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노후 함정 강재의 기계적 특성 평가

Mechanical Properties Assessment of Steels Obtained from an Aged Naval Ship

  • 투고 : 2022.11.11
  • 심사 : 2023.01.30
  • 발행 : 2023.04.20

초록

Ships operated at sea for a long time are subjected to various kinds of loads, which may cause various types of damage. Such damages will eventually reduce the strength of hull structures. Therefore, it is necessary to estimate and evaluate the residual strength and remaining fatigue life of aging ships in order to secure structural safety, establish a reasonable maintenance plan, and make a judgment of life extension. For this purpose, the corrosion damage and local denting damage should be measured, fatigue damage estimation should be performed, and material properties of aged steel should be identified. For this study, in order to investigate the mechanical properties of aged steel, steel plates were obtained from a naval ship that reached the end of her life span. The specimens were manufactured from the obtained steel plates, and static and dynamic tensile tests, fatigue tests, and metallographic tests were performed. The mechanical properties obtained from the aged steel plates were compared with those of new steel plates to quantify the aging effect on the mechanical properties of marine steel materials.

키워드

과제정보

동인장시험을 수행해 주신 인하대학교 조선해양공학과 SOSEL 실험실, 피로시험을 수행해 주신 부경대학교 공동실험실습관 구조재료실험실, 그리고 금속조직시험을 수행해 주신 울산대학교 공동기기센터 재료분석부 관계자 여러분께 감사를 드립니다.

참고문헌

  1. American Society for Testing and Materials (ASTM), 2009. Designation: ASTM E 8/E 8M - 08 Standard test methods for tension testing of metallic materials. Annu B ASTM Stand.
  2. American Society for Testing and Materials (ASTM), 2016. ASTM E3 - 95: Standard Practice for Preparation of Metallographic Specimens, ASTM 82.
  3. British Standards Institution (BSI), 2014. Guide to fatigue design and assessment of steel products, BS 7608.
  4. Garbatov, Y., Guedes Soares, C. and Parunov, J., 2014, Fatigue strength experiments of corroded small scale steel specimens. International Journal of Fatigue, 59, pp.137-144. https://doi.org/10.1016/j.ijfatigue.2013.09.005
  5. Hobbacher, A., 2008. Recommendations for fatigue design of welded joints and components. IIW-1823-07.
  6. Korean Agency for Technology and Standards (KS), 2003, Method of tensile test for metallic materials, KS B 0802.
  7. Korean Agency for Technology and Standards (KS), 2007. The pieces for tension test for metallic materials), KS B 0801.
  8. Korean Agency for Technology and Standards (KS), 2021. Method of Repeated Tension Fatigue Testing for Fusion Welded Joints, KS B 0825.
  9. Korean Register (KR), 2021. Rules and guidance for the classification of steel ships.
  10. Mun, J.M., Jeong, Y.S., Jeon, J.H., Ahn, J.H. and Kim, I.T., 2017. Experimentally evaluating fatigue behavior of corroded steels exposed in atmospheric environments. Journal of Korean Society of Steel Construction, 29, pp.193-204. https://doi.org/10.7781/KJOSS.2017.29.3.193
  11. Thompson, I.M., 2019. Digital twinning of ship structural fatigue: state of the art review and strategic research agenda. Defence Research and Development Canada, DRDC-RDDC-2019-R099.
  12. Wang, G., Boon, B., Brennan, F.P., Garbatov, Y., Ji, C., Parunov, J., Rahman, T.A., Rizzo, C., Rouhan, A., Shin, C.H. and Yamamoto, N., 2009. Committee V.6 Condition assessment of aged ships and offshore structures. 17th International Ship and Offshore Stuctures Congress (ISSC 2009), 2, pp.309-365.
  13. Wysokowski, A., 2018. Research on changes in properties of steel from the old road bridge. Journal of Constructional Steel Research, 147, pp.360-366. https://doi.org/10.1016/j.jcsr.2018.02.014