纳米片杂化PEK-C膜层间改性对复合材料II型层间断裂韧性的协同影响机制

Synergistic effect of nanoplate-modified PEK-C films on the mode II interlaminar fracture toughness of composites

  • 摘要: 研究了氮化硼纳米片、氧化石墨烯改性的酚酞改性聚芳醚酮(PEK-C)薄膜及其与聚苯基膦酸二苯砜酯(PSPPP)的共混薄膜插层改性的复合材料的GIIC和增韧机制。结果表明纯PEK-C薄膜中添加了纳米片后,复合材料的II型层间断裂韧性(GIIC)均得到了大幅度的提高,如添加1wt%氮化硼纳米片和1wt%氧化石墨烯后,GIIC分别提高了367%和344%,显著高于不含纳米片的树脂插层后的115%。对于PEKC-PSPPP共混膜,也观察到纳米片改性对GIIC的显著提升。通过微观形貌分析机制表明,纳米片和增韧树脂之间的协同增韧作用有:(1)纳米片的引入改变了增韧树脂的溶解特性,保持了层间增韧结构,使裂纹扩展始终发生在增韧树脂层内部或两相界面;(2)纳米片在增韧树脂层界面的桥联作用提高了两相界面的粘结;(3)纳米片诱导了裂纹偏转,提高了增韧层树脂断面的粗糙度。上述的协同机制,尤其是新型机制(1)可为研制新型增韧材料和增韧结构以提高复合材料韧性性能提供有用的参考。

     

    Abstract: The mode II interlaminar fracture toughness (GIIC) of composites interleaved with a series of boron nitride nanoplate (BNNP) or graphene oxide (GO) modified phenolphthalein modified polyaryletherketone (PEK-C) films and BNNP modified blend films PEK-C and polyphenylphosphonic acid diphenyl sulfone ester (PSPPP) were studied. The results show that huge improvements of the GIIC was found for the composites interleaved with nanoplate modified PEK-C films. Compared to the control, the GIIC of the composite interleaved with a neat PEK-C film increased by 115%, while these of the composites interleaved with the corresponding 1wt% BNNP, 1wt% GO and 5wt% BNNP modified films increased by 367%, 344% and 278%, respectively. The GIIC of composites interleaved with the PEKC-PSPPP blend film and the corresponding 1wt% BNNP modified film increased by 21.8% and 101.4%, respectively. The microstructure analysis and mechanism study show that the synergistic toughening effect of nanoplates and the toughening resin includes: (1) The introduction of nanoplates changed the dissolution behavior of the interleaves in the matrix resin and better maintained the interlayer toughening structures. The cracks kept propagating at the interfaces or inside the toughening interleaves. (2) The bridging effect of nanoplates enhanced the interfacial adhesion between toughening interlayer structures and carbon plies. (3) The presence of nanoplates induced the crack deflection and improved the roughness of the fracture surfaces. The above synergistic toughening mechanisms, especially the novel mechanism (1), can provide useful references for the development of new toughening materials and structures for the toughening of composites.

     

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