ETIS, CY Cergy Paris University, ENSEA, CNRS UMR 8051, 95000 Cergy, France.
Institut VEDECOM, 78000 Versailles, France.
Sensors (Basel). 2022 Nov 17;22(22):8876. doi: 10.3390/s22228876.
This article presents a novel artificial skin technology based on the Electric Impedance Tomography (EIT) that employs multi-frequency currents for detecting the material and the temperature of objects in contact with piezoresistive sheets. To date, few artificial skins in the literature are capable of detecting an object's material, e.g., wood, skin, leather, or plastic. EIT-based artificial skins have been employed mostly to detect the position of the contact but not its characteristics. Thanks to multi-frequency currents, our EIT-based artificial skin is capable of characterising the spectral profile of objects in contact and identifying an object's material at ambient temperature. Moreover, our model is capable of detecting several levels of temperature (from -10 up to 60 °C) and can also maintain a certain accuracy for material identification. In addition to the known capabilities of EIT-based artificial skins concerning detecting pressure and location of objects, as well as being low cost, these two novel modalities demonstrate the potential of EIT-based artificial skins to achieve global tactile sensing.
这篇文章提出了一种基于电阻抗断层成像(EIT)的新型人工皮肤技术,该技术采用多频电流来检测与压阻片接触的物体的材料和温度。迄今为止,文献中很少有人工皮肤能够检测物体的材料,例如木材、皮肤、皮革或塑料。基于 EIT 的人工皮肤主要用于检测接触的位置,而不是其特性。得益于多频电流,我们的基于 EIT 的人工皮肤能够对接触物体的光谱特性进行描述,并在环境温度下识别物体的材料。此外,我们的模型能够检测几个温度级别(从-10 到 60°C),并且还可以保持对材料识别的一定准确性。除了基于 EIT 的人工皮肤在检测物体的压力和位置以及低成本方面的已知功能外,这两种新型模式展示了基于 EIT 的人工皮肤实现全局触觉感应的潜力。