首页> 外文会议>SAPME Technical Conference and Exhibition >AN INTEGRATED APPROACH LINKING PROCESS TO STRUCTURAL MODELING WITH MICROSTRUCTURAL CHARACTERIZATION FOR INJECTION-MOLDED LONG-FIBER THERMOPLASTICS
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AN INTEGRATED APPROACH LINKING PROCESS TO STRUCTURAL MODELING WITH MICROSTRUCTURAL CHARACTERIZATION FOR INJECTION-MOLDED LONG-FIBER THERMOPLASTICS

机译:一种综合方法与注塑长纤维热塑性塑料微观结构表征结构建模的联系方式

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The objective of our work is to enable the optimum design of lightweight automotive structural components using injection-molded long fiber thermoplastics (LFTs). To this end, an integrated approach that links process modeling to structural analysis with experimental microstructural characterization and validation is developed. First, process models for LFTs are developed and implemented into processing codes (e.g. ORIENT, Moldflow) to predict the microstructure of the as-formed composite (i.e. fiber length and orientation distributions). In parallel, characterization and testing methods are developed to obtain necessary microstructural data to validate process modeling predictions. Second, the predicted LFT composite microstructure is imported into a structural finite element analysis by ABAQUS to determine the response of the as-formed composite to given boundary conditions. At this stage, constitutive models accounting for the composite microstructure are developed to predict various types of behaviors (i.e. thermoelastic, viscoelastic, elastic-plastic, damage, fatigue, and impact) of LFTs. Experimental methods are also developed to determine material parameters and to validate constitutive models. Such a process-linked-structural modeling approach allows an LFT composite structure to be designed with confidence through numerical simulations. Some recent results of our collaborative research will be illustrated to show the usefulness and applications of this integrated approach.
机译:我们的工作目的是使用注塑长纤维热塑性塑料(LFT)实现轻质汽车结构部件的最佳设计。为此,开发了一种与实验微观结构表征和验证的结构分析将过程建模联系起来的集成方法。首先,开发LFT的过程模型并实施到处理代码(例如,方向,模具流程)中以预测AS形成的复合材料的微观结构(即纤维长度和取向分布)。并行地,开发了表征和测试方法以获得必要的微结构数据以验证过程建模预测。其次,预测的LFT复合微结构通过ABAQUS进口到结构有限元分析中,以确定AS形成的复合材料对给定边界条件的响应。在此阶段,开发了用于复合微观结构的本构模型以预测LFTS的各种类型的行为(即热弹性,粘弹性,弹性塑料,损伤,疲劳和冲击)。还开发了实验方法来确定材料参数并验证本构模型。这种过程连接结构建模方法允许通过数值模拟施加置信的LFT复合结构。将说明我们协作研究的最近结果,以显示这种综合方法的有用性和应用。

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