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Using geometric complexity to enhance the interfacial strength of heterogeneous structures fabricated in a multi-stage, multi-piece molding process

机译:利用几何复杂性来增强在多阶段,多件成型工艺中制造的异质结构的界面强度

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Interfaces in heterogeneous structures are typically engineered for optimal strength through the control of surface roughness and the choice of adhesives. Advances in manufacturing technologies are now making it possible to also tailor the geometries of interfaces from the nanoscale to the macroscale to create geometrically complex interfaces that exhibit enhanced performance characteristics. However, the impact of geometric complexity on the mechanical behavior of interfaces has not yet been ascertained. In this investigation, the first step is taken towards understanding the effects of geometric complexity on interfacial strength. A new multi-stage, multi-piece molding process is used to create heterogeneous polymer structures with geometrically complex interfaces consisting of rectangular and circular interlocking features. The structural integrity of these heterogeneous structures is characterized through interfacial tension testing. The full-field deformation measurement technique known as digital image correlation is also used during the testing to visualize the deformation fields around the geometrically complex features. Through this characterization, it is determined that the complex geometries increase the interfacial strength by approximately 20-25%, while reducing the statistical variation by 50%. These effects are attributed to a transition in the failure mechanism from interfacial fracture to homogeneous ligament failure. Results also indicate that geometrically complexity can be used on completely debonded interfaces to increase the strength to at least 25-35% of the bonded interface. Based on these results, some simple design rules have been proposed that enable geometrically complex interfaces to be engineered with enhanced strengths approaching the weaker of the two base materials. These design rules can also be used in the engineering of interfaces to facilitate the development of heterogeneous structures using new design paradigms, such as design for recyclability and the design of products based on bio-inspired concepts.
机译:异质结构中的界面通常通过控制表面粗糙度和选择粘合剂来设计以获得最佳强度。现在,制造技术的进步使从纳米尺度到宏观尺度的界面几何形状的定制成为可能,以创建具有增强的性能特征的几何复杂的界面。但是,尚未确定几何复杂度对界面机械性能的影响。在这项研究中,迈出了了解几何复杂度对界面强度影响的第一步。一种新的多阶段,多件式成型工艺用于创建具有矩形和圆形互锁特征的几何复杂界面的异质聚合物结构。这些异质结构的结构完整性通过界面张力测试来表征。在测试过程中,也使用称为数字图像相关性的全场变形测量技术来可视化几何复杂特征周围的变形场。通过这种表征,可以确定复杂的几何形状将界面强度提高了约20-25%,同时将统计差异降低了50%。这些影响归因于破坏机理从界面断裂到均匀韧带破坏的过渡。结果还表明,可以在完全脱粘的界面上使用几何形状复杂性,以将强度提高到至少25%至35%。基于这些结果,提出了一些简单的设计规则,这些规则使得能够设计出几何形状复杂的界面,并具有接近两种基础材料中较弱者的增强强度。这些设计规则还可用于接口工程中,以使用新的设计范式(例如可回收性设计和基于生物灵感概念的产品设计)促进异构结构的开发。

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