Flammability Aspects of a Cotton-Fiberglass Fabric in Opposed and Concurrent Airflow in MicrogravityMicrogravity combustion tests burning fabric samples were performed aboard the International Space Station. The cotton-fiberglass blend samples were mounted inside a small wind tunnel which could impose air flow speeds up to 40 cm/s. The wind tunnel was installed in the Microgravity Science Glovebox which supplied power, imaging, and a level of containment. The effects of air flow speed on flame appearance, flame growth, and spread rates were determined in both the opposed and concurrent flow configuration. For the opposed flow configuration, the flame quickly reached steady spread for each flow speed, and the spread rate was fastest at an intermediate value of flow speed. These tests show the enhanced flammability in microgravity for this geometry, since, in normal gravity air, a flame self-extinguishes in the opposed flow geometry (downward flame spread). In the concurrent flow configuration, flame size grew with time during the tests. A limiting length and steady spread rate were obtained only in low flow speeds ( 10 cm/s) for the short-length samples that fit in the small wind tunnel. For these conditions, flame spread rate increased linearly with increasing flow. This is the first time that detailed transient flame growth data was obtained in purely forced flows in microgravity. In addition, by decreasing flow speed to a very low value (around 1 cm/s), quenching extinction was observed. The valuable results from these long-duration experiments validate a number of theoretical predictions and also provide the data for a transient flame growth model under development.
Document ID
20130012832
Acquisition Source
Glenn Research Center
Document Type
Presentation
Authors
Ferkul, Paul V. (National Center for Space Exploration Research on Fluids and Combustion Cleveland, OH, United States)
Olson, Sandra (NASA Glenn Research Center Cleveland, OH, United States)
Johnston, Michael C. (National Center for Space Exploration Research on Fluids and Combustion Cleveland, OH, United States)
T'ien, James (Case Western Reserve Univ. Cleveland, OH, United States)
Date Acquired
August 27, 2013
Publication Date
November 28, 2012
Subject Category
Inorganic, Organic And Physical Chemistry
Report/Patent Number
GRC-E-DAA-TN6777Report Number: GRC-E-DAA-TN6777
Meeting Information
Meeting: American Society for Gravitaional and Space Research (ASGSR)2012 Annual Meeting