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Canadian Metallurgical Quarterly
The Canadian Journal of Metallurgy and Materials Science
Volume 63, 2024 - Issue 1
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Materials Processing, Characterization and Properties

Strengthening behaviour of forged in-situ developed magnesium composites

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Pages 1-11 | Received 01 Aug 2022, Accepted 03 Jan 2023, Published online: 12 Jan 2023

References

  • Mordike BL, Ebert T. Magnesium properties – applications – potential. Mater Sci Eng A. 2001;302:37–45.
  • Kumar A, Pandey PM. Statistical modelling of mechanical properties and bio-corrosion behaviour of Mg3Zn1Ca15Nb fabricated using microwave sintering. J Alloys Compd. 2021;854:156211.
  • Kumar A, Pandey PM. Development of Mg based biomaterial with improved mechanical and degradation properties using powder metallurgy. J Magnes Alloys. 2020;8:883–898.
  • Zhang J, Xie H, Lu Z, et al. Microstructure evolution and mechanical properties of AZ80 magnesium alloy during high-pass multi-directional forging. Results Phys. 2018;10:967–972.
  • Kumar S, Singh H, Gaur N, et al. Imparting increased corrosion passive and bio-active character to Al2O3 based ceramic coating on AZ91 alloy. Surf Coat Technol. 2020;383:125231.
  • Singh H, Pratap Singh Lodhi A, Verma T, et al. Tribological response of binary Mg-xZn (where X = 1, 3 and 6 wt%) alloys. Mater Today Proc. 2020: 1–5.
  • Singh J, Singh H, Batra U. Magnesium doped hydroxyapatite: synthesis, characterization and bioactivity evaluation. Biomater Sci Process Prop Appl V Ceram Trans. 2015;254:161–174.
  • Banerjee S, Sahoo P, Davim JP. Tribological characterisation of magnesium matrix nano-composites: a review. Adv Mech Eng. 2021;13:1–39.
  • Papenberg N, Gneiger S. Closed die forging of Mg-Al-Zn-Ca-Y alloys. Mater Sci Forum. 2018;918:28–33.
  • Carou D, Rubio EM, Davim JP. Analysis of ignition risk in intermittent turning of UNS M11917 magnesium alloy at low cutting speeds based on the chip morphology. Proc Inst Mech Eng B J Eng Manuf. 2015;229:365–371.
  • Carou D, Rubio E, Lauro C, et al. Experimental investigation on surface finish during intermittent turning of UNS M11917 magnesium alloy under dry and near dry machining conditions. Measurement (Mahwah N J). 2014;56:136–154.
  • Danish M, Ginta TL, Rani AMA, et al. Investigation of surface integrity induced on AZ31C magnesium alloy turned under cryogenic and dry conditions. Procedia Manuf. 2019;41:476–483.
  • Singh H, Kumar D, Singh H. Development of magnesium-based hybrid metal matrix composite through in situ micro, nano reinforcements. J Compos Mater. 2020;55:109–123.
  • Kumar S, Kumar D, Jain J, et al. Influence of load, sliding speed, and microstructure on wear response of AZ91 Mg alloy. Proc Inst Mech Eng J J Eng Tribol. 2016;230(12):1462–1469.
  • Singh H, Kumar D. Validation of novel geometrically necessary dislocations calculation model using nanoindentation of the metal matrix nanocomposite. Metall Mater Trans A. 2020;51A:6700–6705.
  • Gupta R, Chaudhari GP, Daniel BSS. Strengthening mechanisms in ultrasonically processed aluminium matrix composite with in-situ Al3Ti by salt addition. Compos B Eng. 2018;140:27–34.
  • Habibi MK, Joshi SP, Gupta M. Hierarchical magnesium nano-composites for enhanced mechanical response. Acta Mater. 2010;58:6104–6114.
  • Zhai W, Shi X, Yao J, et al. Investigation of mechanical and tribological behaviors of multilayer graphene reinforced Ni3Al matrix composites. Compos B Eng. 2015;70:149–155.
  • Chelliah NM, Singh H, Raj R, et al. Processing, microstructural evolution and strength properties of in-situ magnesium matrix composites containing nano-sized polymer derived SiCNO particles. Mater Sci Eng A. 2017;685:429–438.
  • Miyazaki N. Solid particle erosion of composite materials: a critical review. J Compos Mater. 2016;50(23):3175–3217. DOI:10.1177/0021998315617818
  • Rashad M, Pan F, Tang A, et al. Development of magnesium-graphene nanoplatelets composite. J Compos Mater. 2015;49:285–293.
  • Turan ME, Sun Y, Aydın F, et al. Influence of multi-wall carbon nanotube content on dry and corrosive wear performances of pure magnesium. J Compos Mater. 2018;52:3127–3135.
  • Davim JP, Gruyter D. Metal matrix composites; 1995. DOI:10.1037/003837
  • Shirvanimoghaddam K, Hamim SU, Karbalaei Akbari M, et al. Carbon fiber reinforced metal matrix composites: fabrication processes and properties. Compos A Appl Sci Manuf. 2017;92:70–96.
  • Antonova O V, Volkov AY, Komkova DA, et al. Microstructure and texture of pure magnesium after room-temperature lateral extrusion. Mater Sci Eng A. 2017;706:319–329.
  • Nie KB, Wang XJ, Hu XS, et al. Effect of multidirectional forging on microstructures and tensile properties of a particulate reinforced magnesium matrix composite. Mater Sci Eng A. 2011;528:7133–7139.
  • Zhang J, Peng P, Luo AA, et al. Dynamic precipitation and enhanced mechanical properties of ZK60 magnesium alloy achieved by low temperature extrusion. Mater Sci Eng A. 2022;829:142143.
  • Davim JP. Modern manufacturing engineering; 2015. Available from: http://link.springer.com/10.1007978-3-319-20152-8
  • Ghaffari Tari D, Worswick MJ, Winkler S. Experimental studies of deep drawing of AZ31B magnesium alloy sheet under various thermal conditions. J Mater Process Technol. 2013;213:1337–1347.
  • Suresh K, Rao KP, Prasad YVRK, et al. Study of hot forging behavior of as-cast Mg-3Al-1Zn-2Ca alloy towards optimization of its hot workability. Mater Des. 2014;57:697–704.
  • Stanford N. Micro-alloying Mg with Y, Ce, Gd and La for texture modification – a comparative study. Mater Sci Eng A. 2010;527:2669–2677.
  • Wei Q, Yuan L, Ma X, et al. Strengthening of low-cost rare earth magnesium alloy Mg-7Gd-2Y–1Zn-0.5Zr through multi-directional forging. Mater Sci Eng A. 2021;831:142144.
  • Zheng J, Chen Z, Yan Z, et al. An alternating ageing-annealing process for enhancing strength and ductility of a Mg-Gd-Y-Zn-Zr alloy. Mater Sci Eng A. 2021;828:142103.
  • Tekumalla S, Seetharaman S, Quy Bau N, et al. Influence of cerium on the deformation and corrosion of magnesium. J Eng Mater Technol. 2016;138:031011.
  • Mackenzie LWF, Pekguleryuz MO. The recrystallization and texture of magnesium-zinc-cerium alloys. Scr Mater. 2008;59:665–668.
  • Ball EA, Prangnell PB. Tensile-compressive yield asymmetries in high strength wrought magnesium alloys. Scr Metall Mater. 1994;31:111–116.
  • Ansari N, Sarvesha R, Lee SY, et al. Influence of yttrium addition on recrystallization, texture and mechanical properties of binary Mg–Y alloys. Mater Sci Eng A. 2020;793:139856.
  • Kujur MS, Manakari V, Parande G, et al. Enhancement of thermal, mechanical, ignition and damping response of magnesium using nano-ceria particles. Ceram Int. 2018;44:15035–15043.
  • Singh H, Kumar S, Kumar D. The role of in-situ ceramic reinforcements on microstructure evolution and mechanical properties on developed hybrid Mg-MMCs. Mater Sci Eng A. 2020;789:139577.
  • Ponappa K, Aravindan S, Rao PV. Influence of Y2O3 particles on mechanical properties of magnesium and magnesium alloy (AZ91D). J Compos Mater. 2013;47:1231–1239.
  • Bhingole PP, Chaudhari GP, Nath SK. Processing, microstructure and properties of ultrasonically processed in situ MgO-Al2O3-MgAl2O4 dispersed magnesium alloy composites. Compos A Appl Science Manuf. 2014;66:209–217.
  • Sahoo BN, Panigrahi SK. Synthesis, characterization and mechanical properties of in-situ (TiC-TiB2) reinforced magnesium matrix composite. Mater Des. 2016;109:300–313.
  • Kumar D, Gosvami NN, Jain J. Influence of crystallographic orientation on nanoscale friction and wear mechanisms of the AZ91 alloy. Tribol Lett. 2020;68:1–10.
  • Jain J. The deformation behaviour of a Mg-8Al-0.5Zn alloy; 2010.
  • Tong LB, Zheng MY, Kamado S, et al. Reducing the tension–compression yield asymmetry of extruded Mg–Zn–Ca alloy via equal channel angular pressing. Journal of Magnesium and Alloys. 2015;3:302–308.
  • Ansari N, Tran B, Poole WJ, et al. High temperature deformation behavior of Mg-5wt.%Y binary alloy: constitutive analysis and processing maps. Mater Sci Eng A. 2020;777:139051.
  • Chelliah NM, Singh H, Surappa MK. Microstructural evolution and strengthening behavior in in-situ magnesium matrix composites fabricated by solidification processing. Mater Chem Phys. 2017;194:65–76.
  • Clyne TW, Withers PJ. An introduction to metal matrix composite; 1993. DOI:10.1017/cbo9780511623080
  • Ganji RS, Sai Karthik P, Bhanu Sankara Rao K, et al. Strengthening mechanisms in equiatomic ultrafine grained AlCoCrCuFeNi high-entropy alloy studied by micro- and nanoindentation methods. Acta Mater. 2017;125:58–68.
  • Tahreen N, Zhang DF, Pan FS, et al. Strengthening mechanisms in magnesium alloys containing ternary I, W and LPSO phases. J Mater Sci Technol. 2018;34:1110–1118.
  • Queyreau S, Monnet G, Devincre B. Orowan strengthening and forest hardening superposition examined by dislocation dynamics simulations. Acta Mater. 2010;58:5586–5595.
  • Yu H, Xin Y, Wang M, et al. Hall-Petch relationship in Mg alloys: a review. J Mater Sci Technol. 2018;34:248–256.
  • Nardone VC, Prewo KM. On the strength of discontinuous silicon carbide reinforced aluminum composites. Scr Metall. 1986;20:43–48.

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