Full-scale test evaluation of aircraft fuel fire burnthrough resistance improvements

被引:0
|
作者
Marker, TR
Sarkos, CP
机构
关键词
postcrash; burnthrough; heat-treated oxidized polyacrylonitrile fiber (HTOPF);
D O I
暂无
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Fuselage burnthrough refers to the penetration of an external postcrash fuel fire into an aircraft cabin. The time to burnthrough is critical because in a majority of survivable aircraft accidents accompanied by fire, ignition of the cabin materials is caused by burnthrough from burning jet fuel external to the aircraft. There are typically three barriers that a fuel fire must penetrate in order to burnthrough to the cabin interior: aluminum skin, thermal acoustical insulation, and the interior sidewall/floor panel combination. The burnthrough resistance of aluminum skin is well known, lasting between 20 to 60 seconds, depending on the thickness. Thermal acoustical insulation, typically comprised of fiberglass bating encased in a polyvinyl fluoride (PVF) moisture barrier, can offer an additional 1 to 2 minutes if the material is not physically dislodged from the fuselage structure. Honeycomb sandwich panels used in the sidewall and floor areas of transport aircraft offer a substantial barrier to fire; however, full-scale testing has shown that a large fire can penetrate through other openings, such as the seams between sidewall panels, window reveals, and floor air return grilles. Of the three fire barriers, research has shown that large increases in burnthrough resistance can be gained by using alternate materials in place of the existing fiberglass based thermal acoustical insulation In particular, a heat-treated, oxidized polyacrylonitrile fiber was shown to increase the burnthrough resistance by several minutes over current insulation, offering potential life savings during a postcrash fire accident in which the fuselage remains intact.
引用
收藏
页码:1369 / 1380
页数:12
相关论文
共 50 条
  • [31] INVESTIGATION OF NEAR-FIELD WAKE BEHIND A FULL-SCALE TEST AIRCRAFT
    MERTAUGH, LJ
    DAMANIA, RB
    JOURNAL OF AIRCRAFT, 1977, 14 (09): : 894 - 902
  • [32] STRUCTURAL DYNAMICS RESEARCH IN A FULL-SCALE TRANSPORT AIRCRAFT CRASH TEST.
    McComb Jr., Harvey G.
    Thomson, Robert G.
    Hayduk, Robert J.
    Journal of Aircraft, 1987, 24 (07): : 447 - 453
  • [33] The Malveira fire test: Full-scale demonstration of fire modes in open-plan compartments
    Hidalgo, Juan P.
    Goode, Tristan
    Gupta, Vinny
    Cowlard, Adam
    Abecassis-Empis, Cecilia
    Maclean, Jamie
    Bartlett, Alastair, I
    Maluk, Cristian
    Montalva, Jose M.
    Osorio, Andres F.
    Torero, Jose L.
    FIRE SAFETY JOURNAL, 2019, 108
  • [34] ANALYTIC EXTRAPOLATION TO FULL-SCALE AIRCRAFT DYNAMICS
    ERICSSON, LE
    REDING, JP
    JOURNAL OF AIRCRAFT, 1984, 21 (03): : 222 - 224
  • [35] Numerical simulation and full-scale experimental verfication for sloshing and vibration of aircraft fuel tank
    Wang D.-L.
    An L.
    Hu H.
    Ma S.
    Li M.
    Chen L.-B.
    Gongcheng Lixue/Engineering Mechanics, 2022, 39 (04): : 219 - 229
  • [36] Nonlinear Modal Analysis of a Full-Scale Aircraft
    Kerschen, G.
    Peeters, M.
    Golinval, J. C.
    Stephan, C.
    JOURNAL OF AIRCRAFT, 2013, 50 (05): : 1409 - 1419
  • [37] Full-scale aircraft tire pressure tests
    Fabre, C.
    Balay, J.
    Lerat, P.
    Mazars, A.
    BEARING CAPACITY OF ROADS, RAILWAYS AND AIRFIELDS, VOLS 1 AND 2, 2009, : 1405 - 1413
  • [38] A fire test of continuous panels in a full-scale steel-framed structure
    Li, Bing
    Dong, Yu-Li
    Lou, Yong-Jie
    Wan, Le
    Gongcheng Lixue/Engineering Mechanics, 2015, 32 (01): : 145 - 153
  • [39] Full-scale external fire test of free-standing steel silo
    Roszkowski, Pawel
    Kimbar, Grzegorz
    FIRE SAFETY JOURNAL, 2021, 120
  • [40] Full-scale fire test on an earthquake-damaged reinforced concrete frame
    Kamath, Praveen
    Sharma, Umesh Kumar
    Kumar, Virendra
    Bhargava, Pradeep
    Usmani, Asif
    Singh, Bhupinder
    Singh, Yogendra
    Torero, Jose
    Gillie, Martin
    Pankaj, Pankaj
    FIRE SAFETY JOURNAL, 2015, 73 : 1 - 19