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Research Article

Effect of preheating on the mechanical and high temperature tribological behaviour of reusing marble dust with aluminium composite

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Pages 206-220 | Accepted 12 Jun 2022, Published online: 06 Jul 2022

References

  • Dinaharan AE. Low cost metal matrix composites based on aluminum, magnesium and copper reinforced with fly ash prepared using friction stir processing. Compos Commun. 2018;9:22–26.
  • Kumar H, Prasad R, Srivastava A, et al. Utilisation of industrial waste (Fly ash) in synthesis of copper-based surface composite through friction stir processing route for wear applications. J Clean Prod. 2018;196:460–468.
  • Apasi YDS, Abdulkwereem S, Kolawole MY. Improving mechanical properties of aluminium alloy through addition of coconut shell-ash. J Sci Technol. 2016;36:34–43.
  • Aruntaş HY, Gürü M, Dayi M, et al. Utilization of waste marble dust as an additive in cement production. Mater Des. 2010;31:4039–4042.
  • Bilgin N, Yeprem HA, Arslan S, et al. Use of waste marble powder in brick industry. Constr Build Mater. 2012;29:449–457.
  • Sharma VK, Chaudhary S, Sonia V, et al. Reusing marble dust as reinforcement material for better mechanical performance: studies on compositing aluminum matrix. Mater Res Express. 2020;6:1265f6.
  • Gangwar S, Patnaik A, Yadav PC, et al. Development and properties evaluation of marble dust reinforced ZA-27 alloy composites for ball bearing application. Mater Res Express. 2019;6doi::10.1088/2053–1591/ab1362.
  • Kumar RN, Saravanan R, Sellamuthu R. Effect of marble dust on microstructure and mechanical properties of Al-Cu-Ni/marble dust particles composite. Int J Pure Appl Math. 2018;118:1–12.
  • Craddock PT. The composition of the copper alloys used by the Greek, Etruscan and roman civilizations: 3. The origins and early use of brass. J Archaeol Sci. 1978;5:1–16.
  • Zronik J. Meta Shaping our World 10 (Crabtree Publishing Company) . 2005;32.
  • Heidarzadeh PH, Mahdavi S, Jandaghi M. Ceramic nanoparticles addition in pure copper plate: FSP approach, microstructure evolution and texture study using EBSD. Ceram Int. 2018;44:3128–3133.
  • Singh L, Singh B, Saxena KK. Manufacturing techniques for metal matrix composites (MMC): an overview. Adv Mater Process Technol. 2020;6(2):441–457.
  • Thankachan PK. Microstructural, mechanical and tribological behavior of aluminum nitride reinforced copper surface composites fabricated through friction stir processing route. Mater Sci Eng A. 2017;688:301–308.
  • Heidarpour MY, Roknian M, Ghasemi S. Development of Cu-TiO2 surface nanocomposite by friction stir processing: effect of pass number on microstructure, mechanical properties, tribological and corrosion behavior. J Alloys Compd. 2019;783:886–897.
  • Yuvaraj N, Aravindan S. Fabrication of Al5083/ B4C surface composite by friction stir processing and its tribological characterization. J Mater Res Technol. 2015;4:398–410.
  • Khiyavi BA, Aghchai AJ, Arbabtafti M, et al. Effect of friction stir processing on mechanical properties of surface composite of Cu reinforced with Cr particles. Adv Mater Res. 2014;829:851–856.
  • Ke L, Huang C, Xing L, et al. Al-Ni intermetallic composites produced in situ by friction stir processing. J Alloys Compd. 2010;503:494–499.
  • Shigematsn KI, Saito N. Mechanical properties of the fine-grained aluminium alloy produced by friction stir process. Scripta Materials. 2003;49:783–789.
  • Qian J, Li J, Xiong J, et al. In situ synthesizing Ai3Ni for fabrication of intermetallic-reinforced aluminium alloy composites by friction stir processing. Mater Sci Eng A. 2012;550:279–285.
  • Shahi A, Sohi MH, Ahmadkhaniha D, et al. In situ formation of Al-Ai3Ni composites on commercially pure aluminium by friction stir processing. Int J Manuf Technol. 2014;75:1331–1337.
  • Xue P, Xiao BL, Ma ZY. Achieving large-area bulk ultrafine grained Cu via submerged multiple-pass friction stir processing. J Mater Sci Technol. 2013;29:1111–1115.
  • Sathiskumar R, Murugan N, Dinaharan I, et al. Characterization of boron carbide particulate reinforced in situ copper surface composites synthesized using friction stir processing. Mater Charact. 2013;84:6–27.
  • Ghazi JH. Production and properties of Silicon Carbide Particles Reinforcement Aluminium Alloy Composites. Int J Min, Metall Mech Eng. 2013;1:2320–4052.
  • Ali P, Walia RS, Murtaza Q, et al. Modeling and analysis of developed thermal additive centrifugal, abrasive flow machining process. Surf Topogr Metrol and Prop. 2020;8:035013.
  • Kumar B, Menghani JV. Aluminium-based metal matrix composites by stir casting: a literature review. Int J Mater Eng Innov. 2016;7:1–14.
  • Garg A, Bhattacharya A. Friction stir spot welding of AA6061-T6 and Cu with preheating: strength and failure behavior at different test temperatures. Int J Adv Manuf Technol. 2020;108:1613–1629.
  • Suresha S, Sridhara BK. Effect of silicon carbide particulates on wear resistance of graphitic aluminium matrix composites. Mater Des. 2010;31:4470–4477.
  • Elsayed A, Nofal A, Attia G. Optimization of stir casting process parameters for producing MMC Aluminum sacrificial anode incorporated with manganese dioxide concentrate powder Int. J of Engg Res Technol. 2020;13:2651–2659.
  • Karloopia J, Mozammil S, Jha PK, et al. The abrasive wear behavior of in situ processed aluminum alloy metal-matrix composites. In: Srivatsan TS, Rohatgi PK, Hunyadi Murph S, editors. Metal-matrix composites. the minerals, metals & materials series. 2022.
  • Karloopia J, Mozammil S, Jha PK. Influence of in situ titanium diboride particulate reinforcement on mechanical properties of aluminum–silicon based metal matrix composites. JOM. 2020;72;2927–2936.
  • Mozammil S, Karloopia J, Verma R, et al. Mechanical response of friction stir butt weld Al-4.5%Cu/TiB2/2.5p in situ composite: statistical modelling and optimization. J Alloys Compd. 2020;826:154184.
  • Mozammil S, Karloopia J, Jha PK, et al. Effect of heat treatment on mechanical properties of an aluminum alloy and aluminum alloy composite: a comparative study. In: Srivatsan TS, Harrigan WC Jr., Hunyadi Murph S, editors. Metal-matrix composites. the minerals, metals & materials series. Springer; 2021.
  • Dinaharan SS, Kalaiselvan K, Gopalakrishnan S. Microstructure and sliding wear characterization of Cu/TiB2 copper matrix composites fabricated via friction stir processing. J Asian Ceram Soc. 2017;5:295–303.
  • Tan YB, Wang XM, Ma M, et al. A study on microstructure and mechanical properties of AA 3003 aluminum alloy joints by underwater friction stir welding. Mater Charact. 2017;127:41–52.
  • Tailor S, Vashishtha N, Modi A, et al. High-Performance Al2O3 Coating by Hybrid-LVOF (Low-Velocity Oxyfuel). Process, J Therm Spray Tech. 2020;29:1134–1143.
  • Khodaverdizadeh H, Heidarzadeh A, Saeid T. Effect of tool pin profile on microstructure and mechanical properties of friction stir processing (FSP). Wear. 2013;304:1–12.
  • Sahlot P, Jha K, Dey G, et al. Quantitative wear analysis of H13 steel tool during friction stir welding of Cu-0.8%Cr-0.1%Zr alloy. Wear. 2017;378-379:82–89.

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