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Micro-mechanical predictive modelling as an aid to CAD based analysis of composite sporting equipment

机译:微机械预测建模有助于基于CAD的复合运动器材分析

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摘要

The sport and leisure industry in New Zealand (NZ) has the potential to become a major user of composite materials. Given the size of NZ industry, design and manufacturing strategies based on virtual engineering should be developed to suit NZ requirements. Virtual methods use computer aided engineering capabilities to find faults, explore alternatives and optimise product performance before detailed design or prototyping. When doing computer aided simulation the required mechanical properties of individual reinforcement and matrix components are well documented. However, the mechanical properties of composite materials are not as simple to obtain. Micro-mechanical modelling could therefore be used to aid the design and development of composite equipment, where mechanical properties are unknown. In this study, solids modelling was used to produce an analog model of a composite, and it was found that it lead to reductions in file size and simulation time. Representing a composite with an analog model implies that the behavioural characteristics are modelled, but not the physical characteristics of the individual components. Three micro-mechanical models were developed to predict the flexural modulus of composite materials, based on perfect, partial and no adhesion. It was found that the partial adhesion model was both practical and consistently accurate. The partial adhesion model accounted for adhesion between components by considering an 'effective shear value' at the interface. Validation of the models was done by flexural testing injection moulded samples of glass, wood and carbon fibre reinforced polyethylene. It was shown that the adhesion coefficient range was 0.1 for carbon fibre, 0.5 for glass fibre and 0.9 for the wood fibre composites. It was concluded that the adhesion coefficient is crucial and it is recommended that further work is done to validate effective shear values by empirical means. The predicted flexural modulus values were used to enable finite element simulation of modelled analog beams as well as commercial kayak paddles. It was determined that accurate simulation is possible for composite equipment using the partial adhesion model.
机译:新西兰(NZ)的体育和休闲产业有可能成为复合材料的主要用户。考虑到新西兰的产业规模,应开发基于虚拟工程的设计和制造策略以适合新西兰的要求。虚拟方法使用计算机辅助的工程功能来发现故障,探索替代方案并优化产品性能,然后再进行详细的设计或原型制作。在进行计算机辅助仿真时,充分记录了单个钢筋和基体组件所需的机械性能。但是,复合材料的机械性能并非如此简单。因此,在机械性能未知的情况下,微机械建模可用于辅助设计和开发复合设备。在这项研究中,使用实体建模来生成复合材料的模拟模型,并且发现它可以减少文件大小和缩短仿真时间。用模拟模型表示复合材料意味着对行为特征进行了建模,但对单个组件的物理特征未进行建模。基于完美,部分和无粘附力,开发了三种微机械模型来预测复合材料的弯曲模量。发现部分粘附模型既实用又一致。通过考虑界面处的“有效剪切值”,部分粘附模型考虑了组件之间的粘附。通过对玻璃,木材和碳纤维增强聚乙烯的注塑样品进行挠曲测试来验证模型的有效性。结果表明,碳纤维的粘合系数范围为0.1,玻璃纤维的粘合系数范围为0.5,木纤维复合材料的粘合系数范围为0.9。结论是粘附系数至关重要,建议通过经验方法做进一步工作以验证有效剪切值。预测的挠曲模量值用于对模拟梁和商用皮划艇桨进行有限元模拟。已确定使用部分粘附模型对复合设备进行准确的模拟是可能的。

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    Ewart Paul;

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  • 年度 2008
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