基于挤压增材制造驱动的弹合联锁超表面机构ShroomLock的设计与测试

IF 2.1 Q2 ENGINEERING, MULTIDISCIPLINARY
Philip Gloyer, Lucca Nikita Schek, Hans Lennart Flöttmann, Paul Wüst, Christina Völlmecke
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引用次数: 0

摘要

本研究提出了制造工艺驱动的联锁超表面的发展;(ILM)熔丝制造机制;(FFF),专注于开源可访问性。所提出的ILM设计用于实现两个平面之间的强接触。该机构由弹簧元件和锁销组成,当它们被迫接触时,锁销会合在一起。该机制旨在提供优化的机械性能、功能和普通FFF打印机的可打印性。该机构由热塑性聚氨酯打印而成;(TPU)长丝,选择它的灵活性,这是必要的弹簧元件的正常运作。为了表征所设计的机构,进行了拉伸试验以评估ILM的保持力。力-位移剖面被分析并划分为不同的阶段,突出了弹簧变形、滑动和脱离之间的相互作用。最后,从多个打印样品的测量,一个有代表性的持力是确定通过平均和分配给机构。由此产生的公差,可归因于几何和材料有关的因素,进行了讨论。对试验结果进行了讨论,并与基于非线性Neo-Hookean材料定律的无摩擦方法的数值模拟进行了比较。该研究强调了三维(3D)打印中精细的参数控制对于联锁超表面机构一致和可靠的性能的重要性。该研究得出了具有不同三相捕获特性的ILM元件对的可扩展模型,确保了可靠的保持能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extrusion-Based Additive Manufacturing-Driven Design and Testing of the Snapping Interlocking Metasurface Mechanism ShroomLock
This study presents the manufacturing process-driven development of an interlocking metasurface; (ILM) mechanism for fused filament fabrication; (FFF) with a focus on open-source accessibility. The presented ILM is designed to enable strong contact between two planar surfaces. The mechanism consists of spring elements and locking pins which snap together when forced into contact. The mechanism is designed to deliver optimized mechanical properties, functionality, and printability with common FFF printers. The mechanism is printed from a thermoplastic polyurethane; (TPU) filament which was selected for its flexibility, which is necessary for the proper functioning of the spring elements. To characterize the designed mechanism, a tensile test is carried out to assess the holding force of the ILM. The force-displacement profiles are analyzed and categorized into distinct phases, highlighting the interplay between spring deformation, sliding, and disengagement. Finally, from the measurements of multiple printed specimens, a representative holding force is determined through averaging and assigned to the mechanism. The resulting tolerance, which can be attributed to geometric and material-related factors, is discussed. The testing results are discussed and compared with a numerical simulation carried out with a frictionless approach with a nonlinear Neo-Hookean material law. The study underscores the importance of meticulous parameter control in three-dimensional (3D) printing for the consistent and reliable performance of interlocking metasurface mechanisms. The investigation leads to a scalable model of an ILM element pair with distinct three-phase snapping characteristics ensuring reliable holding capabilities.
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来源期刊
Inventions
Inventions Engineering-Engineering (all)
CiteScore
4.80
自引率
11.80%
发文量
91
审稿时长
12 weeks
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