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首页> 外文期刊>Journal of Applied Polymer Science >Shape memory polymers for self-folding via compression of thermoplastic sheets
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Shape memory polymers for self-folding via compression of thermoplastic sheets

机译:形状记忆聚合物,通过压缩热塑性片材自折叠

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We report a simple method to strain, and thereby program, shape memory polymers by compressing planar thermoplastic sheets. This work is motivated by the limited number of commercially available prestrained polymer sheets; current examples include: Shrinky Dinks, Eastman's Embrace, and polyurethane shrink films. However, these commercial specimens limit the sample thickness, polymer composition, and amount of stored strain. We show here that melt pressing can strain thermoplastic sheets over a range of thicknesses and polymer chemical compositions. After pressing (and thus, straining), the polymer sheets can self-fold out-of-plane into complex geometries using two different actuation mechanisms, both of which locally release strain stored in the polymer. Three-dimensional geometries are attained experimentally with both thick (12 mm) and thin (1 mm) strained polymer samples with a range of polymer compositions. Digital image correlation maps the strain profile within the melt pressed samples while a Mooney-Rivlin and geometric model predicts the average strain and folding response of the samples, respectively. The model predictions agree well with experimental results. These findings enable self-folding with a broader design space such as polymer chemical composition, sample thickness, strain within the sample, and external stimulus. Techniques presented here should translate to other thermoplastic polymers, thus making this technique a viable tool to increase the available pool of materials available for self-folding devices. (c) 2018 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2018, 135, 46889.
机译:我们通过压缩平面热塑性片材来报告一种简单的菌株,从而进行塑造记忆聚合物。这项工作是有限数量的商业普拉特聚合物板;目前的例子包括:收缩的叮当声,伊士曼的拥抱和聚氨酯收缩薄膜。然而,这些商业标本限制样品厚度,聚合物组合物和储存菌株的量。我们在此展示熔融压制可以在一系列厚度和聚合物化学组合物范围内应变热塑性片材。按压(并因此,紧张)后,聚合物片可以使用两种不同的致动机构将平面外折叠成复杂的几何形状,这些致动机构,其中储存在聚合物中的局部释放菌株。用厚(12mm)和薄(1mm)应变的聚合物样品通过一系列聚合物组合物进行实验获得三维几何形状。数字图像相关性地将熔体压制样本内的应变曲线图分别映射熔体压制样品中的应变曲线,而Mooney-rivlin和几何模型分别预测样品的平均应变和折叠响应。模型预测与实验结果很好。这些发现能够通过更广泛的设计空间进行自折叠,例如聚合物化学成分,样品厚度,样品浓度和外部刺激。这里呈现的技术应该转化为其他热塑性聚合物,从而使该技术成为可用于自折叠装置可用的可用材料的可行性工具。 (c)2018 Wiley期刊,Inc.J.Phill。聚合物。 SCI。 2018,135,46889。

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