Effects of BN on the Mechanical and Thermal Properties of PP/BN Composites

Houzhen Chen , Yanzhi Wang , Yu Nan , Xu Wang , Xianyang Yue , Yifei Zhang , Huiling Fan

Journal of Wuhan University of Technology Materials Science Edition ›› 2024, Vol. 39 ›› Issue (2) : 345 -352.

PDF
Journal of Wuhan University of Technology Materials Science Edition ›› 2024, Vol. 39 ›› Issue (2) : 345 -352. DOI: 10.1007/s11595-024-2890-x
Advanced Materials

Effects of BN on the Mechanical and Thermal Properties of PP/BN Composites

Author information +
History +
PDF

Abstract

In order to explore the thermal conductivity of polypropylene (PP)/hexagonal boron nitride (BN) composites, PP composites filled with different proportions of BN were prepared through extrution compounding, injection moulding and compression moulding. The composites were filled with BN particles of 5 and 20 µm respectively, and their mass fractions in composites were considered. Percentage of BN was varied from 0 to 25wt% in steps of 5wt%. The effects of BN filler on mechanical properties of the composites were evaluated. The thermal behaviors were studied using DSC and TGA, and the thermal conductivity was also investigated by Laser Flash Device and the Model of 3D Heat Conduction respectively. The experimental results show that impact strength of PP/BN can be enhanced with the addition of BN, but that composites exhibit lower breaking elongation & tensile strength when compared to unfilled ones. It is found that mass fraction of BN influenced the final thermal stability and degree of crystallization of PP matrix, the degree of crystallization of PP with 15wt% of 20 µm BN can be improved by 25% than neat PP. Meanwhile, crystallization temperatures of PP composites are elevated by about 10 °C. The thermal conductivity results demonstrate that the maximum value of the thermal conductivity is achieved from PP/BN with 20wt% of 20 µm BN, higher than that of pure PP by 95.65%, close to the simulation one.

Keywords

thermal properties / polypropylene / composites / hexagonal boron nitride

Cite this article

Download citation ▾
Houzhen Chen, Yanzhi Wang, Yu Nan, Xu Wang, Xianyang Yue, Yifei Zhang, Huiling Fan. Effects of BN on the Mechanical and Thermal Properties of PP/BN Composites. Journal of Wuhan University of Technology Materials Science Edition, 2024, 39(2): 345-352 DOI:10.1007/s11595-024-2890-x

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Kuo C, Chen J, Chen P, et al. Preparation of Boron Nitride Nanosheets Using a Chemical Exfoliation Method as a Thermal Conductive Filler for the Development of Silicone Thermal Composites Part I: Effect of Single-and Hybrid-filler Additions on the Silicone Composite Performance. Text. Res. J., 2020, 90(5–6): 666-684. J]

[2]

Niu H, Ren Y, Guo H, et al. Recent Progress on Thermally Conductive and Electrical Insulating Rubber Composites: Design, Processing and Applications. Compos. Commun., 2020, 22: 100 430. J]

[3]

Chen H, Ginzburg V, Yang J, et al. Thermal Conductivity of Polymer-based Composites: Fundamentals and Applications. Prog. Polym. Sci., 2016, 59: 41-85. J]

[4]

Burger N, Laachachi A, Ferriol M, et al. Review of Thermal Conductivity in Composites: Mechanisms, Parameters and Theory. Prog. Polym. Sci., 2016, 61: 1-28. J]

[5]

Fu S, Lauke B, Mader E, et al. Tensile Properties of Short-glass-fiber- and Short-carbon-fiber- reinforced Polypropylene Composites. Compos. Part A., 2011, 31: 1 117-1 125. J]

[6]

Han Z, Fina A. Thermal Conductivity of Carbon Nanotubes and Their Polymer Nanocomposites: A Review. Prog. Polym. Sci., 2011, 36(7): 914-944. J]

[7]

Balasubramanian K, Ramesh T. Role, Effect, and Influences of Micro and Nano-fillers on Various Properties of Polymer Matrix Composites for Microelectronics: A Review. Polym. Adv. Technol., 2018, 29(6): 1 568-1 585. J]

[8]

Huang X, Jiang P, Tanaka T. A Review of Dielectric Polymer Composites with High Thermal Conductivity. IEEE. Electr. Insul. M., 2011, 27(4): 8-16. J]

[9]

Qian J, Bi H, Wan D, et al. Ultralight, Highly Compressible Graphene Cellular Materials with Enhanced Mechanical and Electrical Performance. Chem. Nano. Mat., 2020, 6: 1 245-1 250. [J]

[10]

Haider MR, Singh PK. Mechanical and Thermal Properties of Graphene based Hybrid Polymer Nanocomposites-A Review. IOP. Conf. Ser.: Mater. Sci. Eng., 2021, 1116(1): 012 038 J]

[11]

Goh PS, Ismail AF, Ng BC. Directional Alignment of Carbon Nanotubes in Polymer Matrices: Contemporary Approaches and Future Advances-ScienceDirect. Compos. Part A Appl. Sci. Manuf., 2014, 56(1): 103-126. J]

[12]

Ouyang Y, Hou G, Bai L, et al. Constructing Continuous Networks by Branched Alumina for Enhanced Thermal Conductivity of Polymer Composites. Compos. Sci. Technol., 2018, 165: 307-313. J]

[13]

Fang H, Bai S, Wong C. “White Graphene”-Hexagonal Boron Nitride Based Polymeric Composites and Their Application in Thermal Management. Compos. Commun., 2016, 2: 19-24. J]

[14]

Hutchinson J M, Moradi S. Thermal Conductivity and Cure Kinetics of Epoxy-Boron Nitride Composites—A Review. Materials., 2020, 13(16): 3 634 J]

[15]

Jiang X, Weng Q, Wang X, et al. Recent Progress on Fabrications and Applications of Boron Nitride Nanomaterials: A Review. J. Mater. Sci. Technol., 2015, 31(6): 589-598. J]

[16]

Lu H, Qin M, Wu HY, et al. Effect of AlN Powders on the Debinding and Sintering Behavior, and Thermal Conductivity of Injection Molded AlN Ceramics. Ceram. Int., 2010, 45(18): 23 890-23 894. J]

[17]

Fu Y, Hansson J, Liu Y, et al. Graphene Related Materials for Thermal Management. 2D. Mater., 2020, 7(1): 012 001 J]

[18]

Cui W, Zhao J, Du F. Effect of Silica Coating Thickness on the Thermal Conductivity of Polyurethane/SiCO Coated Multiwalled Carbon Nanotube Composites. Composites. Part A Appl. Sci. Manuf., 2014, 58: 1-6. J]

[19]

Wei L, Wei F, Huang H. High-performance Epoxy Resin/Silica Coated Flake Graphite Composites for Thermal Conductivity and Electrical Insulation. J. Mater. Sci. Mater. Electron., 2021, 27(6): 6 364-6 370. [J]

[20]

Glavin N, Jespersen M, Check M, et al. Synthesis of Few-layer, Large Area Hexagonal-boron Nitride by Pulsed Laser Deposition. Thin. Solid. Films., 2014, 572: 245-250. J]

[21]

Min K, Li Y, Qiang S. Recent Advances in Hybrid Graphene-BN Planar Structures. Wires. Comput. Mol. Sci., 2016, 6(1): 65-82. J]

[22]

Huang C, Qian X, Yang R. Thermal Conductivity of Polymers and Polymer Nanocomposites. Mater. Sci. Eng., 2018, 132: 1-22. J]

[23]

Guerra V, Wan C, McNally T. Thermal Conductivity of 2D Nano-structured Boron Nitride (BN) and Its Composites with Polymers. Prog. Mater. Sci., 2019, 100: 170-186. J]

[24]

Sevik C, Kinaci A, Haskins J, et al. Characterization of Thermal Transport in Low-dimensional Boron nitride Nanostructures. Phys. Rev B., 2011, 84(8): 085 409 J]

[25]

Zhou ZR, Zhang C, Zhao YL, et al. Dielectric BN Nanosheet/PVDF Composites with High Thermal Conductivity. J. Phys. Conf. Ser., 2021, 1857(1): 012 011 J]

[26]

Rasul MG, Kiziltas A, Malliakas CD, et al. Polyethylene-BN Nanosheets Nanocomposites with Enhanced Thermal and Mechanical Properties. Compos. Sci. Technol., 2021, 204: 108 631. J]

[27]

Zhan Y, Long Z, Wan X, et al. Enhanced Dielectric Permittivity and Thermal Conductivity of Hexagonal Boron Nitride/poly (Arylene Ether Nitrile) Composites Through Magnetic Alignment and Mussel Inspired Co-modification. Ceram. Int., 2017, 43(15): 12 109-12 119. J]

[28]

Quill T, Smith M, Zhou T, et al. Thermal and Mechanical Properties of 3D Printed Boron Nitride-ABS Composites. Appl. Compos. Mater., 2018, 25(5): 1 205-1 217. J]

[29]

Abou DM, Chen Y. Effect of Reverse Polarity on Space Charge Evolution in Polypropylene with Different Concentration of Natural and Synthetic Nano Clay[J]. IEEE. CEIDP., 2013: 671–675

[30]

Andritsch T, Vaughan A, Stevens G. Novel Insulation Materials for High Voltage Cable Systems. IEEE. Electr. Insul. M., 2017, 33(4): 27-33. J]

[31]

Zha J, Wu Y, Wang S, et al. Improvement of Space Charge Suppression of Polypropylene for Potential Application in HVDC Cables. IEEE. Trans. Dielectr. Electr. Insul., 2016, 23(4): 2 337-2 343. J]

[32]

Kong S, Seo H, Shin H, et al. Improvement in Mechanical and Thermal Properties of Polypropylene Nanocomposites Using an Extremely Small Amount of Alkyl Chain-grafted Hexagonal Boron Nitride Nanosheets. Polymer., 2019, 180: 121 714. J]

[33]

Chen L, Xu HF, He SJ, et al. Thermal Conductivity Performance of Polypropylene Composites Filled with Polydopamine-Functionalized Hexagonal Boron Nitride. Plos. One., 2017, 12(1): 1-16. J]

[34]

Muratov DS, Kuznetsov DV, Inykh IA, et al. Thermal Conductivity of Polypropylene Composites Filled with Silane-modified Hexagonal BN. Compos. Sci. Technol., 2015, 111: 40-43. J]

[35]

Wu D, Liang W, Zhang M, et al. Viscoelasticity and Thermal Stability of Polylactide Composites with Various Functionalized Carbon Nanotubes. Polym. Degrad. Stab., 2008, 93(8): 1 577-1 584. J]

[36]

Xiao C, Chen L, Tang YL, et al. Enhanced Thermal Conductivity of Silicon Carbide Nanowires (SiCw)/Epoxy Resin Composite with Segregated Structure. Compos. A Appl. Sci. Manuf., 2019, 116: 98-105. J]

[37]

Maira B, Takeuchi K, Chammingkwan P, et al. Thermal Conductivity of Polypropylene/Aluminum Cxide Nanocomposites Prepared Based on Reactor Granule Technology. Compos. Sci. Technol., 2018, 165: 259-265. J]

[38]

Guo Y, Ruan K, Shi X, et al. Factors Affecting Thermal Conductivities of the Polymers and Polymer Composites: A Review. Compos. Sci. Technol., 2020, 193: 108 134. J]

AI Summary AI Mindmap
PDF

172

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/