360
Views
10
CrossRef citations to date
0
Altmetric
Research Article

Effect of microstructure, mechanical and wear on Al-CNTs/graphene hybrid MMC’S

, , ORCID Icon, ORCID Icon, ORCID Icon &
Pages 366-379 | Accepted 27 Apr 2021, Published online: 24 May 2021

References

  • Singh L, Singh B, Saxena KK. Manufacturing techniques for metal matrix composites (MMC): an overview. Adv Mater Process Technol. 2020;6(2):441–457.
  • Kumar A, Rana RS, Purohit R. Effect of stirrer design on microstructure of MWCNT and Al alloy by stir casting process. Adv Mater Process Technol. 2020;1–8. DOI:10.1080/2374068x.2020.1731156
  • Katundi D, Ferreira L-MP, Bayraktar E, et al. Design and microstructural evolution, mechanical and physical properties of fine particles reinforced aluminium matrix composites. Adv Mater Process Technol. 2016;2(4):566–577.
  • Bajakke PA, Malik VR, Deshpande AS. Particulate metal matrix composites and their fabrication via friction stir processing–a review. Mater Manuf Processes. 2019;34(8):833–881.
  • Bajakke PA, Jambagi SC, Malik VR, et al. Friction stir processing: an emerging surface engineering technique. In: Gupta K, editor. Surface engineering of modern materials. engineering materials. Cham: Springer; 2020. DOI:10.1007/978-3-030-43232-4_1
  • Rajesh Purohit MMU, Qureshi, Jain A. Forming behaviour of aluminium matrix nano Al2O3 composites for automotive applications. Adv Mater Process Technol. 2020;6(2):272–283.
  • Ramanathan A, Krishnan PK, Muraliraja R. A review on the production of metal matrix composites through stir casting–Furnace design, properties, challenges, and research opportunities. J Manuf Processes. 2019;42:213–245.
  • Malik VR, Bajakke PA, Jambagi SC, et al. Investigating mechanical and corrosion behavior of plain and reinforced AA1050 sheets fabricated by friction stir processing. JOM. 2020;72(10):3582–3593.
  • Yigezu BS, Jha PK, Mahapatra MM. The key attributes of synthesizing ceramic particulate reinforced Al-based matrix composites through stir casting process: a review. Mater Manuf Processes. 2013;28(9):969–979.
  • Safri SNA, Sultan MTH, Jawaid M, et al. Impact behaviour of hybrid composites for structural applications: a review. Compos Part B Eng. 2018;133:112–121.
  • Prasad SV, Asthana R. Aluminum metal-matrix composites for automotive applications: tribological considerations. Tribology Lett. 2004;17(3):445–453.
  • Ekka KK, Chauhan SR. Dry sliding wear characteristics of SiC and Al 2 O 3 nanoparticulate aluminium matrix composite using Taguchi technique. Arab J Sci Eng. 2015;40(2):571–581.
  • Abbasipour B, Niroumand B, Vaghefi SMM, et al. Tribological behavior of A356-CNT nanocomposites fabricated by various casting techniques. Trans Nonferrous Met Soc China. 2019;29(10):1993–2004.
  • Ayyanar S, Gnanavelbabu A, Rajkumar K, et al. Studies on high temperature wear and friction behaviour of AA6061/B4C/hBN hybrid composites. Met Mater Int. 2020:1–18.
  • Singh RK, Dixit AR, Sharma AK, et al. Influence of graphene and multi-walled carbon nanotube additives on tribological behaviour of lubricants. Int J Surface Sci Eng. 2018;12(3):207–227.
  • Merino CAI, Sillas JL, Meza JM, et al. Metal matrix composites reinforced with carbon nanotubes by an alternative technique. J Alloys Compd. 2017;707:257–263.
  • Tumnantong D, Poompradub S, Prasassarakich P. Poly (methyl methacrylate)-graphene emulsion prepared via RAFT polymerization and the properties of NR/PMMA-graphene composites. Eur Polym J. 2020;139:109983.
  • Megson THG. Chapter 10 - materials. In: Introduction to aircraft structural analysis. 3rd ed. Butterworth-Heinemann; 2018. p. 349–371.
  • Nayim SMTI, Hasan MZ, Seth PP, et al. Effect of CNT and TiC hybrid reinforcement on the micro-mechano-tribo behaviour of aluminium matrix composites. Mater Today Proc. 2020;21(3):1421–1424.
  • Carvalho O, Miranda G, Soares D, et al. Carbon nanotube dispersion in aluminium matrix composites—quantification and influence on strength. Mech Adv Mater Struct. 2016;23:66–73.
  • Dhand V, Rhee KY, Kim HJ, et al. A comprehensive review of graphene nanocomposites: research status and trends. J Nanomater. 2013;158:1–14.
  • Lakshmikanthan A, Bontha S, Krishna M, et al. Microstructure, mechanical and wear properties of the A357 composites reinforced with dual sized SiC particles. J Alloys Compd. 2019;786:570–580.
  • Lakshmikanthan A, Ramprabhu T, Babu S, et al. The effect of heat treatment on the mechanical and tribological properties of dual size SiC reinforced A357 matrix composites. J Mater Res Technol. 2020;9:6434–6452.
  • Li Z, Fan G, Guo Q, et al. Synergistic strengthening effect of graphene-carbon nanotube hybrid structure in aluminum matrix composites. Carbon. 2013;95(2015):419–427.
  • Naik H R M, L H M, Koti V, et al. Al/Graphene/CNT hybrid composites: hardness and sliding wear studies. FME Trans. 2021;49:414–421.
  • Tjong SC. Recent progress in the development and properties of novel metal matrix nanocomposites reinforced with carbon nanotubes and graphene nanosheets. Mater Sci Eng R Rep. 2013;74:281–350.
  • Huang Y, Ouyang Q, Zhang D, et al. Carbon materials reinforced aluminum composites: a review. Acta Metall SinEngl Lett. 2014;27: 775–786.
  • Dorri Moghadam A, Omrani E, Menezes PL, et al. Mechanical and tribological properties of self-lubricating metal matrix nanocomposites reinforced by carbon nanotubes (CNTs) and graphene—A review. Compos Part B Eng. 2015;77:402–420.
  • Saboori A, Pavese M, Badini C, et al. Development of Al- and Cu-based nanocomposites reinforced by graphene nanoplatelets: fabrication and characterization. Front Mater Sci. 2017;11:171–181.
  • Mallikarjuna HM, Siddaraju C, Kumar HSS, et al. Nano hardness and wear behavior of Copper-SiC-CNTs nanocomposites. FME Trans. 2020;48:688–692.
  • Zhang C, Ren LL, Wang XY, et al. Graphene oxide-assisted dispersion of pristine multiwalled carbon nanotubes in aqueous media. J Phys Chem C. 2010;114:11435–11440.
  • Li Z, Fan G, Guo Q, et al. Synergistic strengthening effect of graphene-carbon nanotube hybrid structure in aluminum matrix composites. Carbon. 2015;95:419–427.
  • Avinash L, Ram Prabhu T, Bontha S. The effect on the dry sliding wear behavior of gravity cast A357 reinforced with dual size silicon carbide particles. Appl Mech Mater. 2016;829:83–89.
  • Yadav SPS, Ranganath S, Sharieff S, et al. Investigations on the change in state of stress with respect to the sliding direction in dry sliding wear of hard elastic material with different geometry and orientation on ductile flat surface. FME Trans. 2020;48:716–723.
  • Avinash L, Ram Prabhu T, Parthasarathy A, et al. Wear and mechanical behaviour of Hypo-eutectic Al-7% Si-0.5% Mg alloy (A357) reinforced with Al2O3 particles. Appl Mech Mater. 2016;829:66–72.
  • Sajjan B, Avinash L, Varun S, et al. Investigation of mechanical properties and dry sliding wear behaviour of graphite reinforced Al7068 alloy. Applied-Mechanics-and-Materials. 2017;867:10–11.
  • R. K. and S. Aravindan. Tribological behavior of microwave processed copper–nanographite composites. Tribol Int. 2013;57:282–296.
  • Khorshid T, Meysam Omrani E, Menezes PL, et al. Tribological performance of self-lubricating aluminum matrix nanocomposites: role of graphene nanoplatelets. Eng Sci Technol. 2016;19(1):463–469.
  • Arif S, Jamil B, Shaikh MBN, et al. Characterization of surface morphology, wear performance and modelling of graphite reinforced aluminium hybrid composites. Eng Sci Technol Int J. 2020;23(3):674–690.
  • Parthasarathy A, Avinash L, Varun Kumar KN, et al. Fabrication and characterization of Al-0.4% Si-0.5% Mg-SiCp using permanent mould casting technique.Applied-Mechanics-and-Materials. 2017;867:34–40.
  • Al-Qutub AM, Khalil A, Saheb N, et al. Wear and friction behavior of Al6061 alloy reinforced with carbon nanotubes. Wear. 2013;297:752–761.
  • Bastwros MMH, Esawi AMK, Wifi A. Friction and wear behavior of Al–CNT composites. Wear. 2013;307:164–173.
  • Mallikarjuna HM, Ramesh CS, Koppad PG, et al. Effect of carbon nanotube and silicon carbide on microstructure and dry sliding wear behavior of copper hybrid nanocomposites. Trans Nonferrous Met Soc China. 2016;26:3170–3182.
  • Suresha S, Sridhara BK. Wear characteristics of hybrid aluminium matrix composites reinforced with graphite and silicon carbide particulates. Compos Sci Technol. 2010;70:1652–1659.
  • Deuis RL, Subramanian C, Yellup JM. Dry sliding wear of aluminium composites-a review. Compos Sci Technol. 1997;57:415–435.
  • Das DK, Mishra PC, Singh S, et al. Properties of ceramic-reinforced aluminium matrix composites—a review. Int J Mech Mat Eng. 2014;9:1–16.
  • Gao X, Yue H, Guo E, et al. Preparation and tribological properties of homogeneously dispersed graphene-reinforced aluminium matrix composites. Mater Sci Technol. 2018;34:1316–1322.
  • Raj RR, Yoganandh J, Saravanan MSS, et al. Effect of graphene addition on the mechanical characteristics of AA7075 aluminium nanocomposites. Carbon Lett. 2020. DOI:10.1007/s42823-020-00157-7
  • Khun NW. Scratch-induced wear behavior of aluminum alloy under dry and wet conditions. J Mechatron. 2015;3:1–6.
  • Bajakke PA, Malik VR, Jambagi SC, et al. Corrosion behavior of novel AA1050/ZnO surface composite: a potential material for ship hull. Mater Lett. 2020;281:128602.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.