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综述了导热型连续碳纤维增强聚合物基复合材料(CFRP)的研究与应用现状和进展,阐述了CFRP的声子导热和光子导热机理,介绍了不同铺层角度和铺层比的CFRP面内和厚度方向热导率计算模型及测试方法,分析了环氧树脂、氰酸酯、双马来酰亚胺等3类树脂体系和聚丙烯腈基(PAN)碳纤维、中间相沥青基碳纤维、气相生长碳纤维、碳纳米管纤维等4类增强体以及工艺方法等因素对CFRP热导率的影响.

参考文献

[1] Yu-Mao Chen;Jyh-Ming Ting .Ultra high thermal conductivity polymer composites[J].Carbon: An International Journal Sponsored by the American Carbon Society,2002(3):359-362.
[2] Deborah D L Chung.Composite materials:Science and applications[M].Springer London Dordrecht Heidelberg New York,2010
[3] Zhidong Han;Alberto Fina .Thermal conductivity of carbon nanotubes and their polymer nanocomposites: A review[J].Progress in Polymer Science,2011(7):914-944.
[4] 陈祥宝.聚合物基复合材料手册[M].北京:化学工业出版社,2004
[5] Manocha L M;Warrier A;Manocha S et al.Thermophysical properties of densified pitch based carbon/carbon matedals-Ⅰ.Unidirectional composites[J].Carbon,2006,44:480.
[6] John R;Atxaga G;Frerker H J et al.Advancement of multifunctional support structure technologies (AMFSST)[J].Therminic,2007,17-19:98.
[7] Demain A;Issi J P .The effect of fiber concentration on the thermal conductivity of a polycarbonate pitch-based carbon fiber composites[J].Journal of Composite Materials,1993,27(07):868.
[8] Korab J;Stefanik P;Kaveky S et al.Thermal conductivity of unidirectional copper matrix carbon fibre composites[J].Composites Part A:Applied Science and Manufacturing,2002,33:577.
[9] Pilling M W;Yates B;Black M A et al.The thermal conductivity of carbon fibre-reinforced composites[J].Journal of Materials Science,1979,14:1326.
[10] Springer G S;Tsai S W .Thermal conductivities of unidirectional materials[J].Journal of Composite Materials,1967,1:166.
[11] Thomburgh J D;Pears C D.Prediction of the thermal conductivity of filled and reinforced plastics[J].ASME,1965:P65-WA/HT,4.
[12] Chamis C C;Sendeckyj G P .Critique on theories predicting thermoelastic properties of fibrous composites[J].Journal of Composite Materials,1968,2(03):332.
[13] Brooks J D;Taylor G H .Formation of graphitizing carbons from the liquid phase[J].Carbon,1965,3(02):85.
[14] N.C. Gallego;D.D. Edie .Structure-property relationships for high thermal conductivity carbon fibers[J].Composites, Part A. Applied science and manufacturing,2001(8):1031-1038.
[15] 周溪华 .沥青基碳纤维的研制与开发[J].合成纤维工业,1992,16(02):36.
[16] Silverman E M .Product development of engineered thermal composites for cooling spacecraft electronics[J].Northrop Grumman Techn Rev J,2005,13(02):1.
[17] Ting JM.;Lake ML. .VAPOR-GROWN CARBON-FIBER REINFORCED CARBON COMPOSITES[J].Carbon: An International Journal Sponsored by the American Carbon Society,1995(5):663-667.
[18] Seungjin Han;Jan T. Lin;Yasuhiro Yamada .Enhancing the thermal conductivity and compressive modulus of carbon fiber polymer-matrix composites in the through-thickness direction by nanostructuring the interlaminar interface with carbon black[J].Carbon: An International Journal Sponsored by the American Carbon Society,2008(7):1060-1071.
[19] Han S;Chung D D L .Increasing the through-thickness thermal conductivity of carbon fiber polymer-matrix composite by curing pressure increase and filler incorporation[J].Composites Science and Technology,2011,7l:1944.
[20] Thermal conductivities of three-dimensionally woven fabric composites[J].Composites science and technology,2008(9):p.2085.
[21] Keith Sharp;Alexander E. Bogdanovich;Wenzhong Tang;Dirk Heider;Suresh Advani;Michael Glowiana .High Through-Thickness Thermal Conductivity Composites Based on Three-Dimensional Woven Fiber Architectures[J].AIAA journal,2008(11):2944-2954.
[22] David M.Barnett;Suraj Rawal;Kevin Rummel .Multifunctional Structures for Advanced Spacecraft[J].Journal of spacecraft and rockets,2001(2):226-230.
[23] 齐海元,齐暑华,曹鹏,李美玲.环氧树脂/碳纤维/BN导热复合材料制备及研究[J].化学与黏合,2011(01):8-11.
[24] 李宾,刘妍,孙斌,潘敏,戴干策.聚合物基导热复合材料的性能及导热机理[J].化工学报,2009(10):2650-2655.
[25] 李冰,张晓伟.环氧树脂基导热复合材料的研究进展[J].中国胶粘剂,2008(01):60-62.
[26] 张建可.M55J碳纤维/氰酸酯复合材料X、Y方向低温热导率的测试研究[J].宇航学报,2011(01):219-223.
[27] 贺福,杨永岗.超级导热型沥青基碳纤维[J].高科技纤维与应用,2003(05):27-31.
[28] 胡芃;陈则韶.量热技术和热物理性测定[M].合肥:中国科学技术大学出版社,2009
[29] Adams D F;Doner D R .Longitudinal shear loading of a unidirectional composite[J].Journal of Composite Materials,1967,1(01):4.
[30] Sweeting R D;Liu X L .Measurement of thermal conductivity for fibre-reinforced composites[J].Composites Part A:Applied Science and Manufacturing,2004,35(7-8):933.
[31] Paker W J;Jenkins R J;Butter C P et al.Flash method of determining thermal diffusivity,heat capacity and thermal conductivity[J].Journal of Applied Physics,1961,32(09):1679.
[32] López Gaxiola, D.;Keith, J.M.;Mo, N.;King, J.A.;Johnson, B.A. .Predicting the thermal conductivity of multiple carbon fillers in polypropylene-based resins[J].Journal of Composite Materials,2011(12):1271-1284.
[33] Gojny F H;Wichmann M;Fiedler H B et al.Evaluation and identification of electrical and thermal conduction mechanisms in carbon nanotube/epoxy composites[J].Polymer,2006,47(08):2036.
[34] Li YL;Kinloch IA;Windle AH .Direct spinning of carbon nanotube fibers from chemical vapor deposition synthesis[J].Science,2004(5668):276-278.
[35] 钟小华 .化学气相沉积合成连续碳纳米管纤维[D].天津大学,2007.
[36] Ali E.Aliev;Csaba Guthy;Mei Zhang .Thermal transport in MWCNT sheets and yarns[J].Carbon: An International Journal Sponsored by the American Carbon Society,2007(15):2880-2888.
[37] Shin-Yi Yang;Chen-Chi M. Ma;Chih-Chun Teng .Effect of functionalized carbon nanotubes on the thermal conductivity of epoxy composites[J].Carbon: An International Journal Sponsored by the American Carbon Society,2010(3):592-603.
[38] Chih-Chun Teng;Chen-Chi M. Ma;Kuo-Chan Chiou;Tzong-Ming Lee .Synergetic effect of thermal conductive properties of epoxy composites containing functionalized multi-walled carbon nanotubes and aluminum nitride[J].Composites, Part B. Engineering,2012(2):265-271.
[39] Kai Yang;Mingyuan Gu;Yiping Guo .Effects of carbon nanotube functionalization on the mechanical and thermal properties of epoxy composites[J].Carbon: An International Journal Sponsored by the American Carbon Society,2009(7):1723-1737.
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