Published March 1997 | Version v1
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The structure of horizontal hydrogen-steam diffusion flames

  • 1. Atomic Energy of Canada Limited, Pinawa, Manitoba (Canada)

Description

This paper summarizes a systematic study on the stability, peak temperature and flame length of various horizontal hydrogen-steam diffusion flames in air. Results from this study are discussed in terms of their impact on hydrogen management in a nuclear containment building after a nuclear reactor accident. They show that, for a certain range of emerging hydrogen-steam compositions, a stable diffusion flame can anchor itself at the break in the primary heat transport system. The length of this flame can be up to 100 times the break diameter. This implies that creation of a stable diffusion flame at the break is a possible outcome of the deliberate ignition mitigation scheme. The high temperature and heat flux from a diffusion flame can threaten nearby equipment. However, due to the presence of steam and turbulent mixing with surrounding air, the peak temperatures of these diffusion flames are much lower than the adiabatic constant pressure combustion temperature of a stoichiometric hydrogen-air mixture. These results suggest that the threat of a diffusion flame anchored at the break may be less severe than conservative analysis would indicate. Furthermore, such a flame can remove hydrogen at the source and minimize the possibility of a global gas explosion. (author)

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Part of:
Proceedings of the OECD/NEA/CSNI workshop on the implementation of hydrogen mitigation techniques

Additional details

Publishing Information

ISBN
0-660-16916-9
Imprint Title
Proceedings of the OECD/NEA/CSNI workshop on the implementation of hydrogen mitigation techniques
Imprint Pagination
587 p.
Journal Page Range
p. 461-471
Report number
AECL--11762

Conference

Title
OECD/NEA/CSNI workshop on the implementation of hydrogen mitigation techniques
Dates
13-15 May 1996
Place
Winnipeg, MB (Canada)

INIS

Optional Information

Notes
10 refs., 5 figs.
Secondary number(s)
NEA/CSNI/R--96/8