컴퓨터 시뮬레이션을 이용한 극저온 절단 기술 적용성 연구 및 극저온 절단 시스템 주요 부품 제작

Feasibility Study of Cryogenic Cutting Technology by Using a Computer Simulation and Manufacture of Main Components for Cryogenic Cutting System

  • 발행 : 2009.06.30

초록

극저온 절단 기술은 절단 과정에서 2차 폐기물이 발생되지 않기 때문에 원자력 시설의 해체기술로 가장 적합한 기술 중 하나이다. 본 논문에서는 SPH 기법과 FEM 기법을 혼합한 하이브리드 기법을 이용한 컴퓨터 시뮬레이션을 통해 극저온 절단 기술의 적용성을 파악하였다. 또한 극저온 절단 시스템의 설계에 활용하기 위해 절단 깊이 예측식을 사용하여 스틸 10 mm 두께를 절단하는데 필요한 설계 변수 및 운전조건을 도출하였다. 마지막으로 도출한 설계변수 및 운전조건을 기반으로 극저온 절단 시스템의 주요 부품을 제작하였다.

Cryogenic cutting technology is one of the most suitable technologies for dismantling nuclear facilities due to the fact that a secondary waste is not generated during the cutting process. In this paper, the feasibility of cryogenic cutting technology was investigated by using a computer simulation. In the computer simulation, a hybrid method combined with the SPH (smoothed particle hydrodynamics) method and the FE (finite element) method was used. And also, a penetration depth equation, for the design of the cryogenic cutting system, was used and the design variables and operation conditions to cut a 10 mm thickness for steel were determined. Finally, the main components of the cryogenic cutting system were manufactures on the basis of the obtained design variables and operation conditions.

키워드

참고문헌

  1. C. Dunsky and M. Hashish, "Feasibility Study of Machining with High-Pressure Liquefied $CO_2$ Jets," Manufacturing Science and Engineering, 68(1), pp. 453-460 (1994).
  2. H. Liu and T. Butler, "A Vanishing Abrasive Cryogenic Jet for Airframe Depainting," Proceedings of the 14th International Conference on Jetting Technology, pp. 519-533 (1998).
  3. M. Hashish, "Cutting with High-Pressure Ammonia Jets for Demilitarization of Chemical Weapons," J. of Pressure Vessel Technology, 124, pp. 487-492 (2002). https://doi.org/10.1115/1.1400755
  4. C. Dunsky and M. Hashish, "Observations on Cutting with Abrasive-Cryogenic Jets," Proc. 13th Int. Water Jet Cutting Technology Conference, BHR Group, Sardinia, Italy, pp. 679-690 (1996).
  5. G. Cooper, "Cryogenic Drilling: a New Method for Accessing and Sampling Unconsolidated Soils," Geodrilling International, 5(6), pp. 12-16 (1994).
  6. Y. Shane, H. Qu, and A. Lee, "Economical Cryogenic Milling for Environmental Safe Manufacturing," Society of Manufacturing Engineers, Atlanta, Georgia, pp. 177-1-177-5 (1998).
  7. S. Paul and A. Chattopadhyay, "Effects of Cryogenic Cooling by Liquid Nitrogen Jet on Forces, Temperature and Surface Residual Stress in Grinding Steels," Cryogenics, 35, pp. 515-523 (1995). https://doi.org/10.1016/0011-2275(95)98219-Q
  8. M. Hashish and P. Miles, "Fine Powder Fabrication using High-Pressure Waterjets and Cryogenic Jets," 9th American Waterjet Conference, pp. 291-302(1997).
  9. T. Mabrouki, K. Raissi and A. Cornier, "Numerical Simulation and Experimental Study of the Interaction between a Pure High-Velocity Waterjet and Targets: Contribution to Investigate the Decoating Process," Wear, 239, pp. 260-273 (2000). https://doi.org/10.1016/S0043-1648(00)00333-1
  10. G. Chahine, K. Kalumuck, "The Influence of Structural Deformation on Waterjet Impact Loading," J. Fluid Structure, 12, pp. 103-121 (1998). https://doi.org/10.1006/jfls.1997.0127
  11. M. Junkar, B. Jureisevic, M. Fajdiga, et al. "Finite Element Analysis of Single-Particle Impact in Abrasive Water Jet Machining," Int. J. Impact Engineering, 32, pp. 1095-1112 (2006). https://doi.org/10.1016/j.ijimpeng.2004.09.006
  12. S. Kunaporn, M. Ranulu, M. Jenkins and M. Hashish, "Residual Stress Induced by Waterjet Peening : A Finite Element Analysis", J. of Pressure Vessel Technology, 126, pp. 333-340 (2004). https://doi.org/10.1115/1.1767175
  13. K.C. Kwon, "Structural Safety Analysis of Openable Working Table in ACP Hot Cell for Spent Fuel Treatment", J. of Korean Radioactive Waste Society, 4(1), pp. 17-24 (2006).
  14. K.C. Kwon, "A Finite Element Modeling for the Puncture Drop Test of a Cask with the Failure of Impact Limiter", J. of Korean Radioactive Waste Society, 7(1), pp. 9-16 (2009).
  15. L.B. Lucy, 1977, "A Numerical Approach to the Testing of the Fission Hypothesis," The Astronomical Journal, 82(12), 1013-1024 (1977). https://doi.org/10.1086/112164
  16. R. Gingold and J. Monaghan, "Smoothed Particle Hydrodynamics: Theory and Application to Non-Spherical Stars," Astronomical Society Monthly Notices, 181, pp. 375-389 (1977).
  17. G. Johnson, R. Stryk and S. Bsissel, "SPH for High Velocity Impact Computations," Comput. Methods Appl. Mech. Eng., 139, pp. 347-373 (1996). https://doi.org/10.1016/S0045-7825(96)01089-4
  18. T. Belytschko, Y. Krongauz, D. Organ, et al, "Meshless methods: an Overview and Recent Development," Comp. Methods Appl. Mech. Eng., 139, pp. 1-47 (1996). https://doi.org/10.1016/S0045-7825(96)90021-3
  19. M. Hashish, "A Model for Abrasive-Waterjet(AWJ) Machining," J. of Engineering Materials and Technology, 111, pp. 154-162 (1989) https://doi.org/10.1115/1.3226448
  20. J. Zeng and T.J. Kim "Development of an Abrasive Waterjet Kerf Cutting Model for Brittle Materials," Fluid Mechanics and Its Applications, 13, pp. 483-493 (1992).
  21. A. Momber, "A Generalized Abrasive Water Jet Cutting Model," 8th American Water Jet Conference, pp. 359-376 (1995).
  22. J. Wang, "Predictive Depth of Jet Penetration Models for Abrasive Waterjet Cutting of Alumina Ceramics," Int. J. of Mechanical Science, 49, pp. 306-316 (2007). https://doi.org/10.1016/j.ijmecsci.2006.09.005