-
1
-
-
46249088116
-
Combustion of syngas in internal combustion engines
-
[1] Boehman, A.L., Corre, O.L., Combustion of syngas in internal combustion engines. Combust Sci Technol 180:6 (2008), 1193–1206.
-
(2008)
Combust Sci Technol
, vol.180
, Issue.6
, pp. 1193-1206
-
-
Boehman, A.L.1
Corre, O.L.2
-
2
-
-
48249089158
-
Development and validation of a multi-zone combustion model for performance and nitric oxide formation in syngas fueled spark ignition engine
-
[2] Rakopoulos, C., Michos, C., Development and validation of a multi-zone combustion model for performance and nitric oxide formation in syngas fueled spark ignition engine. Energy Convers Manage 49:10 (2008), 2924–2938.
-
(2008)
Energy Convers Manage
, vol.49
, Issue.10
, pp. 2924-2938
-
-
Rakopoulos, C.1
Michos, C.2
-
3
-
-
84900538502
-
Thermal and chemical effects of water addition on laminar burning velocity of syngas
-
[3] Xie, Y.L., Wang, J.H., Xu, N., Yu, S.B., Zhang, M., Huang, Z.H., Thermal and chemical effects of water addition on laminar burning velocity of syngas. Energy Fuel 28:5 (2014), 3391–3398.
-
(2014)
Energy Fuel
, vol.28
, Issue.5
, pp. 3391-3398
-
-
Xie, Y.L.1
Wang, J.H.2
Xu, N.3
Yu, S.B.4
Zhang, M.5
Huang, Z.H.6
-
4
-
-
0023162755
-
Water induction studies in a hydrogen-diesel dual-fuel engine
-
[4] Prabhukumar, G., Swaminathan, S., Nagalingam, B., Gopalakrishnan, K., Water induction studies in a hydrogen-diesel dual-fuel engine. Int J Hydrogen Energy 12:3 (1987), 177–186.
-
(1987)
Int J Hydrogen Energy
, vol.12
, Issue.3
, pp. 177-186
-
-
Prabhukumar, G.1
Swaminathan, S.2
Nagalingam, B.3
Gopalakrishnan, K.4
-
5
-
-
34248651832
-
Effect of water injection and spark timing on the nitric oxide emission and combustion parameters of a hydrogen fuelled spark ignition engine
-
[5] Subramanian, V., Mallikarjuna, J., Ramesh, A., Effect of water injection and spark timing on the nitric oxide emission and combustion parameters of a hydrogen fuelled spark ignition engine. Int J Hydrogen Energy 32:9 (2007), 1159–1173.
-
(2007)
Int J Hydrogen Energy
, vol.32
, Issue.9
, pp. 1159-1173
-
-
Subramanian, V.1
Mallikarjuna, J.2
Ramesh, A.3
-
6
-
-
0027270693
-
A review of NOx formation under gas-turbine combustion conditions
-
[6] Correa, S.M., A review of NOx formation under gas-turbine combustion conditions. Combust Sci Technol 87:1–6 (1993), 329–362.
-
(1993)
Combust Sci Technol
, vol.87
, Issue.1-6
, pp. 329-362
-
-
Correa, S.M.1
-
7
-
-
77956722612
-
Explosion characteristics of hydrogen-air mixtures in a spherical vessel
-
[7] Jo, Y.D., Crowl, D.A., Explosion characteristics of hydrogen-air mixtures in a spherical vessel. Process Saf Prog 29:3 (2010), 216–223.
-
(2010)
Process Saf Prog
, vol.29
, Issue.3
, pp. 216-223
-
-
Jo, Y.D.1
Crowl, D.A.2
-
8
-
-
57949103543
-
Explosion characteristics of hydrogen–nitrogen–air mixtures at elevated pressures and temperatures
-
[8] Tang, C.L., Huang, Z.H., Jin, C., He, J., Wang, J.H., Wang, X.G., et al. Explosion characteristics of hydrogen–nitrogen–air mixtures at elevated pressures and temperatures. Int J Hydrogen Energy 34:1 (2009), 554–561.
-
(2009)
Int J Hydrogen Energy
, vol.34
, Issue.1
, pp. 554-561
-
-
Tang, C.L.1
Huang, Z.H.2
Jin, C.3
He, J.4
Wang, J.H.5
Wang, X.G.6
-
9
-
-
84865730820
-
Explosion of gaseous ethylene–air mixtures in closed cylindrical vessels with central ignition
-
[9] Movileanu, C., Gosa, V., Razus, D., Explosion of gaseous ethylene–air mixtures in closed cylindrical vessels with central ignition. J Hazard Mater 235 (2012), 108–115.
-
(2012)
J Hazard Mater
, vol.235
, pp. 108-115
-
-
Movileanu, C.1
Gosa, V.2
Razus, D.3
-
10
-
-
33746675036
-
Explosion characteristics of synthesised biogas at various temperatures
-
[10] Dupont, L., Accorsi, A., Explosion characteristics of synthesised biogas at various temperatures. J Hazard Mater 136:3 (2006), 520–525.
-
(2006)
J Hazard Mater
, vol.136
, Issue.3
, pp. 520-525
-
-
Dupont, L.1
Accorsi, A.2
-
11
-
-
64549105297
-
Explosion characteristics of LPG–air mixtures in closed vessels
-
[11] Razus, D., Brinzea, V., Mitu, M., Oancea, D., Explosion characteristics of LPG–air mixtures in closed vessels. J Hazard Mater 165:1–3 (2009), 1248–1252.
-
(2009)
J Hazard Mater
, vol.165
, Issue.1-3
, pp. 1248-1252
-
-
Razus, D.1
Brinzea, V.2
Mitu, M.3
Oancea, D.4
-
12
-
-
33751337500
-
The rate of pressure rise of gaseous propylene–air explosions in spherical and cylindrical enclosures
-
[12] Razus, D., Movileanua, C., Oancea, D., The rate of pressure rise of gaseous propylene–air explosions in spherical and cylindrical enclosures. J Hazard Mater 139:1 (2007), 1–8.
-
(2007)
J Hazard Mater
, vol.139
, Issue.1
, pp. 1-8
-
-
Razus, D.1
Movileanua, C.2
Oancea, D.3
-
13
-
-
0043036020
-
Fast flame speeds and rates of pressure rise in the initial period of gas explosions in large L/D cylindrical enclosures
-
[13] Phylaktou, H., Andrews, G., Herath, P., Fast flame speeds and rates of pressure rise in the initial period of gas explosions in large L/D cylindrical enclosures. J Loss Prevent Proc 3:4 (1990), 355–364.
-
(1990)
J Loss Prevent Proc
, vol.3
, Issue.4
, pp. 355-364
-
-
Phylaktou, H.1
Andrews, G.2
Herath, P.3
-
14
-
-
0041711592
-
Gas explosions in long closed vessels
-
[14] Phylaktou, H., Andrews, G., Gas explosions in long closed vessels. Combust Sci Technol 77:1–3 (1991), 27–39.
-
(1991)
Combust Sci Technol
, vol.77
, Issue.1-3
, pp. 27-39
-
-
Phylaktou, H.1
Andrews, G.2
-
15
-
-
0011756478
-
The influence of flow blockage on the rate of pressure rise in large L/D cylindrical closed vessel explosions
-
[15] Andrews, G., Herath, P., Phylaktou, H., The influence of flow blockage on the rate of pressure rise in large L/D cylindrical closed vessel explosions. J Loss Prevent Proc 3:3 (1990), 291–302.
-
(1990)
J Loss Prevent Proc
, vol.3
, Issue.3
, pp. 291-302
-
-
Andrews, G.1
Herath, P.2
Phylaktou, H.3
-
16
-
-
33748992338
-
Explosion characteristics of coal gas under various initial temperatures and pressures
-
[16] Ning, J.G., Wang, C., Lu, J., Explosion characteristics of coal gas under various initial temperatures and pressures. Shock Waves 15:6 (2006), 461–472.
-
(2006)
Shock Waves
, vol.15
, Issue.6
, pp. 461-472
-
-
Ning, J.G.1
Wang, C.2
Lu, J.3
-
17
-
-
84878219849
-
Additive effects on the rate of pressure rise for ethylene–air deflagrations in closed vessels
-
[17] Movileanu, C., Razus, D., Oancea, D., Additive effects on the rate of pressure rise for ethylene–air deflagrations in closed vessels. Fuel 111 (2013), 194–200.
-
(2013)
Fuel
, vol.111
, pp. 194-200
-
-
Movileanu, C.1
Razus, D.2
Oancea, D.3
-
18
-
-
67149087057
-
Inerting effect of the combustion products on the confined deflagration of liquefied petroleum gas–air mixtures
-
[18] Razus, D., Brinzea, V., Mitu, M., Movileanu, C., Oancea, D., Inerting effect of the combustion products on the confined deflagration of liquefied petroleum gas–air mixtures. J Loss Prevent Proc 22:4 (2009), 463–468.
-
(2009)
J Loss Prevent Proc
, vol.22
, Issue.4
, pp. 463-468
-
-
Razus, D.1
Brinzea, V.2
Mitu, M.3
Movileanu, C.4
Oancea, D.5
-
19
-
-
21944442630
-
Laminar burning velocities of hydrogen–air mixtures from closed vessel gas explosions
-
[19] Dahoe, A., Laminar burning velocities of hydrogen–air mixtures from closed vessel gas explosions. J Loss Prevent Proc 18:3 (2005), 152–166.
-
(2005)
J Loss Prevent Proc
, vol.18
, Issue.3
, pp. 152-166
-
-
Dahoe, A.1
-
20
-
-
0042553279
-
Smoothing and differentiation of data by simplified least squares procedures
-
[20] Savitzky, A., Golay, M.J., Smoothing and differentiation of data by simplified least squares procedures. Anal Chem 36:8 (1964), 1627–1639.
-
(1964)
Anal Chem
, vol.36
, Issue.8
, pp. 1627-1639
-
-
Savitzky, A.1
Golay, M.J.2
-
21
-
-
33744824444
-
Explosion pressures of hydrocarbon–air mixtures in closed vessels
-
[21] Razus, D., Movileanu, C., Brinzea, V., Oancea, D., Explosion pressures of hydrocarbon–air mixtures in closed vessels. J Hazard Mater 135:1 (2006), 58–65.
-
(2006)
J Hazard Mater
, vol.135
, Issue.1
, pp. 58-65
-
-
Razus, D.1
Movileanu, C.2
Brinzea, V.3
Oancea, D.4
-
22
-
-
84903903340
-
High methane natural gas/air explosion characteristics in confined vessel
-
[22] Tang, C.L., Zhang, S., Si, Z.B., Huang, Z.H., Zhang, K., Jin, Z., High methane natural gas/air explosion characteristics in confined vessel. J Hazard Mater 278 (2014), 520–528.
-
(2014)
J Hazard Mater
, vol.278
, pp. 520-528
-
-
Tang, C.L.1
Zhang, S.2
Si, Z.B.3
Huang, Z.H.4
Zhang, K.5
Jin, Z.6
-
23
-
-
79957954975
-
Additive effects on explosion pressure and flame temperature of stoichiometric ethylene–air mixture in closed vessels
-
[23] Movileanu, C., Razus, D., Oancea, D., Additive effects on explosion pressure and flame temperature of stoichiometric ethylene–air mixture in closed vessels. Rev Roum Chim 56 (2011), 11–17.
-
(2011)
Rev Roum Chim
, vol.56
, pp. 11-17
-
-
Movileanu, C.1
Razus, D.2
Oancea, D.3
-
24
-
-
34247102654
-
The hazards and risks of hydrogen
-
[24] Crowl, D.A., Jo, Y.-D., The hazards and risks of hydrogen. J Loss Prevent Proc 20:2 (2007), 158–164.
-
(2007)
J Loss Prevent Proc
, vol.20
, Issue.2
, pp. 158-164
-
-
Crowl, D.A.1
Jo, Y.-D.2
-
25
-
-
43049147689
-
Ignition of syngas/air and hydrogen/air mixtures at low temperatures and high pressures: experimental data interpretation and kinetic modeling implications
-
[25] Dryer, F.L., Chaos, M., Ignition of syngas/air and hydrogen/air mixtures at low temperatures and high pressures: experimental data interpretation and kinetic modeling implications. Combust Flame 152:1 (2008), 293–299.
-
(2008)
Combust Flame
, vol.152
, Issue.1
, pp. 293-299
-
-
Dryer, F.L.1
Chaos, M.2
-
26
-
-
33646774704
-
On the off-stoichiometric peaking of adiabatic flame temperature
-
[26] Law, C., Makino, A., Lu, T., On the off-stoichiometric peaking of adiabatic flame temperature. Combust Flame 145:4 (2006), 808–819.
-
(2006)
Combust Flame
, vol.145
, Issue.4
, pp. 808-819
-
-
Law, C.1
Makino, A.2
Lu, T.3
-
29
-
-
0003423526
-
A Fortran computer code package for the evaluation of gas-phase, multicomponent transport properties
-
Sandia National Laboratories
-
[29] Kee, R.J., Dixon-Lewis, G., Warnatz, J., Coltrin, M.E., Miller, J.A., A Fortran computer code package for the evaluation of gas-phase, multicomponent transport properties. 1988, Sandia National Laboratories.
-
(1988)
-
-
Kee, R.J.1
Dixon-Lewis, G.2
Warnatz, J.3
Coltrin, M.E.4
Miller, J.A.5
-
30
-
-
0035253987
-
Comparison of empirical and semi-empirical calculation methods for venting of gas explosions
-
[30] Razus, D., Krause, U., Comparison of empirical and semi-empirical calculation methods for venting of gas explosions. Fire Safety J 36:1 (2001), 1–23.
-
(2001)
Fire Safety J
, vol.36
, Issue.1
, pp. 1-23
-
-
Razus, D.1
Krause, U.2
-
31
-
-
0030933878
-
Flame stretch interactions of laminar premixed hydrogen/air flames at normal temperature and pressure
-
[31] Aung, K., Hassan, M., Faeth, G., Flame stretch interactions of laminar premixed hydrogen/air flames at normal temperature and pressure. Combust Flame 109:1 (1997), 1–24.
-
(1997)
Combust Flame
, vol.109
, Issue.1
, pp. 1-24
-
-
Aung, K.1
Hassan, M.2
Faeth, G.3
-
32
-
-
0001381336
-
Burning velocities of mixtures of hydrogen, carbon monoxide and methane with air
-
[32] Scholte, T., Vaags, P., Burning velocities of mixtures of hydrogen, carbon monoxide and methane with air. Combust Flame 3 (1959), 511–524.
-
(1959)
Combust Flame
, vol.3
, pp. 511-524
-
-
Scholte, T.1
Vaags, P.2
-
33
-
-
78650180154
-
Laminar flame speeds of moist syngas mixtures
-
[33] Das, A.K., Kumar, K., Sung, C.-J., Laminar flame speeds of moist syngas mixtures. Combust Flame 158:2 (2011), 345–353.
-
(2011)
Combust Flame
, vol.158
, Issue.2
, pp. 345-353
-
-
Das, A.K.1
Kumar, K.2
Sung, C.-J.3
-
34
-
-
0016943678
-
Mathematical solutions for explosions in spherical vessels
-
[34] Bradley, D., Mitcheson, A., Mathematical solutions for explosions in spherical vessels. Combust Flame 26 (1976), 201–217.
-
(1976)
Combust Flame
, vol.26
, pp. 201-217
-
-
Bradley, D.1
Mitcheson, A.2
-
35
-
-
0029752908
-
Dust explosions in spherical vessels: the role of flame thickness in the validity of the ‘cube-root law’
-
[35] Dahoe, A., Zevenbergen, J., Lemkowitz, S., Scarlett, B., Dust explosions in spherical vessels: the role of flame thickness in the validity of the ‘cube-root law’. J Loss Prevent Proc 9:1 (1996), 33–44.
-
(1996)
J Loss Prevent Proc
, vol.9
, Issue.1
, pp. 33-44
-
-
Dahoe, A.1
Zevenbergen, J.2
Lemkowitz, S.3
Scarlett, B.4
|