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Interface geometries in 3D multi-material prints by fused filament fabrication

机译:通过熔合灯丝制造的3D多材料印刷中的界面几何形状

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Purpose An issue when printing multi-material objects is understanding how different materials will perform together, especially because interfaces between them are always created. This paper aims to address this interface from a mechanical perspective and evaluates how it should be designed for a better mechanical performance. Design/methodology/approach Different interface mechanisms were considered, namely, microscopic interfaces that are based on chemical bonding and were represented with a U-shape interface; a macroscopic interface characterized by a mechanical interlocking mechanism, represented by a T-shape interface; and a mesoscopic interface that sits between other interface systems and that was represented by a dovetail shape geometry. All these different interfaces were tested in two different material sets, namely, poly (lactic acid)-poly (lactic acid) and poly (lactic acid)-thermoplastic polyurethane material pairs. These two sets represent high- and low-compatibility materials sets, respectively. Findings The results showed, despite the materials' compatibility level, multi-material objects will have a better mechanical performance through a macroscopic interface, as it is based on a mechanical interlocking system, of which performance cannot be achieved by a simple face-to-face interface even when considering the same material. Originality/value The paper investigates the importance of interface design in multi-material 3D prints by fused filament fabrication. Especially, for parts intended to be subjected to mechanical efforts, simple face-to-face interfaces are not sufficient and more robust and macroscopic-based interface geometries (based on mechanical interlocking systems) are advised. Moreover, such interfaces do not raise esthetic problems because of their working principle; the 3D printing technology can hide the interface geometries, if required.
机译:目的是打印多材料对象时的问题,了解不同的材料如何一起执行,特别是因为始终创建它们之间的接口。本文旨在从机械视角来解决此界面,并评估如何为更好的机械性能设计。设计/方法/接近不同的界面机制,即基于化学键合的微观界面,并用U形界面表示;一种由机械互锁机构为特征的宏观接口,由T形界面表示;和一个坐在其他接口系统之间的介面界面,并且由燕尾榫形状几何形状表示。所有这些不同的界面都在两种不同的材料组中测试,即聚(乳酸) - 聚(乳酸)和聚(乳酸) - 热塑性聚氨酯材料对。这两组分别代表了高兼容性的材料集。结果表明结果表明,尽管材料的兼容性水平,多材料物体通过宏观接口具有更好的机械性能,因为它基于机械互锁系统,其性能不能通过简单的面对 - 即使在考虑相同的材料时也是面部界面。原创性/值本文通过熔合丝制造来调查界面设计在多材料3D印刷中的重要性。特别是,对于旨在进行机械努力的部件,建议简单的面对面接口不是足够的,并且基于基于宏观的界面几何(基于机械互锁系统)。此外,由于其工作原理,这种界面不会引起美学问题;如果需要,3D打印技术可以隐藏界面几何形状。

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