Radiation-Controlled, Opposed-Flow Flame Spread in a Microgravity EnvironmentThe effects of surface and gas-phase radiation on the rate and the structure of laminar flame spread over thin fuels are investigated using a flame-spread model which consists of the continuity, momentum, species, and energy equations in the gas and the continuity and energy equations in the solid. Numerical calculations, complemented by scaling arguments, show that, at high velocities of the oxidizer flow, radiation effects are unimportant; the spread rate decreases with increasing opposing velocity due to finite-rate gas-phase kinetics. However, radiation becomes progressively important when the opposing velocity is below a certain value: the flame cools, shrinks in size, and its spread rate falls sharply with decreasing opposing velocity.
Document ID
19920033982
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Bhattacharjee, Subrata (Mississippi State Univ. Mississippi State, MS, United States)
Altenkirch, Robert A. (Mississippi State University Mississippi State, United States)