A non-linear model has been developed for a gas-fired furnace in which oil is heated. The model is applicable from minimum to maximum heat load of the furnace. The dynamics of the model have been compared to experimental results, which were obtained for a pilot-scale furnace. They are in good agreem
Measurements in a gas-fired cylindrical furnace
โ Scribed by M.M. Hassan; F.C. Lockwood; H.A. Moneib
- Publisher
- Elsevier Science
- Year
- 1983
- Tongue
- English
- Weight
- 618 KB
- Volume
- 51
- Category
- Article
- ISSN
- 0010-2180
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โฆ Synopsis
Measurements in a vertically orientated, gas-fired cylindrical furnace are reported. They axe intended to assist the validation of combustor prediction methods. The furnace chamber is 0.6 m in diameter and thermal radiation effects axe significant. The burner is an industrial-type double concentric device with variable swirl and a quarl. Results have been obtained for two excess air levels and for zero swirl and a swirl number 0.56. Particular care has been taken to ensure the axial symmetry of the flow. Very fine thermocouples have been deployed to map the gas temperature. For species concentration comparative measurements have been made using a quartz microprobe, a water-cooled probe, and a direct quench water probe. Incident radiation fluxes have been obtained with an ellipsoidal radiometer. Small discrepancies among the results of the three concentration probes are revealed. The quartz probe appears the most accurate, but it is unsuited to the hot near burner region. The water-cooled probe suffers from insufficiently fast quenching, while the direct quench probe results are modified somewhat by gas absorption.
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