An Improved Method for Deriving the Heat Source Model for FCAW of 9% Nickel Steel for Cryogenic Tanks

Author:

Kim Younghyun12,Kim Jaewoong1,Park Hyeongsam3,Hong Sungbin4,Pyo Changmin1ORCID,Park Gyuhae2

Affiliation:

1. Automotive Materials & Components R&D 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. Department of Computer Engineering, Chonnam National University, Gwangju 61186, Republic of Korea

4. Naval Architecture and Ocean Engineering, Seoul National University, Seoul 08826, Republic of Korea

Abstract

The International Maritime Organization (IMO) is tightening regulations on air pollutants. Consequently, more LNG-powered ships are being used to adhere to the sulfur oxide regulations. Among the tank materials for storing LNG, 9% nickel steel is widely used for cryogenic tanks and containers due to its high cryogenic impact toughness and high yield strength. Hence, numerous studies have sought to predict 9% nickel steel welding distortion. Previously, a methodology to derive the optimal parameters constituting the Goldak welding heat source for arc welding was developed. This was achieved by integrating heat transfer finite element analysis and optimization algorithms. However, this process is time-consuming, and the resulting shape of the weld differs by ~15% from its actual size. Therefore, this study proposes a simplified model to reduce the analysis time required for the arc welding process. Moreover, a new objective function and temperature constraints are presented to derive a more sophisticated heat source model for arc welding. As a result, the analysis time was reduced by ~70% compared to that previously reported, and the error rates of the weld geometry and HAZ size were within 10% and 15% of the actual weld, respectively. The findings of this study provide a strategy to rapidly predict welding distortion in the field, which can inform the revision of welding guidelines and overall welded structure designs.

Funder

Korea Institute of Industrial Technology

Ministry of Trade, Industry and Energy

Publisher

MDPI AG

Subject

General Materials Science

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