4.7 Article

Effect of ignition parameters on detonation initiation using toroidal shock wave focusing

Related references

Note: Only part of the references are listed.
Article Engineering, Chemical

Influence of branch pipes on the deflagration characteristics of methane in confined space

Pengfei Lv et al.

Summary: The research on the deflagration characteristics of CH4-air mixture in a confined space using numerical models revealed that the number of vertical branches influences the flame propagation, with vertical branches having both boosting and inhibiting effects on flame propagation. As the number of branches increases, the inhibiting effect becomes more dominant, leading to a significant attenuation in flame propagation velocity within the horizontal pipe. Additionally, the functions of the peak initial deflagration pressure varying with the number of branches and propagation distance in the horizontal pipe showed that vertical branches have a marked pressure venting effect on deflagration pressure, which becomes more significant with more branch pipes.

PROCESS SAFETY PROGRESS (2021)

Article Engineering, Aerospace

Numerical study of the influence of annular width on the rotating detonation wave in a non-premixed combustor

Ningbo Zhao et al.

AEROSPACE SCIENCE AND TECHNOLOGY (2020)

Article Engineering, Aerospace

Performance modeling of pulse detonation engines using the method of characteristics

James T. Peace et al.

AEROSPACE SCIENCE AND TECHNOLOGY (2019)

Article Thermodynamics

Shock focusing and detonation initiation at a flame front

Huahua Xiao et al.

COMBUSTION AND FLAME (2019)

Article Engineering, Aerospace

Numerical investigation on detonation initiation using toroidal shock wave focusing

Xiang Chen et al.

AEROSPACE SCIENCE AND TECHNOLOGY (2019)

Article Engineering, Mechanical

Numerical Research on the Toroidal Shock Wave Focusing Detonation Initiation

Xiang Chen et al.

JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER-TRANSACTIONS OF THE ASME (2019)

Article Chemistry, Physical

Onset of cellular instability and self-acceleration propagation of syngas spherically expanding flames at elevated pressures

Haoran Zhao et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2019)

Review Engineering, Chemical

Research progress on multi-overpressure peak structures of vented gas explosions in confined spaces

Kai Yang et al.

JOURNAL OF LOSS PREVENTION IN THE PROCESS INDUSTRIES (2019)

Article Thermodynamics

Shock transition to detonation in channels with obstacles

G. B. Goodwin et al.

PROCEEDINGS OF THE COMBUSTION INSTITUTE (2017)

Article Engineering, Aerospace

Detonation onset following shock wave focusing

N. N. Smirnov et al.

ACTA ASTRONAUTICA (2017)

Article Thermodynamics

Ignition method effect on detonation initiation characteristics in a pulse detonation engine

Zhiwu Wang et al.

APPLIED THERMAL ENGINEERING (2016)

Article Thermodynamics

Analysis of the actual thermodynamic cycle of the detonation engine

Khaled Alhussan et al.

APPLIED THERMAL ENGINEERING (2016)

Article Engineering, Environmental

Influence of inert gas addition on propagation indices of methane-air deflagrations

Maria Mitu et al.

PROCESS SAFETY AND ENVIRONMENTAL PROTECTION (2016)

Article Thermodynamics

Combustion wave propagation through a bank of cross-flow cylinders

Thomas Pinos et al.

COMBUSTION AND FLAME (2015)

Article Thermodynamics

Ignition regimes in rapid compression machines

Kevin P. Grogan et al.

COMBUSTION AND FLAME (2015)

Article Thermodynamics

Formation and evolution of distorted tulip flames

Huahua Xiao et al.

COMBUSTION AND FLAME (2015)

Article Chemistry, Physical

Ignition experiment with automotive spark on rotating detonation engine

Lei Peng et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2015)

Article Thermodynamics

Three-Dimensional Simulation of Deflagration-to-Detonation Transition with a Detailed Chemical Reaction Model

Takuya Machida et al.

COMBUSTION SCIENCE AND TECHNOLOGY (2014)

Article Chemistry, Physical

Flame acceleration and transition from deflagration to detonation in hydrogen explosions

A. Heidari et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2014)

Article Engineering, Chemical

Numerical Simulation of the Deflagration-to-Detonation Transition in Inhomogeneous Mixtures

Florian Ettner et al.

JOURNAL OF COMBUSTION (2014)

Article Thermodynamics

Two-dimensional numerical simulation on galloping detonation in a narrow channel

Nobuyuki Tsuboi et al.

PROCEEDINGS OF THE COMBUSTION INSTITUTE (2013)

Article Engineering, Industrial

Critical energy of direct detonation initiation in gaseous fuel-oxygen mixtures

Bo Zhang et al.

SAFETY SCIENCE (2013)

Article Thermodynamics

Mechanism of indirect initiation of detonation

Weiming Liu

COMBUSTION AND FLAME (2012)

Article Thermodynamics

Control of the Deflagration-to-Detonation Transition in Systems with Resistance

V. S. Babkin et al.

COMBUSTION EXPLOSION AND SHOCK WAVES (2011)

Article Engineering, Chemical

Effect of ignition position on the run-up distance to DDT for hydrogen-air explosions

Robert Blanchard et al.

JOURNAL OF LOSS PREVENTION IN THE PROCESS INDUSTRIES (2011)

Article Engineering, Aerospace

Deflagration-to-detonation transition in highly reactive combustible mixtures

M. A. Liberman et al.

ACTA ASTRONAUTICA (2010)

Article Thermodynamics

The role of shock-flame interactions on flame acceleration in an obstacle laden channel

Gaby Ciccarelli et al.

COMBUSTION AND FLAME (2010)

Article Chemistry, Physical

Experimental and numerical study on premixed hydrogen/air flame propagation in a horizontal rectangular closed duct

Huahua Xiao et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2010)

Article Chemistry, Physical

Fast turbulent deflagration and DDT of hydrogen-air mixtures in small obstructed channel

A. Teodorczyk et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2009)

Article Thermodynamics

Flame acceleration and DDT in channels with obstacles: Effect of obstacle spacing

Vadim N. Gamezo et al.

COMBUSTION AND FLAME (2008)

Review Thermodynamics

Flame acceleration and transition to detonation in ducts

G. Ciccarelli et al.

PROGRESS IN ENERGY AND COMBUSTION SCIENCE (2008)

Article Thermodynamics

Conditions of detonation initiation by focusing shock waves in a combustible gas mixture

S. V. Khomik et al.

COMBUSTION EXPLOSION AND SHOCK WAVES (2007)

Article Mechanics

Triple-point shear layers in gaseous detonation waves

L. Massa et al.

JOURNAL OF FLUID MECHANICS (2007)

Article Engineering, Aerospace

Toroidal imploding detonation wave initiator for pulse detonation engines

S. I. Jackson et al.

AIAA JOURNAL (2007)

Article Engineering, Aerospace

Thermodynamic cycle analysis for propagating detonations

E Wintenberger et al.

JOURNAL OF PROPULSION AND POWER (2006)

Article Engineering, Aerospace

Detonation initiation by annular-jet-induced imploding shocks

CP Li et al.

JOURNAL OF PROPULSION AND POWER (2005)

Article Chemistry, Physical

A comprehensive modeling study of hydrogen oxidation

M O Conaire et al.

INTERNATIONAL JOURNAL OF CHEMICAL KINETICS (2004)

Article Engineering, Aerospace

Detonation initiation by controlled triggering of electric discharges

SM Frolov et al.

JOURNAL OF PROPULSION AND POWER (2003)

Article Engineering, Aerospace

Thermodynamic cycle analysis of pulse detonation engines

WH Heiser et al.

JOURNAL OF PROPULSION AND POWER (2002)