Reducing shear-lag in thin-walled composite I-beam wing spars

被引:2
|
作者
Visnjic, Goran [1 ]
Nozak, Dejan [1 ]
Kosel, Franc [2 ,3 ]
Kosel, Tadej [1 ,4 ]
机构
[1] Univ Ljubljana, Fac Mech Engn, Lab Aeronaut, Ljubljana 61000, Slovenia
[2] Univ Ljubljana, Fac Mech Engn, Lab Nonlinear Mech, Ljubljana 61000, Slovenia
[3] Univ Ljubljana, Fac Mech Engn, Dept Mech, Ljubljana 61000, Slovenia
[4] Univ Ljubljana, Fac Mech Engn, Dept Aviat, Ljubljana 61000, Slovenia
来源
关键词
Minimum weight; Composite I-beam wing spar; Flanges aspect ratio; Shear-lag; Transition fillet; Web sandwich thickness; BOX GIRDERS;
D O I
10.1108/AEAT-09-2012-0153
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Purpose - The purpose of this paper was to investigate and evaluate the influence of geometrical and structural design changes in order to reduce shear-lag and increase specific strength and stiffness of thin-walled composite I-beam wing spars. Design/methodology/approach - A detailed FEM model of a cantilevered I-beam spar was used to investigate the influence of increased transition fillet radius and increased web sandwich core thickness on the shear-lag effect at different width to thickness ratios of flanges. Evaluation functions were used to assess specific strength and stiffness of different spar configurations. Findings - Increased web core thickness has greater influence on normal stress distribution and the reduction of the shear-lag than fillet size. Additional weight of thicker core is not compensated enough through reduction of stress concentration. Increased transition fillet and web core thickness increase optimum flanges width to thickness ratio. Shear-lag reduces the strength of the spar more than the stiffness of the spar. Practical implications - Findings in this study and detailed insight in the shear-lag effect are important for aircraft design when minimum weight of the airframe is of supreme importance. Originality/value - This combined shear-lag and weight optimization study deals with composite l-beams and loads that are specific for aerospace engineering. This study does not only evaluate the shear-lag phenomena, but primarily analyses fine structural details in order to reduce it, and increases specific strength and stiffness of I-beam spars.
引用
收藏
页码:89 / 98
页数:10
相关论文
共 50 条
  • [41] Flexural analysis of thin-walled composite beams using shear-deformable beam theory
    Lee, J
    COMPOSITE STRUCTURES, 2005, 70 (02) : 212 - 222
  • [42] Nonlinear Buckling Analysis of Thin-Walled Box Beams considering Shear Lag
    Tan, Minyao
    Cheng, Wenming
    MATHEMATICAL PROBLEMS IN ENGINEERING, 2020, 2020
  • [43] Some Considerations on the Shear Lag Effect in Thin-Walled Cell Beams.
    Dezi, L.
    Mentrasti, L.
    1984, (122): : 7 - 9
  • [44] Vibration and buckling of composite thin-walled beams with shear deformability
    Cortínez, VH
    Piovan, MT
    JOURNAL OF SOUND AND VIBRATION, 2002, 258 (04) : 701 - 723
  • [45] SHEAR DEFLECTION IN MULTICELLED THIN-WALLED ORTHOTROPIC COMPOSITE BEAMS
    BANK, LC
    MELEHAN, TP
    AIAA/ASME/ASCE/AHS/ASC 30TH STRUCTURES, STRUCTURAL DYNAMICS AND MATERIALS CONFERENCE, PTS 1-4: A COLLECTION OF TECHNICAL PAPERS, 1989, : 1772 - 1778
  • [46] Parametric vibration of thin-walled composite beams with shear deformation
    Machado, Sebastian P.
    Filipich, Carlos P.
    Cortinez, Victor H.
    JOURNAL OF SOUND AND VIBRATION, 2007, 305 (4-5) : 563 - 581
  • [47] An improved method for analyzing shear lag in thin-walled box-section beam with arbitrary width of cantilever flange
    Li, Xiayuan
    Wan, Shui
    Mo, Y. L.
    Shen, Kongjian
    Zhou, Tianmin
    Nian, Yuze
    THIN-WALLED STRUCTURES, 2019, 140 : 222 - 235
  • [48] New look at thin-walled composite beam modeling approaches
    Berdichevsky, V.
    Armanios, E.
    Badir, A.
    1993, 3
  • [49] Saturation control for a rotating thin-walled composite beam structure
    Warminski, Jerzy
    Latalski, Jaroslaw
    INTERNATIONAL CONFERENCE ON VIBRATION PROBLEMS 2015, 2016, 144 : 713 - 720
  • [50] A GENERALIZED VLASOV THEORY FOR THIN-WALLED COMPOSITE BEAM STRUCTURES
    ALTENBACH, J
    ALTENBACH, H
    MATZDORF, V
    MECHANICS OF COMPOSITE MATERIALS, 1994, 30 (01) : 43 - 54