Fabrication and characterization of microwave cured high-density polyethylene/carbon nanotube and polypropylene/carbon nanotube composites

被引:39
作者
Arora, Gaurav [1 ]
Pathak, Himanshu [1 ]
Zafar, Sunny [1 ]
机构
[1] Indian Inst Technol Mandi, Sch Engn, Composite Design & Mfg Lab, Mandi 175005, Himachal Prades, India
关键词
Microwave curing; carbon nanotube; polymer composites; thermal analysis; tensile strength; MECHANICAL-PROPERTIES; CARBON NANOTUBES; POLYMER; NANOCOMPOSITES;
D O I
10.1177/0021998318822705
中图分类号
TB33 [复合材料];
学科分类号
摘要
Carbon nanotubes have been used as reinforcements in polymers due to their high elasticity, flexibility, and thermal conductivity. In this study, pellets of high-density polyethylene +20 wt% carbon nanotube and polypropylene +20 wt% carbon nanotube were cured using microwave energy. X-ray diffraction, differential scanning calorimetry, thermogravimetric analysis, uniaxial tensile test, and scanning electron microscopy was used to study morphology, thermal stability, and mechanical performance of the microwave-cured composites. X-ray diffraction analysis confirmed the bonding between the polymer and carbon nanotube as the peaks shifted and intensified. From the thermal study, it was observed that melting point of the composites is affected by microwave curing and the crystallinity of high-density polyethylene/carbon nanotube and polypropylene/carbon nanotube changed by 57.67% and 47.28%, respectively. Results of the uniaxial tensile test indicated that Young's modulus of microwave cured high-density polyethylene/carbon nanotube and polypropylene/carbon nanotube composites were improved by 295% and 787.8%, respectively. Scanning electron microscopic fractography shows the stretching of polymer over-lapped on carbon nanotubes in the direction of the applied load.
引用
收藏
页码:2091 / 2104
页数:14
相关论文
共 38 条
[1]   Preparation and characterization of linear low density polyethylene/carbon nanotube nanocomposites [J].
Aalaie, Jamal ;
Rahmatpour, Ali ;
Maghami, Somayeh .
JOURNAL OF MACROMOLECULAR SCIENCE PART B-PHYSICS, 2007, 46 (05) :877-889
[2]   Magnetically processed carbon nanotube/epoxy nanocomposites: Morphology, thermal, and mechanical properties [J].
Abdalla, Mohamed ;
Dean, Derrick ;
Theodore, Merlin ;
Fielding, Jennifer ;
Nyairo, Elijah ;
Price, Gary .
POLYMER, 2010, 51 (07) :1614-1620
[3]  
Agrawal D., 2006, Trans. Indian Cer. Soc, V65, P129, DOI [DOI 10.1080/0371750X.2006.11012292, 10.1080/0371750X.2006.11012292]
[4]   Electrical and dielectric behaviors of dry-mixed CNT/UHMWPE nanocomposites [J].
Al-Saleh, Mohammed H. ;
Jawad, Saadi Abdul ;
El Ghanem, Hasan M. .
HIGH PERFORMANCE POLYMERS, 2014, 26 (02) :205-211
[5]   Curing of natural fibre-reinforced thermoplastic composites using microwave energy [J].
Ali, Sabir ;
Bajpai, Pramendra Kumar ;
Singh, Inderdeep ;
Sharma, Apurbba Kumar .
JOURNAL OF REINFORCED PLASTICS AND COMPOSITES, 2014, 33 (11) :993-999
[6]   On the elastic properties of curved carbon nanotubes/polymer nanocomposites: A modified rule of mixture [J].
Ansari, Reza ;
Rouhi, Saeed ;
Eghbalian, Mohsen .
JOURNAL OF REINFORCED PLASTICS AND COMPOSITES, 2017, 36 (14) :991-1008
[7]   On the feasibility of producing polymer-metal composites via novel variant of friction stir processing [J].
Azarsa, Ehsan ;
Mostafapour, Amir .
JOURNAL OF MANUFACTURING PROCESSES, 2013, 15 (04) :682-688
[8]   The production of carbon nanotube/epoxy composites with a very high dielectric constant and low dielectric loss by microwave curing [J].
Chang, Jianfei ;
Liang, Guozheng ;
Gu, Aijuan ;
Cai, Shiduan ;
Yuan, Li .
CARBON, 2012, 50 (02) :689-698
[9]   High-performance nanotube-reinforced plastics: Understanding the mechanism of strength increase [J].
Coleman, JN ;
Cadek, M ;
Blake, R ;
Nicolosi, V ;
Ryan, KP ;
Belton, C ;
Fonseca, A ;
Nagy, JB ;
Gun'ko, YK ;
Blau, WJ .
ADVANCED FUNCTIONAL MATERIALS, 2004, 14 (08) :791-798
[10]   Manufacturing of smart composites with hyperelastic property gradients and shape memory using fused deposition [J].
Estelle, Kevin ;
Blair, Dylan ;
Evans, Kent ;
Gozen, B. Arda .
JOURNAL OF MANUFACTURING PROCESSES, 2017, 28 :500-507