Literatura científica selecionada sobre o tema "Combustion-Deflagration-Detonation transition"
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Artigos de revistas sobre o assunto "Combustion-Deflagration-Detonation transition"
Debnath, Pinku, e Krishna Murari Pandey. "Computational Study of Deflagration to Detonation Transition in Pulse Detonation Engine Using Shchelkin Spiral". Applied Mechanics and Materials 772 (julho de 2015): 136–40. http://dx.doi.org/10.4028/www.scientific.net/amm.772.136.
Texto completo da fonteMa, Hu, Zhenjuan Xia, Wei Gao, Changfei Zhuo e Dong Wang. "Numerical simulation of the deflagration-to-detonation transition of iso-octane vapor in an obstacle-filled tube". International Journal of Spray and Combustion Dynamics 10, n.º 3 (13 de fevereiro de 2018): 244–59. http://dx.doi.org/10.1177/1756827718758047.
Texto completo da fonteDavis, Scott, Derek Engel, Kees van Wingerden e Erik Merilo. "Can gases behave like explosives: Large-scale deflagration to detonation testing". Journal of Fire Sciences 35, n.º 5 (setembro de 2017): 434–54. http://dx.doi.org/10.1177/0734904117715648.
Texto completo da fonteQiu, Hua, Zheng Su e Cha Xiong. "Experimental investigation on multi-cycle two-phase spiral pulse detonation tube of two configurations". Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering 233, n.º 11 (4 de dezembro de 2018): 4166–75. http://dx.doi.org/10.1177/0954410018817455.
Texto completo da fonteSmirnov, Nickolay, e Valeriy Nikitin. "Three-dimensional simulation of combustion, detonation and deflagration to detonation transition processes". MATEC Web of Conferences 209 (2018): 00003. http://dx.doi.org/10.1051/matecconf/201820900003.
Texto completo da fonteAdoghe, Joseph, Weiming Liu, Jonathan Francis e Akinola Adeniyi. "Investigation into mechanisms of deflagration-to-detonation using Direct Numerical Simulations". E3S Web of Conferences 128 (2019): 03002. http://dx.doi.org/10.1051/e3sconf/201912803002.
Texto completo da fonteCojocea, Andrei Vlad, Ionuț Porumbel, Mihnea Gall e Tudor Cuciuc. "Experimental Investigations on the Impact of Hydrogen Injection Apertures in Pulsed Detonation Combustor". Energies 17, n.º 19 (1 de outubro de 2024): 4918. http://dx.doi.org/10.3390/en17194918.
Texto completo da fonteHuang, Xiaolong, Ning Li e Yang Kang. "Research on Optical Diagnostic Method of PDE Working Status Based on Visible and Near-Infrared Radiation Characteristics". Energies 14, n.º 18 (10 de setembro de 2021): 5703. http://dx.doi.org/10.3390/en14185703.
Texto completo da fonteFrolov, Sergey M., Igor O. Shamshin, Viktor S. Aksenov, Vladislav S. Ivanov e Pavel A. Vlasov. "Ion Sensors for Pulsed and Continuous Detonation Combustors". Chemosensors 11, n.º 1 (1 de janeiro de 2023): 33. http://dx.doi.org/10.3390/chemosensors11010033.
Texto completo da fonteBrailovsky, I., L. Kagan e G. Sivashinsky. "Combustion waves in hydraulically resisted systems". Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences 370, n.º 1960 (13 de fevereiro de 2012): 625–46. http://dx.doi.org/10.1098/rsta.2011.0341.
Texto completo da fonteTeses / dissertações sobre o assunto "Combustion-Deflagration-Detonation transition"
Chapin, David Michael. "A Study of Deflagration To Detonation Transition In a Pulsed Detonation Engine". Thesis, Georgia Institute of Technology, 2005. http://hdl.handle.net/1853/7526.
Texto completo da fonteHamon, Émilien. "Endommagement, fragmentation et combustion d’un matériau explosif comprimé". Electronic Thesis or Diss., Bourges, INSA Centre Val de Loire, 2025. http://www.theses.fr/2025ISAB0003.
Texto completo da fonteIn the context of the safety of pyrotechnic structures, it is important to evaluate by simulation the level of reaction reached during thermal or mechanical aggressions (impact). Nowadays, there is no unified approach approved by the international scientific community to describe the complex process leading to violent reactions such as the Combustion-Deflagration-Detonation transition (CoDDT). The objective of this thesis is to study the influence of the damage, resulting from low velocity impact damage on the combustion of a pressed explosive.First, we will study the influence of mechanical loading on the combustion behavior of our material. We will show that the burning surface plays an important role in the TCoDD phenomenon, and we will seek to determine this surface from manometer bomb tests. Next, we will quantify the damage within the microstructure (crack density, porosity, etc.) following mechanical loading. Finally, we will model the mechanical behavior of our material and relate its damage to the crack density influencing material combustion
Charignon, Camille. "Transition Déflagration-Détonation dans les Supernovae Thermonucléaires". Phd thesis, Université Paris Sud - Paris XI, 2013. http://tel.archives-ouvertes.fr/tel-00874701.
Texto completo da fonteKristoffersen, Kjetil. "Gas explosions in process pipes". Doctoral thesis, Norwegian University of Science and Technology, Faculty of Engineering Science and Technology, 2004. http://urn.kb.se/resolve?urn=urn:nbn:no:ntnu:diva-235.
Texto completo da fonteIn this thesis, gas explosions inside pipes are considered. Laboratory experiments and numerical simulations are the basis of the thesis. The target of the work was to develop numerical models that could predict accidental gas explosions inside pipes.
Experiments were performed in circular steel pipes, with an inner diameter of 22.3 mm, and a plexiglass pipe, with an inner diameter of 40 mm. Propane, acetylene and hydrogen at various equivalence ratios in air were used. Pressure was recorded by Kistler pressure transducers and flame propagation was captured by photodiodes, a SLR camera and a high-speed camera. The experiments showed that acoustic oscillations would occur in the pipes, and that the frequencies of these oscillations are determined by the pipe length. Several inversions of the flame front can occur during the flame propagation in a pipe. These inversions are appearing due to quenching of the flame front at the pipe wall and due to interactions of the flame front with the longitudinal pressure waves in the pipe. Transition to detonation was achieved in acetylene-air mixtures in a 5 m steel pipe with 4 small obstructions.
Simulations of the flame propagation in smooth pipes were performed with an 1D MATLAB version of the Random Choice Method (RCMLAB). Methods for estimation of quasi 1D burning velocities and of pipe outlet conditions from experimental pressure data were implemented into this code. The simulated pressure waves and flame propagation were compared to the experimental results and there are good agreements between the results.
Simulations were also performed with the commercial CFD code FLACS. They indicated that to properly handle the longitudinal pressure oscillations in pipes, at least 7 grid cells in each direction of the pipe cross-section and a Courant number of maximum 1 should be used. It was shown that the current combustion model in FLACS gave too high flame speeds initially for gas explosions in a pipe with an inner width of 40 mm.
Gray, Joshua Allen Terry [Verfasser], Christian Oliver [Akademischer Betreuer] Paschereit, Jonas Pablo [Akademischer Betreuer] Moeck, Christian Oliver [Gutachter] Paschereit, Jonas Pablo [Gutachter] Moeck e Ephraim [Gutachter] Gutmark. "Reduction in the run-up distance for the deflagration-to-detonation transition and applications to pulse detonation combustion / Joshua Allen Terry Gray ; Gutachter: Christian Oliver Paschereit, Jonas Pablo Moeck, Ephraim Gutmark ; Christian Oliver Paschereit, Jonas Pablo Moeck". Berlin : Technische Universität Berlin, 2018. http://d-nb.info/1156180090/34.
Texto completo da fonteSchild, Ilissa Brooke. "Influence of Spark Energy, Spark Number, and Flow Velocity on Detonation Initiation in a Hydrocarbon-fueled PDE". Thesis, Georgia Institute of Technology, 2005. http://hdl.handle.net/1853/7527.
Texto completo da fonteNicoloso, Julien. "Combustion confinée d'explosif condensé pour l'accélaration de projectile. Application en pyrotechnie spatiale". Phd thesis, ISAE-ENSMA Ecole Nationale Supérieure de Mécanique et d'Aérotechique - Poitiers, 2014. http://tel.archives-ouvertes.fr/tel-01060036.
Texto completo da fonteLindstedt, R. Peter. "Deflagration to detonation transition in mixtures containing LNG/LPG constituents". Thesis, Imperial College London, 1985. http://hdl.handle.net/10044/1/37764.
Texto completo da fonteMyers, Charles B. "Initiation mechanisms of low-loss swept-ramp obstacles for deflagration to detonation transition in pulse detonation combustors". Thesis, Monterey, California : Naval Postgraduate School, 2009. http://edocs.nps.edu/npspubs/scholarly/theses/2009/Dec/09Dec%5FMyers.pdf.
Texto completo da fonteThesis Advisor(s): Brophy, Christopher M. Second Reader: Hobson, Garth V. "December 2009." Description based on title screen as viewed on January 28, 2010. Author(s) subject terms: Pulse Detonation Combustors, PDC, Pulse Detonation Engines, PDE, PDE ignition, PDE initiation, low-loss obstacles, ramp, swept ramp, DDT, DDT initiation. Includes bibliographical references (p. 89-90). Also available in print.
Bhat, Abhishek R. "Experimental and Computational Studies on Deflagration-to-Detonation Transition and its Effect on the Performance of PDE". Thesis, 2014. http://etd.iisc.ac.in/handle/2005/3181.
Texto completo da fonteCapítulos de livros sobre o assunto "Combustion-Deflagration-Detonation transition"
Liberman, Michael A. "Flame Acceleration and Deflagration-To-Detonation Transition". In Combustion Physics, 415–63. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-85139-2_15.
Texto completo da fonte"Transient Combustion of Solid Propellants: An Important Aspect of Deflagration-to-Detonation Transition". In Nonsteady Burning and Combustion Stability of Solid Propellants, 441–64. Washington DC: American Institute of Aeronautics and Astronautics, 1992. http://dx.doi.org/10.2514/5.9781600866159.0441.0464.
Texto completo da fonte"Deflagration-to-Detonation Transition in Reactive Granular Materials". In Numerical Approaches to Combustion Modeling, 481–512. Washington DC: American Institute of Aeronautics and Astronautics, 1991. http://dx.doi.org/10.2514/5.9781600866081.0481.0512.
Texto completo da fonteSmirnov, N. N., V. F. Nikitin, V. M. Shevtsova e J. C. Legros. "THE ROLE OF GEOMETRICAL FACTORS IN DEFLAGRATION-TO-DETONATION TRANSITION". In Combustion Processes in Propulsion, 305–14. Elsevier, 2006. http://dx.doi.org/10.1016/b978-012369394-5/50032-9.
Texto completo da fonteTrabalhos de conferências sobre o assunto "Combustion-Deflagration-Detonation transition"
Zangiev, A. E., V. S. Ivanov e S. M. Frolov. "NUMERICAL SIMULATION OF DEFLAGRATION-TO-DETONATION TRANSITION IN A PULSED DETONATION ENGINE". In 8TH INTERNATIONAL SYMPOSIUM ON NONEQUILIBRIUM PROCESSES, PLASMA, COMBUSTION, AND ATMOSPHERIC PHENOMENA. TORUS PRESS, 2020. http://dx.doi.org/10.30826/nepcap2018-2-31.
Texto completo da fonteHwang, Eduardo, Felipe Porto Ribeiro e Jian Su. "CFD Simulation of Deflagration to Detonation Transition for Nuclear Safety". In 2014 22nd International Conference on Nuclear Engineering. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/icone22-31010.
Texto completo da fonteFROLOV, S. M., V. S. AKSENOV e I. O. SHAMSHIN. "DEFLAGRATION-TO-DETONATION TRANSITION IN A STRATIFIED SYSTEM “GASEOUS OXYGEN-LIQUID FILM OF N-DECANE”". In 8TH INTERNATIONAL SYMPOSIUM ON NONEQUILIBRIUM PROCESSES, PLASMA, COMBUSTION, AND ATMOSPHERIC PHENOMENA. TORUS PRESS, 2020. http://dx.doi.org/10.30826/nepcap2018-2-30.
Texto completo da fonteRen, Ke, Alexei Kotchourko, Alexander Lelyakin e Thomas Jordan. "Numerical Reproduction of DDT in Small Scale Channels". In 2017 25th International Conference on Nuclear Engineering. American Society of Mechanical Engineers, 2017. http://dx.doi.org/10.1115/icone25-67150.
Texto completo da fonteFROLOV, S. M., V. I. ZVEGINTSEV, V. S. AKSENOV, I. V. BILERA, M. V. KAZACHENKO, I. O. SHAMSHIN, P. A. GUSEV e M. S. BELOTSERKOVSKAYA 3,8. "RANKING OF FUEL–AIR MIXTURES IN TERMS OF THEIR PROPENSITY TO DEFLAGRATION-TO-DETONATION TRANSITION". In International Colloquium on Pulsed and Continuous Detonations. TORUS PRESS, 2021. http://dx.doi.org/10.30826/icpcd12b02.
Texto completo da fonteHasti, Veeraraghava Raju, e Reetesh Ranjan. "Numerical Investigation of Wave Dynamics During Mode Transition in a Hydrogen-Fueled Rotating Detonation Engine Combustor". In ASME 2024 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2024. https://doi.org/10.1115/imece2024-145858.
Texto completo da fonteSchildberg, Hans-Peter. "Experimental Determination of the Static Equivalent Pressures of Detonative Decompositions of Acetylene in Long Pipes and Chapman-Jouguet Pressure Ratio". In ASME 2014 Pressure Vessels and Piping Conference. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/pvp2014-28197.
Texto completo da fonteHabicht, Fabian E., Fatma C. Yücel, Niclas Hanraths, Neda Djordjevic e Christian Oliver Paschereit. "Lean Operation of a Pulse Detonation Combustor by Fuel Stratification". In ASME Turbo Expo 2020: Turbomachinery Technical Conference and Exposition. American Society of Mechanical Engineers, 2020. http://dx.doi.org/10.1115/gt2020-16169.
Texto completo da fonteSchildberg, Hans-Peter. "Experimental Determination of the Static Equivalent Pressures of Detonative Explosions of Ethylene/O2/N2-Mixtures and Cyclohexane/O2/N2-Mixtures in Long and Short Pipes". In ASME 2018 Pressure Vessels and Piping Conference. American Society of Mechanical Engineers, 2018. http://dx.doi.org/10.1115/pvp2018-84493.
Texto completo da fonteZou, Zhiqiang, Jian Deng e Yu Zhang. "CFD Analysis on Hydrogen Risk in Subcompartment of the Containment". In 2013 21st International Conference on Nuclear Engineering. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/icone21-16171.
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