Mutlu Rahim, Singh Dilpreet, Tawk Charbel, Sariyildiz Emre
Faculty of Engineering and Information Sciences, University of Wollongong in Dubai, Dubai P.O. Box 20183, United Arab Emirates.
Intelligent Robotics & Autonomous Systems Co (iR@SC), RA Engineering, Shellharbour, NSW 2529, Australia.
Biomimetics (Basel). 2023 Mar 22;8(1):127. doi: 10.3390/biomimetics8010127.
Haptics plays a significant role not only in the rehabilitation of neurological disorders, such as stroke, by substituting necessary cognitive information but also in human-computer interfaces (HCIs), which are now an integral part of the recently launched metaverse. This study proposes a unique, soft, monolithic haptic feedback device (SoHapS) that was directly manufactured using a low-cost and open-source fused deposition modeling (FDM) 3D printer by employing a combination of soft conductive and nonconductive thermoplastic polyurethane (TPU) materials (NinjaTek, USA). SoHapS consists of a soft bellow actuator and a soft resistive force sensor, which are optimized using finite element modeling (FEM). SoHapS was characterized both mechanically and electrically to assess its performance, and a dynamic model was developed to predict its force output with given pressure inputs. We demonstrated the efficacy of SoHapS in substituting biofeedback with tactile feedback, such as gripping force, and proprioceptive feedback, such as finger flexion-extension positions, in the context of teleoperation. With its intrinsic properties, SoHapS can be integrated into rehabilitation robots and robotic prostheses, as well as augmented, virtual, and mixed reality (AR/VR/MR) systems, to induce various types of bio-mimicked feedback.
触觉不仅在神经系统疾病(如中风)的康复中通过替代必要的认知信息发挥重要作用,而且在人机界面(HCI)中也起着重要作用,人机界面现已成为最近推出的元宇宙中不可或缺的一部分。本研究提出了一种独特的、柔软的整体式触觉反馈设备(SoHapS),它是通过使用低成本的开源熔融沉积建模(FDM)3D打印机,采用软导电和非导电热塑性聚氨酯(TPU)材料(美国NinjaTek)的组合直接制造而成。SoHapS由一个软波纹管致动器和一个软电阻力传感器组成,它们通过有限元建模(FEM)进行了优化。对SoHapS进行了机械和电气特性表征以评估其性能,并开发了一个动态模型来预测给定压力输入时的力输出。我们展示了SoHapS在遥操作环境中用触觉反馈(如抓握力)和本体感觉反馈(如手指屈伸位置)替代生物反馈的功效。凭借其固有特性,SoHapS可以集成到康复机器人和机器人假肢以及增强现实、虚拟现实和混合现实(AR/VR/MR)系统中,以诱导各种类型的生物模拟反馈。