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Variable stiffness sandwich panels using electrostatic interlocking core

机译:使用静电互锁芯的可变刚度夹芯板

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摘要

Structural topology has a large impact on the flexural stiffness of a beam structure. Reversible attachment between discrete substructures allows for control of shear stress transfer between structural elements, thus stiffness modulation. Electrostatic adhesion has shown promise for providing a reversible latching mechanism for controllable internal connectivity. Building on previous research, a thin film copper polyimide laminate has been used to incorporate high voltage electrodes to Fibre Reinforced Polymer (FRP) sandwich structures. The level of electrostatic holding force across the electrode interface is key to the achievable level of stiffness modulation. The use of non-flat interlocking core structures can allow for a significant increase in electrode contact area for a given core geometry, thus a greater electrostatic holding force. Interlocking core geometries based on cosine waves can be Computer Numerical Control (CNC) machined from Rohacell IGF 110 Foam core. These Interlocking Core structures could allow for enhanced variable stiffness functionality compared to basic planar electrodes. This novel concept could open up potential new applications for electrostatically induced variable stiffness structures.
机译:结构拓扑对梁结构的抗弯刚度有很大影响。离散子结构之间的可逆连接允许控制结构元件之间的剪切应力传递,从而控制刚度。静电粘附已显示出为提供可控内部连接性的可逆闩锁机制的希望。在先前研究的基础上,薄膜聚酰亚胺铜层压板已用于将高压电极结合到纤维增强聚合物(FRP)夹层结构中。跨电极界面的静电保持力水平是实现硬度调节的关键。对于给定的芯几何形状,非平坦的互锁芯结构的使用可以允许电极接触面积的显着增加,因此更大的静电保持力。可以使用Rohacell IGF 110 Foam核心加工的基于余弦波的互锁核心几何形状。与基本平面电极相比,这些互锁芯结构可以实现增强的可变刚度功能。这个新颖的概念可以为静电感应可变刚度结构开辟潜在的新应用。

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