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Metallurgical Investigation on Embrittlement of Copper Cable of an Electric Motor

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Abstract

Copper wires used in the cable of an electric motor were found to be embrittled after a burn up. A metallurgical investigation (microstructural examination, fractography and microhardness measurement) was done to find out the root cause of the embrittlement. The microstructure of the embrittled wire showed cavities and cracks along the grain boundaries. The fracture surface was also completely intergranular. It was concluded that the embrittlement of the copper wire was caused by hydrogen present in the moist atmosphere diffusing in copper wire and reacting with oxygen at the grain boundaries to form water vapor bubbles. The water vapor bubbles at elevated temperatures (above 400 °C) during burn up of the motor generated pressures high enough to cause cracking along the grain boundaries leading to embrittlement of the copper wires.

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References

  1. J.R. Davis, Davis & Associates (eds.), ASM Specialty Handbook: Copper and Copper Alloys (ASM International Materials Park, Russell Township, 2001), pp. 3–34

    Google Scholar 

  2. ASTM B152, 152 M-13, Standard Specification for Copper Sheet, Strip, Plate, and Rolled Bar (ASTM International, West Conshohocken, 2013)

    Google Scholar 

  3. Devdutt Singh, Vivek Mittal, Subodh Rana, Estimation/assessment of oxygen content in copper by metallographic method. Int. Res. J. Eng. Technol. (IRJET) 5, 881–887 (2018)

    Google Scholar 

  4. A. Matting, R. Ziegler, Brittleness in copper and copper alloys with particular reference to hydrogen embrittlement, Failure analysis, The British Engine Technical Reports, ASM (1981)

  5. E. Mattsson, Corrosion of copper and brass: practical experience and basic data. Br. Corros. J. 15, 6–13 (1980)

    Article  Google Scholar 

  6. E. Mattsson, F. Schueckher, An investigation of hydrogen embrittlement in copper. J. Inst. Metals 87, 241–247 (1959)

    Google Scholar 

  7. S. Harper, V.A. Callcut, D.W. Townsend, R. Eborall, The embrittlement of tough-pitch copper in hydrogen-cooled electrical generators. J. Inst. Metals 90, 414–423 (1962)

    Google Scholar 

  8. S. Harper, V.A. Callcut, D.W. Townsend, R. Eborall, The embrittlement of tough-pitch copper during annealing or preheating. J. Inst. Metals 90, 423–429 (1962)

    Google Scholar 

  9. T.G. Nieh, W.D. Nix, Embrittlement of copper due to segregation of oxygen to grain boundaries. Metall. Trans. 12A, 893–901 (1981)

    Article  Google Scholar 

  10. L. Kosec, V. Gontarev, B. Kosec, Embrittlement of copper wire due to oxygen. Kovine zlitine technologije 27, 323–328 (1993)

    Google Scholar 

  11. D.E.J. Talbot, Effects of hydrogen in aluminium, magnesium, copper, and their alloys. Int. Mater. Rev. 20, 166–184 (1975)

    Article  Google Scholar 

  12. ASTM B577–16, Standard Test Methods for Detection of Cuprous Oxide (Hydrogen Embrittlement Susceptibility) in Copper (ASTM International, West Conshohocken, 2016)

    Google Scholar 

Download references

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Chandra, K., Mahanti, A., Singh, A.P. et al. Metallurgical Investigation on Embrittlement of Copper Cable of an Electric Motor. J Fail. Anal. and Preven. 19, 598–603 (2019). https://doi.org/10.1007/s11668-019-00676-0

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  • DOI: https://doi.org/10.1007/s11668-019-00676-0

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