TY - JOUR
T1 - Effect of argon dilution on detonation instability of C2H2-O2 mixture and its quantitative analysis
AU - Zhao, Huanjuan
AU - Lee, J. H.S.
AU - Zhang, Yinghua
AU - Qian, Xinming
AU - Yan, Yiran
N1 - Publisher Copyright:
© 2017, Editorial Board of EXPLOSION AND SHOCK WAVES. All right reserved.
PY - 2017/7/25
Y1 - 2017/7/25
N2 - To investigate quantitatively the effect of argon dilution on the detonation instability of C2H2-O2 mixture, we carried out a digital comparison of smoked foils from C2H2-O2 mixtures with different Argon dilutions (with an volume fraction of 50%, 70%, and 85%, respectively) in two tubes (with an inner diameter of 50.8 mm and 63.5 mm, respectively) producing transverse waves of regular and irregular spacing and, based on the smoked foils, obtained under different initial pressures the histogram, the standard deviation and the autocorrelation function, which we then used to quantify the spacing irregularity for different cellular detonation structures. Each smoked foil was digitized and separated into left-running and right-running waves for subsequent analysis. The histogram, the standard deviation and the autocorrelation function showed consistent tendency. As the Ar dilution's volume fraction rose, the trajectory of the triple points became more regular. Similarly, mixtures of different Argon dilutions showed different degrees of irregularity in the analysis of the histograms and the autocorrelation function of the transverse waves' spacing. The proportion of the dominant mode of C2H2-O2-85%Ar, C2H2-O2-70%Ar, and C2H2-O2 were 33%, 23%, and 20%, respectively, while their standard deviation was 2.66~6.60 mm, 5.37~10.96 mm, and 27.63~36.67 mm, and their autocorrelation function peak values were higher by 1/3, 1/6, and 1/7 times. A polynomial fitted curve of the dilution and the irregularity was drawn from the standard deviation data to provide a selection basis for the instability degree and the Ar dilution's volume fraction.
AB - To investigate quantitatively the effect of argon dilution on the detonation instability of C2H2-O2 mixture, we carried out a digital comparison of smoked foils from C2H2-O2 mixtures with different Argon dilutions (with an volume fraction of 50%, 70%, and 85%, respectively) in two tubes (with an inner diameter of 50.8 mm and 63.5 mm, respectively) producing transverse waves of regular and irregular spacing and, based on the smoked foils, obtained under different initial pressures the histogram, the standard deviation and the autocorrelation function, which we then used to quantify the spacing irregularity for different cellular detonation structures. Each smoked foil was digitized and separated into left-running and right-running waves for subsequent analysis. The histogram, the standard deviation and the autocorrelation function showed consistent tendency. As the Ar dilution's volume fraction rose, the trajectory of the triple points became more regular. Similarly, mixtures of different Argon dilutions showed different degrees of irregularity in the analysis of the histograms and the autocorrelation function of the transverse waves' spacing. The proportion of the dominant mode of C2H2-O2-85%Ar, C2H2-O2-70%Ar, and C2H2-O2 were 33%, 23%, and 20%, respectively, while their standard deviation was 2.66~6.60 mm, 5.37~10.96 mm, and 27.63~36.67 mm, and their autocorrelation function peak values were higher by 1/3, 1/6, and 1/7 times. A polynomial fitted curve of the dilution and the irregularity was drawn from the standard deviation data to provide a selection basis for the instability degree and the Ar dilution's volume fraction.
KW - Ar dilution
KW - Cellular structure
KW - Detonation experiment
KW - Digital processing
KW - Quantitative irregularity
UR - http://www.scopus.com/inward/record.url?scp=85027983758&partnerID=8YFLogxK
U2 - 10.11883/1001-1455(2017)04-0577-08
DO - 10.11883/1001-1455(2017)04-0577-08
M3 - Article
AN - SCOPUS:85027983758
SN - 1001-1455
VL - 37
SP - 577
EP - 584
JO - Baozha Yu Chongji/Expolosion and Shock Waves
JF - Baozha Yu Chongji/Expolosion and Shock Waves
IS - 4
ER -