Enhancement of the Mechanical Properties of Graphene Nanoplatelet (GNP) Reinforced Nickel Matrix Nanocomposites

Author(s):  
Amit Patil ◽  
Mohan Sai Kiran Kumar Yadav Nartu ◽  
Furkan Ozdemir ◽  
Raj Banerjee ◽  
Rajeev Kumar Gupta ◽  
...  
Nanomaterials ◽  
2021 ◽  
Vol 11 (6) ◽  
pp. 1468
Author(s):  
Ummu Raihanah Hashim ◽  
Aidah Jumahat ◽  
Mohammad Jawaid

Basalt fibre (BF) is one of the most promising reinforcing natural materials for polymer composites that could replace the usage of glass fibre due to its comparable properties. The aim of adding nanofiller in polymer composites is to enhance the mechanical properties of the composites. In theory, the incorporation of high strength and stiffness nanofiller, namely graphene nanoplatelet (GNP), could create superior composite properties. However, the main challenges of incorporating this nanofiller are its poor dispersion state and aggregation in epoxy due to its high surface area and strong Van der Waals forces in between graphene sheets. In this study, we used one of the effective methods of functionalization to improve graphene’s dispersion and also introducing nanosilica filler to enhance platelets shear mechanism. The high dispersive silica nanospheres were introduced in the tactoids morphology of stacked graphene nanosheets in order to produce high shear forces during milling and exfoliate the GNP. The hybrid nanofiller modified epoxy polymers were impregnated into BF to evaluate the mechanical properties of the basalt fibre reinforced polymeric (BFRP) system under tensile, compression, flexural, and drop-weight impact tests. In response to the synergistic effect of zero-dimensional nanosilica and two-dimensional graphene nanoplatelets enhanced the mechanical properties of BFRP, especially in Basalt fibre + 0.2 wt% GNP/15 wt% NS (BF-H0.2) with the highest increment in modulus and strength to compare with unmodified BF. These findings also revealed that the incorporation of hybrid nanofiller contributed to the improvement in the mechanical properties of the composite. BF has huge potential as an alternative to the synthetic glass fibre for the fabrication of mechanical components and structures.


2018 ◽  
Vol 83 ◽  
pp. 60-66 ◽  
Author(s):  
Faming Zhang ◽  
Peipei Zhao ◽  
Tengfei Liu ◽  
Suli Liu ◽  
Peigen Zhang ◽  
...  

RSC Advances ◽  
2016 ◽  
Vol 6 (8) ◽  
pp. 6823-6831 ◽  
Author(s):  
Evie L. Papadopoulou ◽  
Francesca Pignatelli ◽  
Sergio Marras ◽  
Lara Marini ◽  
Alexander Davis ◽  
...  

New solvent results in non-porous nylon 66 films. Addition of graphene results in great improvement of electrical and mechanical properties.


2020 ◽  
Vol 979 ◽  
pp. 28-33 ◽  
Author(s):  
Lakshmanan Poovazhgan ◽  
S. Vijayananth ◽  
S. Sivaganesan

In this work, aluminum (Al) alloy reinforced with boron carbide (B4C) nanoparticles were fabricated using ultrasonic assisted casting process. To investigate the effect of ultrasonic power on processing the metal matrix nanocomposites (MMNCs), the MMNC samples were processed with 1.0 kW, 1.5 kW and 2.0 kW of ultrasonic power. The results indicate that the ultrasonic power play a significant role in dispersing the B4C nanoparticles uniformly in Al melt and it also affects the mechanical properties of the fabricated MMNCs. From microstructural analysis it was observed that the MMNC sample processed with 2.0 kW ultrasonic powers possessed the good dispersion of B4C in the Al melt which is the prime criteria for the good mechanical properties.


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