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함정용 패키지 에어콘 응축기 핀튜브(Cu-Ni 70/30) 누설파괴 원인 분석

Failure Analysis of Condenser Fin Tubes of Package Type Air Conditioner for Navy Vessel

  • 박형훈 (국방기술품질원 부산센터) ;
  • 황양진 (재료연구소 표면기술연구본부) ;
  • 이규환 (재료연구소 표면기술연구본부)
  • Park, Hyoung Hun (Busan Center, Defense Agency for Technology and Quality) ;
  • Hwang, Yang Jin (Surface Technology Division, Korea Institute of Materials Science Changwon) ;
  • Lee, Kyu Hwan (Surface Technology Division, Korea Institute of Materials Science Changwon)
  • 투고 : 2016.10.11
  • 심사 : 2016.10.29
  • 발행 : 2016.10.31

초록

In 2015, a fin tube (Cu-Ni 70/30 alloy) of package type heat exchanger for navy vessel was perforated through the wall which led to refrigerant leakage. This failure occurred after only one year since its installation. In this study, cause of the failure was determined based on available documents, metallographic studies and computational fluid dynamics simulation conducted on this fin tube. The results showed that dimensional gap between inserted plastic tube and inside wall of fin tube is the cause of the swirling turbulent stream of sea water. As a result of combination of swirling turbulence and continuing collision of hard solid particles in sea water, erosion corrosion has begun at the end of inserted plastic tube area. Crevice corrosion followed later in the crevice between the outer wall of plastic tube and inner wall of fin tube. It was found that other remaining tubes also showed the same corrosion phenomena. Thorough inspection and prompt replacement will have to be accomplished for the fin tubes of the same model heat exchanger.

키워드

참고문헌

  1. DNV Guidlines for Erosion ans Corrosion in Piping Systems for Sea Water, No. 15, (2004).
  2. A Master's guide to Ship's Piping 2nd Ed. The Standard P&I Club and RINA, (2012).
  3. A Tuthill, Guidelines for the Use of Copper Alloys in Seawater, NiDI Publication, (1988) 12003.
  4. K. D. Efird, Materials Performance, November (1975) 37.
  5. F. J Kievits and F.P. Ijsseling, Werkstoffe und Korrosion, Vol. 23, No. 12 (1972) 1084. https://doi.org/10.1002/maco.19720231203
  6. German Standard, WL 2.1972: 1996-08 (1996).
  7. British standard: BSMA 18, Salt Water Piping Systems in Ships, August (1973).
  8. Schleich, W., Application of copper-nickel alloy UNS C 70600 for seawater service, Houston, Texas: NACE. Paper No. 05222, Corrosion/2005 (2005).
  9. M. S. Parvizi et al, International Materials Reviews, Vol. 33 No. 4 (1988) 169. https://doi.org/10.1179/imr.1988.33.1.169
  10. A. M. Beccaria, J. Crousier, Influence of iron addition on corrosion layer built up on 70Cu-30Ni alloy in sea water, Br. Corros. J., 26 (1991) 5.
  11. S. A. Campbell, G. J. W. Radford, C. D. S. Tuck, B.D. Barker, Corrosion and galvanic compatibility studies of a high-strength copper-nickel alloy, Corrosion, 58 (2002) 57-71. https://doi.org/10.5006/1.3277305
  12. X Qing, FAN Lin, GUO Weimin, Galvanic Corrosion of 70-30 Copper-Nickel Alloy in Contact with Nickel-Aluminum Bronze in Simulated Deep Sea Environment. Advanced Materials Research, 1095 (2014) 124-129.
  13. Malik, A. and Kutty, P. C. M. Corrosion and material selection in desalination plants. Proc. SWCC operation and maintenance conference, (1992) 304-336.
  14. D. Efird, Potential-pH diagrams for 90-10 and 70-30 Cu-Ni in sea water, Corrosion, 31 (1975) 77-83. https://doi.org/10.5006/0010-9312-31.3.77
  15. Schleich, W. Typical failures of Cu Ni 90/10 seawater tubing systems and how to avoid them, France: NICE. Paper No. 12-0-124, Eurocorr 2004 (2004).
  16. A. Usman, A.N. Khan, Failure analysis of heat exchanger tubes, Eng. Fail. Anal., 15 (2008), pp. 118-128 https://doi.org/10.1016/j.engfailanal.2006.11.051
  17. A. L. Ma, S. L. Jiang, Y. G. Zheng, Corrosion product film formed on the 90/10 copper-nickel tube in natural seawater: Composition/structure and formation mechanism, Corrosion Science, 91 (2015) 245-261. https://doi.org/10.1016/j.corsci.2014.11.028
  18. P. Beilli, S-K O and and H-R Lee, Corrosion Property Evaluation of Copper Alloy Tubes against Sea Water, Kor. Inst. Surf. Eng., 42 (2009) 280-286. https://doi.org/10.5695/JKISE.2009.42.6.280
  19. R. F. North, M. J. Pryor, The influence of corrosion product structure on the corrosion rate of Cu-Ni alloys, Corros. Sci., 10 (1970) 297-311. https://doi.org/10.1016/S0010-938X(70)80022-1