FireDOC Search

displaying 1 - 10 results in total 10

  • Harada, K.; Yusa, S.; Ohmiya, Y.; Suzuki, J.; Ishihara, T.; Shimamura, M.; Wakamatsu, T.
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    Simple Formula to Predict Temperature Rise of Protected and Unprotected Structural Steel Elements.
    Kyoto Univ., Japan; Building Research Institute, Ibaraki, Japan; Tokyo University of Science, Chiba, Japan
    Fire Safety Science. Proceedings. Seventh (7th) International Symposium. International Association for Fire Safety Science (IAFSS). POSTER ABSTRACTS. June 16-21, 2003, Intl. Assoc. for Fire Safety Science, Boston, MA, Worcester, MA, Evans, D. D., Editors, 1209-1209 p., 2003

  • Suzuki, J.
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    Structural Redundancy and Effect of Seismic Design on Ultimate Temperature of Steel Frames Exposed to Fire. Chapter 1: Preface..
    Tokyo University of Science, Japan
    Fire Science and Technology, Vol. 26, No. 3, 93-112, 2007

  • Suzuki, J.
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    Structural Redundancy and Effect of Seismic Design on Ultimate Temperature of Steel Frames Exposed to Fire. Chapter 2: Stress Redistribution Mechanisms and High-Temperature Instability in Frames.
    Tokyo University of Science, Japan
    Fire Science and Technology, Vol. 26, No. 3, 113-144, 2007

  • Suzuki, J.
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    Structural Redundancy and Effect of Seismic Design on Ultimate Temperature of Steel Frames Exposed to Fire. Chapter 3: Theoretical Collapse Temperature of Frameworks.
    Tokyo University of Science, Japan
    Fire Science and Technology, Vol. 26, No. 3, 145-176, 2007

  • Suzuki, J.
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    Structural Redundancy and Effect of Seismic Design on Ultimate Temperature of Steel Frames Exposed to Fire. Chapter 4: Collapse Temperature of Frameworks With Seismic Design.
    Tokyo University of Science, Japan
    Fire Science and Technology, Vol. 26, No. 3, 177-258, 2007

  • Suzuki, J.
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    Structural Redundancy and Effect of Seismic Design on Ultimate Temperature of Steel Frames Exposed to Fire. Chapter 5: Behavior and Collapse Temperatures of Existing Frames During Fire Disasters.
    Tokyo University of Science, Japan
    Fire Science and Technology, Vol. 26, No. 3, 259-282, 2007

  • Suzuki, J.
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    Structural Redundancy and Effect of Seismic Design on Ultimate Temperature of Steel Frames Exposed to Fire. Chapter 6: Summary.
    Tokyo University of Science, Japan
    Fire Science and Technology, Vol. 26, No. 3, 283-296, 2007

  • Suzuki, J.; Suzuki, H.; Wakamatsu, T.; Ohmiya, Y.; Terakawa, T.
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    Ultimate Temperature of Steel Frames Exposed to Fire. Part 1: Stress Redistribution and Ultimate Temperature of Steel Frames.
    Tokyo University of Science, Japan; Tsukuba Univ., Japan
    Fire Science and Technology, Vol. 26, No. 4 (Special Issue), 333-338, 2007

  • Suzuki, H.; Suzuki, J.; Wakamatsu, T.; Ohmiya, Y.; Terakawa, T.
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    Ultimate Temperature of Steel Frames Exposed to Fire. Part 2: Stress Redistribution and Limit of Deformation of Steel Frames.
    Tsukuba Univ., Japan; Tokyo University of Science, Japan
    Fire Science and Technology, Vol. 26, No. 4 (Special Issue), 339-344, 2007

  • Okamoto, K.; Watanabe, N.; Hagimoto, Y.; Chigira, T.; Masano, R.; Miura, H.; Ochiai, S.; Satoh, H.; Tamura, Y.; Hayano, K.; Maeda, Y.; Suzuki, J.
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    Burning Behavior of Sedan Passenger Cars.
    National Research Institute of Police Science, 6-3-1, Kashiwanoha, Kashiwa, Chiba 277-0882, Japan; Metropolitan Police Department, 2-1-1, Kasumigaseki, Chiyoda-ku, Tokyo 100-8929, Japan; Chiba Prefectural Police H.Q., 1-71-1, Chuoko, Chuo-ku, Chiba-shi, Chiba 260-0024, Japan; apan Automobile Research Institute, 2530, Karima, Tsukuba, Ibaraki 305-0822, Japan
    Fire Safety Journal, Vol. 44, No. 3, 301-310, April 2009