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Elastomeric Origami: Programmable Paper-Elastomer Composites as Pneumatic Actuators

机译:弹性折纸:可编程纸-弹性复合材料作为气动执行器

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摘要

The development of soft pneumatic actuators based on composites consisting of elastomers with embedded sheet or fiber structures (e.g., paper or fabric) that are flexible but not extensible is described. On pneumatic inflation, these actuators move anisotropically, based on the motions accessible by their composite structures. They are inexpensive, simple to fabricate, light in weight, and easy to actuate. This class of structure is versatile: the same principles of design lead to actuators that respond to pressurization with a wide range of motions (bending, extension, contraction, twisting, and others). Paper, when used to introduce anisotropy into elastomers, can be readily folded into 3D structures following the principles of origami; these folded structures increase the stiffness and anisotropy of the elastomeric actuators, while being light in weight. These soft actuators can manipulate objects with moderate performance; for example, they can lift loads up to 120 times their weight. They can also be combined with other components, for example, electrical components, to increase their functionality.
机译:描述了基于复合材料的软气动致动器的开发,该复合材料由具有嵌入的片或纤维结构(例如,纸或织物)的弹性体组成,所述弹性体是柔性的但不可伸长的。在气动充气时,这些执行器会根据其复合结构可达到的运动而各向异性地运动。它们便宜,易于制造,重量轻且易于操作。此类结构是通用的:相同的设计原理导致执行器对压力产生广泛的响应(弯曲,伸展,收缩,扭曲等)。纸用于将各向异性引入弹性体时,可以按照折纸原理轻松折叠成3D结构。这些折叠结构增加了弹性致动器的刚度和各向异性,同时重量轻。这些软执行器可以操纵中等性能的物体。例如,他们可以将重量提升到120倍。它们也可以与其他组件(例如,电气组件)组合以增加其功能。

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  • 来源
    《Advanced Functional Materials》 |2012年第7期|p.1376-1384|共9页
  • 作者单位

    Department of Chemistry and Chemical Biology Harvard University 12 Oxford Street, Cambridge, MA 02138, USA;

    Department of Chemistry and Chemical Biology Harvard University 12 Oxford Street, Cambridge, MA 02138, USA;

    Department of Chemistry and Chemical Biology Harvard University 12 Oxford Street, Cambridge, MA 02138, USA;

    Department of Chemistry and Chemical Biology Harvard University 12 Oxford Street, Cambridge, MA 02138, USA,Wyss Institute for Biologically Inspired Engineering Harvard University 60 Oxford Street, Cambridge, MA 02138, USA;

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