A Comparative Evaluation of Fatigue and Fracture Characteristics of Structural Components of Liquefied Natural Gas Carrier Insulation System

Author:

Su Kim Hyeon1,Sung Chun Min2,Myung Lee Jae3,Hyun Kim Myung4

Affiliation:

1. Graduate Student Department of Naval Architecture and Ocean Engineering, Pusan National University, Busan 709-635, Korea e-mail:

2. Senior Engineer Marine Research Institute, Samsung Heavy Industries, Co., Ltd., Geoje 656-710, Korea e-mail:

3. Professor Mem. ASME e-mail:

4. Professor Mem. ASME e-mail:  Department of Naval Architecture and Ocean Engineering, Pusan National University, Busan 709-635, Korea

Abstract

This study examined the fatigue strength and fracture toughness of the structural components of membrane type liquefied natural gas carrier (LNGC) insulation systems, such as reinforced poly-urethane foam (R-PUF, insulation material) and 304 L stainless steel (STS 304 L, Primary barrier membrane), at both ambient and cryogenic temperatures. The fatigue strength of the LNGC insulation system was compared with that of low density R-PUF (130 kg/m3) and high density R-PUF (210 kg/m3). The fracture toughness of R-PUF and STS 304 L was investigated in terms of the density effect of R-PUF and the difference in the nickel composition of STS 304 L, STS 304 L (10.2%Ni) versus STS 304 L (9.4%Ni) at both ambient and cryogenic temperatures. In this study, the high density R-PUF (210 kg/m3) and STS 304 L (9.4%Ni) were proposed to improve the structural strength of the LNGC insulation system and reduce the cost. The fracture toughness was characterized in terms of the critical strain energy release rate (GIC) in the context of linear elastic fracture mechanics (LEFM). The geometries of the fracture toughness test used were the center-cracked tension (CCT) and double-edge-cracked tension (DECT) specimens according to ASTM STP381 standard.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Safety, Risk, Reliability and Quality

Reference12 articles.

1. Lee, H., Kim, J. W., and Hwang, C., 2004, “Dynamic Strength Analysis for Membrane Type LNG Containment System Due to Sloshing Impact Load,” Proceedings of the International Conference on Design and Operation of Gas Carriers. London, UK.

2. Lee, J. M., Paik, J. M., Kim, M. H., Yoon, J. W., Choe, I. H., Kim, W. S., and Noh, B. J., 2006, “Strength of Membrane Type LNG Cargo Containment System Under Sloshing Impact,” World Maritime Technology Conference, London, UK.

3. “Liquified Natural Gas Flow in the Insulation System Wall of a Cargo Containment System and Its Evaporation,”;Appl. Therm. Eng.,2011

4. “Experimental Investigation on the Impact Behavior of Membrane-Type LNG Carrier Insulation System,”;J. Loss Prev. Process Ind.,2009

5. “Analysing the Risk of LNG Carrier Operations,”;Reliab. Eng. Syst. Saf.,2008

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