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DANCYGIER A N, YANKELEVSKY D Z. High strength concrete response to hard projectile
impact [J]. International Journal of Impact Engineering, 1996, 18(6): 583–599.
DANCYGIER A N. Rear face damage of normal and high-strength concrete elements caused by
hard projectile impact [J]. ACI Structural Journal, 1998, 5(3): 291–304.
DANCYGIER A N, YANKELEVSKY D Z, HAEGERMANN C. Response of high performance
concrete plates to impact of non-deforming projectiles [J]. International Journal of Impact
Engineering, 2007 34(11): 1768–1779.
DIAMOND S, HUANG J. The ITZ in concrete-a different view based on image analysis and SEM
observations [J]. Cement & Concrete Composites, 2001, 23(2–3): 179–188.
FANG Q, ZHANG J H. Three-dimensional modelling of steel fiber reinforced concrete material
under intense dynamic loading [J]. Construction and Building Materials, 2013, 44: 1318–1323.
FULLER W B, THOMPSON S E. The laws of proportioning concrete[J]. Transactions of the
American Society of Civil Engineers, 1907, lix: 67–143.
GUAN Z Q, SONG C, GU Y X. Recent Advances of Research on Finite Element Mesh Generation
Methods [J]. Journal of Computer-Aided Design & Computer Graphics, 2003, 15(1): 1–14. (in
Chinese).
HANCHAK S J, FORRESTAL M J, YOUNG E R, EHRGOTT J Q. Perforation of concrete slab with
48MPa (7ksi) and 140MPa (20ksi) unconfined compressive strength [J]. International Journal of
Impact Engineering, 1992, 12(1): 1–7.
HALLQUIST J O. LS-DYNA keyword user’s manual[M]. Livermore Software Technology
Corporation, 2007.
HOLMQUIST T J, JOHNSON G R, COOK W H. A computational constitutive model for concrete
subjective to large strain, high strain rates, and high pressure. The 14th International Symposium
on Ballistic, Quebec[C]. 1993: 591–600.
JOHNSON G R, COOK W H. Fracture characteristics of three metals subjected to various strains,
strain rates, temperatures and pressures [J]. Engineering Fracture Mechanics, 1985, 21(1): 31–48.
LAI J Z, SUN W, LIN W, JIN Z Q. Static and dynamic mechanical behavior of ECO-RPC (Eng
Ed) [J]. Journal of Southeast University, 2005, 21(2): 197–202.
LANDERTSHAMER F, STEFFAN H. Method to generate complex computational meshes efficiently [J]. International Journal for Numerical Methods in Biomedical Engineering, 2010, 10(5):
373–384.
LANGBERG H, MARKESET G. High performance concrete-penetration resistance and material
development. Proceedings of the Ninth International Symposium on Interaction of the Effects of
Munitions with Structures, Berlin-Strausberg[C].1999: 933–941.
LIU R C, WU B, ZHANG X Z, SHEN G S, NIU X L. Tests on resisting projectiles penetration of
high strength volume steel fiber concrete [J]. Chinese Journal of Explosion and Shock Waves,
2002, 22(4): 368–372. (in Chinese).
LIU G T, GAO Z G. Random 3-D aggregate structure for concrete [J]. Journal of Tsinghua University
(Science and Technology), 2003, 43(8): 1120–1123. (in Chinese).
LUNDGREN R G. High-velocity penetrators, the American Institute of Aeronautics and Astronautics Missile Sciences Conference, Monterey, CA, 7–9 Nov. 1994[C]. 1994. SAND94–2724C
Conf-9411142–1.
LUO X, SUN W, SAMMY CHAN Y N. Characteristics of high-performance steel fiber-reinforced
concrete subject to high velocity impact[J]. Cement and Concrete Research, 2000, 30(6): 907–914.
MATSUMOTO M, NISHIMURA T. Mersenne twister: a 623-dimensionally equidistributed
uniform pseudo-random number generator [J]. ACM Transactions on Modeling & Computer
Simulation, 1998, 8(1): 3–30.
OLLIVIER J P, MASO J C, BOURDETTE B. Interfacial transition zone in concrete [J]. Advanced
Cement Based Materials, 1995, 2(1): 30–38.
161
References
CHEN X W, LI Q M. Transition from non-deformable projectile penetration to semi-hydrodynamic
penetration [J]. Journal of Engineering Mechanics, 2004, 130(1): 123–127.
DANCYGIER A N, YANKELEVSKY D Z. High strength concrete response to hard projectile
impact [J]. International Journal of Impact Engineering, 1996, 18(6): 583–599.
DANCYGIER A N. Rear face damage of normal and high-strength concrete elements caused by
hard projectile impact [J]. ACI Structural Journal, 1998, 5(3): 291–304.
DANCYGIER A N, YANKELEVSKY D Z, HAEGERMANN C. Response of high performance
concrete plates to impact of non-deforming projectiles [J]. International Journal of Impact
Engineering, 2007 34(11): 1768–1779.
DIAMOND S, HUANG J. The ITZ in concrete-a different view based on image analysis and SEM
observations [J]. Cement & Concrete Composites, 2001, 23(2–3): 179–188.
FANG Q, ZHANG J H. Three-dimensional modelling of steel fiber reinforced concrete material
under intense dynamic loading [J]. Construction and Building Materials, 2013, 44: 1318–1323.
FULLER W B, THOMPSON S E. The laws of proportioning concrete[J]. Transactions of the
American Society of Civil Engineers, 1907, lix: 67–143.
GUAN Z Q, SONG C, GU Y X. Recent Advances of Research on Finite Element Mesh Generation
Methods [J]. Journal of Computer-Aided Design & Computer Graphics, 2003, 15(1): 1–14. (in
Chinese).
HANCHAK S J, FORRESTAL M J, YOUNG E R, EHRGOTT J Q. Perforation of concrete slab with
48MPa (7ksi) and 140MPa (20ksi) unconfined compressive strength [J]. International Journal of
Impact Engineering, 1992, 12(1): 1–7.
HALLQUIST J O. LS-DYNA keyword user’s manual[M]. Livermore Software Technology
Corporation, 2007.
HOLMQUIST T J, JOHNSON G R, COOK W H. A computational constitutive model for concrete
subjective to large strain, high strain rates, and high pressure. The 14th International Symposium
on Ballistic, Quebec[C]. 1993: 591–600.
JOHNSON G R, COOK W H. Fracture characteristics of three metals subjected to various strains,
strain rates, temperatures and pressures [J]. Engineering Fracture Mechanics, 1985, 21(1): 31–48.
LAI J Z, SUN W, LIN W, JIN Z Q. Static and dynamic mechanical behavior of ECO-RPC (Eng
Ed) [J]. Journal of Southeast University, 2005, 21(2): 197–202.
LANDERTSHAMER F, STEFFAN H. Method to generate complex computational meshes efficiently [J]. International Journal for Numerical Methods in Biomedical Engineering, 2010, 10(5):
373–384.
LANGBERG H, MARKESET G. High performance concrete-penetration resistance and material
development. Proceedings of the Ninth International Symposium on Interaction of the Effects of
Munitions with Structures, Berlin-Strausberg[C].1999: 933–941.
LIU R C, WU B, ZHANG X Z, SHEN G S, NIU X L. Tests on resisting projectiles penetration of
high strength volume steel fiber concrete [J]. Chinese Journal of Explosion and Shock Waves,
2002, 22(4): 368–372. (in Chinese).
LIU G T, GAO Z G. Random 3-D aggregate structure for concrete [J]. Journal of Tsinghua University
(Science and Technology), 2003, 43(8): 1120–1123. (in Chinese).
LUNDGREN R G. High-velocity penetrators, the American Institute of Aeronautics and Astronautics Missile Sciences Conference, Monterey, CA, 7–9 Nov. 1994[C]. 1994. SAND94–2724C
Conf-9411142–1.
LUO X, SUN W, SAMMY CHAN Y N. Characteristics of high-performance steel fiber-reinforced
concrete subject to high velocity impact[J]. Cement and Concrete Research, 2000, 30(6): 907–914.
MATSUMOTO M, NISHIMURA T. Mersenne twister: a 623-dimensionally equidistributed
uniform pseudo-random number generator [J]. ACM Transactions on Modeling & Computer
Simulation, 1998, 8(1): 3–30.
OLLIVIER J P, MASO J C, BOURDETTE B. Interfacial transition zone in concrete [J]. Advanced
Cement Based Materials, 1995, 2(1): 30–38.
