Department of Mechanical Engineering, Texas A&M University, College Station, Texas 77843, United States.
ACS Appl Mater Interfaces. 2021 Jan 20;13(2):3303-3310. doi: 10.1021/acsami.0c15827. Epub 2021 Jan 8.
With the rapid development of haptic devices, there is an increasing demand to understand finger pad topography under different conditions, especially for investigation of the human-machine interface in surface haptic devices. An accurate description of finger pad topography across scales is essential for the study of the interfaces and could be used to predict the real area of contact and friction force, both of which correlate closely with human tactile perception. However, there has been limited work reporting the heterogeneous topography of finger pads across scales. In this work, we propose a detailed heterogeneous finger topography model based on the surface roughness power spectrum. The analysis showed a significant difference between the topography on ridges and valleys of the fingerprint and that the real contact area estimation could be different by a factor of 3. In addition, a spatial-spectral analysis method is developed to effectively compare topography response to different condition changes. This paper provides insights into finger topography for advanced human-machine interaction interfaces.
随着触觉设备的快速发展,人们越来越需要了解不同条件下的指垫形貌,特别是在表面触觉设备的人机界面研究中。准确描述指垫形貌的跨尺度特征对于界面研究至关重要,可用于预测实际接触面积和摩擦力,而这两者都与人的触觉感知密切相关。然而,目前关于指垫跨尺度异质形貌的研究工作还很有限。在这项工作中,我们提出了一种基于表面粗糙度功率谱的详细的异质指垫形貌模型。分析表明,指纹的脊和谷的形貌有显著差异,实际接触面积的估计可能相差 3 倍。此外,还开发了一种空间-光谱分析方法,可有效地比较不同条件变化下的形貌响应。本文为先进的人机交互界面提供了对指垫形貌的深入了解。