Waste Food Cans Waste Bamboo Wood Based AA8079/SS304/Bamboo Wood Ash Hybrid Nanocomposite for Food Packaging

Article Preview

Abstract:

Nowadays life style practices demand more packed foods in the market around the world. In this trend increases the demand for researches on developing new packaging materials. In this research focuses novel AA8079/ SS304/ Wood ash hybrid nanocomposites development for meeting packaging related applications. The materials like aluminum alloy AA8079 (matrix material) obtained from waste food cans, Nanoparticles of stainless steel SS304 and Nanoparticles of Wood ash which obtained from waste bamboo woods were utilized to compose through stir casting process. Two set of Six different novel AA8079/ SS304/ Wood ash hybrid nanocomposites by varying the reinforcement from 0 wt.% to 10 wt.% with the step of 2 wt.% in the AA8079 matrix. The prepared composites included for examinations to test their Ultimate Tensile strength, yield strength, percentage of elongation, shear strength and hardness properties. Apart from this, the effect of heat treatment and annealing on strength of developed novel AA8079/ SS304/ Wood ash hybrid nanocomposites were investigated.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

69-78

Citation:

Online since:

August 2022

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2022 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] B.Ashok Kumar and N. Murugan, Metallurgical and mechanical characterization of stir cast AA6061-T6-AlNp composite Materials and Design, vol. 40 page. 52-58, (2012).

DOI: 10.1016/j.matdes.2012.03.038

Google Scholar

[2] V. Mohanavel, K.Rajan, M.Ravichandran, Synthesis, characterization and properties of stir cast AA6351-aluminium nitride (AlN) composites. Journal of Materials Research, 31(24), 3824-3831, 2018,.

DOI: 10.1557/jmr.2016.460

Google Scholar

[3] V. Mohanavel, and M. Ravichandran. Influence of AlN particles on microstructure, mechanical and tribological behaviour in AA6351 aluminum alloy., Materials Research Express vol. 6. Issue. 10, 106557, (2019).

DOI: 10.1088/2053-1591/ab39b0

Google Scholar

[4] N. Radhika, and R. Raghu, Abrasive wear behaviour of monolithic alloy, homogeneous and functionally graded aluminium (LM25/AlN and LM25/SiO2) composites, Particulate Science and Technology, vol. 37, page. 10–20, (2019).

DOI: 10.1080/02726351.2016.1199074

Google Scholar

[5] E. Gallo, B. Schartel, D. Acierno, F. Cimino, P. Russo, Tailoring the flame retardant and mechanical performances of natural fiber-reinforced biopolymer by multi-component laminate, Compos. Part B Eng., 44 (1) (2013), pp.112-119.

DOI: 10.1016/j.compositesb.2012.07.005

Google Scholar

[6] Lu, Keyang, White, Robert H., Fu, Feng, Hou, Junfeng, Zhang, Yisheng, Gribbins, Neil and Cai, Zhiyong. Reinforced hybrid wood-aluminum composites with excellent fire performance, Holzforschung, vol. 69, no. 8, 2015, pp.1027-1037. https://doi.org/10.1515/hf-2014-0099.

DOI: 10.1515/hf-2014-0099

Google Scholar

[7] Xiaobin Song, Frank Lam, Stability analysis of metal-plate-connected wood truss assemblies, Journal of Structural Engineering 138 (9) (2012), pp.1110-1119.

DOI: 10.1061/(asce)st.1943-541x.0000502

Google Scholar

[8] Peter Omoniyi, Adebayo Adekunle, SegunIbitoye, OlalekanOlorunpomi, OlatunjiAbolusoro, Mechanical and microstructural evaluation of aluminium matrix composite reinforced with wood particles, Journal of King Saud University - Engineering Sciences, 2021, https://doi.org/10.1016/j.jksues.2021.01.006.

DOI: 10.1016/j.jksues.2021.01.006

Google Scholar

[9] K. Lu, F. Fu, H. Sun, Y. Fu Bonding technology of electromagnetic shielding plywood laminated with conductive sheets Wood Research, 58 (3), (2013), 465-474.

Google Scholar

[10] S. Schnabl, I. Planinc, G. Turk, S. Srpčič, Fire analysis of timber composite beams with interlayer slip, Fire Safety J., 44 (5) (2009), pp.770-778.

DOI: 10.1016/j.firesaf.2009.03.007

Google Scholar

[11] Xiaobin Song, Frank Lam, Stability analysis of metal-plate-connected wood truss assemblies, J. Struct. Eng., 138 (9) (2012), pp.1110-1119.

DOI: 10.1061/(asce)st.1943-541x.0000502

Google Scholar

[12] Fajdiga G, Šubic B, Kovačič A. Bending Stiffness of Hybrid Wood-Metal Composite Beams: An Experimentally Validated Numerical Model. Forests. 2021; 12(7):918. https://doi.org/10.3390/f12070918.

DOI: 10.3390/f12070918

Google Scholar

[13] Seong-Sik Han, HyeonjinEom, Minsu Lee, Tai Hong Yim, Heung-Kyu Kim, Design of wood-like metallic material using metal sheet architecture, Journal of Computational Design and Engineering, Volume 8, Issue 5, October 2021, Pages 1290–1306, https://doi.org/10.1093/jcde/qwab048.

DOI: 10.1093/jcde/qwab048

Google Scholar

[14] V.Mohanavel, M.Ravichandran, S.Suresh Kumar, M.Melwin Jagadeesh Sridhar, S.Dinesh kumar, M.M. Pavithra Microstructural and Tribological Characterization of Al/EGG Shell Ash Composites Prepared by Liquid Metallurgy Process,, Journal of the Balkan Tribological Association, vol 26, no 2, pp:319-326, (2020).

Google Scholar

[15] Mohanavel, V., Ravichandran, M., Sathish, T., Kumar, S. S., Ravikumar, M., Mahendiran, S., & Nathan, L. Y. (2019). Tribological and mechanical behaviour of composites fabricated via compo casting, stir casting and situ casting–an overview. Journal of Balkan Tribological Association, 25, 342-352.

DOI: 10.1108/ilt-11-2020-0392/v2/review1

Google Scholar

[16] A. Baradeswaran and A. ElayaPerumal, 'Study on mechanical and wear properties of Al 7075/Al2O3/graphite hybrid composites, Composites Part B: Engineering, Volume 56, 2014, Pages 464-471, https://doi.org/10.1016/j.compositesb.2013.08.013.

DOI: 10.1016/j.compositesb.2013.08.013

Google Scholar

[17] V. S. Aigbodion 'Bean pod ash nanoparticles a promising reinforcement for aluminium matrix bio composites, Journal of Materials Research and Technology, Volume 8, Issue 6, November–December 2019, Pages 6011-6020.

DOI: 10.1016/j.jmrt.2019.09.075

Google Scholar

[18] M Tayyebi& B Eghbali (2012) Processing of Al/304 stainless steel composite by roll bonding, Materials Science and Technology, 28:12, 1414-1419,.

DOI: 10.1179/1743284712y.0000000091

Google Scholar