Ahmad Ridzuan Nurul Adni, Miki Norihisa
Department of Mechanical Engineering, Faculty of Science and Technology, Keio University, 3-14-1 Hiyoshi, Kohoku, Yokohama, Kanagawa 223-8522, Japan.
Micromachines (Basel). 2018 Dec 29;10(1):18. doi: 10.3390/mi10010018.
The anatomy of a tooth was the inspiration for this tactile sensor study. The sensor consisted of a pole that was fixed in the middle of an acrylic base using a viscoelastic silicone elastomer. Four strain gauges were fixed three-dimensionally around the pole to detect its movement, which was formed in a single step in the assembly. When the load was applied to the side of the pole, the strain gauges were bent or released, depending on the direction of the applied load and the position of the strain gauges. The sensor device had the sensitivity of 0.016 mm and 0.313 N against the resistance change ratio. For the load detection experiment, a consistent pattern of full sine-curve, with a constant resistance change for the angles, was obtained for all of the four strain gauges, which confirmed the reliability of the sensor device to detect the direction of applied load. The amplitudes of the resistance change ratio remained to be consistent after loading-unloading processes at the frequency of 0.05⁻0.25 Hz.
牙齿的解剖结构是这项触觉传感器研究的灵感来源。该传感器由一根杆组成,杆通过粘弹性硅橡胶固定在丙烯酸底座的中间。四个应变片三维地固定在杆的周围以检测其运动,这在组装过程中一步完成。当在杆的一侧施加负载时,应变片会根据施加负载的方向和应变片的位置而弯曲或释放。该传感器装置针对电阻变化率的灵敏度为0.016毫米和0.313牛。对于负载检测实验,四个应变片均获得了一致的全正弦曲线模式,角度的电阻变化恒定,这证实了该传感器装置检测施加负载方向的可靠性。在0.05⁻0.25赫兹频率的加载-卸载过程后,电阻变化率的幅度保持一致。