EDL Home Page
Go backward to Data Files
Go up to Top

Detonation Database

References

 
[1]
S. Abid, G. Dupre, and C. Paillard. Oxidation of gaseous unsymmetrical dimethylhydrazine at high temperatures and detonation of UDMH/O_2 mixtures. In Prog. Astronaut. Aeronaut., volume 153, pages 162-181, 1991.

 

[2]
G.L. Agafonov and S.M. Frolov. Computation of the detonation limits in gaseous hydrogen-containing mixtures. Combust. Explos. Shock Waves (USSR), 30(1):91-100, 1994.

 

[3]
R. Akbar, M.J. Kaneshige, E. Schultz, and J.E. Shepherd. Detonations in H_2-N_2O-CH_4-NH_3-O_2-N_2 mixtures. Technical Report FM97-3, Explosion Dynamics Laboratory, California Institute of Technology, 1997.

 

[4]
M. Aminallah, J. Brossard, and A. Vasiliev. Cylindrical detonations in methane-oxygen-nitrogen mixtures. In Prog. Astronaut. Aeronaut., volume 153, pages 203-228, 1993.

 

[5]
T.J. Anderson and E.K. Dabora. Measurements of normal detonation wave structure using rayleigh imaging. In 24th Symp. Int. Combust. Proc., pages 1853-1860, 1992.

 

[6]
P. Andresen and W. Reckers. The structure of gaseous detonations as revealed by laser-induced fluorescence of the OH-radical. Z. Phys. Chem. Neue Folge, 175(2):129-143, 1992.

 

[7]
R. Atkinson, D.C. Bull, and P.J. Shuff. Initiation of spherical detonation in hydrogen-air. Combust. Flame, 39(3):287-300, 1980.

 

[8]
G.G. Bach, R. Knystautas, and J.H. Lee. Initiation criteria for diverging gaseous detonations. In 13th Symp. Int. Combust. Proc., pages 1097-1110, 1971.

 

[9]
H.O. Barthel. Predicted spacings in hydrogen-oxygen-argon detonations. Phys. Fluids, 17(8):1547-1553, 1974.

 

[10]
P. Bauer. Contribution a l'etude de la detonation des melanges explosifs gazeux a pression initiale elevee. PhD thesis, Universite de Poitiers, 1985.

 

[11]
P. Bauer, C. Brochet, and H.N. Presles. The influence of initial pressure on critical diameters of gaseous explosive mixtures. In Prog. Astronaut. Aeronaut., volume 94, pages 118-129, 1984.

 

[12]
P. Bauer, H.N. Presles, O. Heuze, and C. Brochet. Measurement of cell lengths in the detonation front of hydrocarbon oxygen and nitrogen mixtures at elevated initial pressures. Combust. Flame, 64(1):113-123, 1986.

 

[13]
H.D. Beeson, R.D. McClenagan, C.V. Bishop, F.J. Benz, W.J. Pitz, C.K. Westbrook, and J.H.S. Lee. Detonability of hydrocabon fuels in air. In Prog. Astronaut. Aeronaut., volume 133, pages 19-36, 1991.

 

[14]
W.B. Benedick, C.M. Guirao, R. Knystautas, and J.H. Lee. Critical charge for the direct initiation of detonation in gaseous fuel-air mixtures. In Prog. Astronaut. Aeronaut., volume 106, pages 181-202, 1986.

 

[15]
W.B. Benedick, J.D. Kennedy, and B. Morosin. Detonation limits of unconfined hydrocarbon-air mixtures. Combust. Flame, 15(1):83-84, 1970.

 

[16]
W.B. Benedick, R. Knystautas, and J.H.S. Lee. Large-scale experiments on the transmission of fuel-air detonations from two-dimensional channels. In Prog. Astronaut. Aeronaut., volume 94, pages 546-555, 1984.

 

[17]
A.A. Borisov, S.V. Khomic, and V.N. Mikhalkin. Detonation of unconfined and semiconfined charges of gaseous mixtures. In Prog. Astronaut. Aeronaut., volume 133, pages 118-132, 1991.

 

[18]
A.A. Borisov, S.V. Khomik, V.N. Mikhalkin, and E.V. Saneev. Critical energy of direct detonation initiation in gaseous mixtures. In Prog. Astronaut. Aeronaut., volume 133, pages 142-155, 1991.

 

[19]
A.A. Borisov, V.V. Kosenkov, A.E. Mailkov, V.N. Mikhalkin, and S.V. Khomik. Effect of flame inhibitors on detonation characteristics of fuel-air mixtures. In Prog. Astronaut. Aeronaut., volume 153, pages 312-323, 1993.

 

[20]
A.A. Borisov and S. Loban'. Detonation limits of hydrocarbon-air mixtures in tubes. Combust. Explos. Shock Waves (USSR), 13(5):618-621, 1977.

 

[21]
D.C. Bull. Concentration limits to the initiation of unconfined detonation in fuel/air mixtures. Trans. Inst. Chem. Eng., 57(4):219-227, 1979.

 

[22]
D.C. Bull. Towards an understanding of the detonability of vapour clouds. In Fuel-Air Explosions, pages 139-155. University of Waterloo Press, 1982.

 

[23]
D.C. Bull, J.E. Elsworth, and G. Hooper. Initiation of spherical detonation in hydrocarbon/air mixtures. Acta Astron., 5(11):997-1008, 1978.

 

[24]
D.C. Bull, J.E. Elsworth, and G. Hooper. Concentration limits to unconfined detonation of ethane-air. Combust. Flame, 35(1):27-40, 1979.

 

[25]
D.C. Bull, J.E. Elsworth, and G. Hooper. Susceptibility of methane-ethane mixtures to gaseous detonation in air. Combust. Flame, 34(3):327--330, 1979.

 

[26]
D.C. Bull, J.E. Elsworth, G. Hooper, and C.P. Quinn. A study of spherical detonation in mixtures of methane and oxygen diluted by nitrogen. J. Phys. D, 9(13):1991-2000, 1976.

 

[27]
D.C. Bull, J.E. Elsworth, P.J. Shuff, and E. Metcalfe. Detonation cell structures in fuel/air mixtures. Combust. Flame, 45(1):7-22, 1982.

 

[28]
G.A. Carlson. Spherical detonations in gas-oxygen mixtures. Combust. Flame, 21(3):383-385, 1973.

 

[29]
G. Ciccarelli, T. Ginsberg, J. Boccio, C. Economos, K. Sato, and M. Kinoshita. Detonation cell size measurements and predictions in hydrogen-air-steam mixtures at elevated temperatures. Combust. Flame, 99(2):212-220, 1994.

 

[30]
G. Ciccarelli, T. Ginsberg, J. Boccio, C. Finfrock, L. Gerlach, H. Tagawa, and A. Malliakos. Detonation cell size measurements in high-temperature hydrogen-air-steam mixtures at the bnl high-temperature combustion facility. Technical Report NUREG/CR-6391, BNL-NUREG-52482, Brookhaven National Laboratory, 1997.

 

[31]
Yu.N. Denisov and Ya.K. Troshin. Pulsating and spinning detonation of gaseous mixtures in tubes. Dokl. Akad. Nauk SSSR, 125(1):110-113, 1959.

 

[32]
Yu.N. Denisov and Ya.K. Troshin. Structure of gaseous detonation in tubes. Sov. Phys. Tech. Phys., 5(4):419-431, 1960.

 

[33]
D. Desbordes. Celerites de propagation des detonations spheriques divergentes dans les melanges gazeux. These 3e cycle, Universite de Poitiers, 1973.

 

[34]
D. Desbordes. Correlation between shock flame predetonation zone size and cell spacing in critically initiated spherical detonations. Prog. Astronaut. Aeronaut., 106:166-180, 1986.

 

[35]
D. Desbordes. Transmission of overdriven plane detonations: Critical diameter as a function of cell regularity and size. Prog. Astronaut. Aeronaut., 114:170-185, 1988.

 

[36]
D. Desbordes. Aspects stationnaires et transitoires de la detonation dans les gaz: relation avec la structure cellulaire du front. PhD thesis, Universite de Poitiers, 1990.

 

[37]
D. Desbordes, C. Guerraud, L. Hamada, and H.N. Presles. Failure of the classical dynamic parameters relationships in highly regular cellular detonation systems. Prog. Astronaut. Aeronaut., 153:347-359, 1993.

 

[38]
D. Desbordes and M. Vachon. Critical diameter of diffraction for strong plane detonations. Prog. Astronaut. Aeronaut., 106:131-143, 1986.

 

[39]
EDL. Califonia Institute of Technology, unpublished.

 

[40]
D.H. Edwards. A survey of recent work on the structure of detonation waves. In 12th Symp. Int. Combust. Proc., pages 819-828, 1969.

 

[41]
D.H. Edwards, G. Hooper, and J.M. Morgan. An experimental investigation of the direct initiation of spherical detonations. Acta Astron., 3(1):117-130, 1976.

 

[42]
D.H. Edwards, G. Hooper, J.M. Morgan, and G.O. Thomas. The quasi-steady regime in critically initiated detonation waves. J. Phys. D, 11(13):2103-2117, 1978.

 

[43]
J.E. Elsworth and J.A. Eyre. The susceptibility of propene-propane/air mixtures to detonation. Combust. Flame, 55(2):237-243, 1984.

 

[44]
J.E. Elsworth, P.J. Shuff, and A. Ungut. "Galloping" gas detonations in the spherical mode. In Prog. Astronaut. Aeronaut., volume 94, pages 130-150, 1984.

 

[45]
H. Freiwald and H.W. Koch. Spherical detonations of acetylene-oxygen-nitrogen mixtures as a function of nature and strength of initiation. In 9th Symp. Int. Combust. Proc., pages 275-281, 1962.

 

[46]
R.S. Fry and J.A. Nicholls. Blast initiation and propagation of cylindrical detonations in MAPP-Air mixtures. AIAA J., 12(12):1703-1708, 1974.

 

[47]
K. Guhlmann, W. Pusch, and H.Gg. Wagner. Einflus des rohrdurchmessers auf die ausbreitung einer detonation in explosiblen gasgemischen teil ii: Einflus des ausgangsdruckes und des rohrdurchmessers auf die detonationsgrenzen der systeme CH_4-O_2-N_2 und CH_4-O_2-Ar. Ber. Bunsenges. Phys. Chem., 70(2):143-148, 1966.

 

[48]
C.M. Guirao, R. Knystautas, J. Lee, W. Benedick, and M. Berman. Hydrogen-air detonations. In 19th Symp. Int. Combust. Proc., pages 583-590, 1982.

 

[49]
C.M. Guirao, R. Knystautas, and J.H. Lee. A summary of hydrogen-air detonation experiments. Technical Report NUREG/CR-4961, SAND87-7128, Sandia National Laboratories/McGill University, 1989.

 

[50]
T. Hikita and al. et. A report on the experimental results of explosions and fires of liquid ethylene facilities. Technical report, Safety Information Centre, Institution for Safety of High Pressure Gas Engineering, Tokyo, Japan, 1975.

 

[51]
Z.W. Huang and Tiggelen Van. Experimental study of the fine structure in spin detonations. In Prog. Astronaut. Aeronaut., volume 153, pages 132-143, 1993.

 

[52]
K. Kailasanath and E.S. Oran. Power-energy relations for the direct initiation of gaseous detonations. In Prog. Astronaut. Aeronaut., volume 94, pages 38-54, 1984.

 

[53]
M.J. Kaneshige. Gaseous Detonation Initiation and Stabilization by Hypervelocity Projectiles. PhD thesis, California Institute of Technology, 1999.

 

[54]
R. Knystautas, C. Guirao, J.H. Lee, and A. Sulmistras. Measurement of cell size in hydrocarbon-air mixtures and predictions of critical tube diameter, critical initiation energy, and detonability limits. In Prog. Astronaut. Aeronaut., volume 94, pages 23-37, 1984.

 

[55]
R. Knystautas and J.H. Lee. Detonation parameters for the hydrogen-chlorine system. In Prog. Astronaut. Aeronaut., volume 114, pages 32-44, 1988.

 

[56]
R. Knystautas, J.H. Lee, and C.M. Guirao. The critical tube diameter for detonation failure in hydrocarbon-air mixtures. Combust. Flame, 48(1):63-83, 1982.

 

[57]
R. Knystautas, J.H.S. Lee, J.E. Shepherd, and A. Teodorczyk. Flame acceleration and transition to detonation in benzene-air mixtures. Combust. Flame, 115:424-436, 1998.

 

[58]
S.M. Kogarko. Detonation of methane-air mixtures and the detonation limits of hydrocarbon-air mixtures in a large-diameter pipe. Sov. Phys. Tech. Phys., 3(9):1904-1916, 1958.

 

[59]
S.M. Kogarko. Investigation of the pressure at the end of a tube in connection with rapid nonstationary combustion. Sov. Phys. Tech. Phys., 3(9):1875-1879, 1958.

 

[60]
S.M. Kogarko, V.V. Adushkin, and A.G. Lyamin. Investigation of spherical detonation of gas mixtures. Combust. Explos. Shock Waves (USSR), 1(2):22-34, 1965.

 

[61]
R.K. Kumar. Detonation cell widths in hydrogen-oxygen-diluent mixtures. Combust. Flame, 80(2):157-169, 1990.

 

[62]
S. Laberge, R. Knystautas, and J.H.S. Lee. Propagation and extinction of detonation waves in tube bundles. In Prog. Astronaut. Aeronaut., volume 153, pages 381-396, 1993.

 

[63]
Lee, J.H., Ramamurthi, and R. On the concept of the critical size of a detonation kernel. Combust. Flame, 27(3):331-340, 1976.

 

[64]
J.H. Lee. Initiation of gaseous detonation. Annu. Rev. Phys. Chem., 28:75-104, 1977.

 

[65]
J.H. Lee. Dynamic parameters of gaseous detonations. Annu. Rev. Fluid Mech., 16:311-336, 1984.

 

[66]
J.H. Lee, R. Knystautas, and A. Freiman. High speed turbulent deflagrations and transition to detonation in H_2-Air mixtures. Combust. Flame, 56(2):227-239, 1984.

 

[67]
J.H. Lee, B.H.K. Lee, and R. Knystautas. Direct initiation of cylindrical gaseous detonations. Phys. Fluids, 9(1):221-222, 1966.

 

[68]
J.H Lee and H. Matsui. A comparison of the critical energies for direct initiation of spherical detonation in acetylene-oxygen mixtures. Combust. Flame, 28(1):61-66, 1977.

 

[69]
J.H. Lee, R.I. Soloukhin, and A.K. Oppenheim. Current views on gaseous detonation. Astronaut. Acta, 14(5):565-584, 1969.

 

[70]
J.H.S. Lee, R. Knystautas, and C. Guirao. The link between cell size, critical tube diameter, initiation energy and detonability limits. In Fuel-Air Explosions, pages 157-187. University of Waterloo Press, 1982.

 

[71]
M.H. Lefebvre, E. Nzeyimana, and Tiggelen Van. Influence of fluorocarbons on H_2-O_2-Ar detonation: Experiments and modeling. In Prog. Astronaut. Aeronaut., volume 153, pages 144-161, 1993.

 

[72]
J.C. Libouton, M. Dormal, and Tiggelen Van. The role of chemical kinetics on structure of detonation waves. In 15th Symp. Int. Combust. Proc., pages 79-86, 1975.

 

[73]
E.L. Litchfield, M.H. Hay, and D.R. Forshey. Direct electrical initiation of freely expanding gaseous detonation waves. In 9th Symp. Int. Combust. Proc., pages 282-286, 1962.

 

[74]
Y.K. Liu, J.H. Lee, and R. Knystautas. Effect of geometry on the transmission of detonation through an orifice. Combust. Flame, 56(2):215-225, 1984.

 

[75]
A. Macek. Effect of additives on formation of spherical detonation waves in hydrogen-oxygen-mixtures. AIAA J., 1(8):1915-1918, 1963.

 

[76]
V.I. Makeev, Yu.A. Gostintsev, V.V. Strogonov, Yu.A. Bokhon, Yu.N. Chernushkin, and V.N. Kulikov. Combustion and detonation of hydrogen-air mixtures in free spaces. Combust. Explos. Shock Waves (USSR), 19(5):548-550, 1983.

 

[77]
A. Makris, T.J. Oh, J.H.S. Lee, and R. Knystautas. Critical diameter for the transmission of a detonation wave into a porous medium. In 25th Symp. Int. Combust. Proc., pages 65-71, 1994.

 

[78]
V.I. Manzhalei and V.V. Mitrofanov. The stability of detonation shock waves with a spinning configuration. Combust. Explos. Shock Waves (USSR), 9(5):614-620, 1973.

 

[79]
V.I. Manzhalei, V.V. Mitrofanov, and V.A. Subbotin. Measurement of inhomogeneities of a detonation front in gas mixtures at elevated pressures. Combust. Explos. Shock Waves (USSR), 10(1):89-95, 1974.

 

[80]
H. Matsui. On the measure of the relative detonation hazards of gaseous fuel-oxygen and air mixtures. 17th Symp. Int. Combust. Proc., pages 1269-1280, 1979.

 

[81]
V.V. Mitrofanov. Certain critical phenomena in detonation associated with momentum losses. Combust. Explos. Shock Waves (USSR), 19(4):531-535, 1983.

 

[82]
I.O. Moen. Transition to detonation in fuel air explosive clouds. J. Hazard M., 33(2):159-192, 1993.

 

[83]
I.O. Moen, M. Donato, R. Knystautas, and J.H. Lee. The influence of confinement on the propagation of detonations near the detonability limits. In 18th Symp. Int. Combust. Proc., pages 1615-1622, 1981.

 

[84]
I.O. Moen, J.W. Funk, S.A. Ward, G.M. Rude, and P.A. Thibault. Detonation length scales for fuel-air explosives. In Prog. Astronaut. Aeronaut., volume 94, pages 55-79, 1984.

 

[85]
I.O. Moen, S.B. Murray, D. Bjerketvedt, A. Rinnan, R. Knystautas, and J.H. Lee. Diffraction of detonation from tubes into a large fuel-air explosive cloud. In 19th Symp. Int. Combust. Proc., pages 635-644, 1982.

 

[86]
I.O. Moen, A. Sulmistras, G. Thomas, D. Bjerketvedt, and P.A. Thibault. Influence of cellular regularity on the behavior of gaseous detonations. In Prog. Astronaut. Aeronaut., volume 106, pages 220-243, 1986.

 

[87]
I.O. Moen, S.A. Ward, P.A. Thibault, J.H. Lee, R. Knystautas, T. Dean, and C.K. Westbrook. The influence of diluents and inhibitors on detonations. In 20th Symp. Int. Combust. Proc., pages 1717-1726, 1985.

 

[88]
S.B. Murray, J.J. Gottlieb, C. Coffey, I.O. Moen, J.H. Lee, and D. Remboutsikas. Direct initiation of detonation in unconfined ethylene-air mixtures-influence of bag size. In 7th Symp. Mil. App. Blast Sim., pages 6.3(b)1-6.3(b)28, 1981.

 

[89]
S.B. Murray and J.H. Lee. On the transformation of planar detonations to cylindrical detonation. Combust. Flame, 52(3):269-289, 1983.

 

[90]
S.B. Murray and J.H. Lee. The influence of yielding confinement on large-scale ethylene-air detonations. In Prog. Astronaut. Aeronaut., volume 94, pages 80-103, 1984.

 

[91]
S.B. Murray and J.H. Lee. The influence of physical boundaries on gaseous detonation waves. In Prog. Astronaut. Aeronaut., volume 106, pages 329-355, 1986.

 

[92]
J.A. Nicholls, M. Sichel, Z. Gabrijel, R.D. Oza, and R. Vandermolen. Detonability of unconfined natural gas-air clouds. In 17th Symp. Int. Combust. Proc., pages 1223-1234, 1979.

 

[93]
M.E. Nolan. A simple model for the detonation limits of gas mixtures. Combust. Sci. Technol., 7(2):57-63, 1973.

 

[94]
E. Nzeyimana and Tiggelen Van. Influence of tetrafluoromethane on hydrogen-oxygen-argon detonations. In Prog. Astronaut. Aeronaut., volume 133, pages 77-88, 1991.

 

[95]
S. Ohyagi, T. Yoshihashi, and Y. Harigaya. Direct initiation of planar detonation waves in methane/oxygen/nitrogen mixtures. In Prog. Astronaut. Aeronaut., volume 94, pages 3-22, 1984.

 

[96]
C. Paillard. Correlation between chemical kinetics and detonation structure for gaseous explosive systems. In Prog. Astronaut. Aeronaut., volume 133, pages 63-76, 1991.

 

[97]
M.D. Pedley, C.V. Bishop, F.J. Benz, C.A. Bennett, R.D. McClenagan, D.L. Fenton, R. Knystautas, J.H. Lee, O. Peraldi, G. Dupre, and J.E. Shepherd. Hydrazine vapor detonations. In Prog. Astronaut. Aeronaut., volume 114, pages 45-63, 1988.

 

[98]
U. Pfahl, E. Schultz, and J.E. Shepherd. Detonation cell width measurements for H_2-N_2O-N_2-O_2-CH_4-NH_3 mixtures. Technical Report FM-98-5, Graduate Aeronautical Laboratories, California Institute of Technology, 1998.

 

[99]
M. Plaster, R.D. McClenagan, F.J. Benz, J.E. Shepherd, and J.H.S. Lee. Detonation of cryogenic gaseous hydrogen-oxygen mixtures. In Prog. Astronaut. Aeronaut., volume 133, pages 37-55, 1991.

 

[100]
W. Pusch and H.G. Wagner. Investigation of the dependence of the limits of detonability on tube diameter. Combust. Flame, 6(3):157-162, 1962.

 

[101]
W. Pusch and H.G. Wagner. Einflus des rohrdurchmessers auf die ausbreitung einer detonation in explosiblen gasgemischen teil i: Inertgas - und rohrdurchmessereinflus auf die detonationsgrenzen einiger explosibler gasgemische. Ber. Bunsenges. Phys. Chem., 69(6):503-513, 1965.

 

[102]
A. Rinnan. Transmission of detonation through tubes and orifices. In Fuel-Air Explosions, pages 553-564. University of Waterloo Press, 1982.

 

[103]
J.E. Shepherd. Chemical kinetics and cellular structure of detonations in hydrogen sulfide and air. In Prog. Astronaut. Aeronaut., volume 106, pages 294-320, 1986.

 

[104]
J.E. Shepherd, I.O. Moen, S.B. Murray, and P.A. Thibault. Analyses of the cellular structure of detonations. In 21st Symp. Int. Combust. Proc., pages 1649-1658, 1988.

 

[105]
D.W. Stamps, W.B. Benedick, and S.R. Tieszen. Hydrogen-air-diluent detonation study for nuclear reactor safety analyses. Technical Report NUREG/CR-5525, SAND89-2398, Sandia National Laboratories, 1991.

 

[106]
D.W. Stamps and S.R. Tieszen. The influence of initial pressure and temperature on hydrogen-air-diluent detonations. Combust. Flame, 83(3):353-364, 1991.

 

[107]
R.A. Strehlow. The nature of transverse waves in detonations. Astronaut. Acta, 14(5):539-548, 1969.

 

[108]
R.A. Strehlow. Transverse waves in detonations: II. structure and spacing in H_2-O_2, C_2H_2-O_2, C_2H_4-O_2 and CH_4-O_2 systems. AIAA J., 7(3):492-496, 1969.

 

[109]
R.A. Strehlow. Multi-dimensional detonation wave structure. Astronaut. Acta, 15(5):345-357, 1970.

 

[110]
R.A. Strehlow, R. Liangminas, R.H. Watson, and J.R. Eyman. Transverse wave structure in detonations. In 11th Symp. Int. Combust. Proc., pages 683-692, 1967.

 

[111]
R.A. Strehlow, R.E. Maurer, and S. Rajan. Transverse waves in detonations: I. spacings in the hydrogen-oxygen system. AIAA J., 7(2):323-328, 1969.

 

[112]
S.R. Tieszen, M.P. Sherman, W.B. Benedick, and M. Berman. Detonability of H_2-air-diluent mixtures. Technical Report NUREG/CR-4905, SAND85-1263, Sandia National Laboratories, 1987.

 

[113]
S.R. Tieszen, M.P. Sherman, W.B. Benedick, J.E. Shepherd, R. Knystautas, and J.H.S. Lee. Detonation cell size measurements in hydrogen-air-steam mixtures. In Prog. Astronaut. Aeronaut., volume 106, pages 205-219, 1986.

 

[114]
S.R. Tieszen, D.W. Stamps, C.K. Westbrook, and W.J. Pitz. Gaseous hydrocarbon-air detonations. Combust. Flame, 84(3):376-390, 1991.

 

[115]
S. Tsuge, H. Furukawa, M. Matsukawa, and T. Nakagawa. On the dual property and the limit of hydrogen-oxygen free detonation waves. Astronaut. Acta, 15(5):377-386, 1970.

 

[116]
A. Ungut, P.J. Shuff, and J.A. Eyre. Initiation of unconfined gaseous detonation by diffraction of a detonation front emerging from a pipe. In Prog. Astronaut. Aeronaut., volume 94, pages 523-545, 1984.

 

[117]
P.A. Urtiew and C.M. Tarver. Effects of cellular structure on the behaviour of gaseous detonation waves under transient conditions. In Prog. Astronaut. Aeronaut., volume 75, pages 370-384, 1981.

 

[118]
Molen Vander and J.A. Nicholls. Blast wave initiation energy for the detonation of methane-ethane-air mixtures. Combust. Sci. Technol., 21(1):75-78, 1979.

 

[119]
M. Vandermeiren and Tiggelen Van. Cellular structure in detonation of acetylene-oxygen mixtures. In Prog. Astronaut. Aeronaut., volume 94, pages 104-117, 1984.

 

[120]
M. Vandermeiren and Tiggelen Van. Role of an inhibitor on the onset of gas detonations in acetylene mixtures. In Prog. Astronaut. Aeronaut., volume 114, pages 186-200, 1988.

 

[121]
A.A. Vasil'ev. Geometric limits of gas detonation propagation. Combust. Explos. Shock Waves (USSR), 18(2):245-249, 1982.

 

[122]
A.A. Vasil'ev. Critical initiation of a gas detonation. Combust. Explos. Shock Waves (USSR), 19(1):115-123, 1983.

 

[123]
A.A. Vasil'ev and V.V. Grigor'ev. Critical conditions for gas detonation in sharply expanding channels. Combust. Explos. Shock Waves (USSR), 16(6):579-585, 1980.

 

[124]
A.A. Vasil'ev, Yu.A. Nikolaev, and Ul'yanitskii. Analysis of the cell parameters of a multifront gas detonation. Combust. Explos. Shock Waves (USSR), 13(3):338-341, 1977.

 

[125]
B.V. Voitsekhovskii, V.V. Mitrofanov, and M.E. Topchian. The structure of a detonation front in gases. Technical Report FTD-MT-64-527 (AD 633821), Wright-Patterson AFB, 1966.

 

[126]
C.K. Westbrook, W.J. Pitz, and P.A. Urtiew. Chemical kinetics of propane oxidation in gaseous detonations. In Prog. Astronaut. Aeronaut., volume 94, pages 151-174, 1984.

 

[127]
C.K. Westbrook and P.A. Urtiew. Chemical kinetic prediction of critical parameters in gaseous detonation. In 19th Symp. Int. Combust. Proc., pages 615-623, 1982.

 

[128]
P. Wolanski, C.W. Kauffman, M. Sichel, and J.A. Nicholls. Detonation of methane-air mixtures. In 18th Symp. Int. Combust. Proc., pages 1651-1660, 1981.

 

[129]
Ia.B. Zeldovich, S.M. Kogarko, and N.N. Simonov. An experimental investigation of spherical detonation in gases. Sov. Phys. Tech. Phys., 1:1689-1713, 1956.

 

[130]
R. Zitoun, D. Desbordes, C. Guerraud, and B. Deshaies. Direct initiation of detonation in cryogenic gaseous H_2-O_2 mixtures. Shock Waves, 4(6):331-337, 1995.

GALCIT Home Page Edited Last: May 27, 2002
jeshep@galcit.caltech.edu

Prev Up