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Texture Characterization Including Warm/Cool Sensation Using Force-, Light-, and Temperature-Sensitive Micro-electromechanical Systems Sensor

机译:使用力,光和温度敏感的微机电系统传感器进行包括热/冷感在内的纹理表征

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摘要

In this paper, we report on texture measurements for an object, including tactile, warm/cool, and light sensations using a multimodal micro-electromechanical systems (MEMS) sensor. This MEMS sensor can detect force as a resistance change of the strain gauge on a microcantilever and light as an impedance change of a Si layer by a photoconductive effect. The sensor, which was maintained near human body temperature using a heater, can also detect a temperature drop after heat transfer from the sensor to a contacted object as a resistance change of the strain gauge or an impedance change of the Si layer. In this work, three different materials (copper, acrylic, and wood) were chosen as the target objects for the measurement of surface texture, and they were characterized on the basis of the differences in sensor outputs in active sensing experiments (approaching and pressing of the sensor with a probe light) on the sensor surface. In the proximity process, the impedance change of the Si layer depends on the surface reflectivity of the objects. After the object is touched by the sensor surface, the impedance of the Si layer and the resistance of the strain gauge of the sensor increase with the change in temperature caused by heat transfer. Furthermore, the resistance of the strain gauge decreases with the deformation of the cantilever caused by the pressing force from each object. Therefore, it is demonstrated that surface texture including the mechanical, optical, and thermal characteristics of various materials can be evaluated by active sensing using the proposed MEMS multimodal sensor.
机译:在本文中,我们报告了使用多模式微机电系统(MEMS)传感器对物体进行的质感测量,包括触觉,温暖/凉爽和光感。该MEMS传感器可以通过光电导效应将力检测为应变仪在微悬臂梁上的电阻变化,并且将光检测为Si层的阻抗变化。使用加热器保持在人体温度附近的传感器还可以检测热从传感器传递到被接触物体后的温度下降,作为应变仪的电阻变化或Si层的阻抗变化。在这项工作中,选择了三种不同的材料(铜,丙烯酸和木材)作为测量表面纹理的目标对象,并根据主动感测实验(接近和压紧传感器)中传感器输出的差异对它们进行了表征。探头表面的传感器)。在接近过程中,Si层的阻抗变化取决于物体的表面反射率。在物体被传感器表面触摸后,Si层的阻抗和传感器的应变仪的电阻会随着传热引起的温度变化而增加。此外,应变仪的电阻随着悬臂的变形而减小,该悬臂的变形是由来自每个物体的按压力引起的。因此,证明了使用所提出的MEMS多模态传感器可以通过主动感测来评估包括各种材料的机械,光学和热学特性在内的表面纹理。

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