期刊文献+

CB填充聚合物导电复合体系熔体聚集态结构演化 被引量:1

Developement of Melt Agglomerate Structure in Conductive Polymer Composites Filled with Carbon Black
下载PDF
导出
摘要 The study on the correlation between time dependence of electrical resistivity and dynamic storage modulus for carbon black(CB) filled polymer composites was carried out. With the increase of the dynamic storage modulus(G′) as well as the normalized dynamic storage modulus(G′_ c /G′_ p), the volume resistivity(ρ) deceases with the increase of annealing time beyond the T_ m of the composites. It is believed that this phenomenon can be used for examining the development of agglomerate structure of filled composites and illustrating the micro-mechanism of the NTC behavior. It is assumed that melting treatment to CB filled composites results in a higher modulus and lower resistivity due to more even local dispersion of the particles and formation of perfect CB network structure within the matrix. The study on the correlation between time dependence of electrical resistivity and dynamic storage modulus for carbon black(CB) filled polymer composites was carried out. With the increase of the dynamic storage modulus(G') as well as the normalized dynamic storage modulus( G'c/G'p ), the volume resistivity(p) deceases with the increase of annealing time beyond the Tm of the composites. It is believed that this phenomenon can be used for examining the development of agglomerate structure of filled composites and illustrating the micro-mechanism of the NTC behavior. It is assumed that melting treatment to CB filled composites results in a higher modulus and lower resistivity due to more even local dispersion of the particles and formation of perfect CB network structure within the matrix.
作者 吴刚 郑强
出处 《高等学校化学学报》 SCIE EI CAS CSCD 北大核心 2006年第3期583-585,共3页 Chemical Journal of Chinese Universities
基金 国家自然科学基金(批准号:50133020 50125312)资助.
关键词 炭黑填充导电复合体系 NTC行为 动态粘弹性 CB filled conductive composite NTC behavior Dynamic viscoelasticity
  • 相关文献

参考文献13

  • 1Meyer J..Polym.Eng.Sci.[J],1973,13(6):462-468
  • 2Meyer J..Polym.Eng.Sci.[J],1974,14(9):706-716
  • 3Klason C.,Kubt J..J.Appl.Polym.Sci.[J],1978,22:163-169
  • 4Voet A..Rubber Chem.Tech.[J],1981,54:42-50
  • 5Tang H.,Chen X.G.,Luo Y.X..Eur.Polym.J.[J],1997,33(8):1383-1386
  • 6郑强,吴刚,沈烈,宋义虎.CB/HDPE导电复合体系中Kerner-Nielson方程修正及电渗流与粘弹渗流的相关性[J].高等学校化学学报,2004,25(6):1186-1188. 被引量:8
  • 7Aneli D.N.,Topehishvili G.M..Int.Polym.Sci.Tech.[J],1986,13:T/91
  • 8Narkis M.,Vaxman A..J.Appl.Polym.Sci.[J],1984,29:1639-1652
  • 9Tang H.,Piao J.,Chen X.et al..J.Appl.Polym.Sci.[J],1993,48:1795-1800
  • 10Mather P.J.,Thomas K.M..J.Mater.Sci.[J],1997,32:1711-1715

二级参考文献21

  • 1Medalia A. L.. Rubber Chem. Technol.[J], 1985, 59: 432-454
  • 2Allak H. M., Brinkman A. W., Woods J.. J. Mater. Sci.[J], 1993, 28: 117 -123
  • 3Kohler F.. US Patent, 3 243 753[P], 1966
  • 4Pechovskaya K., Rubber Chem. Technol.[J], 1962, 35: 877-883
  • 5Kawmoto H., Sichel E. K. Ed.. Carbon Black-polymer Composites[M], New York: Marcel, Dekker, 1982: 92
  • 6HU Xiao, LI Xi-qiang. J. Polym. Sci.(Part B, Polym. Physics)[J], 2002, 40: 2 354-2 363
  • 7Kazamierczak T., Galeski A.. J. Appl. Polym. Sci.[J], 2002, 86: 1 337-1 350
  • 8Jokela K., Serimaa R., Torkkeli M.. J. Polym. Sci.(Part B. Polym. Physics)[J], 2002, 40: 1 539-1 555
  • 9Narkis M., Ram A., Flashner F.. Ploym. Eng. Sci.[J], 1978, 18: 649-653
  • 10Medalia A. I.. Rubber Chem. Technol.[J], 1986, 59: 432-441

共引文献18

同被引文献1

引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部