采用无屈曲织物(NCF)、CYCOM(R) 890 RTM树脂体系和聚甲基丙烯酰亚胺(PMI)泡沫以及真空辅助树脂灌注成型工艺(VARI)成型泡沫夹芯复合材料平板,结合力学性能测试和微观结构分析等手段研究了成型过程中抽胶对夹芯板界面质量以及纤维体积分数的影响,分析产生的缺陷类型及原因,优化了工艺参数.结果表明:抽胶有利于提高泡沫夹芯板的纤维体积分数和力学性能,在100~120℃温度范围内进行30 min的抽胶,工艺稳定,层间剪切强度和弯曲强度显著提高.
参考文献
[1] | 赵晨辉,张广成,张悦周.真空辅助树脂注射成型(VARI)研究进展[J].玻璃钢/复合材料,2009(1):80-84.Zhao Chenhui,Zhang Guangcheng,Zhang Yuezhou.The development of vacuum assisted resin infusion (VARI)[J].Fiber Reinforced Plastics/Composites,2009(1):80-84. |
[2] | 王兴业,杨孚标,曾竟成,等.夹层结构复合材料设计原理及其应用[M].北京:化学工业出版社,2007:4-6.Wang Xingye,Yang Fubiao,Zeng Jingcheng,et al.Application of foam sandwich structure in aircraft secondary load-carrying structure[M].Beijing:Chemical Industry Press,2007:4-6. |
[3] | 贾欲明,韩全民,李巧,等.泡沫夹层结构在飞机次承力结构中的应用[J].航空制造技术,2009(S1):8-12.Jiao Yuming,Han Quanmin,Li Qiao,et al.Application of foam sandwich structure in aircraft secondary load-carrying structure[J].Aeronautical Manufacturing Technology,2009(S1):8-12. |
[4] | Mouritz A P.Review of advanced composite structures for naval ships and submarines[J].Composite Structures,2001,53:21-42. |
[5] | Srinivasagupta D,Joseph B,Majumdar P,et al.Effect of processing conditions and material properties on the debond fracture toughness of foam-core sandwich composites: Process model development[J].Composites:Part A,2003,34:1085-1095. |
[6] | De Moura M F S F,Campilho R D S G,Amaro A M,et al.Interlaminar and intralaminar fracture characterizatoion of composites under mode Ⅰ loading[J].Composite Structures,2010,92(1):144-149. |
[7] | 李超,丘哲明,刘建超.树脂含量对碳/环氧复合材料拉伸、压缩性能的影响[J].玻璃钢/复合材料,2003(4):16-19.Li Chao,Qiu Zheming,Liu Jianchao.Effect of the resin content on the mechanical properties of carbon fabric/epoxy composites[J].Fiber Reinforced Plastics/Composites,2003(4):16-19. |
[8] | 李卫东,曹海琳,刘艺佳,等.胶含量对CF/BF复合材料性能的影响[J].宇航材料工艺,2010(1):49-52.Li Weidong,Cao Hailin,Liu Yijia,et al.Effect of resin content on property of CF/BF hybrid fiber composite[J].Aerospace Materials & Technology,2010(1):49-52. |
[9] | ASTM International.ASTM C393/C393M--06 Standard test method for core shear properties of sandwich constructions by beam flexure[S].West Conshohocken,United States:ASTM International,2006. |
[10] | ASTM International.ASTM C273/C273M-07 Standard test method for shear properties of sandwich core material[S].West Conshohocken,United States:ASTM International,2007. |
[11] | 赵艳文,顾轶卓,李敏,等.碳纳米管-玻璃纤维/环氧层板双真空灌注工艺及性能[J].复合材料学报,2011,28(3):13-19.Zhao Yanwen,Gu Yizhuo,Li Min,et al.Double vaccum assisted resin infusion molding and property of carbpm mamptibe-glass fiber/epoxy resin laminates[J].Acta Materiae Compositae Sinica,2011,28(3):13-19. |
[12] | 孙士勇.泡沫夹芯复合材料界面断裂机理和增韧研究[D].大连:大连理工大学,2010.Sun Shiyong.The interfacial fracture mechanisms and toughening study of foam core composite sandwich material[D].Dalian:Dalian University of Technology,2010. |
[13] | Srinivasagupta D,Joseph B,Majumdar P,et al.Effect of processing conditions and material properties on the debond fracture toughness of foam-core sandwich composites:Experimental optimization[J].Composites:Part A,2003,34:1097-1104. |
[14] | Herbeck L,Kleineberg M,Sch(o)ppinger C.Foam cores in RTM structures:Manufacturing aid or high-performance sandwich[J].Proceeding of 23rd SAMPE Europe International Conference,2002:515-525. |
[15] | Dai J,Hahn H T.Flexural behavior of sandwich beams fabricated by vacuum-assisted resin transfer molding[J].Composite Structures,2003,61:247-253. |
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