欢迎登录材料期刊网

材料期刊网

高级检索

综述了橡胶、纳米材料、晶须、热塑性树脂、热固性树脂、二元胺、烯丙基化合物、液晶等方法增韧改性双马来酰亚胺树脂的研究进展,并展望了未来双马来酰亚胺树脂改性的方向.

参考文献

[1] Shu WJ.;Yang BY.;Chin WK.;Perng LH. .Synthesis and properties of novel phosphorus-containing eismaleimide/epoxy resins[J].Journal of Applied Polymer Science,2002(11):2080-2089.
[2] Shanjun Li;Junxiang Tian;Wenjun Gan;Lin Zhao;Liang Li;Jinchen Wang .Synthesis and characterization of bismaleimide-polyetherimide-silica hybrid by sol-gel process[J].Polymers for advanced technologies,2005(2/3):133-138.
[3] 雷勇,荆晓东,江璐霞.橡胶增韧双马来酰亚胺树脂的研究[J].化工新型材料,2001(02):26-28.
[4] 王超,黄玉东,张斌,张绪刚,李奇力.液体端羧基丁腈橡胶改性双马来酰亚胺结构胶粘剂(Ⅱ)DACPE固化BMI体系胶粘剂的改性及形态结构[J].高分子材料科学与工程,2003(03):145-147,151.
[5] 张麟,梁国正,杨莉蓉,何少波.碳纳米管改性双马来酰亚胺树脂体系的性能[J].工程塑料应用,2007(02):4-8.
[6] Li Yuan;Xiaoyan Ma;Aijuan Gu;Hongxia Yan;Guozheng Lianga;Wei Wang;Jianyan Wu .A novel organic rectorite modified bismaleimide/diallylbisphenol A system[J].Polymers for advanced technologies,2009(11):826-833.
[7] Aijuan Gu;Guozheng Liang;Dan Liang;Miao Ni .Bismaleimide/carbon nanotube hybrids for potential aerospace application: I. Static and dynamic mechanical properties[J].Polymers for advanced technologies,2007(10):835-840.
[8] 马晓燕,袁莉,贾巧英,梁国正.钛酸钾晶须增强双马来酰亚胺树脂体系的研究[J].材料科学与工艺,2004(03):320-323.
[9] Guozheng Liang;Xiaolan Hu .Aluminum-borate-whiskers-reinforced bismaleimide composites. 1: preparation and properties[J].Polymer international,2004(6):670-674.
[10] Gu AJ;Liang GZ .Novel high performance copper clad laminates based on bismaleimide/aluminium borate whisker hybrid matrix[J].Journal of Applied Polymer Science,2007(2):1325-1331.
[11] Cheng Qunfeng,Fang Zhengping,Xu Yahong,Yi Xiaosu.Morphological and Spatial Effects on Toughness and Impact Damage Resistance of PAEK-toughened BMI and Graphite Fiber Composite Laminates[J].中国航空学报(英文版),2009(01):87-96.
[12] 王汝敏,杨利,郑水蓉,陈立新,蓝立文.聚醚砜增韧双马来酰亚胺树脂研究[J].西北工业大学学报,2002(01):145-150.
[13] 廖勇波,李玲.刚性聚醚酰亚胺改性双马来酰亚胺的研究[J].绝缘材料,2006(06):16-18.
[14] Jianyong JIN;Jun CUI;Xiaolin TANG.Polyetherimide-Modified Bismaleimide Resins.II.Effect of Polyetherimide Content[J].Journal of Applied Polymer
[15] 葛曷一,柳华实,杨明.环氧树脂改性双马来酰亚胺树脂玻璃布绝缘层压板的研制[J].工程塑料应用,2004(06):37-39.
[16] 赵三平,刘润山,张雪平.双马来酰亚胺与烯丙基酚(醚)/环氧树脂无溶剂耐热共聚树脂的研究[J].绝缘材料,2009(03):1-6.
[17] Aijuan Gu .High performance bismaleimide/cyanate ester hybrid polymer networks with excellent dielectric properties[J].Composites science and technology,2006(11/12):1749-1755.
[18] 虞莲雯,王耀先,陈兴旺.改性双马来酰亚胺/氰酸酯树脂固化工艺的研究[J].玻璃钢/复合材料,2008(02):35-37.
[19] Fan J.;Hu X.;Yue CY. .Static and dynamic mechanical properties of modified bismaleimide and cyanate ester interpenetrating polymer networks[J].Journal of Applied Polymer Science,2003(8):2000-2006.
[20] 尹剑波;秦华字;梁国正 等.共聚改性氰酸酯树脂[J].工程塑料应用,1999,27(07):5-7.
[21] K. Dinakaran;R. Suresh Kumar;M. Alagar .Bismaleimides (N,N'-Bismaleimide-4,4'-Diphenylmethane and N,N'-Bismaleimideo-4,4'-Diphenylsulphone) Modified Bisphenoldicyanate-Epoxy Matrices for Engineering Applications[J].Materials and Manufacturing Processes,2005(2):299-315.
[22] 王洪波,周浩然,徐双平.二元胺/环氧树脂增韧BMI树脂的研究[J].哈尔滨理工大学学报,2005(05):88-90.
[23] Regnier N;Fayos M;Lafontaine E .Solid-State13C-NMR Study on Bismaleimide/Diamine Polymerization:Structure,Control of Particle Size,and Mechanical Properties[J].Journal of Applied Polymer Science,2000,78:23792388.
[24] 郑红飞,李志宏,朱玉梅.超硬材料磨具用烯丙基化酚醛改性双马来酰亚胺树脂的研究[J].中国化学工程学报(英文版),2007(02):302-304.
[25] 张宝艳,李萍,陈祥宝.新型改性双马来酰亚胺树脂体系[J].高分子材料科学与工程,2000(02):67-69.
[26] Wanwan Li;Feng Liu;Liuhe Wei et al.Synthesis,Morphology and Properties of Polydimethylsiloxane-modified Allylatednovolac/4,4'-bi5maleimidodiphenylmethane[J].European PoIymer Journal,2006,42:580-592.
[27] Yingfeng Yu;Minghai Wang;Xiaoyun Liu et al.Synthesisand Cure of Liquid Crystalline DiaUyl Modifiers for BismaIeimide Resin[J].Journal of Applied Polymer Science,2006,101(06):4366-4371.
[28] 马玉春,孟庆荣,张留成.含有双酚-S基团的液晶双马来酰亚胺的合成与表征[J].高分子材料科学与工程,2008(06):75-78.
[29] 马玉春,孟庆荣,张留成.液晶双马来酰亚胺/二胺基二苯醚齐聚物的研究[J].高校化学工程学报,2008(02):247-251.
[30] 陈立新,王汝敏,蓝立文,张广成,李小刚.液晶环氧/双马来酰亚胺共聚物的研究[J].材料科学与工程,2001(01):109-111.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%