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引用次数: 1

摘要

本文重点介绍了一种基里伽米启发的多稳定复合材料层压板的制造过程和概念验证试验。由非对称纤维组成的双稳态复合材料在形状变形和能量收集方面具有很大的应用潜力。然而,这种双稳态复合材料的一小块在其两个稳定平衡(或状态)之间断裂时仅限于非常简单的变形。为了解决这一问题,本研究探讨了将古老的剪纸艺术Kirigami运用到双稳态复合层压板的设计和制造中。通过组合多块层压板并按照规定的基里伽米模式切割,可以创建具有多个稳定状态和它们之间复杂变形路径的结构。这将极大地拓展多稳定复合材料的应用潜力。本文详细介绍了设想的Kirigami复合材料中一个基本单元的制造过程,以及概念验证实验的结果,该实验测量了在不同稳定状态之间切换Kirigami复合材料所需的力。初步结果证实,基里伽米细胞具有多种稳定状态,这取决于底层纤维的布局。Kirigami复合材料中的每个贴片都可以在稳定状态之间独立地断裂,而不会触发其他贴片中的任何不希望的断裂。此外,当基里伽米复合材料中的一个贴片在其稳定状态之间被折断时,观察到曲率变化的瞬态传播。这种现象在双稳态复合材料研究中未见报道。结果表明,Kirigami是设计和制造多稳定复合材料的一种强有力的方法,具有很强的变形和自适应系统的吸引力。强调了基里伽美艺术与双稳态自适应复合材料相结合的可行性和新颖性。
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Fabrication and Testing of Kirigami-Inspired Multi-Stable Composites
This paper aims at highlighting the fabrication procedures and proof-of-concept tests of a Kirigami inspired multi-stable composite laminate. Bistable composites consisting of asymmetric fiber layout have shown great potentials for shape morphing and energy harvesting applications. However, a patch of such a bistable composite is limited to very simple deformation when being snapped between its two stable equilibria (or states). To address this issue, this study investigates the idea of utilizing Kirigami, the ancient art of paper cutting, into the design and fabrication of bistable composite laminates. Via combining multiple patches of laminates and cutting according to prescribed Kirigami pattern, one can create a structure with multiple stable states and sophisticated deformation paths between them. This can significantly expand the application potentials of the multi-stable composites. This paper details the fabrication procedures for an elementary unit cell in the envisioned Kirigami composite and the results of proof-of-concept experiments, which measure the force required to switch the Kirigami composite between its different stable states. Preliminary results confirm that the Kirigami unit cell possesses multiple stable states depending on the underlying fiber layout. Each patch in the Kirigami composite could be snapped independently between stable states without triggering any undesired snapping in other patches. Moreover, a transient propagation of curvature change is observed when a patch in the Kirigami composite is snapped between its stable states. Such a phenomenon has not been reported in the bistable composite studies before. Results of this paper indicate that Kirigami is a powerful approach for designing and fabricating multi-stable composites with a strong appeal for morphing and adaptive systems. This paper highlights the feasibility and novelty of combining Kirigami art and bistable adaptive composites.
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