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第 46 卷                 姚术健,等: 等效模拟爆炸加载试验技术研究进展                                  第 4 期

                     Anthology of ONR-Sponsored Research. Cham: Springer, 2020: 43–83. DOI: 10.1007/978-3-030-31065-3_2.
               [73]   CHENNAMSETTY A R K, LEBLANC J, ABOTULA S, et al. Dynamic response of Hastelloy® X plates under oblique
                     shocks: Experimental and numerical studies [J]. International Journal of Impact Engineering, 2015, 85: 97–109. DOI: 10.
                     1016/j.ijimpeng.2015.06.016.
               [74]   AUNE  V,  FAGERHOLT  E,  LANGSETH  M,  et  al.  A  shock  tube  facility  to  generate  blast  loading  on  structures  [J].
                     International Journal of Protective Structures, 2016, 7(3): 340–366. DOI: 10.1177/2041419616666236.
               [75]   AUNE V, VALSAMOS G, CASADEI F, et al. On the dynamic response of blast-loaded steel plates with and without pre-
                     formed holes [J]. International Journal of Impact Engineering, 2017, 108: 27–46. DOI: 10.1016/j.ijimpeng.2017.04.001.
               [76]   AUNE V, VALSAMOS G, CASADEI F, et al. Numerical study on the structural response of blast-loaded thin aluminium
                     and steel plates [J]. International Journal of Impact Engineering, 2017, 99: 131–144. DOI: 10.1016/j.ijimpeng.2016.08.010.
               [77]   AUNE V, VALSAMOS G, CASADEI F, et al. Fluid-structure interaction effects during the dynamic response of clamped
                     thin  steel  plates  exposed  to  blast  loading  [J].  International  Journal  of  Mechanical  Sciences,  2021,  195:  106263.  DOI:
                     10.1016/j.ijmecsci.2020.106263.
               [78]   STOLZ A, FISCHER K, ROLLER C, et al. Dynamic bearing capacity of ductile concrete plates under blast loading [J].
                     International Journal of Impact Engineering, 2014, 69: 25–38. DOI: 10.1016/j.ijimpeng.2014.02.008.
               [79]   ELVELI B S, IDDBERG M B, BØRVIK T, et al. On the strength-ductility trade-off in thin blast-loaded steel plates with and
                     without initial defects—an experimental study [J]. Thin-Walled Structures, 2022, 171: 108787. DOI: 10.1016/j.tws.2021.
                     108787.
               [80]   ELVELI B S, BERSTAD T, BØRVIK T, et al. Performance of thin blast-loaded steel plates after ballistic impact from small-
                     arms projectiles [J]. International Journal of Impact Engineering, 2023, 173: 104437. DOI: 10.1016/j.ijimpeng.2022.104437.
               [81]   LI Y, JIANG X W, TANG Y, et al. Investigation on the dynamic response of steel plates with a pre-formed hole loaded by
                     underwater shock wave [J]. Thin-Walled Structures, 2025, 210: 112926. DOI: 10.1016/j.tws.2025.112926.
               [82]   王正国, 孙立英, 杨志焕, 等. 系列生物激波管的研制与应用 [J]. 爆炸与冲击, 1993, 13(1): 77–83. DOI: 10.11883/1001-
                     1455(1993)01-0077-7.
                     WANG Z G, SUN L Y, YANG Z H, et al. The design production and application of a series of bio-shock tubes [J]. Explosion
                     and Shock Waves, 1993, 13(1): 77–83. DOI: 10.11883/1001-1455(1993)01-0077-7.
               [83]   王峰, 杨志焕, 朱佩芳, 等. 高原冲击伤伤情特点的实验研究 [J]. 创伤外科杂志, 2008, 10(6): 549–551. DOI: 10.3969/
                     j.issn.1009-4237.2008.06.026.
                     WANG F, YANG Z H, ZHU P F, et al. Experimental study on characteristics of blast injury at high altitude [J]. Journal of
                     Traumatic Surgery, 2008, 10(6): 549–551. DOI: 10.3969/j.issn.1009-4237.2008.06.026.
               [84]   袁丹凤, 杨傲, 麻超, 等. 冲击波强度与幼年大鼠肺冲击伤程度的量效关系 [J]. 中国医学物理学杂志, 2021, 38(6):
                     780–784. DOI: 10.3969/j.issn.1005-202X.2021.06.022.
                     YUAN D F, YANG A, MA C, et al. Dose-effect relationship between shock wave intensity and blast lung injury in juvenile
                     rats [J]. Chinese Journal of Medical Physics, 2021, 38(6): 780–784. DOI: 10.3969/j.issn.1005-202X.2021.06.022.
               [85]   JIANG S S, CAI W, XIE J, et al. Realization of a shock-tube facility to study the Richtmyer-Meshkov instability driven by a
                     strong shock wave [J]. Review of Scientific Instruments, 2024, 95(8): 085114. DOI: 10.1063/5.0217768.
               [86]   BURRELL R P, AOUDE H, SAATCIOGLU M. Response of SFRC columns under blast loads [J]. Journal of Structural
                     Engineering, 2015, 141(9): 04014209. DOI: 10.1061/(ASCE)ST.1943-541X.0001186.
               [87]   STOLZ A, MILLON O, KLOMFASS A. Analysis of the resistance of structural components to explosive loading by shock-
                     tube tests and SDOF models [J]. Chemical Engineering Transactions, 2016, 48: 151–156. DOI: 10.3303/CET1648026.
               [88]   GAN  E  C  J,  REMENNIKOV  A,  RITZEL  D,  et  al.  Approximating  a  far-field  blast  environment  in  an  advanced  blast
                     simulator  for  explosion  resistance  testing  [J].  International  Journal  of  Protective  Structures,  2020,  11(4):  468–493.  DOI:
                     10.1177/2041419620911133.
               [89]   GAN E C J. Experimental and numerical investigation of shock wave propagation in an advanced blast simulator [D]. New
                     South Wales: University of Wollongong, 2021: 89-179.
               [90]   GAN E C J, REMENNIKOV A, RITZEL D. Blast waveform tailoring using controlled venting in blast simulators and shock
                     tubes [J]. Defence Technology, 2024, 37: 14–26. DOI: 10.1016/j.dt.2023.11.026.
               [91]   程帅, 童念雪, 刘文祥, 等. 基于高压气体驱动的爆炸波模拟激波管冲击波衰减历程控制方法 [J]. 爆炸与冲击, 2024,


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