Weld Zone Analysis Based on FCAW Mechanical Characteristics and Heat Transfer Analysis of 316L Stainless Steel for Liquefied Hydrogen Tanks

Author:

Kim Younghyun12ORCID,Hong Sungbin3,Ha Eulyong1,Park Gyuhae2,Kim Jaewoong1

Affiliation:

1. Purpose Built Mobility Group, Korea Institute of Industrial Technology, Gwangju 61012, Republic of Korea

2. School of Mechanical Engineering, Chonnam National University, Gwangju 61186, Republic of Korea

3. DT Innovation Planning Department, Hyundai Samho Heavy Industries, Yeongam 58462, Republic of Korea

Abstract

The International Maritime Organization (IMO) is currently rolling out more restrictive regulations in order to achieve net-zero GHG emissions by 2050. In response, the shipping industry is planning to pivot to green energy sources such as hydrogen fuel. However, since hydrogen has an extremely low boiling point (−253 °C), materials for storing liquid hydrogen must be highly resistant to low-temperature brittleness and hydrogen embrittlement. A 316L stainless steel is a typical material that meets these requirements, and various welds have been studied. In this study, 3 pass butt welding was performed by applying the FCAW (flux cored arc welding) process to 10 mm thick ASTM-A240M-316L stainless steel, with the size of the fusion zone and HAZ investigated by mechanical testing and heat transfer FE analysis according to process variables, such as heat input, welding speed, and the number of passes. In all cases, the yield and tensile strengths were about 10% and 3% higher than the base metal, respectively. Furthermore, heat transfer FE analysis showed an average error rate of 1.3% for penetration and 10.5% for width and confirmed the size of the HAZ, which experienced temperatures between 500 °C and 800 °C.

Funder

Development of core technologies of AI based self-power generation and charging for next-generation mobility

Publisher

MDPI AG

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