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弹性体基质对热塑性弹性体基应变传感器纤维复合材料的影响。

Effect of the Elastomer Matrix on Thermoplastic Elastomer-Based Strain Sensor Fiber Composites.

机构信息

Department of Functional Materials, Empa-Swiss Federal Laboratories for Materials Science and Technology, Überlandstrasse 129, 8600 Dübendorf, Switzerland.

Department of Mechanical Engineering (MECH), Vrije Universiteit Brussel (VUB), and Flanders Make Pleinlaan 2, B-1050 Brussels, Belgium.

出版信息

Sensors (Basel). 2020 Apr 23;20(8):2399. doi: 10.3390/s20082399.

Abstract

In this study, a thermoplastic elastomer sensor fiber was embedded in an elastomer matrix. The effect of the matrix material on the sensor properties and the piezoresistive behavior of the single fiber-matrix composite system was investigated. For all composites, cycling test (dynamic test) and the relaxation behavior at different strains (quasi-static test) were investigated. In all cases, dynamic properties and quasi-static significantly changed after embedding, compared to the pure fiber. The composite with the silicone elastomer PDMS (Polydimethylsiloxane) as matrix material exhibited deviation from linear response of the resistivity at low strains and proved an unsuitable choice compared to natural rubber. The addition of a spring construct in the embedded sensor fiber natural rubber composite improved the linearity at low strains but increased the mechanical and electrical hysteresis of the soft matter sensor composite. Using pre-vulcanized natural rubber improved linearity at low strains and reduced significantly the stress and relative resistance relaxation as well as the resistance hysteresis, especially if the resistance remained low. In both cases of the pre-vulcanized rubber and the spring structure, the piezoresistive behavior was improved, and at the same time, the stiffness of the system was increased indicating that using a stiffer matrix can be a strategy for improving the sensor properties.

摘要

在这项研究中,将热塑性弹性体传感器纤维嵌入弹性体基质中。研究了基质材料对传感器性能和单纤维-基质复合体系压阻行为的影响。对于所有复合材料,均研究了循环测试(动态测试)和不同应变下的松弛行为(准静态测试)。在所有情况下,与纯纤维相比,嵌入后动态性能和准静态性能都发生了明显变化。与天然橡胶相比,以硅酮弹性体 PDMS(聚二甲基硅氧烷)为基质材料的复合材料在低应变时表现出电阻率线性响应的偏差,证明其不是合适的选择。在嵌入传感器纤维的天然橡胶复合材料中添加弹簧结构可提高低应变时的线性度,但会增加软物质传感器复合材料的机械和电气滞后。使用预硫化天然橡胶可提高低应变时的线性度,并显著降低应力和相对电阻弛豫以及电阻滞后,尤其是在电阻保持较低的情况下。在预硫化橡胶和弹簧结构的两种情况下,压阻行为都得到了改善,同时系统的刚度也增加了,这表明使用更硬的基质可以成为改善传感器性能的一种策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/288e/7219333/1b21aef15567/sensors-20-02399-g001.jpg

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