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Bibliography

[1]
Abbott M.M. and Van Ness H.C. Theory and problems of thermodynamics. Schaum's outline series. McGraw-Hill, New York, 1972.
[2]
Abdel-Gayed R.G. and Bradley D. Dependence of turbulent burning velocity on turbulent Reynolds number and ratio of laminar burning velocity to r.m.s. turbulent velocity. In Proceedings of the Sixteenth Symposium (International) on Combustion, pages 1725-1735, Pittsburgh, 1977. The Combustion Institute.
[3]
Abdel-Gayed R.G., Bradley D., and Lwakabamba S.B. The transition from spark ignition to fully developed turbulent flame. In First International Specialist Meeting of the Combustion Institute, Bordeaux, France, pages 94-99. The Combustion Institute, 1981.
[4]
Abdel-Gayed R.G., Ali-Khishali K.J., and Bradley D. Turbulent burning velocity and flame straining in explosions. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 391:393-414, 1984.
[5]
Abdel-Gayed R.G., Bradley D., and Lawes M. Turbulent burning velocities: a general correlation in terms of straining rates. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 414:389-413, 1987.
[6]
Abinov A.G., Plotnikov V.M., Shebeko Yu.N., Eremenko O.Ya., Fialkov B.S., Muravlev V.K., Abramovich A.L., and Chekhovskikh A.M. Shock wave formation in flame propagation in a gas-air mixture within a tube. Combustion Explosion and Shock Waves, 23(1):37-40, 1987.
[7]
Abdo D., Magnaud H., Paillere H., Studer E., and Bachellerie E. Experimental and numerical studies of inerting efficiency for H2-risk mitigation. Proceedings of the International Topical Meeting on Nuclear Thermal-Hydraulics, NURETH-10, Seoul, Korea, 5-9 October 2003, 2003.
[8]
Abid S., Dupre G., and Paillard C. Oxidation of gaseous unsymmetrical dimethylhydrazine at high temperatures and detonation of UDMH/O2 mixtures. Progress in Astronautics and Aeronautics, 153:162-181, 1991.
[9]
Absil L.H.J. Analysis of the laser Doppler measurement technique for application in turbulent flows. PhD thesis, Delft University of Technology, Delft, The Netherlands, June 1995. Faculty of Aerospace Engineering.
[10]
Aceves S.M., Berry G.D., and Rambach G.D. Insulated pressure vessels for hydrogen storage on vehicles. International Journal of Hydrogen Energy, 23:583-591, 1998.
[11]
Ackelid U., Armgarth M., Spetz A., and Lundstrom I. Ethanol sensitivity of palladium-gate metal-oxide-semiconductor structures. IEEE Electron Device Letters, 7:353-355, 1986.
[12]
Ackerman M. and Williams F.A. Simplified model for droplet combustion in a slow convective flow. Combustion and Flame, 143:599-612, 2005.
[13]
Adamczyk A.A. and Strehlow R.A. Terminal energy distribution of blast waves from bursting spheres. Technical Report NASA-CR-2903, NASA, Washington D.C., September 1977.
[14]
Adushkin V.V., Fortov V.E., Gostintsev Yu.A., Istratov A.G., Karpov V.P., Kidin N.I., and Shatskikh Yu.V. Spherical gaseous flames. propagation and transition to detonation. In Conference on Combustion and Detonation: Zeldovich memorial II, page 12, 30 Aug - 3 Sep 2004.
[15]
Aerometrics, Inc., 755 N. Mary Avenue, Sunnyvale, CA 94086, USA. Real-Time Signal Analyzer. TU Delft, Job Number 3355, System Manual.
[16]
Aerometrics, Inc., 755 N. Mary Avenue, Sunnyvale, CA 94086, USA. DataVIEW Manual.
[17]
Agafonov G.L. and Frolov S.M. Computation of the detonation limits in gaseous hydrogen-containing mixtures. Combustion Explosion and Shock Waves, 30:91-100, 1994.
[18]
Agnew J.T. and Graiff L.B. The pressure dependence of laminar burning velocity by the spherical bomb method. Combustion and Flame, 5:209-219, 1961.
[19]
Agranat A., Cheng Z., and Tchouvelev A. CFD modeling of hydrogen releases and dispersion in hydrogen energy station. www.hysafe.org, xxx.
[20]
Agrawal D.C. and Menon V.J. Boiling and the Leidenfrost effect in a gravity-free zone: a speculation. Physics Education, 29:39-42, 1994.
[21]
Ahmad Z. Principles of corrosion engineering and corrosion control. Butterworth-Heinemann/IChemE Series. Elsevier, Amsterdam, 2006.
[22]
AIAA G-077-1998. Guide for the verification and validation of computational fluid dynamics simulations, 1998.
[23]
AIAA G-095-2004. Guide to safety of hydrogen and hydrogen system, ANSI/AIAA standard. American Institute for Aeronautics and Astronautics, Reston, Virginia, 2004.
[24]
AIChE CCPS. Guidelines for hazard evaluation procedures, second edition with worked examples. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1992.
[25]
AIChE CCPS. Plant guidelines for technical management of chemical process safety. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1992.
[26]
AIChE CCPS. Guidelines for chemical reactivity evaluation and application to process design. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1993.
[27]
AIChE CCPS. Guidelines for engineering design for process safety. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1993.
[28]
AIChE CCPS. Guidelines for evaluating the characteristics of vapor cloud explosions, flash fires, and bleves. Center for Chemical Process Safety, American Institute of Chemical Engineers, New York, 1994.
[29]
AIChE CCPS. Guidelines for implementing process safety management systems. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1994.
[30]
AIChE CCPS. Guidelines for preventing human error in process safety. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1994.
[31]
AIChE CCPS. Guidelines for chemical reactivity evaluation and application to process design. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1995.
[32]
AIChE CCPS. Guidelines for evaluating process plant buildings for external explosions and fires. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1996.
[33]
AIChE CCPS. Guidelines for integrating process safety management, environment, safety, health, and quality. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1996.
[34]
AIChE CCPS. Guidelines for postrelease mitigation technology in the chemical process industry. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1997.
[35]
AIChE CCPS. Guidelines for pressure relief and effluent handling systems. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1998.
[36]
AIChE CCPS. Guidelines for consequence analysis of chemical releases. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1999.
[37]
AIChE CCPS. Guidelines for chemical process quantitative risk analysis, second edition. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 2000.
[38]
AIChE CCPS. Layer of protection analysis, Simplified process risk assessment. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 2001.
[39]
AIChE CCPS. Guidelines for fire protection in chemical, petrochemical, and hydrocarbon processing facilities. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 2003.
[40]
AIChE CCPS. Guidelines for investigating chemical process incidents, second edition. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 2003.
[41]
AIChE CCPS. Guidelines for safe handling of powders and bulk solids. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 2005.
[42]
AIChE CCPS. Safe design and operation of process vents and emission control systems. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 2006.
[43]
AIChE CCPS. Guidelines for risk based process safety. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 2007.
[44]
AIChE CCPS. Guidelines for safe and reliable instrumented protective systems. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 2007.
[45]
Akbar R. Mach reflection of gaseous detonations. PhD thesis, Rensselaer Polytechnic Institute, New York, United States of America, August 1997.
[46]
Akbar R., Kaneshige M., Schultz E., and Shepherd J.E. Detonations in H2-N2O-CH4-NH3-O2-N2 mixtures. Technical Report FM97-3, Graduate Aeronautical Laboratries, California Institute of Technology, Pasadena, CA 91125, 1997.
[47]
Alcock J.L., Shirvill L.C., and Cracknell R.F. Compilation of existing safety data on hydrogen and comparative fuels. Shell Global Solutions, Deliverable Report, EIHP2, Project funded by the European Community under the Fifth Framework Programme (1998-2002), Contract ENK6-CT2000-00442, May 2001.
[48]
Alekseev V.I., Kuznetsov M.S., Yankin Y. G., and Dorofeev S.B. Experimental study of flame acceleration and DDT under conditions of transverse venting. Journal of Loss Prevention in the Processes Industries, 14:591-596, 2001.
[49]
Alexiou A., Andrews G.E., and Phylaktou H. Side-vented gas explosions in a long vessel: the effect of vent position. Journal of Loss Prevention in the Processes Industries, 9:351-356, 1996.
[50]
Ali-Khishali K.J., Bradley D., and Hall S.F. Turbulent combustion of near limit hydrogen-air mixtures. Combustion and Flame, 54:61-70, 1983.
[51]
Allen D.A. The effects of transport and convection on the global atmospheric distribution of trace species as determined by a chemical and transport model. PhD thesis, University of Maryland, Maryland, United sataes of America, 1996.
[52]
Allen M.T., Yetter R.A., and Dryer F.L. High pressure studies of moist carbon monoxide nitrous oxide kinetics. Combustion and Flame, 109:449-470, 1997.
[53]
Alliat I. and Heerings J. Assessing the durability and integrity of natural gas infrastructures for transporting and distributing mixtures of hydrogen and natural gas. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[54]
Alpert R.L. and Toong T.Y. Periodicity in exothermic hypersonic flows about blunt projectiles. Acta Astronautica, 17:539-560, 1972.
[55]
George W.K., Alpert R.L., and Tamanini F. Turbulence measurements in an axi-symmetric buoyant plume. International Journal of Heat and Mass Transfer, 20:1145-1154, 1977.
[56]
Ambrosini W., Forgione N., Oriolo F., and Parozzi F. Mixing of dense or light gases with turbulent air: a fast-running model for lumped parameter codes. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[57]
Aminallah M., Brossard J., and Vasiliev A. Cylindrical detonations in methane-oxygen-nitrogen mixtures. Progress in Astronautics and Aeronautics, 153:203-228, 1993.
[58]
Amyotte P.R., Chipett S., and Pegg M.J. Effects of turbulence on dust explosions. Progress in Energy and Combustion Science, 14:293-310, 1989.
[59]
Amyotte P.R. and Pegg M.J. Lycopodium dust explosions in a Hartmann bomb: effects of turbulence. Journal of Loss Prevention in the Process Industries, 2:87-94, April 1989.
[60]
Amyotte P.R., Baxter B.K., and Pegg M.J. Influence of initial pressure on spark-ignited dust explosions. Journal of Loss Prevention in the Process Industries, 3:261-263, April 1990.
[61]
Amyotte P.R., Mintz K.J., Pegg M.J., Sun Y.-H., and Wilkie K.I. Effects of methane admixture, particle size and volatile content on the dolomite inerting requirements of coal dust. Journal of Hazardous Materials, 27:187-203, 1991.
[62]
Andersen V., Paulsen J.L., and Markert F. A survey among experts of safety related to the use of hydrogen as an energy carrier. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[63]
Anderson J.D. Fundamentals of Aerodynamics. Aerospace Science Series. Mcgraw-Hill, second edition, 1991.
[64]
Anderson T.J. and Dabora E.K. Measurements of normal detonation wave structure using Rayleigh imaging. In Proceedings of the Twenty-Fourth Symposium (International) on Combustion, pages 1853-1860, Pittsburgh, 1992. The Combustion Institute.
[65]
Andresen P. and Reckers W. The structure of gaseous detonations as revealed by laser-induced fluorescence of the OH-radical. Z. Phys. Chem. Neue Folge, 175:129-143, 1992.
[66]
Andrews G.E. and Bradley D. The burning velocity of methane-air mixtures. Combustion and Flame, 19:275-288, 1972.
[67]
Andrews G.E. and Bradley D. Determination of burning velocities: A critical review. Combustion and Flame, 18:133-153, 1972.
[68]
Andrews G.E., Bradley D., and Lwakabamba S. B. Turbulence and turbulent flame propagation - A critical appraisal. Combustion and Flame, 24:285-304, 1975.
[69]
Angelberger C., Veynante D., Egolfopoulos F., and Poinsot T. Large eddy simulations of combustion instabilities in premixed flames. Center for Turbulence Research, Proceedings of the Summer Program, 1998.
[70]
Angers B., Hourri A., Benard P., Tessier P., and Perrin J. Simulations of hydrogen releases from a storage tank: dispersion and consequences of ignition. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[71]
Angers B., Hourri A., Benard P., Tessier P., and Perrin J. Simulations of hydrogen releases from high pressure storage systems. Paper presented at the Sixteenth World Hydrogen Energy Conference, Lyon, France, 13-16 June 2006. International Association for Hydrogen Energy.
[72]
Anisimkin V.I. Penza M., Osipenko V.A., and Vasanelli L. Gas thermal conductivity sensor based on SAW. IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control, 42:978-980, 1995.
[73]
ANSI/CSA America FC 1 2004. Csa america standard for stationary fuel cell power systems, First Edition. American National Standards Institute, ANSI, 2004. American National Standard.
[74]
Arendt J.S. and Lorenzo D.K. Evaluating process safety in the chemical industry, A user's guide to quantitative risk analysis. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 2000.
[75]
Aris R. Vectors, Tensors, and the Basic Equations of Fluid Mechanics. Dover Publications, New York, 1989.
[76]
Armenio V., Piomelli U., and Fiorotto V. Effect of the subgrid scales on particle motion. Physics of Fluids, 11:3030-3042, 1999.
[77]
Armgarth M., Nylander C., Svensson C., and Lundström I. Hydrogen-induced oxide surface charging in palladium-gate metal-oxide-semiconductor devices. Journal of Applied Physics, 56:2956-2963, 1984.
[78]
Arndt M. Micromachined thermal conductivity hydrogen detector for automotive applications. Sensors, Proceedings of IEEE, 2:1571-1575, 2002.
[79]
Arpaci V.S. and Agarwal A. Scaling laws of turbulent ceiling fires. Combustion and Flame, 116:84-93, 1999.
[80]
The Association for the Study of Peak Oil. Bp confesses to depletion. ASPO Newsletter, number 23, article 112, November 2002.
[81]
Ascher U.M. and Petzold L.R. Computer Methods for Ordinary Differential Equations and Differential-Algebraic Equations. Society for Industrial and Applied Mathematics, Philadelphia, 1998.
[82]
Assessment and Standards Division Office of Transportation and Air Quality, United States Environmental Protection Agency. Safety and security analysis: investigative report by NASA on proposed EPA hydrogen-powered vehicle fueling station. EPA420-R-04-016, 2004.
[83]
Astbury G.R. and Hawksworth S.J. Spontaneous ignition of hydrogen leaks: a review of postulated mechanisms. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[84]
Astbury G.R. and Hawksworth S.J. Spontaneous ignition of hydrogen leaks: a review of postulated mechanisms. International Journal of Hydrogen Energy, 32:2178-2185, 2007.
[85]
Atashbar M.Z., Kalantar zadeh K., Ippolitto S.J., and Wlodarski W. Palladium nanowire hydrogen sensor based on a SAW transducer. Sensors, Proceedings of IEEE, pages 1363-1365, 2005.
[86]
Atkins P.W. Physical Chemistry. Oxford University Press, Oxford, third edition, 1987.
[87]
Atkins P.W. and de Paula J. Physical Chemistry. Oxford University Press, Oxford, seventh edition, 2002.
[88]
Atkins P.W. and de Paula J. Physical Chemistry. Oxford University Press, Oxford, eighth edition, 2006.
[89]
Atkinson R., Bull D.C., and Shuff P.J. Initiation of spherical detonation in hydrogen-air. Combustion and Flame, 39:287-300, 1980.
[90]
Auban O., Zboray R., and Paladino D. Investigation of large-scale gas mixing and stratification phenomena related to LWR containment studies in the PANDA facility. Nuclear Engineering and Design, 237:409-419, 2007.
[91]
Aung K.T., Hassan M.I., and Faeth G.M. Flame stretch interactions of laminar premixed hydrogen/air flames at normal temperature and pressure. Combustion and Flame, 109:1-24, 1997.
[92]
Aung K.T., Hassan M. I., and Faeth G.M. Effects of pressure and nitrogen dilution on flame/stretch interactions of laminar premixed H2/O2/N2 flames. Combustion and Flame, 112:1-15, 1998.
[93]
Austin J.M. The Role of Instability in Gaseous Detonation. PhD thesis, California Institute of Technology, California, United States of America, May 2003.
[94]
Austin J.M. and Shepherd J.E. Detonations in hydrocarbon fuel blends. Combustion and Flame, 132:73-90, 2003.
[95]
Australian Office of Energy. Guidelines for approval of industrial gas appliances (type B appliances) in Western Australia. TSD T069 0101, Developed and issued by the Director of Energy Safety, Office of Energy, Western Australia, in the interests of gas safety, January 2001.
[96]
Ayres F. Theory and problems of differential equations. Schaum's outline series. McGraw-Hill, New York, 1972.
[97]
Babkin V.S., Kozachenko L.S., and Kuznetsov I.L. The effect of pressure on the normal burning velocity of a methane-air mixture. Zhurnal Prikladnoi Mekhaniki i Tekhnicheskoi Fizika, 3:145-149, 1964. English translation in 1966 by Scripta Technica, Inc., 275 Madison ave., New York 16, N.Y., Translated for the U.S. Department of the Interior, Bureau of Mines, Washington, D.C.
[98]
Babkin V.S. and Kozachenko L.S. Study of normal burning velocity in methane-air mixtures at high pressures. Fizika Goreniya i Vzryva, 2:77-86, 1966. English translation in: Combustion, Explosion and Shock Waves, 2:46-52.
[99]
Babkin V.S., Vyun A.V, and Kozachenko L.S. The determination of burning velocity in a constant volume bomb by pressure recording. Fizika Goreniya i Vzryva, 3:362-370, 1967. English translation in: Combustion, Explosion and Shock Waves.
[100]
Babkin V.S., Vyhristyuk A.Ya., Krivulin V.N., and Kudryavcev E.A. Convective instability of spherical flames. Archivum Combustionis, 4:321-337, 1984.
[101]
Babkin V.S., Bukharov V.N., and Molkov V.V. Normal flame velocity of propane-air mixtures at high pressures and temperatures. Fizika Goreniya i Vzryva, 25:57-63, 1969.
[102]
Babkin V.S. Institute of chemical kinetics and combustion. Institute of Chemical Kinetics and Combustion, Novosibirsk, Russia, 2003. private communication.
[103]
Babrauskas V. Heat release rates. In P.J. DiNenno, D. Drysdale, C.L. Beyler, W.D. Walton, R.L.P. Custer, J.R. Hall, and J.M. Watts, editors, SFPE Handbook of Fire Protection Engineering, Section 3: Hazard Calculations, chapter 3-1, pages 3-1 - 3-37. National Fire Protection Association, Quincy, Massachusetts, third edition, 2002.
[104]
Babrauskas V. Fire modeling tools for FSE: are they good enough? Journal of Fire Protection Engineering, 8:87-96, 1996.
[105]
Bach G.G., Knystautas R., and Lee J.H.S. Direct initiation of spherical detonations in gaseous explosives. In Proceedings of the Twelfth Symposium (International) on Combustion, pages 853-864, Pittsburgh, 1969. The Combustion Institute.
[106]
Bach G.G., Knystautas R., and Lee J.H. Initiation criteria for diverging gaseous detonations. In Proceedings of the Thirteenth Symposium (International) on Combustion, pages 1097-1110, Pittsburgh, 1971. The Combustion Institute.
[107]
Bach G.G., Kuhl A.L., and Oppenheim A.K. On blast waves in exponential atmospheres. Journal of Fluid Mechanics, 71:105-122, 1975.
[108]
Bachalo W.D. Laser doppler velocimetry and phase doppler particle analysis. Lecture notes prepared by William D. Bachalo.
[109]
Baek S.W., Kim J.J., Kim H.S., and Kang S.H. Effects of addition of solid particles on thermal characteristics in hydrogen-air flame. Combustion Science and Technology, 174:99-116, 2002.
[110]
Bagster D.F. and Schubach S.A. The prediction of jet-fire dimensions. Journal of Loss Prevention in the Process Industries, 9:241-245, 1996.
[111]
Bainbridge K.T. Trinity. Technical Report LA-6300-H, Los Alamos Scientific Laboratory, Los Alamos, New Mexico 87545, United States of America, May 1976.
[112]
Baines W.D. and Turner J.S. Turbulent buoyant convection from a source in confined region. Journal of Fluid Mechanics, 37:51-80, 1969.
[113]
Baker W.E., Cox P.A., Westine P.S., Kulesz J.J., and Strehlow R.A. Explosion Hazards and Evaluation, volume 5 of Fundamental studies in engineering. Elsevier Scientific Publishing Company, New York, 1983.
[114]
Bakke J.R. and Hjertager B.H. The effect of explosion venting in empty vessels. International Journal for Numerical Methods in Engineering, 24:129-140, 1987.
[115]
Balakrishnan G. and Williams F.A. Turbulent combustion regimes for hypersonic propulsion employing hydrogen-air diffusion flames. Journal of Propulsion and Power, 10:434-437, 1995.
[116]
Ballal D.R. and Lefebvre A.H. Ignition and flame quenching of flowing heterogeneous fuel-air mixtures. Combustion and Flame, 35:155-168, 1979.
[117]
Ballal D.R. The influence of laminar burning velocity on the structure and propagation of turbulent flames. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 367:485-502, 1979.
[118]
Ballal D.R. Ignition and flame quenching of quiescent dust clouds of solid fuels. Philosophical Transactions of the Society of London, Series A: Mathematical and Physical Sciences, 369:479-500, 1980.
[119]
Ballal D.R. and Lefebvre A.H. A general model of spark ignition for gaseous and liquid fuel-air mixtures. In Proceedings of the Eighteenth Symposium (International) on Combustion, pages 1737-1746, Pittsburgh, 1981. The Combustion Institute.
[120]
Ballal D.R. Further studies on the ignition and flame quenching of quiescent dust clouds. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 385:1-19, 1983.
[121]
Ballal D.R. Flame propagation through dust clouds of carbon, coal, aluminium and magnesium in an environment of zero gravity. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 385:21-51, 1983.
[122]
Baraldi D., Heitsch M., and Wilkening H. CFD simulations of hydrogen combustion in a simplified EPR containment with CFX and REACFLOW. Nuclear Engineering and Design, 237:1668-1678, 2007.
[123]
Barassin A., Lisbet R., Combourieu J., and Laffitte P. Etude de l'influence de la temperature initiale sur la vitesse normale de deflagration de melanges methane-air en fonction de la concentration. Bulletin de la Societe Chimique de France, 104(7):2521-2526, 1967.
[124]
Bardon M.F and Fletcher D.E. Dust explosions. Science Progress (Oxford), 68:459-473, 1983.
[125]
Barenblatt G.I., Guirguis R.H., Kamel M.M., Kuhl A.L., Oppenheim A.K., and Zeldovich Ya.B. Self-similar explosion waves of variable energy at the front. Journal of Fluid Mechanics, 99:841-858, 1980.
[126]
Barenblatt G.I. Scaling. Cambridge texts in applied mathematics. Cambridge University Press, Cambridge, 2003.
[127]
Barlow R.S., Dibble R.W., Chen J.-Y., and Lucht R.P. Effect of Damkohler number on superequilibrium OH concentration in turbulent nonpremixed jet flames. Combustion Science and Technology, 82:235-251, 1990.
[128]
Barlow R.S., Smith N.S.A., Chen J.-Y., and Bilger R.W. Nitric oxides formation in dilute hydrogen jet flames: isolation of the effects of radiation and turbulent-chemistry submodels. Combustion and Flame, 117:4-31, 1999.
[129]
Barnard J.A. and Bradley J.N. Flame and Combustion. Chapman and Hall, London, 1985.
[130]
Baronov G.S., Grigoriev S.A., Kalinnikov A.A., and Fateev V.N. Development of hydrogen sensors and recombiners. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[131]
Barreto L., Makihira A., and Riahia K. The hydrogen economy in the 21st century: a sustainable development scenario. International Journal of Hydrogen Energy, 28:267-284, 2003.
[132]
Barry T.F. Fire exposure profile modeling: some threshold damage limit (TDL) data. A whitepaper by TFBarry Publications, September 2003.
[133]
Bartenev A.M. and Gelfand B.E. Spontaneous initiation of detonations. Progress in Energy and Combustion Science, 26:29-55, 2000.
[134]
Barth T.J. and Jespersen D.C. The design and application of upwind schemes on unstructured meshes. AIAA-paper 89-0366, 1989.
[135]
Barth T.J. and Frederickson P.O. Higher order solution of the Euler equations on unstructured grids using quadratic reconstruction. AIAA-paper 90-0013, 1990.
[136]
Barthel H.O. Predicted spacings in hydrogen-oxygen-argon detonations. Physics of Fluids, 17:1547-1553, 1974.
[137]
Barthelemy H. and Allidieres L. Gaseous hydrogen refuelling stations : Selection of materials for hydrogen high pressure fuelling connectors. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[138]
Barthelemy H. Compatibility of metallic materials with hydrogen. A lecture presented at the First European Summer School on Hydrogen Safety, 15-24 August 2006.
[139]
Bartholome E. Flame velocity in stationary burning flames. Naturwissenschaften, 36:206, 1949.
[140]
Bartknecht W. Explosions: Course Prevention Protection. Springer Verlag, 1981. Translation of the second edition of Explosionen, Ablauf und Schutzmaßnahmen by H. Burg and T. Almond.
[141]
Bartknecht W. Dust Explosions: Course, Prevention, Protection. Springer Verlag, 1989. Translation of Staubexplosionen by R.E. Bruderer, G.N. Kirby and R. Siwek.
[142]
Bascombe K.N. Calculation of ignition delays in the hydrogen air system. Combustion and Flame, 11:2-10, 1967.
[143]
Bassi A., Bertrand F., Barbier D., Aujollet P., and Anzieu P. Massive H2 production with nuclear heating, safety approach for coupling a vhtr with an iodine sulfur process cycle. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[144]
Batchelor G.K. and Townsend A.A. Decay of vorticity in the isotropic turbulence. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 190:534-550, 1947.
[145]
Batchelor G.K. and Townsend A.A. Decay of isotropic turbulence in the initial period. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 193:539-558, 1948.
[146]
Batchelor G.K. and Townsend A.A. Decay of isotropic turbulence in the final period. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 194:527-543, 1948.
[147]
Batchelor G.K. The theory of homogeneous turbulence. Cambridge Science Classics. Cambridge University Press, 1993.
[148]
Batchelor G.K. An introduction to fluid dynamics. Cambridge University Press, Cambridge, 1994.
[149]
Batina J.T. Three-dimensional flux-split Euler schemes involving unstructured dynamic meshes. AIAA-paper 90-1649, 1990.
[150]
Batley G.A., McIntosh A.C., and Brindley J. Baroclinic distortion of laminar flames. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 452:199-221, 1996.
[151]
Bauer P., Brochet C., and Presles H.N. The influence of initial pressure on critical diameters of gaseous explosive mixtures. Progress in Astronautics and Aeronautics, 94:118-129, 1984.
[152]
Bauer P. Contribution a l'etude de la detonation des melanges explosifs gazeux a pression initiale elevee. PhD thesis, Universite de Poitiers, Poitiers, France, 1985.
[153]
Bauer P., Presles H.N., Heuze O., and Brochet C. Measurement of cell lengths in the detonation front of hydrocarbon oxygen and nitrogen mixtures at elevated initial pressures. Combustion and Flame, 64:113-123, 1986.
[154]
Baum M., Poinsot T., and Thevenin D. Accurate boundary conditions for multicomponent reactive flows. Journal of Computational Physics, 116:247-261, 1994.
[155]
Beccantini A. and Pailhories P. Use of a finite volume scheme for simulation of hydrogen explosions. IAEA/NEA Technical meeting on use of CFD for safety analysis of reactor systems, including containment. Pisa, Italy, 11-13 November 2002, 2002.
[156]
Bechert K. Theorie der Verbrennungsgeschwindigkeit in brennbaren Gemischen. Zeitschrift für Naturforschung, 3A:584-590, 1948.
[157]
Bechert K. Portugaliae Physica, 3:29, 1949.
[158]
Bechert K. Zur Theorie der Verbrennungsgeschwindigkeit, mit einer Anwendung auf die Ozonverbrennung. Annalen der Physik, 439:191-230, 1949.
[159]
Bechert K. Zur Theorie der Kohlenwasserstoffverbrennung. Die Naturwissenschaften, 37:112, 1950.
[160]
Bechtold J.K. and Matalon M. Hydrodynamic and diffusion effects on the stability of spherically expanding flames. Combustion and Flame, 67:77-90, 1987.
[161]
Becker H.A., Hottel H.C., and Williams G.C. Mixing and flow in ducted turbulent jets. In Proceedings of the Ninth Symposium (International) on Combustion, pages 7-20, London, 1963. Academic Press.
[162]
Bedard-Tremblay L., Fang L., Bauwens L., Cheng Z., and Tchouvelev A.V. Numerical simulation of hydrogen-air detonation for damage assessment in realistic accident scenarios. Journal of Loss Prevention in the Processes Industries, 21:154-161, 2008.
[163]
Bedford T. and Cooke R. Probabilistic Risk Analysis, Foundations and Methods. Cambridge University Press, Cambridge, United Kingdom, 2001.
[164]
Beer F.P. and Johnston E.R. Mechanics of Materials. McGraw-Hill, New York, 1981.
[165]
Beer F.P. and Johnston E.R. Engineering Mechanics: Statics. McGraw-Hill, New York, fifth edition, 1992.
[166]
Beeson H.D., McClenagan R.D., Bishop C.V., Benz F.J., Pitz W.J., Westbrook C.K., and Lee J.H.S. Detonability of hydrocabon fuels in air. Progress in Astronautics and Aeronautics, 133:19-36, 1991.
[167]
Belles F.E. Detonability and chemical kinetics: Prediction of limits of detonability of hydrogen. In Proceedings of the Seventh Symposium (International) on Combustion, pages 745-751, London, 1959. Butterworths.
[168]
Benard P., Mustafa V., and Hay D.R. Safety assessment of hydrogen disposal on vents and flare stacks at high flow rates. International Journal of Hydrogen Energy, 24:489-495, 1999.
[169]
Benedick W.B., Kennedy J.D., and Morosin B. Detonation limits of unconfined hydrocarbon-air mixtures. Combustion and Flame, 15:83-84, 1970.
[170]
Benedick W.B., Knystautas R., and Lee J.H.S. Large-scale experiments on the transmission of fuel-air detonations from two-dimensional channels. Progress in Astronautics and Aeronautics, 94:546-555, 1984.
[171]
Benedick W.B., Guirao C.M., Knystautas R., and Lee J.H. Critical charge for the direct initiation of detonation in gaseous fuel-air mixtures. Progress in Astronautics and Aeronautics, 106:181-202, 1986.
[172]
Benson S.W. The Foundations of Chemical Kinetics. Malabar, Krieger, 1982.
[173]
Bent H.A. Droplet on a hot metal spoon. American Journal of Physics, 54:967, 1986.
[174]
Bentley R.W. Global oil & gas depletion:an overview. Energy Policy, 30:189-205, 2002.
[175]
Benzi R., Ciliberto S., Baudet C., and Chavarria G.R. On the scaling of three-dimensional homogeneous and isotropic turbulence. Physica D, 80:385-398, 1995.
[176]
Berg A.C. van den. The multi-energy method - a framework for vapor cloud explosion blast prediction. Journal of Hazardous Materials, 12:1-10, 1985.
[177]
Berg A.C. van den. Evaluation of consequence models for gas explosions and blast propagation. Course given at the 8th International Symposium on Loss Prevention and Safety Promotion in the Process Industries, page 69, Antwerp, Belgium, 6-9 June 1995.
[178]
Berg A.C. van den, The H.G., Mercx W.P.M., Mouilleau Y., and Hayhurst C.J. Autoreagas - a cfd-tool for gas explosion hazard analysis. The 8th International Symposium on Loss Prevention and Safety Promotion in the Process Industries, page 69, Antwerp, Belgium, 19-23 June 1995.
[179]
Berlad A.L. and Yang C.H. On the existence of steady state flames. Combustion and Flame, 3:447-452, 1959.
[180]
Berman M. A critical review of recent large-scale experiments on hydrogen-air detonations. Nuclear Science and Engineering, 93:321-347, 1986.
[181]
Bethe H.A., Fuchs K., Hirschfelder J.O., Magee J.L., Peierls R.E., and Neumann J. von. Blast wave. Technical Report LA-2000, Los Alamos Scientific Laboratory, Los Alamos, New Mexico 87545, United States of America, August 1947. Prepared under contract W-7405-ENG. 36 with the U.S. Atomic Energy Commission. This report supersedes LA-1020 and part of LA-1021. Report redistributed on 27 March 1958.
[182]
Bethe H.A. Theory of the fireball. Technical Report LA-3064, Los Alamos Scientific Laboratory, Los Alamos, New Mexico 87545, United States of America, February 1964. Prepared under contract W-7405-ENG. 36 with the U.S. Atomic Energy Commission.
[183]
Bhattacharjee B., Schwer D.A., Barton P.I., and Williams H. Optimally-reduced kinetic models: reaction elimination in large-scale kinetic mechanisms. Combustion and Flame, 135:191-208, 2003.
[184]
Bible. The King James Version of the Holy Bible. Commissioned by King James I of England. Based on earlier texts (Masoretic Hebrew Text as the source of the Old Testament; Textus Receptus as the source of the New Testament; Greek Septuagint as the source of the Apocrypha)., 1611.
[185]
Bible. The Dutch for State Translation of the Holy Bible. Commissioned by the Estates-General of the Netherlands. In imitation of the King James Bible from 1611 and based on earlier texts (Masoretic Hebrew Text as the source of the Old Testament; Textus Receptus as the source of the New Testament)., 1637.
[186]
Bielert U. and Sichel M. Numerical simulation of premixed combustion processes in closed tubes. Combustion and Flame, 114:397-419, 1998.
[187]
Bielert U., Breitung W., Kotchourko A., Royl P., Scholtyssek W., Veser A., Beccantini A., Dabbene F., Paillere H., Studer E., Huld T., Wilkening H., Edlinger B., Poruba C., and Mohaved M. Nuclear engineering and design. Journal of Loss Prevention in the Processes Industries, 209:165-172, 2001.
[188]
Bilger R.W., Pope S.B., Bray K.N.C., and Driscoll J.F. Paradigms in turbulent combustion research. In Proceedings of the Thirtieth Symposium (International) on Combustion, pages 21-42, Pittsburgh, 2005. The Combustion Institute.
[189]
Birch A.D., Brown D.R., Dodson M.G., and Swaffield F. The structure and concentration decay in high pressure jets of natural gas. Combustion Science and Technology, 36:249-261, 1984.
[190]
Birch A.D., Hughes D.J., and Swaffield F. Velocity decay of high pressure jets. Combustion Science and Technology, 52:161-171, 1987.
[191]
Bird R.B., Stewart W.E., and Lightfoot E.N. Transport phenomena. Wiley, New York, 1960.
[192]
Bird R.B., Stewart W.E., and Lightfoot E.N. Transport phenomena. Wiley, New York, second edition, 2002.
[193]
Birkby P., Cant R.S., and Savill A.M. The application of a laminar flamelet model to confined explosion hazards. Flow, Turbulence and Combustion, 63:361-377, 1999.
[194]
Birkhof G. and Zarantonello E.H. Jets, wakes and cavities. Applied Mathematics and Mechanics: an International Series of Monographs. Academic Press, New York, 1957.
[195]
Bjerketvedt D., Bakke J.R., and van Wingerden K. Gas explosions handbook. Journal of Hazardous Materials, 52:1-150, 1997.
[196]
Bjerketvedt D. and Mjaavatten A. A hydrogen-air explosion in a process plant: A case history. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[197]
Bjoraker G.L., Stolovy S.R., Herter T.L., Gull G.E., and Pirger B.E. Detection of water after the collision of Fragments G and K of Comet Shoemaker-Levy 9 with Jupiter. Icarus, 121:411-421, 1996.
[198]
Blasenbrey T., Schmidt D., and Maas U. Automatically simplified chemical kinetics and molecular transport and its applications in premixed and non-premixed laminar flame calculations. In Proceedings of the Twenty-Seventh Symposium (International) on Combustion, pages 505-511, Pittsburgh, 1998. The Combustion Institute.
[199]
Blinov V.I. and Khudiakov G.N. Certain laws governing diffusive burning of liquids. Academiia Nauk, SSSR Doklady, 113:1094-1098, 1957. US Army translation, NTIS no. 296762, 1961.
[200]
Blint R.J. The relationship of the laminar width to flame speed. Combustion Science and Technology, 49:79-92, 1986.
[201]
Bodurtha F.T. Industrial Explosion Prevention and Protection. McGraw-Hill, New York, 1980.
[202]
Boger M., Veynante D., Boughanem H., and Trouve A. Direct numerical simulation analysis of flame surface density concept for large eddy simulation of turbulent premixed combustion. In Proceedings of the Twenty-Seventh Symposium (International) on Combustion, pages 917-925, Pittsburgh, 1998. The Combustion Institute.
[203]
Bone W.A. High pressure reactions. Transactions of the Institution of Chemical Engineers, Part A, Chemical Engineering Research and Design, 8:98-106, 1930.
[204]
Borghi R. On the structure and morphology of turbulent premixed flames. In C. Casci, editor, Recent Advances in the Aerospace Sciences, pages 117-138. Plenum Publishing Corporation, 1985.
[205]
Borghi R. Turbulent combustion modelling. Progress in Energy and Combustion Science, 14:245-292, 1988.
[206]
Borisov A.A. and Loban S. Detonation limits of hydrocarbon-air mixtures in tubes. Combustion Explosion and Shock Waves, 13:618-621, 1977.
[207]
Borisov A.A., Khomik S.V., and Mikhalkin V.N. Detonation of unconfined and semiconfined charges of gaseous mixtures. Progress in Astronautics and Aeronautics, 133:118-132, 1991.
[208]
Borisov A.A., Khomik S.V., Mikhalkin V.N., and Saneev E.V. Critical energy of direct detonation initiation in gaseous mixtures. Progress in Astronautics and Aeronautics, 133:142-155, 1991.
[209]
Borisov A.A., Kosenkov V.V., Mailkov A.E., Mikhalkin V.N., and Khomik S.V. Effect of flame inhibitors on detonation characteristics of fuel-air mixtures. Progress in Astronautics and Aeronautics, 135:312-323, 1993.
[210]
Bosschaart K.J. and Goey L.P.H. de. Detailed analysis of the heat flux method for measuring burning velocities. Combustion and Flame, 132:170-180, 2003.
[211]
Bouhard F., Veyssiere B., Leyer J.-C., and Chaineaux J. Explosion in a vented vessel connected to a duct. Progress in Astronautics and Aeronautics, 134:85-103, 1991.
[212]
Bourlioux A., Majda A.J., and Roytburd V. Theoretical and numerical structure for unstable one-dimensional detonations. SIAM Journal on Applied Mathematics, 51:303-343, 1991.
[213]
Bourlioux A. and Majda A.J. Theoretical and numerical structure for unstable two-dimensional detonations. Combustion and Flame, 90:211-229, 1992.
[214]
Bohse J., Mair G.W., and Novak P. Acoustic emission testing of high-pressure composite cylinders. Advanced Materials Research, 13-14:267-272, 2006.
[215]
Bowman C.T., Hanson R.K., Davidson D.F., Gardiner Jr. W.C., Lissianski V., Smith G.P., Golden D.M., Frenklach M., and Goldenberg M. GRI-Mech 2.11. http://www.me.berkeley.edu/gri_mech/, 1995.
[216]
Boys S.F. and Corner J. The structure of the reaction zone in flames. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 197:90, 1949.
[217]
Bradley D. and Hundy G.F. Burning velocities of methane-air mixtures using hot-wire anemometers in closed-vessel explosions. In Proceedings of the Thirteenth Symposium (International) on Combustion, pages 575-583, Pittsburgh, 1971. The Combustion Institute.
[218]
Bradley D. and Mitcheson A. Mathematical solutions for explosions in spherical vessels. Combustion and Flame, 26:201-217, 1976.
[219]
Bradley D. and Mitcheson A. The venting of gaseous explosions in spherical vessels. I - Theory. Combustion and Flame, 32:221-236, 1978.
[220]
Bradley D. and Mitcheson A. The venting of gaseous explosions in spherical vessels. II - Theory and experiment. Combustion and Flame, 32:237-255, 1978.
[221]
Bradley D. and Lee J.H.S. On the mechanisms of propagation of dust flames. In Proceedings of the First International Colloquium on the Explosibility of Industrial Dusts, 8-10 November 1984, Baranow, Poland, volume 2, pages 220-223. Polish Academy of Sciences, 1985.
[222]
Bradley D., El-Din Habik S., and Swithenbank J.R. Laminar burning velocities of CH4-air-graphite mixtures and coal dusts. In Proceedings of the Twenty-First Symposium (International) on Combustion, pages 249-256, Pittsburgh, 1986. The Combustion Institute.
[223]
Bradley D., Chen Z., and Swithenbank J.R. Burning rates in turbulent fine dust-air explosions. In Proceedings of the Twenty-Second Symposium (International) on Combustion, pages 1767-1775, Pittsburgh, 1988. The Combustion Institute.
[224]
Bradley D., Dixon-Lewis G., and El-Din Habik S. Lean flammability limits and laminar burning velocities of CH4-air-graphite and fine coal dusts. Combustion and Flame, 77:41-50, 1989.
[225]
Bradley D. and Lau A.K.C. The mathematical modelling of premixed turbulent combustion. Pure and Applied Chemistry, 62:803-814, 1990.
[226]
Bradley D., Lau A.K.C., and Lawes M. Flame stretch as a determinant of turbulent burning velocity. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 338:359-387, 1992.
[227]
Bradley D. How fast can we burn? In Proceedings of the Twenty-Fourth Symposium (International) on Combustion, pages 247-262, Pittsburgh, 1992. The Combustion Institute.
[228]
Bradley D., Lawes M., Scott M.J., and Mushi E.M.J. Afterburning in spherical premixed turbulent explosions. Combustion and Flame, 99:581-590, 1994.
[229]
Bradley D., Chen Z., El-Sherif S., El-Din Habik S., and John G. Structure of laminar premixed carbon-methane-air flames and ultrafine coal combustion. Combustion and Flame, 96:80-96, 1994.
[230]
Bradley D. and Harper C.M. The development of instabilities in laminar explosion flames. Combustion and Flame, 99:562-572, 1994.
[231]
Bradley D., Gaskell P.H., and Gu X.J. Burning velocities, Markstein lengths, and flame quenching for spherical methane-air flames: A computational study. Combustion and Flame, 104:176-198, 1996.
[232]
Bradley D., Hicks R.A., Lawes M., Sheppard C.G.W., and Woolley R. The measurement of laminar burning velocities and Markstein numbers for iso-octane-air and iso-octane-n-heptane-air mixtures at elevated temperatures and pressures in an explosion bomb. Combustion and Flame, 115:126-144, 1998.
[233]
Bradley D., Gaskell P.H., and Gu X.J. The mathematical modeling of liftoff and blowoff of turbulent non-premixed methane jet flames at high strain rates. In Proceedings of the Twenty-Seventh Symposium (International) on Combustion, pages 1199-1206, Pittsburgh, 1998. The Combustion Institute.
[234]
Bradley D. Instabilities and flame speeds in large-scale premixed gaseous explosions. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 357:3567-3581, 1999.
[235]
Bradley D., C.G.W. Sheppard, Woolley R., Greenhalgh D.A., and Lockett R.D. The development and structure of flame instabilities and cellularity at low Markstein numbers in explosions. Combustion and Flame, 122:195-209, 2000.
[236]
Bradley D., Lawes M., and Sheppard C.G.W. Combustion and the thermodynamic performance of spark ignition engines. Proceedings of the Institution of Mechanical Engineers, Part C, 214:257-268, 2000.
[237]
Bradley D., Cresswell T.M., and Puttock J.S. Flame acceleration due to flame-induced instabilities in large-scale explosions. Combustion and Flame, 124:551-559, 2001.
[238]
Bradley D. Burning rates in gaseous explosions of hydrogen-air. A lecture presented at the First European Summer School on Hydrogen Safety, 15-24 August 2006.
[239]
Bradley D., Lawes M., Liu K., Verhelst S., and Woolley R. Laminar burning velocities of lean hydrogen-air mixtures at pressures up to 1.0 MPa. Combustion and Flame, 149:162-172, 2007.
[240]
Bradley D. Flame instabilities, turbulent burning velocities and deflagration/detonation transition of hydrogen-air. A lecture presented at the Third European Summer School on Hydrogen Safety, 21-31 July 2008.
[241]
Bradley D. Hydrogen powered vehicles for road transport. A lecture presented at the Third European Summer School on Hydrogen Safety, 21-31 July 2008.
[242]
Brailsford A.D., M. Yussouff, and Logothetis E.M. Theory of metal oxide gas sensors for measuring combustibles. In International Conference on Solid State Sensors and Actuators, volume 2, pages 947-950, Chicago, 16-19 June 1997.
[243]
Braken A.M. van den. Safety distances - a space oddity. Process Safety and Industrial Explosion Protection, International ESMG Symposium, Nurnberg, Germany, 11-13 October 2005. To appear in 2005.
[244]
Brandeis J. and Ermak D.L. Numerical simulation of liquefied fuel spills: I. Instantaneous release into a confined area. International Journal for Numerical Methods in Fluids, 3:333-345, 1983.
[245]
Brandeis J. and Ermak D.L. Numerical simulation of liquefied fuel spills: II. Instantaneous and continuous LNG spills on an unconfined water surface. International Journal for Numerical Methods in Fluids, 3:347-361, 1983.
[246]
Brauer R.L. Safety and Health for Engineers. Van Nostrand Reinhold, New York, 1994.
[247]
Bray K.N.C. and Moss J.B. A unified statistical model of the premixed turbulent flame. Acta Astronautica, 4:291-319, 1977.
[248]
Bray K.N.C. Turbulent flows with premixed reactants. In P.A. Libby and F.A. Williams, editors, Turbulent Reacting Flows, volume 44 of Topics in Applied Physics, chapter 4, pages 115-183. Springer Verlag, 1980.
[249]
Bray K.N.C., Libby P.A., Masuya G., and Moss J.B. Turbulence production in premixed turbulent flames. Combustion Science and Technology, 25:127-140, 1981.
[250]
Bray K.N.C., Libby P.A., and Moss J.B. Flamelet crossing frequencies and mean reaction rates in premixed turbulent combustion. Combustion Science and Technology, 41:143-172, 1984.
[251]
Bray K.N.C., Libby P.A., and Moss J.B. Unified modelling approach for premixed turbulent combustion - Part I: General formulation. Combustion and Flame, 61:87-102, 1985.
[252]
Bray K.N.C. and Libby P.A. Passage times and flamelet crossing frequencies in premixed turbulent combustion. Combustion Science and Technology, 47:253, 1986.
[253]
Bray K.N.C., Champion M., and Libby P.A. The interaction between turbulence and chemistry in premixed turbulent flames. In Turbulent Reactive Flows, volume 40, chapter 4, pages 541-563. Springer Verlag, 1989.
[254]
Bray K.N.C. Studies of the turbulent burning velocity. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 431:315-335, 1990.
[255]
Bray K.N.C and Cant R.S. Some applications of Kolmogorov's turbulence research in the field of combustion. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 434:217-240, 1991.
[256]
Bray K.N.C. and Peters N. Laminar flamelets in turbulent flames. In P.A. Libby and F.A. Williams, editors, Turbulent Reacting Flows, chapter 2, pages 63-113. Academic Press, 1994.
[257]
Breitung W., Dorofeev S.B., Efimenko A.A., Kochurko A.S., Redlinger R., and Sidorov V.P. Large-scale experiments on hydrogen-air detonation loads and their numerical simulation. In ANS/ARS 1994 International Topical Meeting on Advanced Reactor Safety, Pittsburgh, Pennsylvania, page 733, 17-21 April 1994.
[258]
Breitung W., Chan C.K., Dorofeev S.B., Eder A., Gelfand B.E., Heitsch M., Klein R., Malliakos A., Shepherd J.E., Studer E., and Thibault P. Flame acceleration and deflagration to detonation transition in nuclear safety. State-of-the-art report by a group of experts, OECD Nuclear Energy Agency, August 2000.
[259]
Breitung W., Bielert U., Necker G., Veser A., Wetzel F.J., and Pehr K. Numerical simulation and safety evaluation of tunnel accidents with a hydrogen powered vehicle. In Z.Q. Mao and T.N. Veziroglu, editors, Proceedings of the Thirteenth World Hydrogen Energy Conference, Beijing, China, volume 2 of Advances in Hydrogen Energy: Hydrogen Energy Progress XIII, pages 1175-1181, New York, 12-15 June 2000. International Association for Hydrogen Energy, Pergamon.
[260]
Breitung W., Necker G., Kaup B., and Veser A. Numerical simulation of hydrogen in a private garage. Proceedings of the Fourth International Symposium on Hydrogen Power - Theoretical and Engineering Solutions-Hypothesis IV, Stralsund, Germany, 9-14 September 2001.
[261]
Breitung W. Analysis methodology for hydrogen behaviour in accident scenarios. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[262]
Breitung W., Dorofeev S., Kotchourko A., Redlinger R., Scholtyssek W., Bentaib A., L'Heriteau J.-P., Pailhories P., Eyink J., Movahed M., Petzold K.-G., Heitsch M., Alekseev V., Denkevits A., Kuznetsov M., Efimenko A., Okun M.V., Huld T., and Baraldi D. Integral large scale experiments on hydrogen combustion for severe accident code validation-HYCOM. Nuclear Engineering and Design, 235:253-270, 2007.
[263]
Brennan K.E., Campbell S.L., and Petzold L.R. Numerical Solution of Initial-Value Problems in Differential-Algebraic Equations. SIAM Classics in Applied Mathematics 14. Society for Industrial and Applied Mathematics, Philadelphia, 1996.
[264]
Brewer G.D. The case for hydrogen-fueled transport aircraft. Astronautics & Aeronautics, 12:40-51, 1974.
[265]
Brewer G.D., Wittlin G. Versaw E.F., Parmley R., Cima R., and Walther E.G. Assessment of crash fire hazard of LH2-fueled aircraft. Technical Report NASA-CR-165525, NASA Lewis Research Center, Washington D.C., September 1981.
[266]
Briones A., Puri K.I., and Aggarwal S.K. Effect of pressure on counterflow H2-air partially premixed flames. Combustion and Flame, 140:46-59, 2005.
[267]
Briscoe F. and Shaw P. Spread and evaporation of liquid. Progress in Energy and Combustion Science, 6:127-140, 1980.
[268]
Britton L.G. Avoiding static ignition hazards in chemical operations, A CCPS concept book. American Institute of Chemical Engineers, Center for Chemical Process Safety, New York, 1999.
[269]
Bronson R. and Costa G.B. Theory and problems of differential equations. Schaum's outline series. McGraw-Hill, New York, third edition, 2006.
[270]
Brooke T.Y., Ortona G.S., Crispa D., Friedsona A.J., and Bjoraker G.L. Near-infrared spectroscopy of the Shoemaker-Levy 9 impact sites with UKIRT: CO emission from the L site and additional 5-mm spectra. Icarus, 121:422-430, 1996.
[271]
Brown A.E.P., Nunes E.N., Teruya C.M., Anacleto L.H., Fedrigo J.C., and Artoni M.R.O. Quantitative risk analysis of gaseous hydrogen storage unit. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[272]
Brown M.J., McLean I.C., Smith D.B., and Taylor S.C. Markstein lengths of co/h2/air flames using expanding spherical flames. In Proceedings of the Twenty-Sixth Symposium (International) on Combustion, pages 875-881, Pittsburgh, 1996. The Combustion Institute.
[273]
Brown P.N., Byrne G.D., and Hindmarsh A.C. VODE: A Variable-Coefficient ODE solver. SIAM Journal on Scientific and Statistical Computing, 10:1038-1051, 1989.
[274]
Bruel P., Rogg B., and Bray K.N.C. On auto-ignition in laminar and turbulent non-premixed systems. In Proceedings of the Twenty-Third Symposium (International) on Combustion, pages 759-766, Pittsburgh, 1990. The Combustion Institute.
[275]
British Standard. Application of fire safety engineering principles to the design of buildings - Code of practice. Technical Report BS 7974:2001, The Health and Environment Sector Policy and Strategy Committee, Subcommittee FSH/24/1, 2001.
[276]
British Standard. Application of fire safety engineering principles to the design of buildings - Part 0: Guide to design framework and fire safety engineering procedures. Technical Report BS 7974:2001 / PD 7974-0:2002, The Standards Policy and Strategy Committee, Subcommittee FSH/24/1, 2002.
[277]
British Standard. Application of fire safety engineering principles to the design of buildings - Part 1: Initiation and development of fire within the enclosure of origin (Sub-system 1). Technical Report BS 7974:2001 / PD 7974-1:2003, The Standards Policy and Strategy Committee, Subcommittee FSH/24/1, 2003.
[278]
British Standard. Application of fire safety engineering principles to the design of buildings - Part 2: Spread of smoke and toxic gases within and beyond the enclosure of origin (Sub-system 2). Technical Report BS 7974:2001 / PD 7974-2:2002, The Standards Policy and Strategy Committee, Subcommittee FSH/24/2, 2002.
[279]
British Standard. Application of fire safety engineering principles to the design of buildings - Part 3: Structural response and fire spread beyond the enclosure of origin (Sub-system 3). Technical Report BS 7974:2001 / PD 7974-3:2003, The Standards Policy and Strategy Committee, Subcommittee FSH/24/3, 2003.
[280]
British Standard. Application of fire safety engineering principles to the design of buildings - Part 4: Detection of fire and activation of fire protection systems (Sub-system 4). Technical Report BS 7974:2001 / PD 7974-4:2003, The Standards Policy and Strategy Committee, Subcommittee FSH/24/4, 2003.
[281]
British Standard. Application of fire safety engineering principles to the design of buildings - Part 5: Fire service intervention (Sub-system 5). Technical Report BS 7974:2001 / PD 7974-5:2002, The Standards Policy and Strategy Committee, Subcommittee FSH/24/6, 2002.
[282]
British Standard. Application of fire safety engineering principles to the design of buildings - Part 6: Human factors: Life safety strategies - Occupant evacuation, behaviour and condition (Sub-system 6). Technical Report BS 7974:2001 / PD 7974-6:2004, The Standards Policy and Strategy Committee, Subcommittee FSH/24/6, 2004.
[283]
British Standard. Application of fire safety engineering principles to the design of buildings - Part 7: Probabilistic risk assessment (Sub-system 7). Technical Report BS 7974:2001 / PD 7974-7:2003, The Standards Policy and Strategy Committee, Subcommittee FSH/24/7, 2003.
[284]
AIAA Hydrogen Committee on Standards (CoS). Guide safety of hydrogen and hydrogen systems. Technical Report BSR/AIAA G-095-2004, American Institute of Aeronautics and Astronautics, 1801 Alexander Bell Drive, Reston, VA 20191, 2005.
[285]
Buckmaster J.D. and Ludford G.S.S. Theory of Laminar Flames. Cambridge University Press, Cambridge, United Kingdom, 1982.
[286]
Buckmaster J.D. and Ludford G.S.S. Structure on the stability of detonation i: Role of the induction zone. In Proceedings of the Twenty-First Symposium (International) on Combustion, pages 1669-1676, Pittsburgh, 1987. The Combustion Institute.
[287]
Buckmaster J., Clavin P., Linan A., Matalon M., Peters N., Sivashinsky G., and Williams F.A. Combustion theory and modeling. In Proceedings of the Thirtieth Symposium (International) on Combustion, pages 1-19, Pittsburgh, 2005. The Combustion Institute.
[288]
Bulent Yuceil K. and Volkan Otugen M. Scaling parameters for underexpanded supersonic jets. Physics of Fluids, 14:4206-4215, 2002.
[289]
Bull D.C., Elsworth J.E., Hooper G., and Quinn C.P. A study of spherical detonation in mixtures of methane and oxygen diluted by nitrogen. Journal of Physics D: Applied Physics, 9:1991-2000, 1976.
[290]
Bull D.C. and Martin J.A. Explosion of unconfined clouds of natural gas. In American Gas Association Transmission Conference, St. Louis, Missouri, pages T149-T153, Arlington, 17 May 1977. American Gas Association, Operating Section.
[291]
Bull D.C., Elsworth J.E., and Hooper G. Initiation of spherical detonation in hydrocarbon/air mixtures. Acta Astronautica, 5:997-1008, 1978.
[292]
Bull D.C. Concentration limits to the initiation of unconfined detonation in fuel/air mixtures. Transactions of the Institution of Chemical Engineers, Part B, Process Safety and Environmental Protection, 57:219-227, 1979.
[293]
Bull D.C., Elsworth J.E., and Hooper G. Concentration limits to unconfined detonation of ethane-air. Combustion and Flame, 35:27-40, 1979.
[294]
Bull D.C., Elsworth J.E., and Hooper G. Susceptibility of methane-ethane mixtures to gaseous detonation in air. Combustion and Flame, 34:327-330, 1979.
[295]
Bull D.C. Towards an understanding of the detonability of vapour clouds. In J.H.S. Lee and C.M. Guirao, editors, Proceedings of the International Specialists Meeting on Fuel-Air Explosions, McGill University, Montreal, 4-6 November 1981, pages 139-155, Waterloo, Canada, 1982. University of Waterloo Press.
[296]
Bull D.C., Elsworth J.E., Shuff P.J., and Metcalfe E. Detonation cell structures in fuel/air mixtures. Combustion and Flame, 45:7-22, 1982.
[297]
Bull D.C. A critical review of post Piper-Alpha developments in explosion science for the offshore industry. Research Report 89, Health and Safety Excutive, 2004.
[298]
Burcat A. http://garfield.chem.elte.hu/Burcat/burcat.html, 2005.
[299]
Bureau de Normalisation de Quebec. Canadian Hydrogen Installation Code, First Edition. CAN/BNQ 1784-000/2007, National Standard of Canada, January 2007. Approved by Standards Council of Canada.
[300]
Burgess D.S., Strasser A., and Grumer J. Diffusive burning of liquid fuels in open trays. Fire Res. Abs. and Rev., 3:177, 1961.
[301]
Burgess D.S. and Hertzberg M. Radiation from pool flames. In N.H. Afgan and J.M. Beer, editors, Heat transfer in flames, chapter 27. Scripta Book Co., Washington, DC, 1974.
[302]
Burke S.P. and Schumann T.E.W. Diffusion flames. Journal of Industrial and Engineering Chemistry, 20:998-1004, 1928.
[303]
Burks T.L. and Oran E.S. A computational study of the chemical kinetics of hydrogen combustion. NRL Memorandum Report 4446, Naval Research Laboratory, 1992.
[304]
Businger P. and Golub G.H. Linear least squares solutions by Householder transformations. Numerische Mathematik, 7:269-276, 1965.
[305]
Businger P. and Golub G.H. Linear least squares solutions by Householder transformations. In Wilkinson J.H. and Reinsch C., editors, Handbook for Automatic Computation, volume 2, chapter 1, pages 111-118. Springer-Verlag, New York, 1971.
[306]
Butcher J.C. Implicit Runge-Kutta processes. Math. Comp., 18:50-64, 1964.
[307]
Butler D. Nuclear power's new dawn. Nature, 429:238-240, 2004.
[308]
Byrne G.D. and Hindmarsh A.C. A polyalgorithm for the numerical solution of ordinary differential equations. ACM Transactions on Mathematical Software, 1:71-96, 1964.
[309]
Cabello J., Morgan K., and Lohner L. A comparison of higher order schemes used in a finite volume solver for unstructured grids. AIAA-paper 94-2293, 1994.
[310]
Cabrera A.L. and Aguayo-Soto R. Hydrogen absorption in palladium films sensed by changes in their resistivity. Catalysis Letters, 45:79-83, 1997.
[311]
Cadwallader L.C. and Herring J.S. Safety issues with hydrogen as a vehicle fuel. Report prepared for the U.S. Department of Energy Office of Energy Research under DOE Idaho Operations Office Contract DE-AC07-94ID13223 INEEL/EXT-99-00522, Idaho National Engineering and Environmental Laboratory, Lockheed Martin Idaho Technologies Company, Idaho Falls, Idaho 83415-3860, 1999.
[312]
Calhoun D. CHOMBO: Finite-volume Cartesian grid AMR code platform for solving conservation laws. A presentation delivered during the Ninth HySafe Network Governing Board Meeting and the Seventeenth HySafe Coordination Committee Meeting held from 11-13 March 2008 at the Commisariat a l'Energie Atomique, Saclay, France, 13 March 2008.
[313]
California Fuel Cell Partnership. Support facilities for hydrogen fuelled vehicles-conceptual design and cost analysis study. Parsons and Brinckerhoff in association with TIAX and University of Miami, October 2004.
[314]
Cai J., Liu F., and Sirignano W.A. Three-dimensional flame propagation above liquid fuel pools. Combustion Science and Technology, 174:5-34, 2002.
[315]
Cali M., Fontana E., Giaretto V., Orsello G., and Santarelli M. The eos project: A sofc pilot plant in italy, safety aspects. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[316]
Candel S.M. and Poinsot T.J. Flame stretch and the balance equation for the flame area. Combustion Science and Technology, 70:1-15, 1990.
[317]
Cant R.S. and Bray K.N.C. A theoretical model of premixed turbulent combustion in closed vessels. Combustion and Flame, 76:243-263, 1989.
[318]
Cant R.S., Pope S.B., and Bray K.N.C. Strained laminar flamelet calculations of premixed turbulent combustion in a closed vessel. In Proceedings of the Twenty-Third Symposium (International) on Combustion, pages 809-815, Pittsburgh, 1990. The Combustion Institute.
[319]
Cant R.S., Rogg B., and Bray K.N.C. On laminar flamelet modelling of the mean reaction rate in a premixed turbulent flame. Combustion Science and Technology, 69:53-61, 1990.
[320]
Cant R.S., Bray K.N.C., Kostiuk L.W., and Rogg B. Flow divergence effects in strained laminar flamelets for premixed turbulent combustion. Combustion Science and Technology, 95:261-276, 1994.
[321]
Cant R.S. High-performance computing in computational fluid dynamics: progress and challenges. Philosophical Transactions of the Royal Society of London, Series A: Mathematical and Physical Sciences, 360:1211-1225, 2002.
[322]
Cant R.S., Dawes W.N., and Savill A.M. Advanced CFD and modelling of accidental explosions. Annual Reviews of Fluid Mechanics, 36:97-119, 2004.
[323]
Caras G.J. Prevention, detection, and suppression of hydrogen explosions in aerospace vehicles. Technical Report NASA-CR-78268, RSIC-486, NASA, March 1966.
[324]
Carcassi M.N. The role of uncertainty on risk assessment. A lecture presented at the First European Summer School on Hydrogen Safety, 15-24 August 2006.
[325]
Carcassi M.N. Actual methods on technological risk assessment. A lecture presented at the First European Summer School on Hydrogen Safety, 15-24 August 2006.
[326]
Carlson G.A. Spherical detonations in gas-oxygen mixtures. Combustion and Flame, 21:383-385, 1973.
[327]
Carlson R.W., Weissman P.R., Segura M., Hui J., Smythe W.D., Johnson T.V., Baines K.H., Drossart P., Encrenaz Th., and Leader F.E. Galileo infrared observations of the Shoemaker-Levy 9 G impact fireball: a preliminary report. Geophysical Research Letters, 22:1557-1560, 1995.
[328]
Carslaw H.S. and Jaeger J.C. Conduction of Heat in Solids. Oxford University Press, London, second edition, 1959.
[329]
Casal J. Evaluation of the effects and consequences of major accidents in industrial plants. Industrial Safety Series. Elsevier, Amsterdam, 2008.
[330]
Cashdollar K.L. and Hertzberg M. 20-l explosibility test chamber for dusts and gases. Review of Scientific Instruments, 56(4):596-602, April 1985.
[331]
Cashdollar K.L. Flammability of metals and other elemental dust clouds. Process Safety Progress, 13(3):139-145, 1994.
[332]
Cashdollar K.L. Overview of dust explosibility characterisctics. Journal of Loss Prevention in the Process Industries, 13:183-199, 2000.
[333]
Cashdollar K.L., Zlochower I.A., Green G.M., Thomas R.A., and Hertzberg M. Flammability of methane, propane, and hydrogen gases. Journal of Loss Prevention in the Process Industries, 13:327-340, 2000.
[334]
Cassel H.M., Das Gupta A.K., and Guruswamy S. Factors affecting flame propagation through dust clouds. In Proceedings of the Third Symposium (International) on Combustion, pages 185-190, Baltimore, 1949. Williams and Wilkins.
[335]
Cassel H.M. and Liebman I. The cooperative mechanism in the ignition of dust dispersions. Combustion and Flame, 3:467-475, 1959.
[336]
Cassel H.M. Some fundamental aspects of dust flames. Report of investigations 6551, United States Department of the Interior, Bureau of Mines, Washington, 1964.
[337]
Cassel K.W. CFD simulations of fluid dynamics and heat transfer in liquid-hydrogn absorbers. Presentation at the ICAR Workshop, Argonne National Laboratory, 19 May 2004 2004.
[338]
Cassut L.H., Maddocks F.E., and Sawyer W.A. A study of the hazards in the storage and handling of liquid hydrogen. Advances in Cryogenic Engineering, 5:55-61, 1960.
[339]
Cassut L.H. Experimental investigation of detonation in unconfined gaseous hydrogen-oxygen-nitrogen mixtures. ARS Journal, 31:1122-1128, 1961.
[340]
Castello P. and Salyk O. Testing of hydrogen safety sensors in service simulated conditions. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[341]
Catlin C.A. CLICHE - a generally applicable and practicable offshore explosion model. Transactions of the Institution of Chemical Engineers, Part B, Process Safety and Environmental Protection, 122:25-45, 1990.
[342]
Catlin C.A. Scale effects on the external combustion caused by venting of a confined explosions. Combustion and Flame, 83:399-411, 1991.
[343]
Catlin C.A., Fairweather M., and Ibrahim S.S. Predictions of turbulent, premixed flame propagation in explosion tubes. Combustion and Flame, 102:115-128, 1995.
[344]
CENELEC. Guide number 25, Guide on the use of Standards for the implementation of the EMC Directive, second edition. European Committee for Electrotechnical Standardization, Brussels, February 2005.
[345]
Cercignani G., Cozzani V., Nicolella C., and Zanelli S. Innovative passive protection systems for hydrogen production plants. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[346]
Chakravarthy V.K. and Menon S. Large-eddy simulation of turbulent premixed flames in the flamelet regime. Combustion and Flame, 162:175-222, 2001.
[347]
Chan C.K. and Dewitt W.A. DDT in end gases. In Proceedings of the Twenty-Seventh Symposium (International) on Combustion, pages 2679-2684, Pittsburgh, 1998. The Combustion Institute.
[348]
Chao J., Otsukab T., and Lee J.H.S. An experimental investigation of the onset of detonation. In Proceedings of the Thirtieth Symposium (International) on Combustion, pages 1889-1897, Pittsburgh, 2005. The Combustion Institute.
[349]
Chapman C.R., Merline W.J. Klaasen K., Johnson T.V., Heffernan C., Belton M.J.S., and Ingersoll A.P. Preliminary results of Galileo direct imaging of S-L 9 impacts. Geophysical Research Letters, 22:1561-1564, 1995.
[350]
Chapman D.L. On the rate of explosion in gases. Physics of Fluids, 47:90-104, 1899.
[351]
Chan S.T. Simulations of LNG vapor dispersion from a fenced storage area. Journal of Hazardous Materials, 30:195-224, 1992.
[352]
Chang III P.A., Piomelli U., and Blake W.K. Relationship between wall pressure and velocity-field sources. Physics of Fluids, 11:3434-3448, 1999.
[353]
Chaumeix N., Pichon S., Lafosse F., Udari N., and Paillard C.-E. Role of chemical kinetics on the detonation properties of hydrogen/natural gas/ air mixtures. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[354]
Chaumeix N., Pichon S., Lafosse F., and Paillard C.-E. Role of chemical kinetics on the detonation properties of hydrogen-natural gas -air mixtures. International Journal of Hydrogen Energy, 32:2216-2226, 2007.
[355]
Checkel M.D. and Thomas A. Turbulent combustion of premixed flames in closed vessels. Combustion and Flame, 96:351-370, 1994.
[356]
Chelhaoui S. and Serre Combe P. Overview of European and international regulation and standardisation activities. Paper presented at the Sixteenth World Hydrogen Energy Conference, Lyon, France, 13-16 June 2006. International Association for Hydrogen Energy.
[357]
Chelin P. and Pina V. Investigative method for radiative properties of water vapour in the 0.8m region by optical diagnostic of h2-air combustion. Combustion Science and Technology, 174:215-229, 2002.
[358]
Chen C.J. and Rodi W. Vertical turbulent buoyant jets: a review of experimental data, volume 4 of HMT - Science and Applications of Heat and Mass Transfer. Pergamon Press, 1980.
[359]
Chen Y.-C. and Bilger R.W. Experimental investigation of three-dimensional flame-front structure in premixed turbulent combustion II. Lean hydrogen/air Bunsen flames. Combustion and Flame, 138:155-174, 2004.
[360]
Cheng W.K. and Diringer J.A. Numerical modelling of SI engine combustion with a flame sheet model. SAE paper 910268, 1991.
[361]
Cheng Z., Agranat V.M., Tchouvelev A.V., Houf W., and Zhubrin S.V. PRD hydrogen release and dispersion, a comparison of CFD results obtained from using ideal and real gas law properties. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[362]
Cheng Z., Agranat V.M., and Tchouvelev A.V. Vertical turbulent buoyant helium jet - CFD modeling and validation. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[363]
Cengel Y.A. and Boles M.A. Thermodynamics: an engineering approach. McGraw-Hill, New York, sixth edition, 2007.
[364]
Cengel Y.A., Turner R.H., and Cimbala J.M. Fundamentals of thermal-fluid sciences. McGraw-Hill, New York, third edition, 2008.
[365]
Chernicoff W.P. and Miller G.A. Facilitating the safest possible transition from fossil to hydrogen fuels: Hydrogen executive leadership panel. Paper presented at the International Conference on Hydrogen Safety, Pisa, Italy, 8-10 September 2005.
[366]
Chernyi G.G., Losev S.A., Macheret S.O., and Potapkin B.V. Chemical kinetics. In Paul Zarchan, editor, Physical and Chemical Processes in Gas Dynamics: Physical and Chemical Kinetics and Thermodynamics of Gases and Plasmas, volume 197 of Progress in Astronautics and Aeronautics, chapter 6, pages 110-175. American Institute of Aeronautics and Astronautics, Reston, VA, 2003.
[367]
Choi C.R. and Huh K.Y. Development of a coherent flamelet model for a spark ignited turbulent premixed flame in a closed vessel. Combustion and Flame, 114:336-348, 1998.
[368]
Ciccarelli G., Ginsberg T., Boccio J., Economos C., Sato K., and Kinoshita M. Detonation cell size measurements and predictions in hydrogen-air-steam mixtures at elevated temperatures. Combustion and Flame, 99:212-220, 1994.
[369]
Ciccarelli G. Critical tube measurements at elevated initial mixture temperatures. Combustion Science and Technology, 174:173-183, 2002.
[370]
Ciccarelli G. and Dorofeev S.B. Flame acceleration and transition to detonation in ducts. Progress in Energy and Combustion Science, 34:499-550, 2008.
[371]
Chirila F., Oancea D., Razus D., and Ionescu N.I. Pressure and temperature dependence of normal burning velocity for propylene-air mixtures from pressure-time curves in a spherical vessel. Revue Roumaine de Chimie, 40(2), 1995.
[372]
Chirivella J.E. and Witcofsky R.D. Experimental results from fast 1500-gallon LH2 spills. AIChE Symposium Series: cryogenic properties, processes and applications, 82:120-141, 1986.
[373]
Chippett S. Modeling of vented deflagrations. Combustion and Flame, 55:127-140, 1984.
[374]
Chitose K., Ogawa Y., and Morii T. Analysis of a large scale liquid hydrogen spill experiment using the multi-phase hydrodynamics analysis code (CHAMPAGNE). In T. N. Veziroglu, C.-J. Winter, J. Baselt, and G. Kreysa, editors, Proceedings of the Eleventh World Hydrogen Energy Conference, Stuttgart, Germany, Advances in Hydrogen Energy: Hydrogen Energy Progress XI, pages 2203-2211, New York, 23-28 June 1994. International Association for Hydrogen Energy, Pergamon.
[375]
Chitose K., Ogawa Y., Hishida M., and Morii T. Analysis of a large-scale liquid hydrogen spill experiment using the multi-phase hydrodynamics analysis code (CHAMPAGNE) - Part 2. In J.C. Bolcich and T.N. Veziroglu, editors, Proceedings of the Twelfth World Hydrogen Energy Conference, Buenos Aires, Argentina, Advances in Hydrogen Energy: Hydrogen Energy Progress XII, pages 1745-1754, New York, 21-25 June 1998. International Association for Hydrogen Energy, Pergamon.
[376]
Chitose K., Okamto M., Takeno K., Hayashi K., and Hishida M. Analysis of a large scale liquid hydrogen dispersion using the multi-phase hydrodynamics analysis code (CHAMPAGNE). Journal of Energy Resources Technology, 124:283-289, 2002.
[377]
Choi D. and Merkle. Application of time-iterative schemes to incompressible flow. AIAA-paper 84-1638, 1984.
[378]
Choi Y.-H. and Merkle C.L. The application of preconditioning to viscous flows. Journal of Computational Physics, 105:207-223, 1993.
[379]
Choi Y.-S., Lee U.-J., Lee J.-J., and Park G.-C. Improvement of HYCA3D Code and Experimental Verification in Rectangular Geometry. Nuclear Engineering and Design, 226:337-349, 2003.
[380]
Chorin A.J. A numerical method for solving incompressible viscous flow problems. Journal of Computational Physics, 2:12-26, 1967.
[381]
Choudhuri A.R. and Gollahalli S.R. Intermediate radical concentrations in hydrogen-natural gas blended fuel jet flames. International Journal of Hydrogen Energy, 29:1291-1302, 2004.
[382]
Christiansen E.W., Law C.K., and Sung C.J. Steady and pulsating propagation and extinction of rich hydrogen-air flames at elevated pressures. Combustion and Flame, 124:35-49, 2001.
[383]
Chu W.W., Yang V., and Majdalani J. Premixed flame response to acoustic waves in a porous-walled chamber with surface mass injection. Combustion and Flame, 133:359-370, 2003.
[384]
Chung S.H. and Law C.K. An invariant derivation of flame stretch. Combustion and Flame, 55:123-125, 1984.
[385]
Chung T.J., editor. Numerical Modeling in Combustion. Series in Computational and Physical Processes in Mechanics and Thermal Sciences. Taylor & Francis, 1101 Vermont Avenue, N.W., Suite 200, Washington, DC 20005-3521, 1993.
[386]
Claassen P.A.M. and de Vrije T. Non-thermal production of pure hydrogen from biomass: HYVOLUTION. International Journal of Hydrogen Energy, 31:1416-1423, 2006.
[387]
Clarke A., Stone R., and Beckwith P. Measuring the laminar burning velocity of methane/diluent/air mixtures within a constant- volume combustion bomb in a micro-gravity environment. Journal of the Institute of Energy, 68:130-136, September 1995.
[388]
Clarke J.F., Kassoy D.R., and Riley N. On the direct initiation of a plane detonation wave. Philosophical Transaction of the Royal Society of London, Series A:Mathematical and Physical Sciences, 408:129-148, 1986.
[389]
Clarke J.F., Kassoy D.R., Meharzi N.E., Riley N., and Vasantha R. On the evolution of plane detonations. Philosophical Transaction of the Royal Society of London, Series A: Mathematical and Physical Sciences, 429:259-283, 1990.
[390]
Clavin P. Weak turbulent premixed flame. Acta Astronautica, 6:997-998, 1979.
[391]
Clavin P. and Williams F.A. Theory of premixed-flame propagation in large-scale turbulence. Journal of Fluid Mechanics, 90:589-604, 1979.
[392]
Clavin P. and Williams F.A. Effects of molecular diffusion and of thermal expansion on the structure and dynamics of premixed flames in turbulent flows of large scale and low turbulence. Journal of Fluid Mechanics, 116:251-282, 1982.
[393]
Clavin P. and Garcia P. The influence of the temperature dependence of diffusivities on the dynamics of flame fronts. J. de Méc. Théoretique et Appliquée, 2:245-263, 1983.
[394]
Clavin P. Dynamic behavior of premixed flame fronts in laminar and turbulent flows. Progress in Energy and Combustion Science, 11:1-59, 1985.
[395]
Cleaver R.P. Marshall M.R. and Linden P.F. The build-up of concentration within a single enclosed volume following a release of natural gas. Journal of Hazardous Materials, 36:209-226, 1994.
[396]
Cleaver R.P. and Clive G. Robinson C.G. An analysis of the mechanisms of overpressure generation in vapour cloud explosions. Journal of Hazardous Materials, 45:27-44, 1996.
[397]
Cleaver R.P., Cumber P.S., and Fairweather M. Predictions of free jet fires from high pressure, sonic releases. Combustion and Flame, 132:463-474, 2003.
[398]
Clingman W.H., Brokaw R.S., and Pease R.N. Burning velocities of methane with nitrogen-oxygen, argon-oxygen and helium-oxygen mixtures. In Proceedings of the Fourth Symposium (International) on Combustion, pages 310-313, Baltimore, 1953. Williams and Wilkins.
[399]
Clingman W.H. and Pease R.N. Critical considerations in the measurements of burning velocities of Bunsen burner flames and interpretation of the pressure effect. Measurements and calculations for methane. Journal of the American Chemical Society, 78(9):1775-1780, 1956.
[400]
Clutter J.K. A reduced combustion model for vapor cloud explosions validated against full-scale data. Journal of Loss Prevention in the Process Industries, 14:181-192, 2001.
[401]
Clutter J.K. and Whitney M.G. Use of computational modeling to identify the cause of vapor cloud explosion incidents. Journal of Loss Prevention in the Process Industries, 14:337-347, 2001.
[402]
Clutter J.K. and Mathis J. Computational modeling of vapor clo