Assessment of Atmospheric Corrosivity at Jeju Island

제주도 대기환경의 부식성 평가

  • KIM GUI-SHIK (Faculty of Mechanical, Energy and Production Eng, Cheju Nat'l Univ.) ;
  • YANG KYEONG-CHO (Department of Mechanical Eng, Graduate School, Cheju Nat'l Univ.) ;
  • HU CHUL-GOO (Department of Civil and Environmental Eng, Cheju Nat'l Univ.) ;
  • SONG JEONG-HWA (Department of Environmental Eng, Graduate School, Cheju Nat'l Univ Jeju)
  • 김귀식 (제주대학교 기계에너지생산공학부) ;
  • 양경조 (제주대학교 기계공학과 대학원) ;
  • 허철구 (제주대학교 해양과학부 토목환경공학) ;
  • 송정화 (제주대학교 환경공학과 대학원)
  • Published : 2005.10.01

Abstract

This study has been conducted to investigate corrosivity of carbon steel, Cu, Zn and Al for one year from Sept. 2003 to Aug. 2004. A model of ISO 9223-ISO 9226 that represents the relation between metal corrosions and environmental parameters was used for atmospheric corrosion evaluations. Environmental parameters for these evaluations are time of wetness(TOW), $SO_2$ and Chloride. Corrosion rates for four metals which are exposed indoors and outdoors were measured on five locations in Jeju Island; Gosan, Seogwipo, Seongsan, Chuna hill and Jeju city. The environmental factor of atmospheric corrosion of Jeju Island for $SO_2$ class is P0, a clean area. TOW as T3 and T4 indicates that Jeju has the characteristics of a tropical area. Chlorides class within 3 km from the coast show the features of costal area as S2 and S3 classes. Chuna hill show the features of woodland as a S1 class. In Corrosion classes of each site which was measured outdoors is higher than indoors. Gosan is the highest class as the rank of C5, and indicated that they're ranked as C3 or C4.

Keywords

References

  1. 한국가스공사 연구개발원 (2000). '강구조물의 부식감시 및 방지기술 개발', 과학기술부 연구보고서, III-1-III-107
  2. Dean, S.W. (1987). 'Atmospheric Corrosion after 80 Year of Study', Materials Performance, Vol 26, No 7, pp 9-11
  3. ISO 9223, 1992, Corrosion of Metals and Alloys-Oassification of corrosivity of ahnospheres
  4. ISO 9224, 1992, Corrosion of Metals and AlloysAtmospheric corrosion. Guiding values for the corrosivity categories of atmospheres
  5. ISO 9225, 1992, Corrosion of Metals Atmospheric corrosion. Aggressivity of atmoshperes-methods of measurement of pollution data
  6. ISO 9226, 1992, Corrosion of Metals and Alloys-Atmospheric corrosion. Corrosivity of ahnospheresmethods of determination of corrosion rate of standard specimens for the evaluation of corrosivity
  7. Oh. S.J, Cook. N.C.. and Townsend, H.E. (1999). 'Atmospheric corrosion of different steels in marine, rural and industrial environments', Corrosion Science, Vol 41, pp 1687-1702 https://doi.org/10.1016/S0010-938X(99)00005-0
  8. Qu,Q. et al. (2002). 'Effects of NaCl and $SO_2$ on the initial atmospheric corrosion of zinc', Corrosion Science, Vol 44, pp 2789-2803 https://doi.org/10.1016/S0010-938X(02)00076-8
  9. Vera, R., Rosales.B.M and Tapia.C., (2003), 'Effect of the exposure angle in the corrosion rate of plain carbon steel in a marine atmosphere', Corrosion Science, Vo 145, pp 321-337 https://doi.org/10.1016/S0010-938X(02)00071-9
  10. Vilche, J.R. et.al, (1997). 'A survey of Argentinean atmospheric corrosion: 2-Copper samples', Corrosion Science, Vol 39, No 4, pp 655-679 https://doi.org/10.1016/S0010-938X(96)00150-3