TY - JOUR
T1 - Flame stability and structure of opposed methane/air jet in coaxial tubes
AU - Huang, Jinghuai
AU - Li, Junwei
AU - Chen, Xinjian
AU - Wei, Zhijun
AU - Wang, Ningfei
N1 - Publisher Copyright:
© All Right Reserved.
PY - 2016/9/5
Y1 - 2016/9/5
N2 - By using the skeletal reaction mechanism, the combustion in an opposed methane jet in coaxial narrow air stream tubes is studied. The temperature, species distribution, heat flux, flame stretch rate and flame curvature are calculated. When the fuel flow rate (QF)=120 ml·min-1, with increasing QA, the flame changes from flat-disk shape to curved one and covers the inner tube exit, and the flame is forced to move toward the exit of inner pipe. The flame is compressed and the distributions of temperature and species are compact. When equivalence ratio (ER)>1.00, with increasing QA, the peak temperature and the flame length along the flame surface rise and reach the maximum, while when ER≤1.00, the peak temperature and the flame length decrease. The after burning gas preheats the inlet methane through the inner pipe and the total heat flux is influenced by the flame temperature and gas flow. With the increase of QA, the heat flux is much stronger and the preheating increases, reaching the maximum when QA=2450 ml·min-1. When QA>2450 ml·min-1, the preheating goes down. When ER>1.00, the stretch rate of flame κ is small and changes slowly at the beginning, and then it rises sharply along the flame surface but finally it is no more than 65 s-1. When ER≤1.00, along the flame surface, κ increases first and then decreases, and finally become negative with the minimum value of -262 s-1. The increase of QA makes κ change seriously. The maximum of κ is 638 s-1.
AB - By using the skeletal reaction mechanism, the combustion in an opposed methane jet in coaxial narrow air stream tubes is studied. The temperature, species distribution, heat flux, flame stretch rate and flame curvature are calculated. When the fuel flow rate (QF)=120 ml·min-1, with increasing QA, the flame changes from flat-disk shape to curved one and covers the inner tube exit, and the flame is forced to move toward the exit of inner pipe. The flame is compressed and the distributions of temperature and species are compact. When equivalence ratio (ER)>1.00, with increasing QA, the peak temperature and the flame length along the flame surface rise and reach the maximum, while when ER≤1.00, the peak temperature and the flame length decrease. The after burning gas preheats the inlet methane through the inner pipe and the total heat flux is influenced by the flame temperature and gas flow. With the increase of QA, the heat flux is much stronger and the preheating increases, reaching the maximum when QA=2450 ml·min-1. When QA>2450 ml·min-1, the preheating goes down. When ER>1.00, the stretch rate of flame κ is small and changes slowly at the beginning, and then it rises sharply along the flame surface but finally it is no more than 65 s-1. When ER≤1.00, along the flame surface, κ increases first and then decreases, and finally become negative with the minimum value of -262 s-1. The increase of QA makes κ change seriously. The maximum of κ is 638 s-1.
KW - Combustion characteristics
KW - Flame stretch
KW - Heat transfer
KW - Methane
KW - Numerical simulation
KW - Opposed flow
UR - http://www.scopus.com/inward/record.url?scp=85092433181&partnerID=8YFLogxK
U2 - 10.11949/j.issn.0438-1157.20151926
DO - 10.11949/j.issn.0438-1157.20151926
M3 - Article
AN - SCOPUS:85092433181
SN - 0438-1157
VL - 67
SP - 3590
EP - 3597
JO - Huagong Xuebao/CIESC Journal
JF - Huagong Xuebao/CIESC Journal
IS - 9
ER -