Improvement of Life of Immersion Nozzle with Gas-injection
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概要
- 論文の詳細を見る
The mechanism by which cracks occur in the immersion nozzle with silicaless inner porous refractory developed to stabilize the injection of argon gas into molten steel, and the prevention of nozzle cracking were investigated. The results obtained were as follows.(1) Models for estimating the crack formation pressure and hot argon gas inlet pressure for the immersion nozzle were proposed. Using those models, a theory for preventing nozzle cracking according to casting conditions was worked out.(2) With the immersion nozzle with silicaless inner porous refractory, the hot argon gas inlet pressure does not drop. Therefore, when the initial gas inlet pressure is substantially high, a longitudinal crack tends to occur easily in the powder line which deteriorates in strength due to in the latter half of casting operation.(3) By increasing the immersion nozzle wall thickness to improve its strength and controlling the hot argon gas inlet pressure below the crack formation pressure, it is possible to prevent cracks in the immersion nozzle with silicaless inner porous refractory.
- 社団法人 日本鉄鋼協会の論文
- 1995-09-15
著者
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MIZUKAMI Yoshimasa
Nagoya R & D Laboratories, Nippon Steel Corporation
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Mizukami Y
Nagoya R & D Laboratories Nippon Steel Corporation
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SASAI Katsuhiro
Nagoya R & D Laboratories, Nippon Steel Corporation
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Sasai Katsuhiro
Nagoya R & D Laboratories Nippon Steel Corporation
関連論文
- Formation of a Solidified Hook-like Structure at the Subsurface in Ultra Low Carbon Steel
- Effect of Stirring Energy and Rate of Oxygen Supply on the Rate of Hot Metal Dephosphorization
- Improvement of Life of Immersion Nozzle with Gas-injection
- Effect of Stirring on Oxidation Rate of Molten Steel
- Oxidation Rate of Molten Steel by Argon Gas Blowing in Tundish Oxidizing Atmosphere
- Reaction Rate between Alumina Graphite Immersion Nozzle and Low Carbon Steel.
- Reaction Mechanism between Alumina Graphite Immersion Nozzle and Low Carbon Steel.
- Effect of Stirring Energy, Temperature and Flux Composition on Hot Metal Dephosphorization Kinetics.