Page 125 - 《爆炸与冲击》2026年第2期
P. 125

第 46 卷      张    臣,等: 高温与冲击耦合作用下超高性能混凝土的动态力学特性与本构方程                             第 2 期

               [15]   王景海, 陈万祥, 邹慧辉, 等. 高温后钢管     RPC  动态本构模型及    SHPB  试验验证 [J]. 解放军理工大学学报     (自然科学版),
                    2016, 17(6): 539–545. DOI: 10.12018/j.issn.1009-3443.20160304002.
                    WANG  J  H,  CHEN  W  X,  ZOU  H  H,  et  al.  Dynamic  constitutive  model  and  SHPB  tests  for  RPC-filled  steel  tube  after
                    exposure to high temperature [J]. Journal of PLA University of Science and Technology (Natural Science Edition), 2016,
                    17(6): 539–545. DOI: 10.12018/j.issn.1009-3443.20160304002.
               [16]   LIANG W B, ZHAO J H, LI Y, et al. Research on dynamic mechanical properties and constitutive model of basalt fiber
                    reinforced concrete after exposure to elevated temperatures under impact loading [J]. Applied Sciences, 2020, 10(21): 7684.
                    DOI: 10.3390/app10217684.
               [17]   SHEMIRANI A B, NAGHDABADI R, ASHRAFI M J. Experimental and numerical study on choosing proper pulse shapers
                    for testing concrete specimens by split Hopkinson pressure bar apparatus [J]. Construction and Building Materials, 2016, 125:
                    326–336. DOI: 10.1016/j.conbuildmat.2016.08.045.
               [18]   宋博, 姜锡权, 陈为农. 霍普金森压杆实验中的脉冲整形技术 [C]//第三届全国爆炸力学实验技术交流会论文集. 合肥: 中
                    国科学技术大学冲击动力学实验室, 2004: 77–146.
                    SONG  B,  JIANG  X  Q,  CHEN  W  N.  Pulse  shaping  technique  in  split  Hopkinson  pressure  bar  (SHPB)  experiments  [C]//
                    Proceedings of the Third National Symposium on Experimental Technology of Explosive Mechanics. Hefei: Laboratory of
                    Shock Dynamics, University of Science and Technology of China, 2004: 77–146.
               [19]   高光发. 固体中的应力波导论 [M]. 北京: 科学出版社, 2022: 245–249.
                    GAO G F. Introduction to stress waves in solid [M]. Beijing: Science Press, 2022: 245–249.
               [20]   高光发, 郭扬波. 高强混凝土动态压缩试验分析 [J]. 爆炸与冲击, 2019, 39(3): 033103. DOI: 10.11883/bzycj-2017-0405.
                    GAO G F, GUO Y B. Analysis of the dynamic compressive test of high strength concrete [J]. Explosion and Shock Waves,
                    2019, 39(3): 033103. DOI: 10.11883/bzycj-2017-0405.
               [21]   罗百福. 高温下活性粉末混凝土爆裂规律及力学性能研究 [D]. 哈尔滨: 哈尔滨工业大学, 2014: 44–50.
                    LUO B F. Study on explosive spalling rules and mechanical properties of reactive powder concrete at elevated temperatures
                    [D]. Harbin: Harbin Institute of Technology, 2014: 44–50.
               [22]   康亚明, 贾延, 罗玉财, 等. 莫尔-库仑准则下高强度混凝土的临界爆裂蒸汽压力 [J]. 爆炸与冲击, 2018, 38(1): 224–232.
                    DOI: 10.11883/bzycj-2016-0305.
                    KANG Y M, JIA Y, LUO Y C, et al. Critical vapour pressure for explosive spalling of high-strength concrete based on Mohr-
                    Coulomb criterion [J]. Explosion and Shock Waves, 2018, 38(1): 224–232. DOI: 10.11883/bzycj-2016-0305.
               [23]   PR  K  R,  MATHANGI  D  P,  C  S,  et  al.  Experimental  investigation  of  reactive  powder  concrete  exposed  to  elevated
                    temperatures [J]. Construction and Building Materials, 2020, 261: 119593. DOI: 10.1016/j.conbuildmat.2020.119593.
               [24]   ZHAO  J,  ZHENG  J  J,  PENG  G  F,  et  al.  A  meso-level  investigation  into  the  explosive  spalling  mechanism  of  high-
                    performance concrete under fire exposure [J]. Cement and Concrete Research, 2014, 65: 64–75. DOI: 10.1016/j.cemconres.
                    2014.07.010.
               [25]   姜猛, 郭志昆, 陈万祥, 等. 高温后钢管活性粉末混凝土的动态力学性能 [J]. 爆炸与冲击, 2017, 37(3): 405–414. DOI:
                    10.11883/1001-1455(2017)03-0405-10.
                    JIANG M, GUO Z K, CHEN W X, et al. Mechanical properties of reactive powder concrete-filled steel tube after exposure to
                    high temperature under impact loading [J]. Explosion and Shock Waves, 2017, 37(3): 405–414. DOI: 10.11883/1001-1455
                    (2017)03-0405-10.
               [26]   吴平, 周飞, 李庆华, 等. 超高韧性水泥基复合材料—纤维混凝土组合靶体抗两次打击试验研究 [J]. 爆炸与冲击, 2022,
                    42(3): 033301. DOI: 10.11883/bzycj-2021-0178.
                    WU P, ZHOU F, LI Q H, et al. Experimental study on the resistance of the ultra high toughness cementitious composites
                    material-fiber concrete composite targets subjected to twice projectiles impact [J]. Explosion And Shock Waves, 2022, 42(3):
                    033301. DOI: 10.11883/bzycj-2021-0178.
               [27]   徐世烺, 陈超, 李庆华, 等. 超高韧性水泥基复合材料动态压缩力学性能的数值模拟研究 [J]. 工程力学, 2019, 36(9):
                    50–59. DOI: 10.6052/j.issn.1000-4750.2018.03.0147.
                    XU  S  L,  CHEN  C,  LI  Q  H,  et  al.  Numerical  simulation  on  dynamic  compressive  behavior  of  ultra-high  toughness
                    cementitious-composites [J]. Engineering Mechanics, 2019, 36(9): 50–59. DOI: 10.6052/j.issn.1000-4750.2018.03.0147.
               [28]   赵昕. 超高韧性水泥基复合材料动态力学性能试验与理论研究 [D]. 杭州: 浙江大学, 2018: 55–56. DOI: 10.27461/


                                                         023102-16
   120   121   122   123   124   125   126   127   128   129   130