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PMID: 27996695 Published · ppublish English Journal Article

Reduced combustion mechanism for C1-C4 hydrocarbons and its application in computational fluid dynamics flare modeling.

Journal of the Air & Waste Management Association (1995) ·Vol. 67 ·No. 5 ·2017-00-00 ·页码 599-612

Damodara V, Chen DH, Lou HH, Rasel KM, Richmond P, Wang A, Li X

Abstract

Emissions from flares constitute unburned hydrocarbons, carbon monoxide (CO), soot, and other partially burned and altered hydrocarbons along with carbon dioxide (CO2) and water. Soot or visible smoke is of particular concern for flare operators/regulatory agencies. The goal of the study is to develop a computational fluid dynamics (CFD) model capable of predicting flare combustion efficiency (CE) and soot emission. Since detailed combustion mechanisms are too complicated for (CFD) application, a 50-species reduced mechanism, LU 3.0.1, was developed. LU 3.0.1 is capable of handling C4 hydrocarbons and soot precursor species (C2H2, C2H4, C6H6). The new reduced mechanism LU 3.0.1 was first validated against experimental performance indicators: laminar flame speed, adiabatic flame temperature, and ignition delay. Further, CFD simulations using LU 3.0.1 were run to predict soot emission and CE of air-assisted flare tests conducted in 2010 in Tulsa, Oklahoma, using ANSYS Fluent software. Results of non-premixed probability density function (PDF) model and eddy dissipation concept (EDC) model are discussed. It is also noteworthy that when used in conjunction with the EDC turbulence-chemistry model, LU 3.0.1 can reasonably predict volatile organic compound (VOC) emissions as well. A reduced combustion mechanism containing 50 C1-C4 species and soot precursors has been developed and validated against experimental data. The combustion mechanism is then employed in the computational fluid dynamics (CFD) of modeling of soot emission and combustion efficiency (CE) of controlled flares for which experimental soot and CE data are available. The validated CFD modeling tools are useful for oil, gas, and chemical industries to comply with U.S. Environmental Protection Agency's (EPA) mandate to achieve smokeless flaring with a high CE.

MeSH 主题词
Air Pollutants/analysis Air Pollution/analysis Environmental Monitoring/methods Fires Hydrocarbons/analysis Hydrodynamics Models, Chemical Soot/analysis Temperature Volatile Organic Compounds/analysis
化学物质
Air Pollutants Hydrocarbons Soot Volatile Organic Compounds
作者与单位
共 7 位作者,点击展开单位 / ORCID
Damodara Vijaya
a Dan F. Smith Department of Chemical Engineering , Lamar University , Beaumont , TX , USA.
Chen Daniel H
a Dan F. Smith Department of Chemical Engineering , Lamar University , Beaumont , TX , USA.
Lou Helen H
a Dan F. Smith Department of Chemical Engineering , Lamar University , Beaumont , TX , USA.
Rasel Kader M A
a Dan F. Smith Department of Chemical Engineering , Lamar University , Beaumont , TX , USA.
Richmond Peyton
a Dan F. Smith Department of Chemical Engineering , Lamar University , Beaumont , TX , USA.
Wang Anan
a Dan F. Smith Department of Chemical Engineering , Lamar University , Beaumont , TX , USA.
Li Xianchang
b Department of Mechanical Engineering , Lamar University , Beaumont , TX , USA.
Article Info
Journal
Journal of the Air & Waste Management Association (1995)
Abbr.
J Air Waste Manag Assoc
ISSN
2162-2906
Published
2017-00-00
电子出版
2016-00-20
页码
599-612
Language
English
Country/Region
United States
NLM ID
9503111
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