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Polyurethane foam response to fire in practical geometries.

Journal Article · · Proposed for publication in Polymer Degradation and Stability.
OSTI ID:1005386

An efficient polymer mass loss and foam response model has been developed to predict the behavior of unconfined polyurethane foam exposed to fire-like heat fluxes. The mass loss model is based on a simple two-step mechanism using distributed reaction rates. The mass loss model was implemented into a multidimensional finite element heat conduction code that supports chemical kinetics and dynamic enclosure radiation. A discretization bias correction model was parameterized using elements with characteristic lengths ranging from 0.1 cm to 1 cm. Bias corrected solutions with these large elements gave essentially the same results as grid-independent solutions using 0.01-cm elements. Predictions were compared to measured decomposition front locations determined from real-time X-rays of 9-cm diameter, 15-cm tall cylinders of foam that were heated with lamps. The calculated and measured locations of the decomposition fronts were well within 1 cm of each other and in some cases the fronts coincided.

Research Organization:
Sandia National Laboratories
Sponsoring Organization:
USDOE
DOE Contract Number:
AC04-94AL85000
OSTI ID:
1005386
Report Number(s):
SAND2003-3379J
Journal Information:
Proposed for publication in Polymer Degradation and Stability., Journal Name: Proposed for publication in Polymer Degradation and Stability. Journal Issue: 2 Vol. 84; ISSN PDSTDW; ISSN 0141-3910
Country of Publication:
United States
Language:
English

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