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4D fibrous materials: characterising the deployment of paper architectures

机译:4D纤维材料:表征纸质架构的部署

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Deployment of folded paper architecture using a fluid medium as the morphing stimulus presents a simple and inexpensive methodology capable of self-actuation; where the underlying principles can be translated to develop smart fibrous materials capable of programmable actuations. In this study we characterise different paper architectures and their stimuli mechanisms for folded deployment; including the influence of porosity, moisture, surfactant concentration, temperature, and hornification. We observe that actuation time decreases with paper grammage; through the addition of surfactants, and when the temperature is increased at the fluid-vapour interface. There is a clear effect of hydration, water transport and the interaction of hydrogen bonds within the fibrous architecture which drives the deployment of the folded regions. The importance of fibre volume fraction and functional fillers in shape recovery was also observed, as well as the effect of a multilayer composite paper system. The design guidelines shown here will inform the development of synthetic fibrous actuators for repeated deployment.
机译:使用流体介质作为变形刺激物的折叠纸结构的部署提出了一种能够自我激活的简单且廉价的方法。在其中可以转换基本原理以开发能够进行可编程驱动的智能纤维材料。在这项研究中,我们描述了不同的纸结构及其折叠展开的刺激机制。包括孔隙率,水分,表面活性剂浓度,温度和角化的影响。我们观察到,启动时间随纸张重量而减少;通过添加表面活性剂,以及当流体-蒸汽界面温度升高时。纤维结构内的水化,水传输和氢键的相互作用具有明显的作用,这会驱动折叠区域的展开。还观察到纤维体积分数和功能性填料在形状恢复中的重要性,以及多层复合纸系统的效果。此处显示的设计准则将为合成纤维执行器的开发提供信息,以进行重复部署。

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