TermehYousefi Amin, Azhari Saman, Khajeh Amin, Hamidon Mohd Nizar, Tanaka Hirofumi
Department of Human Intelligence Systems, Kyushu Institute of Technology, 808-0196, Japan.
Institute of Advanced Technology, University Putra Malaysia, UPM, Serdang, Malaysia.
Mater Sci Eng C Mater Biol Appl. 2017 Aug 1;77:1098-1103. doi: 10.1016/j.msec.2017.04.040. Epub 2017 Apr 7.
Haptic sensors are essential devices that facilitate human-like sensing systems such as implantable medical devices and humanoid robots. The availability of conducting thin films with haptic properties could lead to the development of tactile sensing systems that stretch reversibly, sense pressure (not just touch), and integrate with collapsible. In this study, a nanocomposite based hemispherical artificial fingertip fabricated to enhance the tactile sensing systems of humanoid robots. To validate the hypothesis, proposed method was used in the robot-like finger system to classify the ripe and unripe tomato by recording the metabolic growth of the tomato as a function of resistivity change during a controlled indention force. Prior to fabrication, a finite element modeling (FEM) was investigated for tomato to obtain the stress distribution and failure point of tomato by applying different external loads. Then, the extracted computational analysis information was utilized to design and fabricate nanocomposite based artificial fingertip to examine the maturity analysis of tomato. The obtained results demonstrate that the fabricated conformable and scalable artificial fingertip shows different electrical property for ripe and unripe tomato. The artificial fingertip is compatible with the development of brain-like systems for artificial skin by obtaining periodic response during an applied load.
触觉传感器是至关重要的设备,可促进类似人类的传感系统,如植入式医疗设备和类人机器人。具有触觉特性的导电薄膜的可用性可能会导致可逆拉伸、感知压力(不仅仅是触摸)并与可折叠结构集成的触觉传感系统的发展。在本研究中,制造了一种基于纳米复合材料的半球形人造指尖,以增强类人机器人的触觉传感系统。为了验证该假设,在类机器人手指系统中使用所提出的方法,通过在受控压痕力下记录番茄的代谢生长作为电阻率变化的函数,来对成熟和未成熟的番茄进行分类。在制造之前,对番茄进行了有限元建模(FEM),以通过施加不同的外部载荷来获得番茄的应力分布和破坏点。然后,利用提取的计算分析信息来设计和制造基于纳米复合材料的人造指尖,以检查番茄的成熟度分析。所得结果表明,制造的贴合且可扩展的人造指尖对成熟和未成熟番茄显示出不同的电学特性。通过在施加负载期间获得周期性响应,该人造指尖与用于人造皮肤的类脑系统的开发兼容。