[1] 车得福, 李会雄. 多相流及其应用[M]. 西安: 西安交通大学出版社, 2007: 15-16.
[2] 章利特, 施红辉, 王超, 等. 激波与可运动颗粒群相互作用反射与透射机理实验研究[J]. 应用力学学报, 2010, 27(2): 280-285.
[3] Sun M, Saito T, Takayama K, et al. Unsteady drag on a sphere by shock wave loading[J]. Shock Waves, 2005, 14(1/2): 3-9.
[4] Saito T, Saba M, Sun M, et al. The effect of an unsteady drag force on the structure of a nonequilibrium region behind a shock wave in a gasparticle mixture[J]. Shock Waves, 2007, 17(4): 255-262.
[5] Igra O, Takayama K. Shock tube study of the drag coefficient of a sphere in a nonstationary flow[M]//Takayama K. Shock Waves. Berlin, Heidelberg: Springer, 1992: 491-497.
[6] Tanno H, Itoh K, Saito T, et al. Interaction of a shock with a sphere suspended in a vertical shock tube[J]. Shock Waves, 2003, 13(3): 191-200.
[7] Cagnoli B, Barmin A, Melnik O, et al. Depressurization of fine powders in a shock tube and dynamics of fragmented magma in volcanic conduits[J]. Earth and Planetary Science Letters, 2002, 204(1/2): 101-113.
[8] Parmar M, Haselbacher A, Balachandar S. Modeling of the unsteady force for shockparticle interaction[J]. Shock Waves, 2009, 19(4): 317-329.
[9] Annamalai S, Balachandar S. Faxén form of timedomain force on a sphere in unsteady spatially varying viscous compressible flows[J]. Journal of Fluid Mechanics, 2017, 816: 381-411.
[10] Chojnicki K, Clarke A B, Phillips J C. A shocktube investigation of the dynamics of gasparticle mixtures: Implications for explosive volcanic eruptions[J]. Geophysical Research Letters, 2006, 33(15): L15309.