Enhancement of a smart stretchable resistive heater textile using printed electronic coatings: towards application in automobile

Léopold Diatezo, M. Le, Christine Tonellato, Lluïsa Puig, J. Capsal, P. Cottinet
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Abstract

Intelligent textiles are predicted to see a surprising development in the future. The consequence of this revived interest has been the growth of automobile industry and the improvement of innovative methods for the incorporation of electrical and thermal features into textiles materials. In the present work, the development of a smart stretchable heating device integrated into a car-seat headrest has been identified as a target application. The need for smart conductive materials is becoming increasingly apparent, but they still represent a great challenge for the heating textile area, particularly in additive manufacturing. Polymer-based composites reinforced with copper and carbon powders, attractive as advanced coatings, seems to be good solutions to this issue. Such composites are now acquainted as ideal materials for electronic device engineering and fabrication, thanks to their excellent electrical and thermal conductivities while maintaining suitable mechanical compliance. For easier process and integration, an extrusion 3D printer is employed to achieve thin films coated on the surface of the textile substrate. The developed heater device consists of two principal copper electrodes (so-called power bus), and one heating resistor made of carbon composites designed in different configurations. Finite element models (FEM) are developed to predict the heating behavior of the tested fabric substrates under different pattern suggestions. Experimental measurements via a thermal camera are in consistent with the numerical solutions. It is pointed out that the design optimization based on an adequate tuning of the pattern’s parameters allows to solve inevitable matters in terms of temperature regularity and overheating effect.
用印刷电子涂层增强智能可拉伸电阻加热织物:面向汽车应用
据预测,智能纺织品在未来将有惊人的发展。这种重新燃起的兴趣的结果是汽车工业的发展,以及将电气和热特性结合到纺织材料中的创新方法的改进。在目前的工作中,开发一种集成到汽车座椅头枕中的智能可伸缩加热装置已被确定为目标应用。对智能导电材料的需求越来越明显,但它们仍然是加热纺织品领域的一个巨大挑战,特别是在增材制造领域。以铜和碳粉为增强材料的聚合物基复合材料,作为一种具有吸引力的先进涂料,似乎是解决这一问题的良好方案。由于其优异的导电性和导热性,同时保持适当的机械顺应性,这种复合材料现在被认为是电子设备工程和制造的理想材料。为了更容易加工和集成,采用挤压3D打印机实现在纺织基材表面涂覆薄膜。所开发的加热器装置由两个主要的铜电极(所谓的电源总线)和一个由碳复合材料制成的不同结构的加热电阻组成。建立了有限元模型来预测织物基底在不同图案建议下的加热行为。热像仪的实验测量结果与数值解一致。指出在充分调整模形参数的基础上进行设计优化,可以解决温度规律和过热效应方面不可避免的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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