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Blast waveform tailoring using controlled venting in blast simulators and shock tubes

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摘要 A critical challenge of any blast simulation facility is in producing the widest possible pressure-impulse range for matching against equivalent high-explosive events.Shock tubes and blast simulators are often constrained with the lack of effective ways to control blast wave profiles and as a result have a limited performance range.Some wave shaping techniques employed in some facilities are reviewed but often necessitate extensive geometric modifications,inadvertently cause flow anomalies,and/or are only applicable under very specific configurations.This paper investigates controlled venting as an expedient way for waveforms to be tuned without requiring extensive modifications to the driver or existing geometry and could be widely applied by existing and future blast simulation and shock tube facilities.The use of controlled venting is demonstrated experimentally using the Advanced Blast Simulator(shock tube)at the Australian National Facility of Physical Blast Simulation and via numerical flow simulations with Computational Fluid Dynamics.Controlled venting is determined as an effective method for mitigating the impact of re-reflected waves within the blast simulator.This control method also allows for the adjustment of parameters such as tuning the peak overpressure,the positive phase duration,and modifying the magnitude of the negative phase and the secondary shock of the blast waves.This paper is concluded with an illustration of the potential expanded performance range of the Australian blast simulation facility when controlled venting for blast waveform tailoring as presented in this paper is applied.
出处 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2024年第7期14-26,共13页 Defence Technology
基金 funded partially by the Australian Government through the Australian Research Council’s Linkage Infrastructure,Equipment and Facilities (LIEF)funding scheme (LE130100133)。
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  • 1Wojcik BE, Stein CR, Bagg K, Humphrey RJ, Orosco J. Traumatic brain injury hospitalizations of US army soldiers deployed to Afghanistan and Iraq. Am J Prey Med 2010;38(1):S108-16.
  • 2Hoge CW, McGurk D, Thomas JL, Cox AL, Engel CC, Castro CA. Mild traumatic brain injury in US soldiers returning from Iraq. N Engl J Med 2008;358(5):453-63.
  • 3Cemak I, Noble-Haeusslein LJ. Traumatic brain injury: an overview of pathobiology with emphasis on military populations. J Cereb Blood Flow Metab 2009;30(2):255-66.
  • 4Long JB, Bentley TL, Wessner KA, Cerone C, Sweeney S, Bauman RA. Blast overpressure in rats: recreating a battlefield injury in the laboratory. J Neurotrauma 2009;26(6):827-40.
  • 5Courtney EDS, Courtney MW, Courtney AC. Blast wave transmission through transparent armor materials. J Battlef Technol 2012;15(2):19-22.
  • 6Reneer DV, Hisel RD, Hoffman JM, Kryscio RJ, Lusk BT, Geddes JW. A multi-mode shock tube for investigation of blast-induced traumatic brain injury. J Neurotrauma 2011 ;28(1):95- 104.
  • 7Segars RA, Carboni MG. A shock tube for downselecting material concepts for blast protection part I: description of the shock tube and comparison of flush mounted and recess mounted pressure sensors; 2008. Technical Report, Natick/TR-09/010.
  • 8Cernak I, Wang Z, Jiang J, Bian X, Savic J. Ultrastructural and functional characteristics of blast injury-induced neurotrauma. J Trauma Inj Infect Crit Care 2001;50(4):695-706.
  • 9Henshall BD. On some aspects of the use of shock tubes in aerodynamic research. HM Stationery Office; 1957.
  • 10Alley M. Explosive blast loading experiments for TBI scenarios: char- acterization and mitigation. Purdue University; 2009. UMI Microform 1470126.

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