烧结过程中,从而导致各向异性的机械性能。沿与HP方向平行的方向测量的GNP / BCP复合材料的机械性能高于沿垂直方向测量的机械性能。平行于HP方向,含有1.5 wt%GNP的复合材料的最大弯曲强度和断裂韧性分别为151.82 MPa和1.74 MPa m〜(1/2),分别比整体式BCP分别高约55%和76%。力学性能的改善主要归因于GNP的裂纹挠度,裂纹分支,桥接,拉拔和断裂。特别是GNP不仅可以迫使裂纹在二维上而且可以在三个维度上扩展。

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