In this paper, a novel fully 3D, microfluidic-oriented, gel-based, and low-cost highly stretchable resistive sensors have been presented. By the proposed method we are able to measure and discriminate all of the stretch, twist, and pressure features by a single sensor which is the potential that we have obtained from the fully 3D structure of our sensor. Against previous sensors which all have used EGaIn as the conductive material of their sensor, we have used low-cost, safe, and ubiquitous glycol-based gel instead. To show the functionality of the proposed sensor some FEM simulations, a set of the designed experimental tests were done which showed the linear, accurate, and durable operation of the proposed sensor. Finally, the sensor was put through its paces on the knee, elbow, and wrist of a female test subject. Also, to evaluate the pressure functionality of the sensor, a fully 3D active foot insole was developed, fabricated, and evaluated. All of the results show promising features for the proposed sensor to be used in real-world applications like rehabilitation, wearable devices, soft robotics, smart clothing, gait analysis, AR/VR, etc.
翻译:在本文中,我们展示了一部全3D、以微氟化物为导向、以凝胶为基质、低成本、高成本、高可耐受性传感器的新小说。通过所建议的方法,我们能够测量并区分所有伸展、扭动和压力特性,我们从一个传感器的完全3D结构中获得了潜力。相对于以前所有传感器都使用EGaIn作为感应器导材料的感应器的感应器,我们采用了低成本、安全且无处不在的甘醇凝胶代替。为了展示拟议的传感器的一些FEM模拟功能,我们进行了一套设计好的实验性测试,展示了拟议传感器的直线性、准确和耐久性运行。最后,传感器在女性测试对象的膝部、肘部和手腕上步步步步走。此外,为了评估传感器的压力功能,我们开发、制造和评价了完全3D活性脚透球。所有结果都显示,拟议的传感器在现实应用中具有很有希望的特征,如修复、可磨装置、软机器人、智能服装、智能服装分析。