Lee J-H, Thadhani N N . Defect-Enhanced Solid-State Reaction Behavior of Shocked-Modified Ti+C Powder Mixture Compacts [J]. J Mater Proc Tech, 1999, 85: 79-82.
[2]
Ando S, Mine Y, Takashima K, et al. Explosive Compaction of Nd-Fe-B Powder [J]. J Mater Proc Tech, 1999, 85: 142-147.
[3]
Sivakumar K, Bhat T B, Ramakrishnan P. Effect of Process Parameters on the Densification of 2024Al-20vol. %SiCp Composites Fabricated by Explosive Compaction [J]. J Mater Proc Tech, 1998, 73: 268-275.
[4]
Tanimoto H, Pasquini L, Prümmer R, et al. Self-Diffusion and Magnetic Properties in Explosion Densified Nanocrystalline Fe [J]. Scripta Mater, 2000, 42: 961-966.
[5]
Shao B H. Explosive Consolidation of Amorphous Cobalt-Based Alloys [J]. J Mater Proc Tech, 1999, 85: 121-124.
[6]
Carrol M M, Holt A C. Static and Dynamic Pore-Collapse Relations for Ductile Porous Materials [J]. J Appl Phys, 1972, 43(4): 1626-1635.
[7]
Dunin S Z, SurkovV V. Dynamics of the Closing of Pores at the Shock Wave Front [J]. J Appl Mech Tech Phys, 1979, 43 (3): 550-558.
[8]
Attetkov A V, Vlasova L N, Selivanov V V, et al. Effect of Non-Equilibrium Heating on the Behavior of a Porous Material in Shock Compression [J]. J Appl Mech Tech Phys, 1984, 25(6): 914-921.
[9]
Carrol M M, Kim K T. The Effect of Temperature on Viscoplastic Pore Collapse [J]. J Appl Phys, 1986, 59(6): 1962-1967.
[10]
Shao B H, Gao J X, Li G H. The Mechanism of Enegy Deposition at the Interface of Metal Powder in Explosive Consolidation [J]. Explosion and Shock Waves, 1989, 9(1): 17-27. (in Chinese)
Johnson G R, Cook W H. Fracture Characteristics of Three Metals Subjected to Various Strain Rates, Temperatures and Pressures [J]. Engineering Fracture Mechanics, 1985, 21(1): 31-48.
[13]
Shao B H, Zhang K. Explosive Welding Principle and Its Application [M]. Dalian: Dalian University of Science and Technology Press, 1987. 329-341. (in Chinese)