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首页> 外文期刊>International Journal of Solids and Structures >Buckling analysis, design and optimisation of variable-stiffness sandwich panels
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Buckling analysis, design and optimisation of variable-stiffness sandwich panels

机译:变刚度夹芯板的屈曲分析,设计与优化

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In recent years variable-stiffness (VS) technology has been shown to offer significant potential weight savings and/or performance gains for both monolithic and stiffened plate structures when buckling is a driving consideration. As yet, little work has been reported on VS sandwich structures. As such, a semi analytical model is developed based on the Ritz energy method for the buckling of sandwich panels with fibre-steered VS face-sheets. The model captures both global and shear crimping instabilities and is shown to explain both types of buckling responses observed and the mode switching between them. Quantitative agreement with detailed three-dimensional finite element analysis was found to be within 13%. Subsequent parametric and optimisation studies, which were performed for many practical geometries using the developed model, reveal that, whilst VS sandwich panels show a significant improvement in global buckling performance, they suffer a reduction in shear crimping performance when compared to their straight-fibre counterparts. This behaviour is found to be due to the VS face-sheets creating a pre-buckling load redistribution where regions locally exceed the critical shear crimping load and induce the short wavelength instability at a reduced panel level load. For VS sandwich panels with modest to low transverse shear moduli of the core, shear crimping can become the critical mode diminishing performance benefits relative to straight-fibre configurations. Cores with sufficient rigidity, thus preventing shear crimping, showed improvements in critical buckling load in the order of 80% when using VS, however this improvement reduces to a negligible amount with decreasing core transverse shear moduli. The transverse shear flexibility and load redistribution are thus two key parameters that must be considered carefully in the design of sandwich panels, in order to exploit the benefits of VS fully in this novel structural configuration. (C) 2016 Elsevier Ltd. All rights reserved.
机译:近年来,当屈曲成为驱动因素时,可变刚度(VS)技术已被证明可为整块和加劲板结构提供巨大的潜在重量减轻和/或性能提升。迄今为止,关于VS夹层结构的报道很少。因此,基于Ritz能量方法开发了一种半解析模型,用于通过纤维控制的VS面板使夹心板屈曲。该模型捕获了整体和剪切压接的不稳定性,并显示了它们解释了所观察到的两种屈曲响应的类型以及它们之间的模式切换。与详细的三维有限元分析的定量一致性被发现在13%以内。随后使用开发的模型对许多实际几何形状进行的参数和优化研究表明,虽然VS夹心板在整体屈曲性能方面有显着改善,但与直纤维同类产品相比,它们的剪切压接性能有所降低。发现此行为是由于VS面板在区域内局部超过临界剪切压接负载并在减小的面板水平负载下引起短波长不稳定性的情况下创建了预屈曲负载重新分布。对于芯的横向剪切模量为中等至低的VS夹心板,剪切卷曲可成为临界模式,相对于直纤维结构,其性能降低。使用VS时,具有足够刚度的铁心(从而防止剪切卷曲)在临界屈曲载荷方面显示出约80%的改善,但是随着铁心横向剪切模量的降低,这种改善减小到可以忽略的程度。因此,在设计夹层板时,横向剪切挠性和载荷再分配是必须仔细考虑的两个关键参数,以便在这种新颖的结构配置中充分利用VS的优势。 (C)2016 Elsevier Ltd.保留所有权利。

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