341
Views
4
CrossRef citations to date
0
Altmetric
Research Article

Effect of thermal conductivity on micro-arc oxidation coatings

, , &
Pages 44-53 | Received 23 Sep 2021, Accepted 04 Jan 2022, Published online: 17 Jan 2022

References

  • Xue WB, Deng ZW, Chen RY, et al. Growth regularity of ceramic coatings formed by microarc oxidation on Al-Cu-Mg alloy. Thin Solid Films. 2000;372(1–2):114–117.
  • Clyne TW, Troughton SC. A review of recent work on discharge characteristics during plasma electrolytic oxidation of various metals. Int Mater Rev. 2019;64(3):127–162.
  • Liu YF, Liskiewicz T, Yerokhin AL, et al. Fretting wear behavior of duplex PEO/chameleon coating on Al alloy. Surf Coat Technol. 2018;352:238–246.
  • Narayanan TSN S, Park IS, Lee MH. Strategies to improve the corrosion resistance of microarc oxidation (MAO) coated magnesium alloys for degradable implants: prospects and challenges. Prog Mater Sci. 2014;60:1–71.
  • Haghighat-Shishavan B, Azari-Khosrowshahi R, Haghighat-Shishavan S, et al. Improving wear and corrosion properties of alumina coating on AA7075 aluminum by plasma electrolytic oxidation: effects of graphite absorption. Appl Surf Sci. 2019;481:108–119.
  • Huang P, Wang F, Xu KW, et al. Mechanical properties of titania prepared by plasma electrolytic oxidation at different voltages. Surf Coat Technol. 2007;201(9–11):5168–5171.
  • Srinivasan PB, Liang J, Blawert C, et al. Effect of current density on the microstructure and corrosion behaviour of plasma electrolytic oxidation treated AM50 magnesium alloy. Appl Surf Sci. 2009;255(7):4212–4218.
  • Fattah-Alhosseini A, Keshavarz MK, Molaei M, et al. Plasma electrolytic oxidation (PEO) process on commercially pure Ti surface: effects of electrolyte on the microstructure and corrosion behavior of coatings. Metall Mater Trans A. 2018;49A(10):4966–4979.
  • Krishna LR, Somaraju KRC, Sundararajan G. The tribological performance of ultra-hard ceramic composite coatings obtained through microarc oxidation. Surf Coat Technol. 2003;163:484–490.
  • Ao N, Liu DX, Zhang XH, et al. Enhanced fatigue performance of modified plasma electrolytic oxidation coated Ti-6Al-4V alloy: effect of residual stress and gradient nanostructure. Appl Surf Sci. 2019;489:595–607.
  • Winter L, Hockauf K, Lampke T. High cycle fatigue behavior of the severely plastically deformed 6082 aluminum alloy with an anodic and plasma electrolytic oxide coating. Surf Coat Technol. 2018;349:576–583.
  • Lonyuk B, Apachitei I, Duszczyk J. The effect of oxide coatings on fatigue properties of 7475-T6 aluminium alloy. Surf Coat Technol. 2007;201(21):8688–8694.
  • Javidi M, Fadaee H. Plasma electrolytic oxidation of 2024-T3 aluminum alloy and investigation on microstructure and wear behavior. Appl Surf Sci. 2013;286:212–219.
  • Li QB, Liang J, Liu BX, et al. Effects of cathodic voltages on structure and wear resistance of plasma electrolytic oxidation coatings formed on aluminium alloy. Appl Surf Sci. 2014;297:176–181.
  • Dehnavi V, Shoesmith DW, Luan BL, et al. Corrosion properties of plasma electrolytic oxidation coatings on an aluminium alloy – The effect of the PEO process stage. Mater Chem Phys. 2015;161:49–58.
  • Shi P, Ng WF, Wong MH, et al. Improvement of corrosion resistance of pure magnesium in Hanks’ solution by microarc oxidation with sol-gel TiO2 sealing. J Alloys Compd. 2009;469(1–2):286–292.
  • Cui XJ, Liu CH, Yang RS, et al. Self-sealing micro-arc oxidation coating on AZ91D Mg alloy and its formation mechanism. Surf Coat Technol. 2015;269:228–237.
  • Chu CL, Han X, Xue F, et al. Effects of sealing treatment on corrosion resistance and degradation behavior of micro-arc oxidized magnesium alloy wires. Appl Surf Sci. 2013;271:271–275.
  • Yang HH, Wang XS, Wang YM, et al. Microarc oxidation coating combined with surface pore-sealing treatment enhances corrosion fatigue performance of 7075-T7351 Al alloy in different media. Materials (Basel). 2017;10(6).
  • Asquith DT, Yerokhin AL, Yates JR, et al. Effect of combined shot-peening and PEO treatment on fatigue life of 2024 Al alloy. Thin Solid Films. 2006;515(3):1187–1191.
  • Ye ZY, Liu DX, Zhang XH, et al. Influence of combined shot peening and PEO treatment on corrosion fatigue behavior of 7A85 aluminum alloy. Appl Surf Sci. 2019;486:72–79.
  • Madhavi Y, Krishna LR, Narasaiah N. Influence of micro arc oxidation coating thickness and prior shot peening on the fatigue behavior of 6061-T6 Al alloy. Int J Fatigue. 2019;126:297–305.
  • Dai WB, Liu ZH, Li CY, et al. Fatigue life of micro-arc oxidation coated AA2024-T3 and AA7075-T6 alloys. Int J Fatigue. 2019;124:493–502.
  • Dai WB, Li CY, Zhang C, et al. Effect of Cu on microarc oxidation coated Al-xCu alloys. Surf Eng. 2021;37(9):1098–1109.
  • Zhu LY, Zhang W, Zhang T, et al. Effect of the Cu content on the microstructure and corrosion behavior of PEO coatings on Al-xCu alloys. J Electrochem Soc. 2018;165(9):C469–C483.
  • Oh YJ, Mun JI, Kim JH. Effects of alloying elements on microstructure and protective properties of Al2O3 coatings formed on aluminum alloy substrates by plasma electrolysis. Surf Coat Technol. 2009;204(1-2):141–148.
  • Tarakci M. Plasma electrolytic oxidation coating of synthetic Al-Mg binary alloys. Mater Charact. 2011;62(12):1214–1221.
  • Liu YZ, Zheng BC, Jian YX, et al. Anisotropic in elasticity, sound velocity and minimum thermal conductivity of Al-Cu intermetallic compounds. Intermetallics. 2020;124.
  • Wu JH, Zhang HL, Zhang Y, et al. Effect of copper content on the thermal conductivity and thermal expansion of Al-Cu/diamond composites. Mater Design. 2012;39:87–92.
  • Aksoz S, Ocak Y, Marasli N, et al. Dependency of the thermal and electrical conductivity on the temperature and composition of Cu in the Al based Al-Cu alloys. Exp Therm Fluid Sci. 2010;34(8):1507–1516.
  • Vandersluis E, Lombardi A, Ravindran C, et al. Factors influencing thermal conductivity and mechanical properties in 319 Al alloy cylinder heads. Mat Sci Eng A-Struct. 2015;648:401–411.
  • Kerdsongpanya S, Hellman O, Sun B, et al. Phonon thermal conductivity of scandium nitride for thermoelectrics from first-principles calculations and thin-film growth. Phys Rev B. 2017;96(19).
  • Langenberg E, Ferreiro-Vila E, Leboran V, et al. Analysis of the temperature dependence of the thermal conductivity of insulating single crystal oxides. APL Mater. 2016;4(10).
  • Curran JA, Clyne TW. The thermal conductivity of plasma electrolytic oxide coatings on aluminium and magnesium. Surf Coat Technol. 2005;199(2–3):177–183.
  • Callister WD, Rethwisch DG. Materials science and engineering: an introduction. 8th ed. New York (NY): Wiley; 2010.
  • Khan RHU, Yerokhin AL, Li X, et al. Surface characterisation of DC plasma electrolytic oxidation treated 6082 aluminium alloy: effect of current density and electrolyte concentration. Surf Coat Technol. 2010;205(6):1679–1688.
  • Yang L, Sun L, Bai WW, et al. Thermal conductivity of Cu-Ti/diamond composites via spark plasma sintering. Diam Relat Mater. 2019;94:37–42.
  • Xiao DH, Wang JN, Ding DY, et al. Effect of Cu content on the mechanical properties of an Al-Cu-Mg-Ag alloy. J Alloys Compd. 2002;343(1–2):77–81.
  • Chen JK, Hung HY, Wang CF, et al. Thermal and electrical conductivity in Al-Si/Cu/Fe/Mg binary and ternary Al alloys. J Mater Sci. 2015;50(16):5630–5639.
  • Dai WB, Hao J, Li CY, et al. Residual stress relaxation and duty cycle on high cycle fatigue life of micro-arc oxidation coated AA7075-T6 alloy. Int J Fatigue. 2020;130.
  • Curran JA, Clyne TW. Thermo-physical properties of plasma electrolytic oxide coatings on aluminium. Surf Coat Technol. 2005;199(2-3):168–176.
  • Dean J, Gu T, Clyne TW. Evaluation of residual stress levels in plasma electrolytic oxidation coatings using a curvature method. Surf Coat Technol. 2015;269:47–53.
  • Yang GL, Lu XY, Bai YZ, et al. The effects of current density on the phase composition and microstructure properties of micro-arc oxidation coating. J Alloys Compd. 2002;345(1-2):196–200.
  • Wang DD, Liu XT, Wang Y, et al. Role of the electrolyte composition in establishing plasma discharges and coating growth process during a micro-arc oxidation. Surf Coat Technol. 2020;402.
  • Yerokhin AL, Nie X, Leyland A, et al. Plasma electrolysis for surface engineering. Surf Coat Technol. 1999;122(2-3):73–93.
  • Hussein RO, Nie X, Northwood DO. An investigation of ceramic coating growth mechanisms in plasma electrolytic oxidation (PEO) processing. Electrochim Acta. 2013;112:111–119.
  • Miera MS, Curioni M, Skeldon P, et al. The behaviour of second phase particles during anodizing of aluminium alloys. Corros Sci. 2010;52(7):2489–2497.
  • Wang SX, Liu XH, Yin XL, et al. Influence of electrolyte components on the microstructure and growth mechanism of plasma electrolytic oxidation coatings on 1060 aluminum alloy. Surf Coat Technol. 2020;381.
  • Wang CZ, Zhang D, Jiang YF. Growth process and wear resistance for ceramic coatings formed on Al-Cu-Mg alloy by micro-arc oxidation. Appl Surf Sci. 2006;253(2):674–678.
  • Nagumothu RB, Thangavelu A, Nair AM, et al. Development of black corrosion-resistant ceramic oxide coatings on AA7075 by plasma electrolytic oxidation. T Indian I Metals. 2019;72(1):47–53.
  • Wu T, Blawert C, Zheludkevich ML. Influence of secondary phases of AlSi9Cu3 alloy on the plasma electrolytic oxidation coating formation process. J Mater Sci Technol. 2020;50:75–85.
  • Dehnavi V, Liu XY, Luan BL, et al. Phase transformation in plasma electrolytic oxidation coatings on 6061 aluminum alloy. Surf Coat Technol. 2014;251:106–114.
  • Martin J, Nomine A, Ntomprougkidis V, et al. Formation of a metastable nanostructured mullite during plasma electrolytic oxidation of aluminium in ‘soft’ regime condition. Mater Design. 2019;180.
  • Dai WB, Li CY, He D, et al. Mechanism of residual stress and surface roughness of substrate on fatigue behavior of micro-arc oxidation coated AA7075-T6 alloy. Surf Coat Technol. 2019;380.
  • Tillous K, Toll-Duchanoy T, Bauer-Grosse E, et al. Microstructure and phase composition of microarc oxidation surface layers formed on aluminium and its alloys 2214-T6 and 7050-T74. Surf Coat Technol. 2009;203(19):2969–2973.
  • Shen DJ, Wang YL, Nash P, et al. Microstructure, temperature estimation and thermal shock resistance of PEO ceramic coatings on aluminum. J Mater Pro Technol. 2008;205(1–3):477–481.

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.