基于真空辅助树脂传递模塑成型技术制备石墨烯碳纤维复合材料层合板,研究了不同质量分数的石墨烯对碳纤维复合材料层合板阻尼性能的影响。通过锤击法对石墨烯碳纤维复合材料层合板进行固有特性测试并利用激振器进行振动响应测试。利用有限元法对石墨烯碳纤维复合材料层合板的固有特性进行求解,并与实验结果进行对比分析。采用动态热机械分析仪在不同扫描模式(温度)下对石墨烯碳纤维复合材料层合板进行评估。结果表明:在石墨烯的质量分数在0~0.1%范围时,质量分数为0.1%的石墨烯碳纤维复合材料层合板阻尼性能最好。
Graphene-reinforced carbon fiber composite laminates were prepared using vacuum-assisted resin transfer molding technology,and the effects of different mass fractions of graphene on damping properties of carbon fiber composite laminates were studied.The inherent properties of graphene carbon fiber composite laminates were tested by hammering method,and vibration response was tested by vibration exciter.The inherent properties of graphene carbon fiber composite laminates were solved by finite element method and compared with the experimental results.A dynamic thermomechanical analyzer was used to evaluate the graphene carbon fiber composite laminates at different scanning modes (temperatures).The results showed that when the mass fraction of graphene was in the range of 0% to 0.1%,the damping performance of graphene carbon fiber composite laminates with mass fraction of 0.1% was the best.
[1] 牛忠旺,曹丽丽,李其朋.玻璃纤维增强复合材料的应用及研究现状[J].塑料工业,2021,49(S1):9-17.
[2] Jiang J,Yao X,Xu C,et al.Preparation of graphene oxide coatings onto carbon fibers by electrophoretic deposition for enhancing interfacial strength in carbon fiber composites[J].Journal of the Electrochemical Society,2016,163(5):D133.
[3] Zhao Xin,Zhang Qinghua,Chen Dajun,et al.Erratum:enhanced mechanical properties of graphene-based poly(vinylalcohol) composites[J].Macromolecules,2011,44(7):2392-2392.
[4] 王函.基于石墨烯形态调控的复合材料界面设计及性能研究[D].合肥:中国科学技术大学,2021.
[5] Wang A,Wang X,Xian G.The influence of stacking sequence on the low-velocity impact response and damping behavior of carbon and flax fabric reinforced hybrid composites[J].Polymer Testing,2021,104:107384.
[6] Melo J D D,Villena J E N.Effect of fiber volume fraction on the energy absorption capacity of composite materials[J].Journal of Reinforced Plastics and Composites,2012,31(3):153-161.
[7] Bhudolia S K,Gohel G,Leong K F,et al.Damping,impact and flexural performance of novel carbon/Elium® thermoplastic tubular composites[J].Composites Part B:Engineering,2020,203:108480.
[8] Cai F,Jo S H,Ma Y,et al.Effect of four groups of GO-CF/EP composites with ideal infiltration structure and different layering ways on damping properties[J].Polymers,2022,14(12):2358.
[9] Dai R L,Liao W H.Modeling of carbon nanotube composites for vibration damping[J].Materials Science,Engineering,Physics,2007,DOI:10.1117/12.716019.
[10] Latibari S T,Mehrali M,Mottahedin L,et al.Investigation of interfacial damping nanotube-based composite[J].Composites Part B:Engineering,2013,50:354-361.
[11] 谢晓杰,段君峰.氧化石墨烯增强碳纤维复合材料的阻尼特性研究[J].塑料科技,2023,51(7):48-52.
[12] 张藤心.基于界面与微结构调控的石墨烯/聚合物复合材料及性能研究[D].合肥:中国科学技术大学,2022.
[13] Lu W,Qin F,Zhang Q,et al.Engineering foam skeletons with multilayered graphene oxide coatings for enhanced energy dissipation[J].Composites Part A:Applied Science and Manufacturing,2020,137:106035.
[14] Rafiee M,Nitzsche F,Labrosse M R.Processing,manufacturing,and characterization of vibration damping in epoxy composites modified with graphene nanoplatelets[J].Polymer Composites,2019,40(10):3914-3922.
[15] Rafiee M,Nitzsche F,Labrosse M R.Fabrication and experimental evaluation of vibration and damping in multiscale graphene/fiberglass/epoxy composites[J].Journal of Composite Materials,2019,53(15):2105-2118.
[16] Zheng C,Zhai Y,Liang S.Improving damping performance of fiberglass-reinforced resin matrix composites by designing viscoelastic sandwich layer[J].Mechanics of Advanced Materials and Structures,2021,28(21):2202-2209.
[17] 王思月,王学志,贺晶晶,等.氧化石墨烯改性碳纤维水泥基复合材料研究进展[J].化工新型材料,2023,51(8):217-221.
[18] 权贵鹏,冀晨曦,冷金澎,等.多组分氧化石墨烯/聚醚胺/碳纳米管层级结构碳纤维复合材料的制备及性能研究[J].化工新型材料,2023,51(6):85-93.
[19] Georgantzinos K S,Markolefas I S,Mavrommatis A S,et al.Finite element modelling of carbon fiber-carbon nanostructure-polymer hybrid composite structures[J].MATEC Web of Conferences,2020,31402004.
基金资助
国家自然科学基金(12002219);辽宁省科技厅自然科学基金计划项目(2022-NLTS-18-02);辽宁省科学技术计划项目(2022JH2/101300077和2023JH2/101600062);辽宁省教育厅基本科研项目(JYTMS20231515);抚顺市特种设备监督检验所横向项目(2022210101003328)