TY - JOUR
T1 - Hugoniot and Mie–Grüneisen equation of state of unreacted 2,4-dinitroanisole (DNAN)
AU - Miao, Feichao
AU - Zhang, Xiangrong
AU - Zhou, Lin
AU - Wu, Xinxin
AU - Jiang, Tao
AU - Xing, Ruoting
N1 - Publisher Copyright:
© 2019 Elsevier Ltd
PY - 2019/12
Y1 - 2019/12
N2 - 2,4-dinitroanisole (DNAN) is an insensitive explosive with a low melting point. It is a good replacement for 2,4,6-trinitrotoluene (TNT) in melt-cast explosives. With the increasing use of DNAN-based explosives, the thermodynamic properties of DNAN are needed to model its responses. In this study, the Rankine–Hugoniot curve (or simply the Hugoniot) of DNAN was obtained using the pressure-comparing method. In the experiments, two manganin stress gauges were placed on the top surfaces of an explosive sample and a standard sample whose Hugoniot is known, which can minimize the effect on the experimental data of the explosive reacting. When a planar shock wave propagates simultaneously through both the explosive sample and the standard sample, the gauges record the pressures on the two surfaces. Combining paired data points from the two gauge data sets and the known Hugoniot of the standard sample gives the Hugoniot of DNAN. In addition, the Mie–Grüneisen equation of state was obtained by utilizing the Hugoniot as the reference curve.
AB - 2,4-dinitroanisole (DNAN) is an insensitive explosive with a low melting point. It is a good replacement for 2,4,6-trinitrotoluene (TNT) in melt-cast explosives. With the increasing use of DNAN-based explosives, the thermodynamic properties of DNAN are needed to model its responses. In this study, the Rankine–Hugoniot curve (or simply the Hugoniot) of DNAN was obtained using the pressure-comparing method. In the experiments, two manganin stress gauges were placed on the top surfaces of an explosive sample and a standard sample whose Hugoniot is known, which can minimize the effect on the experimental data of the explosive reacting. When a planar shock wave propagates simultaneously through both the explosive sample and the standard sample, the gauges record the pressures on the two surfaces. Combining paired data points from the two gauge data sets and the known Hugoniot of the standard sample gives the Hugoniot of DNAN. In addition, the Mie–Grüneisen equation of state was obtained by utilizing the Hugoniot as the reference curve.
KW - Explosives
KW - Hugoniot
KW - Impedance-matching
KW - Mie–Grüneisen equation of state
UR - http://www.scopus.com/inward/record.url?scp=85070826991&partnerID=8YFLogxK
U2 - 10.1016/j.ijimpeng.2019.103369
DO - 10.1016/j.ijimpeng.2019.103369
M3 - Article
AN - SCOPUS:85070826991
SN - 0734-743X
VL - 134
JO - International Journal of Impact Engineering
JF - International Journal of Impact Engineering
M1 - 103369
ER -