Z. Han and A. Fina, Thermal conductivity of carbon nanotubes and their polymer nanocomposites: A review, Progress in Polymer Science, vol.36, pp.914-944, 2011.

A. A. Balandin, Thermal properties of graphene and nanostructured carbon materials, Nat. Mater, issue.8, pp.569-581, 2011.

D. Kishor-kumar-sadasivuni, S. Ponnama, Y. Thomas, and . Grohens, Evolution form graphite to graphene elastomer composites, Progress in Polymer Science, vol.39, pp.749-780, 2014.

S. R. White, P. T. Mather, and M. J. Smith, Characterization of the Cure-State of DGEBA-DDS Epoxy Using Ultrasonic, Dynamic Mechanical, and Thermal Probes, Polymer Engineering and Science, vol.42, issue.1, pp.51-67, 2002.

J. Lee, S. Lee, J. Choi, S. Jang, and S. U. Choi, A review of thermal conductivity data, mechanisms and models for nanofluids, International Journal of Micro-Nano Scale Transport, vol.1, issue.4, pp.269-322, 2010.

D. Marchio and &. Reboux, Ecoles des Mines de Paris 8 Y. Jannot, Cours sur les Transferts Thermiques, 2008.

E. Kaminski, Transferts Thermiques

O. Labeau and T. Thermiques, , 2009.

, Transferts Thermiques, 2013.

T. Richard, Université de la Polynésie Française 14 R. Itterbeek, Dynamique Des Systèmes Thermiques -Conduction Unidirectionnelle En Régime Variable, 2009.

I. Bouya, Classes Préparatoires MPSI & MP Poitiers, 2007.

R. Muller, Phénomènes de Transport, 2013.

P. Roux, , 2006.

A. Soldera, N. Metatla, and A. Beaudoin, Sylvere Said, Yves Grohens, Heat capacities of both PMMA stereomers: Comparison between atomistic simulation and experimental data, Polymer, vol.51, pp.2106-2111, 2010.

A. Pacini, Diffusion Thermique, Classes Préparatoires aux Grandes Ecoles, 2009.

S. Moreggia, Diffusion Thermique, 2013.

O. Granier, , 2011.

H. Guillou, Transferts Thermiques, 2010.

M. Villière, D. Lecointe, V. Sobotka, N. Boyard, and D. Delaunay, Experimental determination and modeling of thermal conductivity tensor of carbon/epoxy composites, Composites : Part A, vol.46, pp.60-68, 2013.

H. Im, Y. Hwang, . Joo-hyun-moon, J. Seong-hyuk-lee, and . Kim, The thermal conductivity of Al(OH) 3 covered MWCNT/epoxy terminated dimethyl polysiloxane composite based on analytical Al(OH) 3 covered MWCNT, Composites : Part A, vol.54, pp.159-165, 2013.

V. Kocí, J. Madera, M. Jerman, A. Trník, and R. Cerný, Determination of the equivalent thermal conductivity of complex material systems with large-scale heterogeneities, International Journal of Thermal Sciences, vol.86, pp.365-373, 2014.

N. Iwamoto, M. M. Yuen, and H. Fan, Molecular Modeling and Multiscaling Issues for Electronic Material Applications, 2012.

B. Mortazavi, O. Benzerara, H. Meyer, and J. Bardon, Said Ahzi, Combined molecular dynamics-finite element multiscale modeling of thermal conduction in graphene epoxy nanocomposites, Carbon, vol.60, pp.356-365, 2013.

R. C. Progelhof, J. L. Throne, and R. R. Ruetsch, Methods for Predicting the Thermal Conductivity of Composite Systems : A review, vol.16, pp.615-625, 1976.

L. Braginsky, A. Gusarov, and V. Shklover, Models of thermal conductivity of multilayer wear resistant coatings, Surface & Coatings Technology, vol.204, pp.629-634, 2009.

R. Pal, On the Lewis-Nielsen model for thermal/electrical conductivity of composites, Composites : Part A, vol.39, pp.718-726, 2008.

W. Zhou, J. Zuo, and W. Ren, Thermal conductivity and dielectric properties of Al/PVDF composites, Composites : Part A, vol.43, pp.658-664, 2012.

I. E. Monje, E. Louis, and J. M. Molina, Optimizing thermal conductivity in gas-pressure infiltrated aluminum/diamond composite by precise processing control, Composites : Part A, vol.48, pp.9-14, 2013.

D. L. Nika, S. Ghosh, E. P. Pokatilov, and A. A. Balandin, Lattice thermal conductivity of graphene flakes: Comparison with bulk graphite, Applied Physics Letters, vol.94, pp.1-3, 2009.

E. S. Toberer, L. L. Baranowski, and C. Dames, Advances in Thermal Conductivity, Annu. Rev. Mater. Res, vol.42, pp.179-209, 2012.

M. L. Laurent-&-p and . Vuillermoz, Conductivité Thermique des Solides, 1993.

M. &. Gerl and . Issi, Traité Des Matériaux 8 -Physique des Matériaux, Presses Polytechniques et Universitaires Romandes, 1997.

T. M. Tritt, Thermal Conductivity -Theory, Properties & Applications, 2004.

W. D. Callister, ;. E. Graebner, S. Jin, G. W. Kammlott, J. A. Herb et al., Large anisotropic thermal conducgtivity in synthetic diamond films, Nature, vol.359, pp.401-403, 1992.

T. R. Anthony, The thermal conductivity of CVD diamond films, Physical Sciences and Engineering, vol.32, issue.1664, pp.245-251, 1993.

B. Rand, Graphite : structure, properties and manufacture, 2009.

J. Yu, B. Sundqvist, and B. Tonpheng, Ove Andersson, Thermal conductivity of highly crystallized polyethylene, Polymer, vol.55, pp.195-200, 2014.

R. Haggenmueller, C. Guthy, J. R. Lukes, J. E. Fischer, and K. I. Winey, Single Wall Carbon Nanotube / Polyethylene Nanocomposites : Thermal and Electrical Conductivity, Macromolecules, vol.40, pp.2417-2421, 2007.

R. Berman, F. E. Simon, F. R. , and J. M. Ziman, The thermal conductivity of diamond at low temperatures, Series A, Mathematical and PhysicalSciences, vol.220, p.183, 1953.

Y. A. Kim, S. Kamio, T. Tajiri, T. Hayashi, S. M. Song et al., Enhanced thermal conductivity of carbon fiber/phenolic resin composites by the introduction of carbon nanotubes, Applied Physics Letters, vol.90, pp.1-3, 2007.

D. R. Bortz and C. Merino, Ignacio Martin-Gullon, Mechanical characterization of hierarchical carbon fiber/nanofiber composite laminates, Composites : Part A, vol.42, pp.1584-1591, 2011.

M. Weisenberger, I. Martin-gullon, J. Vera-agullo, H. Varela-rizo, C. Merino et al., The effect of graphitization temperature on the structure of helical-ribbon carbon nanofibers, Carbon, vol.47, pp.2211-2218, 2009.

S. Lim, S. Yoon, I. Mochida, and J. Chi, Surface Modification of Carbon Nanofiber with High Degree of Graphitization, J. Phys. Chem. B, vol.108, pp.1533-1536, 2004.

C. Uher, Thermal Conductivity of High-T c Superconductors (Review), vol.3, pp.337-389, 1990.

S. L. Shindé and &. S. Goela, High Thermal Conductivity Materials, 2006.

J. S. Dugdale and D. K. Macdonald, Lattice thermal conductivity, Phys. Rev. B, vol.98, issue.6, pp.1751-1752, 1955.

R. Berman, F. E. Simon, C. B. , F. R. , and J. Wilks, Thermal conductivity of dielectric crystals : the Umklapp Process, vol.168, pp.277-280, 1951.

S. Chen, Q. Wu, C. Mishra, J. Kang, H. Zhang et al., Thermal conductivity of isotopically modified graphene, Nature Materials, vol.11, pp.203-207, 2012.

R. B. Dinwiddie, M. White, and D. L. Mcelroy, Thermal Conductivity 28 -Thermal Expansion 16, 28 th International Thermal Conductivity Conference, 2005.

J. H. Randrianalisoa, Transfert Thermique Par Rayonnement Et Conduction Dans Les Matériaux Poreux Micro Et Nanostructurés. Analogie Transfert De Phonons Et De Photons, 2006.

D. Singh, Y. Jayathi, T. S. Murthy, and . Fisher, Mechanism of thermal conductivity reduction in few-layer graphene, Journal of Applied Physics, vol.110, pp.1-9, 2011.

C. Y. Ho, R. W. Powell, and P. E. Liley, Thermal conductivity of the elements : a comprehensive review, J. Phys. Chem. Ref. Data, vol.3, pp.1-810, 1974.

M. ?upová, G. Simha-martynková, and K. Barabaszová, Effect of Nanofillers Dispersion in Polymer Matrices: A Review, Sci. Adv. Mater, vol.3, issue.1, pp.1-25, 2011.

I. A. Tsekmes, R. Kochetov, P. H. Morshuis, and J. J. Smit, Thermal conductivity of polymeric composites : a review, pp.678-681, 2013.

D. Lopez-gaxiola, J. M. Keith, J. A. King, and B. A. Johnson, Nielsen Thermal Conductivity Model for Single Filler Carbon/Polypropylene Composites, J. Appl. Polym. Sci, vol.114, pp.3261-3267, 2009.

I. M. Afanasov, D. V. Savchenko, S. G. Ionov, D. A. Rusakov, A. N. Seleznev et al., Thermal Conductivity and Mechanical Properties of Expanded Graphite, Inorganic Materials, vol.45, issue.5, pp.486-490, 2009.

A. Sari and A. Karaipekli, Thermal conductivity and latent heat thermal energy storage characteristics of paraffinexpanded graphite composite as phase change material, Applied Thermal Engineering, vol.27, pp.1271-1277, 2007.

A. Yu, P. Ramesh, X. Sun, E. Bekyarova, M. E. Itkis et al., Enhanced Thermal Conductivity in a Hybrid Graphite Nanoplatelet -Carbon Nanotube Filler for Epoxy Composites, Adv. Mater, vol.20, pp.4740-4744, 2008.

J. Nanda, C. Maranville, S. C. Bollin, D. Sawall, H. Ohtani et al.,

J. M. Remillard and . Ginder, Thermal Conductivity of Single-Wall Carbon Nanotube Dispersions : Role of Interfacial Effects, J. Phys. Chem. C, vol.112, issue.3, pp.654-658, 2008.

R. A. Hauser, J. A. King, R. M. Pagel, and J. M. Keith, Effects of Carbon Fillers on the Thermal Conductivity of Highly Filled Liquid-Crystal Polymer Based Resins, Journal of Applied Polymer Science, vol.109, pp.2145-2155, 2008.

A. A. Balandin, S. Ghosh, W. Bao, I. Calizo, D. Teweldebrhan et al., Superior Thermal Conductivity of Single-Layer Graphene, Nanoletters, vol.8, issue.3, pp.902-907, 2008.

M. Martin-gallego and R. Verdejo, Thermal conductivity of carbon nanotubes and graphene in epoxy nanofluids and nanocomposites, vol.6, pp.1-7, 2011.

X. Sun, H. Sun, H. Li, and H. Peng, Developing Polymer Composite Materials : Carbon Nanotubes or Graphene ?, Adv. Mater, vol.25, pp.5153-5176, 2013.

D. D. Chung, Materials for thermal conduction, Applied Thermal Engineering, vol.21, pp.1593-1605, 2001.

A. Boudenne, Etude Expérimentale Et Théorique Des Propriétés Thermophysiques de Matériaux Composites à Matrice Polymère, 2003.

D. W. Hammerstroem, M. A. Burgers, S. W. Chung, E. A. Guliants, C. E. Bunker et al., Aluminum Nanoparticles Capped by Polymerization of Alkyl-Substituted Epoxides: Ratio-Dependent Stability and Particle Size, Inorg. Chem, vol.50, pp.5054-5059, 2011.

V. A. Nieberlein and B. Steverding, Thermal conductivity of epoxyaluminium powder mixtures, Journal of Materials Science, vol.12, pp.1685-1688, 1977.

A. Ma, W. Chen, Y. Hou, and G. Zhang, The Preparation and Cure Kinetics Researches of Thermal Conductivity Epoxy/AlN Composites, Polymer-Plastics Technology and Engineering, vol.49, pp.354-358, 2010.

G. Lee, M. Park, J. Kim, J. I. Lee, and . Ho-gyu-yoon, Enhanced thermal conductivity of polymer composites filled with hybrid filler, Composites : Part A, vol.37, pp.727-734, 2006.

T. Li and S. Hsu, Enhanced Thermal Conductivity of Polyimide Films via a Hybrid of Micro-and Nano-Sized Boron Nitride, J. Phys. Chem. B, vol.114, pp.6825-6829, 2010.

H. Fang-yuan-yuan, X. Zhang, X. Li, Z. Li, and . Yu, Synergetic effect of boron nitride flakes and tetrapod-shaped ZnO whiskers on the thermal conductivity of electrically insulating phenol formaldehyde composites, Composites : Part A, vol.53, pp.137-144, 2013.

S. M. Firdaus and M. Mariatti, Fabrication and characterization of nano filler-filled epoxy composites for underfill application, J. Mater. Sci: Mater Electron, vol.23, pp.1293-1299, 2012.

K. Liu, H. Takagi, R. Osugi, and Z. Yang, Effect of physiochemical structure of natural fiber on transverse thermal conductivity of unidirectional abaca/bamboo fiber composites, Composites: Part A, vol.43, pp.1234-1241, 2012.

Y. Xu and D. D. Chung, Increasing the thermal conductivity of boron nitride and aluminum nitride particle epoxy-matrix composites by particle surface treatments, Composite Interfaces, vol.7, issue.4, pp.243-256, 2000.

A. Ma, W. Chen-&-yonggang, and . Hou, Enhanced Thermal Conductivity of Epoxy Composites with MWCNTs/AlN Hybrid Filler, Polymer-Plastics Technology and Engineering, vol.51, pp.1578-1582, 2012.

J. Hong, S. Yoon, T. Hwang, J. Oh, S. Hong et al., Jae-Do Nam, High thermal conductivity epoxy composites with bimodal distribution of aluminum nitride and boron nitride fillers, Thermochimica Acta, vol.537, pp.70-75, 2012.

H. Im and J. Kim, Thermal conductivity of a graphene oxide-carbon nanotube hybrid/epoxy composite, Carbon, vol.50, pp.5429-5440, 2012.

K. Sanada, I. Tada, and Y. Shindo, Thermal conductivity of polymeric composites with close-packed structure of nano and micro fillers, Composites : Part A, vol.40, pp.724-730, 2009.

Y. Hwang, M. Kim, and J. Kim, Enhancement of thermal and mechanical properties of flexible graphene oxide/carbon nanotube hybrid films though direct covalent bonding, J. Mater. Sci, vol.48, pp.7011-7021, 2013.

M. Safdari, S. Marwan, and . Al-haik, Synergistic electrical and thermal transport properties of hybrid polymeric nanocomposites based on carbon nanotubes and graphite nanoplatelets, Carbon, vol.64, pp.111-121, 2013.

W. Song, P. Wang, L. Cao, A. Anderson, M. J. Meziani et al., Polymer/Boron Nitride Nanocomposite Materials for Superior Thermal Transport Performance, Angew. Chem. Int. Ed, vol.51, pp.6498-6501, 2012.

A. M. Diez-pascual, J. Guan, B. Simard, and M. A. Gomez-fatou, Poly(phenylene sulfide) and poly(ether ether ketone) composites reinforced with single-walled carbon nanotube buckypaper : II -Mechanical properties, electrical and thermal conductivity, Composites : Part A, vol.43, pp.1007-1015, 2012.

A. E. Aliev, M. Lima, E. M. Silverman, and R. H. Baughman, Thermal conductivity of multi-walled carbon nanotube sheets: radiation losses and quenching of phonon modes, Nanotechnology, vol.21, pp.1-11, 2010.

S. W. Choi and K. Han-yoon, Sung-Sil Jeong, Morphology and thermal conductivity of polyacrylate composites containing aluminum/multi-walled carbon nanotubes, Composites : Part A, vol.45, pp.1-5, 2013.

K. Wattanakul, H. Manuspiya, and N. Yanumet, Thermal conductivity and mechanical properties of BN-filled epoxy composite: effects of filler content, mixing conditions, and BN agglomerate size, Journal of Composite Materials, issue.19, pp.1967-1980, 2011.

E. Lee, S. Lee, D. J. Shanefieldz, and W. R. Cannon, Enhanced Thermal Conductivity of Polymer Matrix Composite via High Solids Loading of Aluminum Nitride in Epoxy Resin, J. Am. Ceram. Soc, vol.91, issue.4, pp.1169-1174, 2008.

B. Weidenfeller, M. Höfer, R. Franck, and . Schilling, Thermal conductivity, thermal diffusivity, and specific heat capacity of particle filled polypropylene, Composites : Part A, vol.35, pp.423-429, 2004.

T. Zhou, X. Wang, X. Liu, and D. Xiong, Improved Thermal Conductivity of Epoxy Composites Using a Hybrid Multi-walled Carbon Nanotube/micro-SiC filler, Carbon, vol.48, pp.1171-1176, 2010.

L. E. Evseeva and S. A. Tanaeva, Thermal Conductivity of Micro-and Nanostructural Epoxy Composites at Low Temperatures. Mechanics of Composite Materials, vol.44, pp.117-126, 2008.

S. Chandrasekaran, C. Seidel, and K. Schulte, Preparation and characterization of graphite nano-platelet (GNP)/epoxy nanocomposites : Mechanical, Electrical and Thermal properties, European Polymer Journal, vol.49, pp.3878-3888, 2013.

M. A. Raza, A. V. Westwood, and C. Stirling, Effect of processing technique on the transport and mechanical properties of graphite nanoplatelet/rubbery epoxy composites for thermal interface applications, Materials Chemistry and Physics, vol.132, pp.63-73, 2012.

K. Amit, T. Chakraborty, M. Plyhm, A. Barbezat, G. P. Necola et al., Carbon nanotube (CNT)-epoxy nanocomposites : a systematic investigation of CNT dispersion, J. Nanopart. Res, vol.13, pp.6493-6506, 2011.

T. M. Nguyen, Systèmes Epoxy-Amine Incluant Un Catalyseur Externe Phénolique : Cinétique de Réticulation -Vieillissement Hydrolytique, 2007.

Y. Song, Jae Ryoun Youn, Influence of dispersion states of carbon nanotubes on physical properties of epoxy nanocomposites, Carbon, vol.43, pp.1378-1385, 2005.

J. M. Wernik, A. Shaker, and . Meguid, Recent Developments in Multifunctional Nanocomposites Using Carbon Nanotubes, Applied Mechanics Reviews, vol.63, pp.1-40, 2010.

J. Karippal, H. N. Narasimha-murthy, K. S. Rai, M. Krishna, and M. Sreejith, Electrical and Thermal Properties of Twin-Screw Extruded Multiwalled Carbon Nanotube/Epoxy Composites, Journal of Materials Engineering and Performance, vol.19, pp.1143-1149, 2010.

A. S. Santos, T. De, O. N. Leite, C. A. Furtado, C. Welter et al.,

G. G. Pardini and . Silva, Morphology, Thermal Expansion, and Electrical Conductivity of Multiwalled Carbon Nanotube/Epoxy Composites, J. Appl. Polym. Sci, vol.108, pp.979-984, 2007.

Y. Du, S. Z. Shen, K. Cai, and P. S. Casey, Research progress on polymer-inorganic thermoelectric nanocomposites materials, Progress in Polymer Science, vol.37, pp.820-841, 2012.

A. Baruch, L. Bielenki, and O. Regev, Thermal conductivity improvement of electrically nonconducting composite materials, Rev. Chem. Eng, vol.28, pp.61-71, 2012.

C. A. Moyer, Effective conductivity for interface scattering in metal-matrix composites, Phys. Rev. B, vol.47, issue.16, pp.79-10082, 1993.

Z. L. Wang, H. T. Mu, J. G. Liang, and D. W. Tang, Thermal boundary resistance and temperature dependent phonon conduction in CNT array multilayer structure, International Journal of Thermal Science, vol.74, pp.53-62, 2013.

N. Roy, R. Sengupta, and A. K. Bhowmick, Modifications of carbon for polymer composites and nanocomposites, Progress in Polymer Science, vol.37, pp.781-819, 2012.

A. J. Mcnamara, Y. Joshi, and Z. M. Zhang, Characterization of nanostructured thermal interface materials -A review, International Journal of Thermal Science, vol.62, pp.2-11, 2012.

F. H. Gojny, H. G. Malte, B. Wichmann, I. A. Fiedler, W. Kinloch et al., Evaluation and identification of electrical and thermal conduction mechanisms in carbon nanotube/epoxy composites, Polymer, vol.47, pp.2036-2045, 2006.

M. Chirtoc, N. Horny, J. Henry, A. Turgut, I. Kökey et al., Photothermal Characterization of Nanocomposites Based on High Density Polyethylene (HDPE) Filled with Expanded Graphite, Int. J. Thermophys, vol.33, pp.2110-2117, 2012.

W. Zhou, D. Yu, and Q. An, A Novel Polymeric Coating with High Thermal Conductivity, vol.48, pp.1230-1238, 2009.

I. B. Mason and R. H. Knibbs, Influence of crystallite size on the thermal conductivity of irradiated polycrystalline graphite, Nature, vol.198, issue.4883, pp.850-851, 1963.

P. Zhang, Q. Li, and Y. Xuan, Thermal contact resistance of epoxy composites incorporated with nano-copper particles and the multi-walled carbon nanotubes, Composites : Part A, vol.57, pp.1-7, 2014.

G. Park, Q. Cheng, J. Lu, J. Bao, S. Li et al., Thermal conductivity of MWCNT/epoxy composites : The effects of length, alignment and functionalization, Carbon, vol.50, pp.2083-2090, 2012.

J. Li, C. Peng, . Ma, C. K. Wing-sze-chow, B. Z. To et al., Correlations between Percolation Threshold, Dispersion State, and Aspect Ratio of Carbon Nanotubes, Adv. Funct. Mater, vol.17, pp.3207-3215, 2007.

B. Li and W. Zhong, Review on polymer/graphite nanoplatelet nanocomposites, J. Mater. Sci, vol.46, pp.5595-5614, 2011.

D. M. Bigg, Thermal Conductivity of Heterophase Polymer Compositions, Advances in Polymer Sciences, vol.119, pp.1-30, 1995.

J. Su, Y. Zhao, X. Wang, H. Dong, and S. Wang, Effect of interface debonding on the thermal conductivity of microencapsulated-paraffin filled epoxy matrix composites, Composites : Part A, vol.43, pp.325-332, 2012.

B. Mortazavi, M. Baniassadi, and J. Bardon, Said Ahzi, Modeling of two-phase random composite materials by finite element, Mori-Tanaka and strong contrast methods, Composites : Part B, vol.45, pp.1117-1125, 2013.

L. , M. Veca, M. J. Meziani, W. Wang, X. Wang et al., Carbon nanosheets for Polymeric nanocomposites with high thermal conductivity, vol.21, pp.2088-2092, 2009.

K. Chu, W. Li, and H. Dong, Role of graphene waviness on the thermal conductivity of graphene composites, Applied Physics A, vol.111, pp.221-225, 2013.

L. Ci, J. Suhr, V. Pushparaj, X. Zhang, and P. M. Ajayan, Continuous Carbon Nanotube Reinforced Composites, Nanoletters, vol.8, issue.9, pp.2762-2766, 2008.

M. Sushant-agarwal, K. Masud, . Khan, K. Rakesh, and . Gupta, Thermal Conductivity of Polymer Nanocomposites Made With Carbon Nanofibers, Polymer Engineering and Science, vol.48, pp.2474-2481, 2008.

J. Tavernier, Sur quelques problèmes généraux de la conduction thermique de réseau dans les solides, Colloque C1, vol.28, pp.40-52, 1967.

K. Yang and M. Gu, Enhanced thermal conductivity of epoxy nanocomposites filled with hybrid fillers system of triethylenetetramine-functionalized multi-walled carbon nanotube/silane-modified nanosized silicon carbide, Composites : Part A, vol.41, pp.215-221, 2010.

S. Shaikh, L. Li, K. Lafdi, and J. Huie, Thermal conductivity of an aligned carbon nanotube array, Carbon, vol.45, pp.2608-2613, 2007.

E. S. Choi, J. S. Brooks, D. L. Eaton, M. S. Al-haik, M. Y. Hussaini et al.,

. Dahmen, Enhancement of thermal and electrical properties of carbon nanotube polymer composites by magnetic field processing, Journal of Applied Physics, vol.94, issue.9, pp.6034-6039, 2003.

A. M. Marconnet, N. Yamamoto, M. A. Panzer, B. L. Wardle, and K. E. Goodson, Thermal Conduction in Aligned Carbon Nanotube/Polymer Nanocomposites with High Packing Density, ACS Nano, vol.5, issue.6, pp.4818-4825, 2011.

J. M. Keith, J. A. King, M. G. Miller, and A. M. Tomson, Thermal Conductivity of Carbon Fiber/Liquid Crystal Polymer Composites, Journal of Applied Polymer Science, vol.102, pp.5456-5462, 2006.

L. Jandro, G. Abot, C. Bardin, Y. Spriegel, V. Song et al., Thermal Conductivity of Carbon Nanotube Array Laminated Composite Materials, Journal of Composite Materials, vol.43, issue.3, pp.321-340, 2011.

Q. Ning and T. Chou, A general analytical model for predicting the transverse effective thermal conductivities of woven fabric composites, Composites : Part A, vol.29, pp.315-322, 1998.

A. J. Whittaker and R. Taylor, Thermal transport properties of carbon-carbon fibre composites -Mathematical modelling, Proceedings: Mathematical and Physical Sciences, vol.430, issue.1878, pp.199-211, 1990.

J. Zeng, R. Fu, Y. Shen, and H. He, Xiufeng Song, High Thermal Conductive Epoxy Molding Compound with Thermal Conductive Pathway, Journal of Applied Polymer Science, vol.113, pp.2117-2125, 2009.

J. K. Sandler, J. E. Kirk, I. A. Kinloch, M. S. Shaffer, and A. H. Windle, Ultra-low electrical percolation threshold in carbon-nanotube-epoxy composites, Polymer, vol.44, pp.5893-5899, 2003.

M. J. Arlen, D. Wang, J. D. Jacobs, R. Justice, A. Trionfi et al., Thermal-Electrical Character of in Situ Synthesized Polyimide-Grafted Carbon Nanofiber Composites, vol.41, pp.8053-8062, 2008.

R. Ramasubramaniama, J. Chenb, and H. Liu, Homogeneous carbon nanotube/polymer composites for electrical applications, Applied Physics Letters, vol.83, issue.14, pp.2928-2930, 2003.

G. Morales, M. I. Barrena, J. M. Gómez-de-salazar, and C. Merino, Conductive CNF-doped laminates processing and characterization, Journal of Composite Materials, issue.20, pp.2113-2118, 2011.

Z. Wang, X. Tang, . Zhong-zhen, P. Yu, and . Guo, Huai-he Song and Xu-sheng Du, Dispersion of graphene oxide and its flame retardancy effect on epoxy nanocomposites, Chinese Journal of Polymer Science, vol.29, issue.3, pp.368-376, 2011.

S. G. Prolongo, M. R. Gude, J. Sanchez, and A. Urena, Nanoreinforced Epoxy Adhesives for Aerospace Industry, The Journal of Adhesion, vol.85, pp.180-199, 2009.

M. J. Palmeri, K. W. Putz, and L. C. Brinson, Sacrificial Bonds in Stacked-Cup Carbon Nanofibers: Biomimetic Toughening Mechanisms for Composite Systems, ACS Nano, vol.4, issue.7, pp.4256-4264, 2010.

D. R. Bortz and C. Merino, Ignacio Martin-Gullon, Mechanical characterization of hierarchical carbon fiber/nanofiber composite laminates, Composites : Part A, vol.42, pp.1584-1591, 2011.

D. H. Wang, S. Sihn, A. K. Roy, J. Baek, and L. Tan, Nanocomposites based on vapor-grown carbon nanofibers and an epoxy : Functionalization, preparation and characterization, European Polymer Journal, vol.46, pp.1404-1416, 2010.

F. Du, J. E. Fischer, and K. I. Winey, A Coagulation Method to Prepare Single-Walled Carbon Nanotube/PMMA Composites and Their Modulus, Electrical Conductivity, and Thermal Stability, Journal of Polymer Science Part B : Polymer Physics, vol.41, pp.3333-3338, 2003.

R. Huang, Z. Chen, X. Chu, Z. Wu, and L. Li, Preparation and thermal properties of epoxy composites filled with negative thermal expansion nanoparticles modified by a plasma treatment, Journal of Composite Materials, vol.45, issue.16, pp.1675-1682, 2010.

A. B. Dongil, B. Bachiller-baeza, A. Guerrero-ruiz, I. Rodríguez-ramos, A. Martínez-alonso et al., Surface chemical modifications induced on high surface area graphite and carbon nanofibers using different oxidation and functionalization treatments, Journal of Colloid and Interface Science, vol.355, pp.179-189, 2011.

J. Kim, H. Im, J. Kim, and J. Kim, Thermal and electrical conductivity of Al(OH)3 covered graphene oxide nanosheet/epoxy compositesJ, Mater. Sci, vol.47, pp.1418-1426, 2012.

K. Kim, M. Kim, Y. Hwang, and J. Kim, Chemically modified boron nitrideepoxy terminated dimethylsiloxane composite for improving the thermal conductivity, Ceramics International, 2013.

J. Guo, P. Saha, J. Liang, M. Saha, and B. P. Grady, Multi-walled carbon nanotubes coated by multi-layer silica for improving thermal conductivity of polymer composites, J. Therm. Anal. Calorim, vol.113, pp.467-474, 2013.

J. Zhao, F. Du, W. Cui, P. Zhu, X. Zhou et al., Effect of silica coating thickness on the thermal conductivity of polyurethaneSiO2 coated multiwalled carbon nanotube composites, Composites : Part. A, vol.58, pp.1-6, 2014.

M. Bozlar, The effect of functionalized group concentration on the stability and thermal conductivity of carbon nanotube fluid as heat transfer media, vol.38, pp.513-517, 2010.

N. Roy, R. Sengupta, and A. K. Bhowmick, Modifications of carbon for polymer composites and nanocomposites, Progress in Polymer Science, vol.37, pp.781-819, 2012.

S. Nanda-gopal-sahoo, J. W. Rana, L. Cho, . Li, H. Siew et al., Polymer nanocomposites based on functionalized carbon nanotubes, Progress in Polymer Science, vol.35, pp.837-867, 2010.

G. Hatui, P. Bhattacharya, S. Sahoo, and S. Dhibar, Chapal Kumar Das, Combined effect of expanded graphite and multiwall carbon nanotubes on the thermo mechanical, morphological as well as electrical conductivity of in situ bulk polymerized polystyrene composites, Composites: Part A, vol.56, pp.181-191, 2014.

W. Hong and N. Tai, Investigations on the thermal conductivity of composites reinforced with carbon nanotubes, Diamond & Related Materials, vol.17, pp.1577-1581, 2008.

M. Vesali-naseh, A. A. Khodadadi, Y. Mortazavi, O. Sahraei, F. Pourfayaz et al., Functionalization of Carbon Nanotubes Using Nitric Acid Oxidation and DBD Plasma. Engineering and Technology, vol.49, pp.177-179, 2009.

W. Hong and N. Tai, Investigations on the thermal conductivity of composites reinforced with carbon nanotubes, Diamond & Related Materials, vol.17, pp.1577-1581, 2008.

J. Zhu, M. Yudasaka, M. Zhang, and S. Iijima, Dispersing Carbon Nanotubes in Water: A Noncovalent and Nonorganic Way, J. Phys. Chem. B, vol.108, pp.11317-11320, 2004.

R. J. Chen, Y. Zhang, D. Wang, and H. Dai, Noncovalent Sidewall Functionalization of Single-Walled Carbon Nanotubes for Protein Immobilization, J. Am. Chem. Soc, vol.123, pp.3838-3839, 2001.

T. J. Simmons, J. Bult, D. P. Hashim, R. J. Linhardt, and P. M. Ajayan, Noncovalent Functionalization as an Alternative to Oxidative Acid Treatment of Single Wall Carbon Nanotubes with Applications for Polymer Composites, ACS Nano, vol.3, issue.4, pp.865-870, 2009.

L. Cao, X. Liu, H. Na, Y. Wu, W. Zhenga et al., How a biobased epoxy monomer enhanced the properties of diglycidyl ether of bisphenol A (DGEBA)/graphene composites, J. Mater. Chem. A, vol.1, pp.5081-5088, 2013.

S. Yang, W. Lin, Y. Huang, H. Tien, J. Wang et al., Synergetic effects of graphene platelets and carbon nanotubes on the mechanical and thermal properties of epoxy composites, Carbon, vol.49, pp.793-803, 2011.

C. Teng, M. Chen-chi, C. Ma, S. Lu, S. Yang et al., Tzong-Ming Lee, Thermal conductivity and structure of non-covalent functionalized graphene/epoxy composites, Carbon, vol.49, pp.5107-5116, 2011.

S. Choi, H. Im, and J. Kim, Flexible and high thermal conductivity thin films based on polymers: Aminated multi-walled carbon nanotubes/micro-aluminum nitride hybrid composites, Composites: Part A, vol.43, pp.1860-1868, 2012.

Y. Hwang, M. Kim, and J. Kim, Improvement of the mechanical properties and thermal conductivity of poly(ether-ether-ketone) with the addition of graphene oxide-carbon nanotube hybrid fillers, Composites : Part A, vol.55, pp.195-202, 2013.

E. Tamburri, S. Orlanducci, M. L. Terranova, F. Valentini, G. Palleschi et al., Modulation of electrical properties in single-walled carbon nanotube/conducting polymer composites, Carbon, vol.43, pp.1213-1221, 2005.

L. Valentini, M. Trentini, F. Mengoni, J. Alongi, I. Armentano et al., Synthesis and photoelectrical properties of carbon nanotube-dendritic porphyrin light harvesting molecule systems, Diamond & Related Materials, vol.16, pp.658-663, 2007.

K. Yang and M. Gu, The Effects of Triethylenetetramine Grafting of Multi-Walled Carbon Nanotubes on Its Dispersion, Filler-Matrix Interfacial Interaction and the Thermal Properties of Epoxy Nanocomposites, Polymer Engineering and Science, vol.49, pp.2158-2167, 2009.

H. Wu, X. Chang, L. Liu, F. Zhao, and Y. Zhao, Chemistry of carbon nanotubes in biomedical applications, J. Mater. Chem, vol.20, pp.1036-1052, 2010.

S. Ganguli, A. K. Roy, and D. P. Anderson, Improved Thermal conductivity for chemically functionalized exfoliated graphite/epoxy composites, Carbon, vol.46, pp.806-817, 2008.

K. C. Yung, H. Liem, and H. S. Choy, Prerequisite for maximizing thermal conductivity of epoxy laminate using filler, J. Mater. Sci: Mater Electron, vol.24, pp.1095-1104, 2013.

S. Yuen, M. Chen-chi, C. Ma, J. Chiang, S. Chang et al., Silane-modified MWCNT-PMMA composite -preparation, electrical resistivity, thermal conductivity and thermal stability, Composites : Part A, vol.38, pp.2527-2535, 2007.

H. Lee, S. Han, Y. Kwon, L. Tan, and J. Baek, Functionalization of multi-walled carbon nanotubes with various 4-substituted benzoic acids in mild polyphosphoric acid/phosphorous pentoxide, Carbon, vol.46, pp.1850-1859, 2008.

M. Barikani and I. Hasanzadeh, Effect of Different Chemical Modification Systems on Thermal and Electrical Conductivity of Functionalized Multiwall Carbon Nanotube/Epoxy Nanocomposites, Polymer-Plastics Technology and Engineering, vol.52, pp.869-876, 2013.

R. Gulotty, M. Castellino, P. Jagdale, A. Tagliaferro, and A. A. ,

. Balandin, Effects of Functionalization on Thermal Properties of Single-Wall and Multi-Wall Carbon Nanotube-Polymer Nanocomposites, ACS Nano, vol.7, issue.6, pp.5114-5121, 2013.

Y. J. Hong-jun-ahn, S. D. Eoh, E. S. Park, and . Kim, Thermal conductivity of polymer composites with oriented boron nitride, Thermochimica Acta, vol.590, pp.138-144, 2014.

Y. Hwang, K. Ahn, and J. Kim, Silicon carbonitride covered SiC composites for enhanced thermal conductivity and electrical insulation, Applied Thermal Engineering, vol.70, pp.600-608, 2014.

G. Paul, M. Chopkar, I. Manna, and P. K. Das, Techniques for measuring the thermal conductivity of nanofluids : a review, Renewable and sustainable Energy Reviews, vol.14, pp.1913-1924, 2010.

A. William, J. Wakeham-&-marc, and . Assael, Thermal conductivity measurements, 1999.

B. Hay, G. Davee, and J. Hameury, Olivier Enouf et Lydia Rongione, Determination of the thermal diffusivity and thermal conductivity of coatings at high temperature by flash method, Revue Française de Métrologie, vol.24, issue.4, pp.23-33, 2010.

Y. Jannot, Transferts Thermiques, 2003.
URL : https://hal.archives-ouvertes.fr/hal-01534098

K. E. Goodson and M. I. Flik, Solid Layer Thermal Conductivity Measurement Techniques, Appl. Mech. Rev, vol.47, issue.3, pp.101-112, 1994.

M. Gustavsson, E. Karawacki, and S. E. Gustafsson, Thermal conductivity, thermal diffusivity, and specific heat of t in samples from transient measurements with hot disk sensors, Rev. Sci. Instrum, issue.12, pp.3856-3859, 1994.

S. E. Gustafsson, Transient plane source techniques for thermal conductivity and thermal diffusivity measurements of solid materials, Rev. Sci. Instrum, vol.63, issue.3, pp.797-804, 1991.

Y. He, Rapid thermal conductivity measurement with a hot disk sensor -Part 1 : Theoretical considerations, Thermochimica Acta, vol.436, pp.122-129, 2005.

S. Ali, N. Shokralla, and . Saleh-al-muaikel, Thermal properties of epoxy (DGEBA)/phenolic resin (Novolac) blends, The Arabian Journal for Science and Engineering, vol.35, pp.7-14, 2010.

F. Berthet, S. Nakouzi, F. Schmidt, and . Yannick-le-maoult, Cartes de température maximum lors de la simulation de la réticulation de la résine RTM 6 dans une plaque composite, Comptes Rendus des JNC, vol.17, pp.1-6, 2011.

X. Sun, A. Yu, P. Ramesh, E. Bekyarova, M. E. Itkis et al.,

. Haddon, Oxidized Graphite Nanoplatelets as an Improved Filler for Thermally Conducting Epoxy-Matrix Composites, Journal of Electronic Packaging, vol.133, pp.1-6, 2011.

A. Lazarenko, L. Vovchenko, Y. Prylutskyy, L. Matzuy, U. Ritter et al., Mechanism of thermal and electrical conductivity in polymer-nanocarbon composites, Mat.-wiss. u. Werkstofftech, vol.40, issue.4, pp.268-272, 2009.

L. Liu, K. C. Etika, K. Liao, L. A. Hess, D. E. Bergbreiter et al.,

. Grunlan, Comparison of Covalently and Noncovalently Functionalized Carbon Nanotubes in Epoxy, Macromol. Rapid Commun, vol.30, pp.627-632, 2009.

J. Su, Y. Xiao, and M. Ren, Enhanced thermal conductivity in epoxy nanocomposites with hybrid boron nitride nanotubes and nanosheets, Phys. Status Solidi. A, pp.1-7, 2013.

S. Yang, M. Chen-chi, C. Ma, Y. Teng, S. Huang et al., Effect of functionalized carbon nanotubes on the thermal conductivity of epoxy composites, vol.48, pp.592-603, 2010.

Y. Fu, Z. He, D. Mo, and S. Lu, Thermal conductivity enhancement with different fillers for epoxy resin adhesives, Applied Thermal Engineering, vol.66, pp.493-498, 2014.

M. Filali, Conductivité Thermique Apparente des Milieux Granulaires Soumis à Des Contraintes Mécaniques : Modélisation Et Mesures, 2006.

T. J. Lu and J. W. Hutchinson, Effect of matrix cracking on the overall thermal conductivity of fibrereinforced composites, Physical Sciences and Engineering, vol.351, issue.1697, pp.595-610, 1995.

. Shin-pon, T. Ju, C. Haung, J. Liao, and . Chang, Investigation of thermal conductivity of graphite flake/poly (p-phenylene sulfide) composite by experimental measurement and non-equilibrium molecular dynamics simulation, Polymer, vol.54, pp.4702-4709, 2013.

P. G. Klemens and D. F. Pedraza, Thermal conductivity of graphite in the basal plane, vol.32, pp.735-741, 1994.

L. W. Wang, Z. Tamainot-telto, S. J. Metcalf, R. E. Critoph, and R. Z. Wang, Anisotropic thermal conductivity and permeability of compacted expanded natural graphite, Applied Thermal Engineering, vol.30, pp.1805-1811, 2010.

M. Chirtoc, N. Horny, I. Tavman, A. Turgut, I. Kökey et al., Preparation and photothermal characterization of nanocomposites based on high density polyethylene filled with expanded and unexpanded graphite: Particle size and shape effects, International Journal of Thermal Science, vol.62, pp.50-55, 2012.

Y. Fu, Z. He, D. Mo, and S. Lu, Thermal conductivity enhancement of epoxy adhesive using graphene sheets as additives, International Journal of Thermal Sciences, vol.86, pp.276-283, 2014.