234
7 Impact Resistance of Armor Steel/Ceramic/UHPCC Layered …
JOHNSON G R, HOLMQUIST T J. An improved computational constitutive model for brittle
materials. AIP Conference, American Institute of Physics AIP[C]. 1994. 309(1): 981–984
KEELE M, RAPACKI E J, BRUCHEY W J. High velocity ballistic performance of a uranium alloy
long rod penetrator. 12th International Symposium on Ballistics[C]. 1990.
LI L, ZHANG X F, WU X, GAO F, LIU C. Dynamic constitutive and damage parameters of
30CrMnSiNi2A steel with different hardness[J]. Chinese Journal of High Pressure Physics, 2017,
31(3): 239-248. (in Chinese)
LIU J, WU C Q, CHEN X W. Numerical study of ultra-high performance concrete under nondeformable projectile penetration[J]. Construction and Building Materials, 2017, 135: 447-458.
LIU J, WU C Q, SU Y, LI J, SHAO R Z, CHEN G, LIU Z X. Experimental and numerical studies of
ultra-high performance concrete targets against high-velocity projectile impacts[J]. Engineering
Structures, 2018, 173: 166-179.
LSTC, LS-DYNA Keywords User’s Manual[M]. Livermore Software Technology Corporation,
2001.
LUNDBERG P, RENSTRÖM R, LUNDBERG B. Impact of metallic projectiles on ceramic
targets: transition between interface defeat and penetration[J]. International Journal of Impact
Engineering, 2000, 24(3): 259-275.
LUNDBERG P, LUNDBERG B. Transition between interface defeat and penetration for tungsten
projectiles and four silicon carbide materials[J]. International Journal of Impact Engineering,
2005, 31(7): 781-792.
MÁCA P, SOVJÁK R, KONVALINKA P. Mix design of UHPFRC and its response to projectile
impact[J]. International Journal of Impact Engineering, 2014, 63: 158-163.
MADHU V, RAMANJANEYULU K, BHAT T B, GUPTA N K. An experimental study of penetration resistance of ceramic armor subjected to projectile impact[J]. International Journal of Impact
Engineering, 2005, 32(1): 337-350.
MAGNESS L S, FARRAND T G. Deformation behavior and its relationship to the penetration
performance of high-density KE penetrator materials. 1990 Army Science Conference Durham,
NC[C]. 1990.
REAUGH J E, HOLT A C, WILKINS M L, CUNNINGHAM B J, HORD B L, KUSUBOV A S.
Impact studies of five ceramic materials and pyres[J]. International Journal of Impact Engineering,
1999, 23: 771-782.
REN G M, WU H, FANG Q, ZHOU J W, GONG Z M. Determinations of HJC constitutive model
parameters for normal strength concrete[J]. Journal of Vibration and Shock, 2016, 35(18): 9-16.
(in Chinese)
REN G M, WU H, FANG Q, KONG X Z. Parameters of Holmquist–Johnson–Cook model for
high-strength concrete-like materials under projectile impact[J]. International Journal Protection
Structures, 2017, 8(3): 352-367.
ROSENBERG Z, DEKEL E. Numerical study of the transition from rigid to eroding-rod
penetration[J]. Journal De Physique IV, 2003, 110: 681-686.
SERJOUEI A, CHI R Q, SRIDHAR I, TAN G E B. Empirical ballistic limit velocity model for
bi-layer ceramic-metal armor[J]. International Journal Protection Structures, 2015, 6(3): 509-527.
SHAO R Z, WU C Q, SU Y, LIU Z X, LIU J, CHEN G, XU S C. Experimental and numerical
investigations of penetration resistance of ultra-high strength concrete protected with ceramic
balls subjected to projectile impact[J]. Ceramics International, 2019, 45(6): 7961-7975.
SHI Z Y, TANG W H, WU K G, ZHANG R Q. Experimental study of the penetration into the
steel fiber reinforced concrete targets within armor plates and ceramic plates[J]. Journal of
Experimental Mechanics, 2006, 21(2): 172-176. (in Chinese)
SILSBY G F. Penetration of semi-infinite steel targets by tungsten rods at 1.3 to 4.5 km/s. 8th
International Symposium on Ballistics[C]. 1984.
SOVJÁK R, VAV ˇ
RINÍK T, MÁCA P, ZATLOUKAL J, KONVALINKA P, SONG Y P. Experimental
investigation of ultra-high performance fiber reinforced concrete slabs subjected to deformable
projectile impact[J]. Procedia Engineering, 2013, 65: 120-125.
7 Impact Resistance of Armor Steel/Ceramic/UHPCC Layered …
JOHNSON G R, HOLMQUIST T J. An improved computational constitutive model for brittle
materials. AIP Conference, American Institute of Physics AIP[C]. 1994. 309(1): 981–984
KEELE M, RAPACKI E J, BRUCHEY W J. High velocity ballistic performance of a uranium alloy
long rod penetrator. 12th International Symposium on Ballistics[C]. 1990.
LI L, ZHANG X F, WU X, GAO F, LIU C. Dynamic constitutive and damage parameters of
30CrMnSiNi2A steel with different hardness[J]. Chinese Journal of High Pressure Physics, 2017,
31(3): 239-248. (in Chinese)
LIU J, WU C Q, CHEN X W. Numerical study of ultra-high performance concrete under nondeformable projectile penetration[J]. Construction and Building Materials, 2017, 135: 447-458.
LIU J, WU C Q, SU Y, LI J, SHAO R Z, CHEN G, LIU Z X. Experimental and numerical studies of
ultra-high performance concrete targets against high-velocity projectile impacts[J]. Engineering
Structures, 2018, 173: 166-179.
LSTC, LS-DYNA Keywords User’s Manual[M]. Livermore Software Technology Corporation,
2001.
LUNDBERG P, RENSTRÖM R, LUNDBERG B. Impact of metallic projectiles on ceramic
targets: transition between interface defeat and penetration[J]. International Journal of Impact
Engineering, 2000, 24(3): 259-275.
LUNDBERG P, LUNDBERG B. Transition between interface defeat and penetration for tungsten
projectiles and four silicon carbide materials[J]. International Journal of Impact Engineering,
2005, 31(7): 781-792.
MÁCA P, SOVJÁK R, KONVALINKA P. Mix design of UHPFRC and its response to projectile
impact[J]. International Journal of Impact Engineering, 2014, 63: 158-163.
MADHU V, RAMANJANEYULU K, BHAT T B, GUPTA N K. An experimental study of penetration resistance of ceramic armor subjected to projectile impact[J]. International Journal of Impact
Engineering, 2005, 32(1): 337-350.
MAGNESS L S, FARRAND T G. Deformation behavior and its relationship to the penetration
performance of high-density KE penetrator materials. 1990 Army Science Conference Durham,
NC[C]. 1990.
REAUGH J E, HOLT A C, WILKINS M L, CUNNINGHAM B J, HORD B L, KUSUBOV A S.
Impact studies of five ceramic materials and pyres[J]. International Journal of Impact Engineering,
1999, 23: 771-782.
REN G M, WU H, FANG Q, ZHOU J W, GONG Z M. Determinations of HJC constitutive model
parameters for normal strength concrete[J]. Journal of Vibration and Shock, 2016, 35(18): 9-16.
(in Chinese)
REN G M, WU H, FANG Q, KONG X Z. Parameters of Holmquist–Johnson–Cook model for
high-strength concrete-like materials under projectile impact[J]. International Journal Protection
Structures, 2017, 8(3): 352-367.
ROSENBERG Z, DEKEL E. Numerical study of the transition from rigid to eroding-rod
penetration[J]. Journal De Physique IV, 2003, 110: 681-686.
SERJOUEI A, CHI R Q, SRIDHAR I, TAN G E B. Empirical ballistic limit velocity model for
bi-layer ceramic-metal armor[J]. International Journal Protection Structures, 2015, 6(3): 509-527.
SHAO R Z, WU C Q, SU Y, LIU Z X, LIU J, CHEN G, XU S C. Experimental and numerical
investigations of penetration resistance of ultra-high strength concrete protected with ceramic
balls subjected to projectile impact[J]. Ceramics International, 2019, 45(6): 7961-7975.
SHI Z Y, TANG W H, WU K G, ZHANG R Q. Experimental study of the penetration into the
steel fiber reinforced concrete targets within armor plates and ceramic plates[J]. Journal of
Experimental Mechanics, 2006, 21(2): 172-176. (in Chinese)
SILSBY G F. Penetration of semi-infinite steel targets by tungsten rods at 1.3 to 4.5 km/s. 8th
International Symposium on Ballistics[C]. 1984.
SOVJÁK R, VAV ˇ
RINÍK T, MÁCA P, ZATLOUKAL J, KONVALINKA P, SONG Y P. Experimental
investigation of ultra-high performance fiber reinforced concrete slabs subjected to deformable
projectile impact[J]. Procedia Engineering, 2013, 65: 120-125.
