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IMPROVING ENERGY ABSORPTION AND DISSIPATION OF COMPOSITES THROUGH OPTIMIZED TAILORING

机译:通过优化剪裁改善复合材料的能量吸收和耗散

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Fibre-reinforced and sandwich composites with laminated faces are the best candidate materials in many engineering fields by the viewpoint of the impact resistance, containment of explosions, protection against projection of fragments, survivability and noise and vibration suppression. Besides, they offer the possibility to be tailored to meet design requirements. A great amount of the incoming energy is absorbed through local failures. The most important energy dissipation mechanisms are the hysteretic damping in the matrix and in the fibers and the frictional damping at the fiber-matrix interface. The dissipation of the incoming energy also partly takes place as a not well understood dissipation at the cracks and delamination sites. As self-evident, the local damage accumulation mechanism on the one hand is helpful from the standpoint of energy absorption, on the other hand it can have detrimental effects. To date sophisticated computational models are available, by which the potential advantages of composites can be fully exploited. A large amount of research work has been oriented to improve the impact resistance, the dissipation of vibrations and to oppose the propagation of delamination,. These goals can be obtained with incorporation of viscoelastic layers. Unfortunately this makes quite compliant the laminates and reduce their strength. Studies have been recently published that seeks to comply stiffness and energy dissipation. The existence of fiber orientations that are a good compromise between optimal stiffness and optimal absorption of the incoming energy can be supposed by the results of a number of published studies. In this paper, a variable spatial distributionof plate stiffnesses, as it can be obtained varying the orientation of the reinforcement fibres along the plate and their constituent materials, is defined by an optimization process, so to obtain a wanted specific structural behaviour. The key feature is an optimized strain energy transfer from different deformation modes, such as bending, in-plane and out-of-plane shears. Suited plate stiffness distributions which identically fulfil the thermodynamic and material constraints are found that make stationary the energy contributions and transfer energy between the modes as desired. An application to low velocity impacts and to blast pulse loads is presented. The use of the optimized layers with the same mean properties of the layers they substitute were shown to reduce deflection and the stresses that induce delamination. A new discrete layer element is developed in this study, to accurately account for the local effects. Characteristic feature, it is based on a C° in-plane approximation and a general representation across the thickness which can either represent the kinematics of conventional plate models or the piecewise variation of layerwise models.
机译:具有层压面的纤维增强和夹层复合材料是许多工程领域中最好的候选材料,通过抗冲击性,爆炸的遏制,防止碎片的投影,生存性和噪音和振动抑制的观点来看。此外,它们提供了适用于满足设计要求的可能性。大量的进入能量通过局部故障吸收。最重要的能量耗散机制是基质和纤维中的滞后阻尼以及纤维矩阵界面处的摩擦阻力。作为在裂缝和分层位点处的不受欢迎的耗散,还部分地发生了进入能量的耗散。即不言而喻,一方面的局部损伤积累机制可以从能量吸收的角度有所帮助,另一方面它可能会产生不利影响。迄今为止复杂的计算模型可用,可以充分利用复合材料的潜在优势。大量的研究工作已经取向,以提高抗冲击性,振动耗散,并反对分层的传播,。通过掺入粘弹性层可以获得这些目标。不幸的是,这使得层压板可以符合层压物并降低它们的力量。最近出版了研究,旨在遵守僵硬和能量耗散。存在于最佳刚度和输入能量的最佳吸收之间的良好折衷的纤维取向可以由许多公布的研究结果所支持。本文通过优化过程限定了板刚度的可变空间分布,因为它可以获得沿着板及其构成材料改变增强纤维的取向,因此得到了所需的特异性结构行为。关键特征是从不同变形模式的优化应变能量传递,例如弯曲,面内和平面剪切。发现相同地满足热力学和材料约束的安装平板刚度分布,其使能量贡献和根据需要在模式之间传递能量。介绍了低速冲击和爆破脉冲负载的应用。显示使用具有它们替代层的层的相同平均性质的优化层以减少偏转和诱导分层的应力。在本研究中开发了一种新的离散层元素,以准确地占局部效果。特征特征,它基于C°面内近似和横跨厚度的一般表示,其可以代表传统板材模型的运动学或层状模型的分段变化。

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