Fowles R. Conservation Relations for Spherical and Cylindrical Stress Waves [J]. J Appl Phys, 1970, 41: 2740-2741.
[3]
Cowperthwaite M, Williams R F. Determination of Constitutive Relationships with Multiple Gauges in Nondivergent Waves [J]. J Appl Phys, 1971, 42: 456-462.
[4]
Wang L L. Foundation of Stress Waves [M]. 2nd ed. Beijing: National Defence Industry Press, 2005. (in Chinese)
[5]
王礼立. 应力波基础 [M]. 第2版. 北京: 国防工业出版社, 2005.
[6]
Wang L L, Wang Y G. The Important Role of Stress Waves in the Study on Dynamic Constitutive Behavior of Materials by SHPB [J]. Explosion and Shock Waves, 2005, 25(1): 17-25. (in Chinese)
Xu S L, Tang Z P, Hu X J, et al. Experimental Investigation on Dynamic Properties of the Polypropylene Micro-Fiber Reinforced Cement (FCEM) under Impact Load [J]. Explosion and Shock Waves, 2004, 24(3): 251-260. (in Chinese)
[9]
Seaman L. Lagrangian Analysis for Multiple Stress or Velocity Gages in Attenuating Waves [J]. J Appl Phys, 1974, 45: 4303-4314.
[10]
Wang L L, Yang L M. A Class of Nonlinear Viscoelastic Constitutive Relation of Solid Polymeric Materials [M]//Wang L L, Yu T X, Li Y C. Progress in Impact Dynamics. Hefei: University of Science and Technology of China Press, 1992: 88-116. (in Chinese)
Wang L L, Shi S Q, Chen J Y, et al. Influences of Strain-Rate and Stress-State on Dynamic Response of Cement Mortar [J]. Int J Struct Stab Dyn, 2003, 3(3): 419-433.
[13]
Zhu J. On SHPB Technique and Lagrangian Analysis Used for Studying the Impact Response of Concrete-Like Materials [D]. Hefei: University of Science and Technology of China, 2006. (in Chinese)