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패러럴 슬라이드 게이트밸브의 열구조해석 및 ASME B&PVC 기반 피로수명 평가

Thermal-structural Analysis and Fatigue Life Evaluation of a Parallel Slide Gate Valve in Accordance with ASME B&PVC

  • 김태호 (안동대학교 기계설계공학과) ;
  • 최재승 ((주)키밸브기술) ;
  • 한정삼 (안동대학교 기계설계공학과)
  • Kim, Tae Ho (Dept. of Mechanical Design Engineering, Andong Nat'l Univ.) ;
  • Choi, Jae Seung (Key Valve Technologies Ltd.) ;
  • Han, Jeong Sam (Dept. of Mechanical Design Engineering, Andong Nat'l Univ.)
  • 투고 : 2016.08.02
  • 심사 : 2016.12.05
  • 발행 : 2017.02.01

초록

패러럴 슬라이드 게이트밸브는 복합발전플랜트 배열회수보일러와 증기터빈 사이에 위치하여 증기유동의 흐름을 제어하는 밸브로서 운전기간 동안 기동, 부하변동 및 정지 등의 운전이 반복적으로 이루어진다. 따라서, 각 기동운전 중에 밸브 두께 방향의 온도 차이로 인하여 발생하는 큰 압축 열응력으로 인한 피로손상 및 구조건전성에 대한 평가가 필요하다. 본 논문에서는 배열회수보일러의 주중기 밸브로 설치되는 16인치 패러럴 슬라이드 게이트밸브의 피로수명 평가를 위한 열구조해석 및 ASME B&PVC VIII-2에서 제시된 탄성응력해석 및 등가응력에 기반한 피로수명 평가를 수행하였다.

A parallel slide gate valve (PSGV) is located between the heat recovery steam generator (HRSG) and the steam turbine in a combined cycle power plant (CCPP). It is used to control the flow of steam and runs with repetitive operations such as startups, load changes, and shutdowns during its operation period. Therefore, it is necessary to evaluate the fatigue damage and the structural integrity under a large compressive thermal stress due to the temperature difference through the valve wall thickness during the startup operations. In this paper, the thermal-structural analysis and the fatigue life evaluation of a 16-inch PSGV, which is installed on the HP steam line, is performed according to the fatigue life assessment method described in the ASME B&PVC VIII-2; the method uses the equivalent stress from the elastic stress analysis.

키워드

참고문헌

  1. Baek, S. H., 2016, "The Monthly Report on Major Electric Power Statistics," Korea Electric Power Corporation, Vol. 448, No. 2.
  2. Hwang, S. H., Kim, H. G., Seon, C. Y., Lee, C. S. and Lee, B. Y., 2010, "Fatigue Life Evaluation for HPDrum in HRSG According to EN Code," Proc. of KSME autumn conference, pp. 506-511.
  3. Jeong, M. S., 2009, "Performance of Steam Turbine Technology Trends," Journal of the KSME, Vol. 49, No. 9, pp. 52-57.
  4. Doosan Engineering & Construction, 2016, "Combined Cycle Thermal Power Generation System Diagram," http://www.doosanenc.com/en/business/hrsg/info.do.
  5. Ha, J. W., Kim, T. W. and Lee, B. Y., 1999, "Calculation of Maximum Allowable Temperature Difference for Life Design of Valve Casings for Steam Turbines of Fossil Power Plants," Journal of the Korean Society for Precision Engineering, Vol. 16, No. 8, pp. 46-52.
  6. Chandra, N. P. and Belkar, S. B., 2014, "Analytical Study of Coke Drum Skirt Support Hot Box," International Journal of Emerging Science and Engineering, Vol. 2, No. 9, pp. 7-11.
  7. Osage, D. A., 2015, "Fatigue Assessment for Inservice Components - A New Part for API 579-1/ASME FFS-1 Fitness-for-service," Procedia Engineering, Vol. 133, pp. 320-347.
  8. Sim, H. J., Oh, C. K., Kim, H. S. and Youm, H. K., 2011, "Technical Review on the Design and Integrity Evaluation Technologies for Components in High Temperature Environment," Korea Electric Power Corporation.
  9. ASME, 2010, ASME Boiler and Pressure Vessel Code, Section VIII, Rules for Construction of Pressure Vessels, Division 2 - Alternative Rules, The American Society of Mechanical Engineers, New York.
  10. ASME, 2010, ASME Boiler and Pressure Vessel Code, Section II, Materials, Part D - Properties (Metric), The American Society of Mechanical Engineers, New York.
  11. Sowinski, J. C., Osage, D. A. and Brown, R. G, 2013, ASME Section VIII - Division 2 Example Problem Manual, The American Society of Mechanical Engineers, New York.
  12. ANSYS, 2016, ANSYS Mechanical APDL Theory Reference 17.0, SAS IP, Inc.
  13. Cengle, Y. A., 2010, Introduction to heat transfer, MacGraw-Hill, Korea, pp. 360-362.
  14. Lee, B. Y., Kim, W. J. and Shin, H. M., 2005, "Finite Element Analysis and Evaluation of Casting Defects of Steam Turbine Valve Casings of Power Plants," Journal of the Korean Society of Marine Engineering, Vol. 29, No. 5, pp. 111-118.