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Process-induced damage evolution and management in resin transfer molding of composite panels.

机译:在复合板的树脂传递模塑中,过程引起的损伤演变和管理。

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Woven fiber composites made by resin transfer molding process are currently used as the primary and secondary load bearing structures in automotive and aircraft industries. A variety of defects could be evolved during the injection stage and the curing stage of the process. Improper injection conditions or unsound tool design would result in process induced damage in the form of dry spots, incomplete filling, or displacement of the fiber. In the curing stage, the process parameters of heating and cooling rates, and the temperature level at each element of the curing cycle have direct effects on the development of internal residual stresses, and shape distortion due to warpage. The work in this dissertation aims at developing numerical models to predict, characterize, and minimize process-induced damage during both the injection stage and curing stage in RTM process for woven-fiber composites.; A control volume technique based on the finite difference method is used to characterize the flow behavior in resin transfer molding (RTM) of composite structures. Resin flow through fiber mats is modeled as a two-phase flow through porous media. Experimental results on flow behavior of EPON 826 epoxy resin into irregular mold cavity with fiberglass mats agree well with the present numerical simulation. Parametric analysis of several case studies using developed model illustrates the effectiveness of the flow model in investigating the flow pattern, mold filling time, dry spots formulation, and pressure distribution inside the mold.; A numerical model describing the evolution of process-induced damage during curing in molded composite panels was developed. The effects of thermo-mechanical and thermo-chemical responses of the material on the evolution of damage during resin transfer molding of the panels are quantified. The developed numerical model in conjunction with an optimization module based on Simulated Annealing (SA) scheme form a useful tool for conducting a parametric design analysis for characterization and management of process-induced damage in composite panels.; Experimental investigation of resin transfer molding of composite panels made of epoxy resin (EPON 826) and eight-harness graphite fiber mats, indicates that low cure temperature, moderate heating rate and high rate of cooling after cure would minimize damage during curing. Furthermore the experimental measurements are in agreement with the degree of damage predicted by the numerical models and hence verifying the effectiveness of these models.; The models and methods developed in the present work are of broader applicability to process design and optimization of resin transfer molding of composite structures.
机译:通过树脂传递模塑工艺制造的机织纤维复合材料目前被用作汽车和飞机行业的主要和次要承载结构。在该过程的注入阶段和固化阶段可能会出现各种缺陷。不合适的注射条件或不正确的工具设计将导致过程引起的损坏,包括干斑,不完全填充或纤维移位。在固化阶段,加热和冷却速率的工艺参数以及固化循环各要素的温度水平直接影响内部残余应力的产生以及因翘曲而引起的形状变形。本文的工作旨在开发数值模型,以预测,表征和最小化机织纤维复合材料在RTM工艺的注射阶段和固化阶段过程中引起的损伤。使用基于有限差分法的控制体积技术来表征复合结构的树脂传递模塑(RTM)中的流动行为。通过纤维垫的树脂流动被建模为通过多孔介质的两相流动。 EPON 826环氧树脂在玻璃纤维毡不规则模腔中流动行为的实验结果与目前的数值模拟吻合良好。使用已开发的模型进行的几个案例研究的参数分析说明了流动模型在研究流动模式,模具填充时间,干点配方以及模具内部压力分布方面的有效性。建立了一个数值模型,描述了模制复合板固化过程中过程引起的损伤的演变。量化了材料的热机械和热化学响应对面板的树脂传递模塑过程中损伤演变的影响。所开发的数值模型与基于模拟退火(SA)方案的优化模块结合在一起,成为进行参数化设计分析以表征和管理复合板过程中损坏的有用工具。对由环氧树脂(EPON 826)和八线束石墨纤维毡制成的复合板进行树脂传递模塑的实验研究表明,较低的固化温度,适度的加热速率和较高的固化后冷却速率可以最大程度地减少固化过程中的损坏。此外,实验测量结果与数值模型所预测的破坏程度相符,从而验证了这些模型的有效性。在本工作中开发的模型和方法在工艺设计和复合结构的树脂传递模塑的优化方面具有更广泛的适用性。

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