References
103
ROSSI P, ARCA A, PARANT E, FAKHRI P. Bending and compressive behaviors of a new cement
composite[J]. Cement and Concrete Research, 2005, 35(1): 27–33.
SFER D, CAROL I, GETTU R, ETSE G. Study of the behavior of concrete under triaxial
compression[J]. Journal of Engineering Mechanics, 2002, 128(2): 156–163.
SIRIJAROONCHAI K, EI-TAWIL S, PARRA-MONTESINOS. Behavior of high performance fiber
reinforced cement composites under multi-axial compressive loading[J]. Cement & Concrete
Composites, 2010, 32: 62–72.
SOVJÁK R, VAV ˇ
RINIK T, ZATLOUKAL J, MÁCA P, MI ˇ
CUNEK T, FRYDRÝN M. Resistance of
slim UHPFRC targets projectile impact using in-service bullet[J]. International Journal of Impact
Engineering, 2015, 76: 166–177.
SOVJÁK R, VOGEL F, BECKMANN B. Triaxial compressive strength of ultra high performance
concrete[J]. Acta Polytechnica Hungarica, 2013, 53(6): 901–905.
TAERWE L R. Influence of steel fibers on strain-softening of high-strength concrete[J]. ACI
Materials Journal, 1992, 88(6): 54–60.
VU X H, DAUDEVILLE L, MALECOT YANN. Effect of coarse aggregate size and cement
paste volume on concrete behavior under high triaxial compression loading[J]. Construction
and Building Materials, 2011, 25: 3941–3949.
WANG C Z, GUO Z H, ZHANG X Q. Experimental investigation of biaxial and triaxial compressive
concrete strength[J]. ACI Materials Journal, 1987, 84(2): 92–100.
WILLE K, TAWIL S-EL, NAAMAN A E. Properties of strain hardening ultra high performance fiber
reinforced concrete (UHP-FRC) under direct tensile loading[J]. Cement & Concrete Composites,
2014, 48: 53–66.
WU H, FANG Q, CHEN X W, GONG Z M, LIU J Z. Projectile penetration of ultra-high performance
cement based composites at 510m/s to 1320m/s[J]. Construction and Building Materials, 2015,
74(15): 188–200.
WU H, FANG Q, GONG J, LIU J Z, ZHANG J H, GONG Z M. Projectile impact resistance of
corundum aggregated UHP-SFRC[J]. International Journal of Impact Engineering, 2015, 84:
38–53.
XIE J, ELWI A E, MACGREGOR J G. Mechanical properties of three high-strength concretes
containing silica fume[J]. ACI Materials Journal, 1995, 92: 135–143.
XIONG Y B. Research on constitutive parameters of concrete based on the Johnson-Holmquist
concrete model[D]. Xi’an: Northwest Institute Nuclear of Technology, 2009. (in Chinese).
XIONG Y B, CHEN J J, HU Y L. Preliminary identification of sensitive parameters in JohnsonHolmquist concrete constitutive model[J]. Acta Armamentarii, 2009, 30(2 suppl): 145–148. (in
Chinese).
YAN S H. Study of penetration theory and experiments on high-strength fiber reinforced
concrete[D]. Nanjing: PLA University of Science and Technology, 2001. (in Chinese).
ZHANG D Z, ZHANG X R, LIN J D, TANG R D. Penetration experiments for normal impact
into granite targets with high-strength steel projectile[J]. Chinese Journal of Rock Mechanics and
Engineering, 2005, 24(9): 1612–1618. (in Chinese).
ZHANG M H, SHIM V P W, LU G, CHEW C W. Resistance of high-strength concrete to projectile
impact[J]. International Journal of Impact Engineering, 2005, 31(7): 825–841.
103
ROSSI P, ARCA A, PARANT E, FAKHRI P. Bending and compressive behaviors of a new cement
composite[J]. Cement and Concrete Research, 2005, 35(1): 27–33.
SFER D, CAROL I, GETTU R, ETSE G. Study of the behavior of concrete under triaxial
compression[J]. Journal of Engineering Mechanics, 2002, 128(2): 156–163.
SIRIJAROONCHAI K, EI-TAWIL S, PARRA-MONTESINOS. Behavior of high performance fiber
reinforced cement composites under multi-axial compressive loading[J]. Cement & Concrete
Composites, 2010, 32: 62–72.
SOVJÁK R, VAV ˇ
RINIK T, ZATLOUKAL J, MÁCA P, MI ˇ
CUNEK T, FRYDRÝN M. Resistance of
slim UHPFRC targets projectile impact using in-service bullet[J]. International Journal of Impact
Engineering, 2015, 76: 166–177.
SOVJÁK R, VOGEL F, BECKMANN B. Triaxial compressive strength of ultra high performance
concrete[J]. Acta Polytechnica Hungarica, 2013, 53(6): 901–905.
TAERWE L R. Influence of steel fibers on strain-softening of high-strength concrete[J]. ACI
Materials Journal, 1992, 88(6): 54–60.
VU X H, DAUDEVILLE L, MALECOT YANN. Effect of coarse aggregate size and cement
paste volume on concrete behavior under high triaxial compression loading[J]. Construction
and Building Materials, 2011, 25: 3941–3949.
WANG C Z, GUO Z H, ZHANG X Q. Experimental investigation of biaxial and triaxial compressive
concrete strength[J]. ACI Materials Journal, 1987, 84(2): 92–100.
WILLE K, TAWIL S-EL, NAAMAN A E. Properties of strain hardening ultra high performance fiber
reinforced concrete (UHP-FRC) under direct tensile loading[J]. Cement & Concrete Composites,
2014, 48: 53–66.
WU H, FANG Q, CHEN X W, GONG Z M, LIU J Z. Projectile penetration of ultra-high performance
cement based composites at 510m/s to 1320m/s[J]. Construction and Building Materials, 2015,
74(15): 188–200.
WU H, FANG Q, GONG J, LIU J Z, ZHANG J H, GONG Z M. Projectile impact resistance of
corundum aggregated UHP-SFRC[J]. International Journal of Impact Engineering, 2015, 84:
38–53.
XIE J, ELWI A E, MACGREGOR J G. Mechanical properties of three high-strength concretes
containing silica fume[J]. ACI Materials Journal, 1995, 92: 135–143.
XIONG Y B. Research on constitutive parameters of concrete based on the Johnson-Holmquist
concrete model[D]. Xi’an: Northwest Institute Nuclear of Technology, 2009. (in Chinese).
XIONG Y B, CHEN J J, HU Y L. Preliminary identification of sensitive parameters in JohnsonHolmquist concrete constitutive model[J]. Acta Armamentarii, 2009, 30(2 suppl): 145–148. (in
Chinese).
YAN S H. Study of penetration theory and experiments on high-strength fiber reinforced
concrete[D]. Nanjing: PLA University of Science and Technology, 2001. (in Chinese).
ZHANG D Z, ZHANG X R, LIN J D, TANG R D. Penetration experiments for normal impact
into granite targets with high-strength steel projectile[J]. Chinese Journal of Rock Mechanics and
Engineering, 2005, 24(9): 1612–1618. (in Chinese).
ZHANG M H, SHIM V P W, LU G, CHEW C W. Resistance of high-strength concrete to projectile
impact[J]. International Journal of Impact Engineering, 2005, 31(7): 825–841.
