羟基化多壁碳纳米管对氰酸酯树脂的复合改性研究

陈帅金, 孙杰, 李国明

化工新型材料 ›› 2018, Vol. 46 ›› Issue (6) : 95 -99.

PDF (2885KB)
化工新型材料 ›› 2018, Vol. 46 ›› Issue (6) : 95-99.
新材料与新技术

羟基化多壁碳纳米管对氰酸酯树脂的复合改性研究

    陈帅金, 孙杰, 李国明
作者信息 +

Study on the modification of cyanate ester resin used hydroxylated multi-walled carbon nanotubes

  • Chen Shuaijin, Sun Jie, Li Guoming
Author information +
文章历史 +
PDF (2953K)

摘要

采用经表面修饰产生羟基碳纳米管(CNT-OH)与氰酸酯树脂(CE)发生化学键合作用,又经超声处理,克服纳米粒子“自聚”弊端,增强其与树脂相容性,制得CE树脂体系和CE/碳纤维增强复合材料(CFRP)(CE/CFRP),使CE树脂体系和CE/CFRP宏观性能大为强化增益。测定了不同CNT-OH用量对CE树脂体系导热性能和冲击韧性的影响,采用扫描电子显微镜对冲击断面进行观察。结果表明:当CNT-OH用量小于5.0%(wt,质量分数)时,CE树脂体系的导热系数随CNT-OH用量的增加而增高,当用量大于5.0%(wt,质量分数),导热系数增加趋势变缓。CNT-OH对CE树脂体系有一定的增韧作用,当用量为3.0%(wt,质量分数)时,CE的冲击韧性最高达到4.88J/m2,冲击断面呈韧性断裂。同时测定了CNT-OH用量为0%和3.0%的CE/CFRP层间剪切强度和压缩强度,结果表明添加3.0% CNT-OH的CE/CFRP层间剪切强度达到84.9MPa,压缩强度达到1041.0MPa,比未改性CE/CFRP分别提高了19.2%和15.7%。

Abstract

Cyanate ester (CE) and CE/carbon fiber composites(CE/CFRP)were made.Macro-scale performance of CE and CE/CFRP were both improved significantly,due to the improved compatibility between hydroxylated multi-walled carbon nanotube (CNT-OH) and CE.This was achieved by avoiding the self-agglomeration via the chemical bonding between hydroxyl group on the CNT and CE,followed by ultrasonic treatment of the resin mixture.Thermal conductivity and impact toughness were determined for CE neat resin plaques with various loading levels of CNT-OH.The cross section of impact specimen was inspected by scanning electron microscope.The results showed that coefficient of the thermal conductivity of CE was increased as the CNT-OH loading level increased,but the increasing tendency slowed when the loading level was more than 5.0wt%.Impact toughness was also improved as CNT-OH loading level increased.The best impact toughness of 4.88J/m2 was achieved at 3.0wt% CNT-OH loading level.Fracture surface of the impact specimens showed typical ductile fracture.The mechanical properties,including interlaminar shear strength (ILSS) and compressive strength,were also evaluated on CE/CFRP with 0wt% and 3.0wt% CNT-OH loading level.The results showed that ILSS reached 84.9MPa and the compressive strength 1041.4MPa with 3.0wt% CNT-OH loading level,which were increased 19.2% and 15.7% respectively,compared to unmodified CE/CFRP.

关键词

碳纳米管 / 氰酸酯树脂 / 导热性 / 冲击韧性 / 碳纤维复合材料 / 层间剪切强度 / 压缩强度

Key words

carbon nanotube / cyanate ester resin / thermal conductivity / impact toughness / carbon fiber composite(CFRP) / interlaminar shear strength (ILSS) / compressive strength

引用本文

引用格式 ▾
羟基化多壁碳纳米管对氰酸酯树脂的复合改性研究[J]. 化工新型材料, 2018, 46(6): 95-99 DOI:

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] Ren P G,Liang G Z,Yang J Y,et al.Laying properties of composite with modified cyanate ester[J].Aerospace Materials & Technology,2003(5):26-34.
[2] Wang J L,Liang G Z,Ren P G.Modification of bisphenol a dicyanate ester by carboxyl-terminated liquid butadiene acrylonitrile and its composites[J].Polymer Engineering and Science,2006,46:581-587.
[3] 黄庆华,严军国,徐敏,等.氧化时间对多壁碳纳米管结构与性能的影响[J].应用化学,2005,22(l):59-62.
[4] Qian Z S,Wang C,Feng H,et al.Well dispersed single-walled carbon nanotubes with strong visible fluorescence in water for metal ions sensing[J].Chemical Communications,2011,47:7167-7169.
[5] Gabriel G,Sauthier G,Casabo J.Preparation and characterisation of single-walled carbon nanotubes functionalised with amines[J].Carbon,2006,44:1891-1897.
[6] Lu C S,Chung Y L,Chang K F.Adsorption thermodynamic and kinetic studies of trihalomethanes on multiwalled carbon nanotubes[J].Journal of Hazardous Materials,2006,138(2):304-310.
[7] Kim S W,Kim T,Kim Y S.Surface modifications for the effective dispersion of carbon nanotubes in solvents and polymers[J].Carbon,2012,50(1):3-33.
[8] 井新利,李立匣.石墨-环氧树脂导热复合材料的研究[J].西安交通大学学报,2000,34(10):106-108.
[9] Zheng D,Tang G S,Zhang H B,et al.In situ thermal reduction of graphene oxide for high electrical conductivity and low percolation threshold in polyamide-6 nanocomposites[J].Composites Science and Technology,2012,72(2):284-289.
[10] Socher R,Krause B,Muller M T,et al.The influence of matrix viscosity on MWCNT dispersion and electrical properties in different thermoplastic nanocomposites[J].Polymer,2012,53(2):495-504.
[11] Chen P,Cheng Z X,Guo X X.Study of co-curing reaction between epoxy and cyanate ester[J].Acta Polymerica Sinica,2000(4):472-475.
[12] Dong Z F,Wu Y L.Micromechanics analysis of particulate-reinforced composites and their failure mechanisms[J].Journal of Materials Science,1996,31:4401-4405.
[13] Yu M F,Files B S,Arepalli S,et al.Tensile loading of ropes of single wall carbon nanotubes and their mechanical properties[J].Physical Review Letters,2000,84(24):5552-5555.
[14] Thostenson E T,Ren Z F,Chou T W.Advance in the science and technology of carbon nanotubes and their composite[J].Composites Science and Technology,2001,61:1899-1912.
[15] Coleman J N,Khan U,Blau W J.Small but strong:a review of the mechanical properties of carbon nanotube-polymer composites[J].Carbo,2006,44(9):1624-1652.
AI Summary AI Mindmap
PDF (2885KB)

589

访问

0

被引

导航
相关文章

AI思维导图

/