CRITICAL DISTANCE FOR BLAST-RESISTANT DESIGN

被引:14
|
作者
DHARANEEPATHY, MV [1 ]
RAO, MNK [1 ]
SANTHAKUMAR, AR [1 ]
机构
[1] ANNA UNIV,DEPT STRUCT ENGN,MADRAS,TAMIL NADU,INDIA
关键词
D O I
10.1016/0045-7949(94)00380-L
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Blast loads have, in the recent past, become important service loads for certain categories of structures. AN important task in blast-resistant design is to make a realistic prediction of the blast pressures. The distance of explosion from the structure is an important datum, governing the magnitude and duration of the blast loads. The current practice is to choose some arbitrary distance for design purposes. This paper presents some results of analytical studies to show that such a notion is likely to be erroneous, particularly for tall and slender structures. The elements of the blast phenomenon are review, before going into the formulations leading to the 'critical blast distance' at which the transient dynamic response rises to a maximum. Based on the principle of Mach stem growth and consequent transformation of the spherical shock front into cylindrical or plane shock front, an expression for the distance at which the structure is fully engulfed by the Mach region is derived. This is the distance at which the cumulative blast effect reaches a maximum, and hence can be identified as critical distance. To verify this theory, certain numerical experiments are conducted on structures of different heights and diameters, such as cylindrical towers, a chimney and a cooling tower. The results of these studies have convincingly proved the existence of the critical ground-zero distance at which the cumulative blast effect reaches a maximum. It is concluded that this critical distance should be used as the design distance, particularly for tall structures. It is also advisable to use a realistic type of shock front and shock reflection coefficient, consistent with the height of Mach stem, incidence angle and pressure magnitude.
引用
收藏
页码:587 / 595
页数:9
相关论文
共 50 条
  • [31] Lighter and thinner blast-resistant glass
    不详
    MATERIALS WORLD, 2011, 19 (03) : 6 - 6
  • [32] STIRRUP REQUIREMENTS FOR BLAST-RESISTANT SLABS
    WOODSON, SC
    KIGER, SA
    JOURNAL OF STRUCTURAL ENGINEERING-ASCE, 1988, 114 (09): : 2057 - 2069
  • [33] Equivalent Single-Degree-Of-Freedom Analysis for Blast-Resistant Design
    Lee, Kyungkoo
    Shin, Jinwon
    INTERNATIONAL JOURNAL OF STEEL STRUCTURES, 2016, 16 (04) : 1263 - 1271
  • [34] Blast-resistant analysis of a tunnel in Taipei
    Gui, MW
    Chen, SL
    Chien, MC
    Proceedings of the Twelfth Asian Regional Conference on Soil Mechanics and Geotechnical Engineering, Vol 1 and 2, 2003, : 859 - 862
  • [35] Review of the current practices in blast-resistant analysis and design of concrete structures
    Hao, Hong
    Hao, Yifei
    Li, Jun
    Chen, Wensu
    ADVANCES IN STRUCTURAL ENGINEERING, 2016, 19 (08) : 1193 - 1223
  • [37] Equivalent single-degree-of-freedom analysis for blast-resistant design
    Kyungkoo Lee
    Jinwon Shin
    International Journal of Steel Structures, 2016, 16 : 1263 - 1271
  • [38] Performance-based blast-resistant design of building structure components
    Yu R.-Q.
    Fang Q.
    Chen L.
    Yan H.-C.
    Yu, Run-Qing (yurunqing08@126.com), 1600, Tsinghua University (33): : 75 - 83
  • [39] PCI design handbook appendix A: Blast-resistant design of precast, prestressed concrete components
    Rashid, Mehedi
    PCI Journal, 2014, 59 (04):
  • [40] PCI Design Handbook Appendix A: Blast-resistant design of precast, prestressed concrete components
    Rashid, Mehedi
    PCI JOURNAL, 2014, : 125 - 125