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Analyses expérimentale et numérique de l'endommagement matriciel d'un matériau composite : Cas d'un pultrudé thermoplastique renforcé de fibres de verre

机译:复合材料基体损伤的实验和数值分析:以玻璃纤维增​​强的热塑性拉挤成型为例

摘要

The use of composite materials composed of polymeric matrix have known a growing interest in industrial structures due to the ratio between structure weight reduction and reliable mechanical properties. The pultrusion with in-situ polymerization process allows high fiber volume fraction which provides the longitudinal mechanical properties needed nevertheless, such process induces a microstructural variability. These engineering structures are often submitted to complex multiaxial stresses. Such stresses are locally amplified due to the microstructural variability and particularly due to the fact that the matrix is constrained by the fibres. It is in this context that a multi-scale top-down (global / local) experimental and numerical approach has been developped. Deformation, damage and fracture mechanisms have been experimentally studied at both global and local scales. In order to do so, experimental technics related to X ray tomography have been used and allow in-situ observation of damage in the composite material submitted to different stresses. A constitutive model of the polymeric matrix has been developped thanks to approaches from the mechanics of porous media and allows to take into account the damage behavior of the constrained matrix. A multi-scale model allowing critical zones localization on industrial structures has been set up. The resulting stresses on the critical zones are then applied to the microstructure of the composite material. This model is able to take into account the damage cinetic, as well as transverse cracks initiation and propagation through the microstructure. Such approach has been used to determine cracks initiation pressures for different plies orientation of a composite pipe.
机译:由于结构重量的减少与可靠的机械性能之间的比例,由聚合物基体构成的复合材料的使用已在工业结构中引起越来越多的关注。采用原位聚合工艺的拉挤成型可实现较高的纤维体积分数,但仍可提供所需的纵向机械性能,该工艺会引起微观结构的变化。这些工程结构通常会承受复杂的多轴应力。由于微结构的可变性,特别是由于基质受纤维约束,这种应力在局部被放大。在这种情况下,已经开发了一种多尺度的自顶向下(全局/局部)实验和数值方法。已经在全球和局部范围内对变形,破坏和断裂机理进行了实验研究。为了做到这一点,已经使用了与X射线断层摄影术有关的实验技术,并且可以原位观察复合材料受到不同应力的损伤。聚合物基质的本构模型已经得到开发,这要归功于多孔介质力学的方法,它可以考虑受约束基质的破坏行为。建立了允许在工业结构上关键区域进行局部化的多尺度模型。然后,在临界区上产生的应力被施加到复合材料的微观结构上。该模型能够考虑到电影院的破坏以及横向裂纹的萌生和通过微结构的传播。这种方法已被用来确定复合管的不同层定向的裂纹萌生压力。

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    Cayzac Henri-Alexandre;

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  • 年度 2014
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  • 正文语种 fr
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