Probabilistic simulation of fire scenarios

Author:

Hostikka Simo,Keski-Rahkonen Olavi

Publisher

Elsevier BV

Subject

Mechanical Engineering,Waste Management and Disposal,Safety, Risk, Reliability and Quality,General Materials Science,Nuclear Energy and Engineering,Nuclear and High Energy Physics

Reference15 articles.

1. Eerikäinen, L., Huhtanen, R., 1991. Ydinvoimalaitoksen huonetilapalo, Loviisa 1:n valvomorakennuksen huonetilan palon numeerinen tarkastelu (Room fire in a Nuclear Power Plant, Numerical Study of the Room Fire in a Control Building of Loviisa 1 Power Plant). Finnish Centre for Radiation and Nuclear Safety, Helsinki. Report STUK-YTO-TR 30, 59 pp. + App. 26 pp.

2. Sensitivity analysis in the context of uncertainty analysis for computationally intensive models;Hofer;Comp. Phys. Commun.,1999

3. Heskestad, G., Delichatsios, M.A., 1977. Environments of Fire Detectors. Phase 1. Effect of Fire Size, Ceiling Height and Materials. Vol. 2. Analysis. NBS GCR 77-95, National Bureau of Standards. Gaithersburg, MD, 129 pp.

4. Keski-Rahkonen, O., Hostikka, S., 1999. Theory versus experiment—did you forget design of experiment and data reduction? Structural Mechanics in Reactor Technology 15, Post Conference Seminar No. 6, Fire Safety in Nuclear Power Plants and Installations. Munich-Garching, Germany, September 6–7, 21 pp.

5. Keski-Rahkonen, O., Mangs, J., 2003. Quantitative determination of source terms from fires in electronic cabinets: maximum rate of heat release, minimum rate of heat release needed for flashover, and effluent yields from incomplete combustion. Fire Safety J., submitted for publication

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