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100L-700MPa급 초고압 용기 설계 기술 개발

Development of Design Method on High Pressure Vessel of 100L-700MPa Grade

  • 박보규 (한국섬유기계융합연구원) ;
  • 이호준 (한국섬유기계융합연구원) ;
  • 이인준 (한국섬유기계융합연구원) ;
  • 박시우 (한국섬유기계융합연구원) ;
  • 조규상 (동양대학교 기계시스템학과)
  • Park, Bo-Gyu (Korea Textile Machinery Convergence Research Institute) ;
  • Lee, Ho-Joon (Korea Textile Machinery Convergence Research Institute) ;
  • Lee, In-Jun (Korea Textile Machinery Convergence Research Institute) ;
  • Park, Si-Woo (Korea Textile Machinery Convergence Research Institute) ;
  • Cho, Kyu-Shang (Department of Mechanical System, Dong Yang University)
  • 투고 : 2019.05.27
  • 심사 : 2019.06.16
  • 발행 : 2019.08.31

초록

An ultra-high pressure treatment device is a device used for increasing the shelf life of food by sterilizing it by applying hydrostatic pressure to solid or liquid food. The ultrahigh pressure treatment system developed in this study is a pressure vessel with a processing capacity of 100 L and a maximum pressure of 700 MPa. Pressure vessels for ultrahigh-pressure processing equipment are manufactured using wire-winding techniques. The design formula for making ultra-high pressure vessels with wire windings is given in ASME Section VIII - Division 3. In this study, the ratio of the cylinder to the winding area that can be applied in a wire-winding application was analyzed using a finite element analysis. Furthermore, the relationship between the variation of the residual stress in the vessel and the ratio of the winding area due to the variation of the winding tension was analyzed, and a design guide applicable to the actual product design was developed. Finally, the design equation was modified by presenting the coefficients to correct the difference between the finite element analysis and the design equation.

키워드

참고문헌

  1. San Martin, M. F., Barboso-Canovas, G. V., Swanson, B. G., "Food Processing by High Hydrostatic Pressure" Critical Reviews in Food Science and Nutrition, Vol, 42, No. 6, pp. 627-645, 2002. https://doi.org/10.1080/20024091054274
  2. Mertens, B., "Hydrostatic pressure treatment of food: equipment and processing" New Methods of Food Preservation, pp 135-158, 1995.
  3. Cho, S. M., Lee, S. K., Moon, J. S., Lyu, S. K., "Development of Subminiature Type 3 Composite Pressure Vessel for Cooling Unit in Electric Appliances," Journal of the Korean Society of Manufacturing Process Engineers, Vol. 17, No. 6, pp.151-157, 2018. https://doi.org/10.14775/ksmpe.2018.17.6.151
  4. Cho, S. M., Lee, S. K., Moon, J. S., Lyu, S. K., "Development of Type 4 Composite Pressure Vessel by using PET Liner for Self-contained Breathing Apparatus," Journal of the Korean Society of Manufacturing Process Engineers, Vol. 17, No. 5, pp.164-169, 2018. https://doi.org/10.14775/ksmpe.2018.17.6.164
  5. Cho, S. M., Kim, K. S., Cho, M. S., Lee, S. K., Lee, S. K., Lyu, S. K., "A Study on Failure Modes of Type 4 Composite Pressure Cylinders according to Shape of Domes," Journal of the Korean Society of Manufacturing Process Engineers, Vol. 16, No. 5, pp.13-18, 2017 https://doi.org/10.14775/ksmpe.2017.16.5.013
  6. Alegre, J. M., Bravo, P. M., Preciado, M., "Fatigue behaviour of an autofrettaged high-pressure vessel for the food industry" Engineering Failure Analysis, Vol 14, No. 2, pp. 396-407, 2007. https://doi.org/10.1016/j.engfailanal.2006.02.015
  7. Antonio Torres, J., Velazquez, G., "Commercial opportunities and research challenges in the high pressure processing of foods", Journal of food engineering, Vol. 67, No. 1-2, pp. 95-112, 2005. https://doi.org/10.1016/j.jfoodeng.2004.05.066
  8. ASME, "ASME Boiler and Pressure Vessel Code, Section VIII, Divission 3: Alternative Rules for Construction of High Pressure Vessels", 2007
  9. Alegre, J. M., Bravo, P., Preciado, M., Solaguren-Beascoa, M., "Simulation precedure of high pressure vessels using the wire winding technique", Engineering Failure Analysis, Vol. 17, No. 1, pp. 61-69, 2010. https://doi.org/10.1016/j.engfailanal.2008.11.004