Fast Deflagration-to-Detonation Transition in Helical Tubes

Author:

Shamshin Igor O.1ORCID,Aksenov Viktor S.12,Kazachenko Maxim V.1,Gusev Pavel A.1,Frolov Sergey M.12ORCID

Affiliation:

1. Semenov Federal Research Center for Chemical Physics of the Russian Academy of Sciences (FRC), Moscow 119991, Russia

2. Institute of Laser and Plasma Technologies, National Nuclear Research University “MEPhI”, Moscow 115409, Russia

Abstract

When designing a new type of power plants operating on pulsed detonations of gaseous or liquid fuels, the concept of fast deflagration-to-detonation transition (FDDT) is used. According to the concept, a flame arising from a weak ignition source must accelerate so fast as to form an intense shock wave at a minimum distance from the ignition source so that the intensity of the shock wave is sufficient for fast shock-to-detonation transition by some additional arrangements. Hence, the FDDT concept implies the use of special means for flame acceleration and shock wave amplification. In this work, we study the FDDT using a pulsed detonation tube comprising a Shchelkin spiral and a helical tube section with ten coils as the means for flame acceleration and shock amplification (focusing), respectively. To attain the FDDT at the shortest distances for fuels of significantly different detonability, the diameter of the pulsed detonation tube is taken close to the limiting diameter of detonation propagation for air mixtures of regular hydrocarbon fuels (50 mm). Experiments are conducted with air mixtures of individual gaseous fuels (hydrogen, methane, propane, and ethylene) and binary fuel compositions (methane–hydrogen, propane–hydrogen, and ethylene–hydrogen) at normal pressure and temperature conditions. The use of a helical tube with ten coils is shown to considerably extend the fuel-lean concentration limits of detonation as compared to the straight tube and the tube with a helical section with two coils.

Funder

Ministry of Science and Higher Education

Publisher

MDPI AG

Subject

Process Chemistry and Technology,Chemical Engineering (miscellaneous),Bioengineering

Reference62 articles.

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3. Oppenheim, A.K. (1972). Introduction to Gasdynamics of Explosions, Springer.

4. Shchelkin, K.I. (1949). Fast Combustion and Spinning Detonation of Gases, Voenizdat.

5. Deflagration to detonation transitions and strong deflagrations in alkane and alkene air mixtures;Lindstedt;Combust. Flame,1989

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