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Volume 3: Materials Technology; Jan Vugts Symposium on Design Methodology of Offshore Structures; Jo Pinkster Symposium on Second Order Wave Drift Forces on Floating Structures; Johan Wichers Symposium on Mooring of Floating Structures in Waves | 2011

Development of Heavy Wall High-Strength UOE Linepipe by Means of Microstructural Control in Base Metal and Seam Weld

Atsushi Ishigami; Yoshiaki Murakami; Naoya Hayakawa; Akihiko Tanizawa

The growing demand of the transport of gas and oil under severe conditions, such as in deepwater and onshore in cold climates, requires heavy wall thickness line pipes with both high strength and excellent toughness at low temperature in order to reduce the cost of gas transportation and constructions. In particular, when developing and efficiently manufacturing high strength line pipes with heavy wall thickness, achieving excellent heat affected zone (HAZ) toughness of seam weld is one of the key subjects. In general, steel plate for heavy wall thickness line pipes relatively contains large amount of alloy elements to secure required mechanical properties, whereas addition of alloy elements cause deterioration of HAZ toughness of seam weld. This paper deals with the method of improving HAZ toughness in UOE pipe seam weld. Relationship between microstructure and toughness of simulated HAZ was investigated, and volume fraction of martensite-austenite constituent was reduced by optimization of chemical composition of steel plates. Moreover, low heat input double submerged arc welding (DSAW) process with using welding wires with smaller diameter was newly developed to enhance HAZ toughness. With this new DSAW process, decrease of HAZ width and reduction of austenite grain size were also achieved. Based on the above knowledge, the manufacturing condition was optimized and heavy wall thickness X70 UOE pipe with excellent toughness was successfully developed.Copyright


Archive | 2010

Welding method of thick steel plate

Naoya Hayakawa; Atsushi Ishigami; Tokihiko Kataoka; Kenji Oi; 健次 大井; 直哉 早川; 時彦 片岡; 篤史 石神


Archive | 2006

Multi-electrode submerged arc welding method

Naoya Hayakawa; Atsushi Ishigami; Yoshiaki Murakami; Masatake Odaka; Kenji Shimada; 正丈 小高; 謙司 嶋田; 直哉 早川; 善明 村上; 篤史 石神


Archive | 2009

SUBMERGED ARC WELDING METHOD WITH MULTIPLE ELECTRODES FOR STEEL MATERIAL

Atsushi Ishigami; Kenji Oi; Naoya Hayakawa


Archive | 2009

Submerged arc welding method for steel plate

Atsushi Ishigami; Kenji Oi; Naoya Hayakawa


Archive | 2008

Method for manufacturing welded steel pipe

Naoya Hayakawa; Atsushi Ishigami; Kenji Oi; 健次 大井; 直哉 早川; 篤史 石神


Archive | 2012

Submerged arc welding method for steel sheets

Atsushi Ishigami; Naoya Hayakawa; Koji Yano


Archive | 2010

Complex method of welding in combination of gas shield arc welding with submerged arc welding, and complex welding machine thereof

Naoya Hayakawa; Atsushi Ishigami; Masatake Odaka; Kenji Oi; Kenji Shimada; 健次 大井; 正丈 小高; 謙司 嶋田; 直哉 早川; 篤史 石神


Archive | 1983

SUBMERGED ARC WELDING METHOD

Shohei Kozuki; Atsushi Ishigami; Naoya Hayakawa


Archive | 2013

MULTI-ELECTRODE SUBMERGED ARC WELDING METHOD OF STEEL SHEET

Atsushi Ishigami; 篤史 石神; Naoya Hayakawa; 直哉 早川; Hiroshi Yano; 浩史 矢埜

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Naoya Hayakawa

National Institute for Materials Science

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Kenji Oi

Kawasaki Steel Corporation

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Tokihiko Kataoka

Kawasaki Steel Corporation

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