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Laser ignition of pulverized coals

โœ Scribed by John C. Chen; Masayuki Taniguchi; Kiyoshi Narato; Kazuyuki Ito


Publisher
Elsevier Science
Year
1994
Tongue
English
Weight
834 KB
Volume
97
Category
Article
ISSN
0010-2180

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โœฆ Synopsis


We present a novel experiment to study the ignition of pulverized coal. A dilute stream of particles is dropped into a laminar, upward-flow wind tunnel with a quartz test section. The gas stream is not preheated. A single pulse from a Nd:YAG laser is focused through the tunnel and ignites the fuel. The transparent test section and cool walls allow for optical detection of the ignition process. In this article we describe the experiment and demonstrate its capabilities by observing the ignition behavior of spherical, amorphous-carbon particles and two coals: an anthracite and a high-volatile bituminous coal. The ignition behaviors of the carbon spheres and the anthracite are as expected for heterogeneous ignition, while the mechanism of the bituminous coal is uncertain. Calculations are also presented to describe the physical behavior of a laser-heated particle, and the heat transfer and chemistry of heterogeneous ignition.


๐Ÿ“œ SIMILAR VOLUMES


The mechanism of ignition of pulverized
โœ J.B. Howard; R.H. Essenhigh ๐Ÿ“‚ Article ๐Ÿ“… 1965 ๐Ÿ› Elsevier Science ๐ŸŒ English โš– 240 KB

Letters to the Editors on points of scientific interest related to combustion and flames are invited. The Editors do not hold themselves responsible for opinions expressed in correspondence. Anonymous contributions cannot be accepted.

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Experiments are reported giving visual observations of ignition--the emission of light or flashing--and the changes of gas composition--O:, CO:, and NO--in a laboratory drop-tube furnace fed continuously with pulverized coal and air in near-stoichiometric proportions. As the furnace is slowly heated

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A detailed model for the steady-state combustion of a coal particle considering both surface oxidation and volatile combustion is presented. By solving the model equations in the absence of surface oxidation at various ambient gas temperatures, the homogeneous ignition temperature is determined as t