Ji Dongcan, Shi Yingli, Chen Jiayun, Zhao Zhao, Zhao Guozhong
Institute of Solid Mechanics, Beihang University (BUAA), Beijing 100191, China.
School of Materials and Energy, University of Electronic Science and Technology of China (USETC), Chengdu 610054, China.
Micromachines (Basel). 2022 Aug 26;13(9):1402. doi: 10.3390/mi13091402.
Skin pain resulting from mechanical compression is one of the most common pains in daily life and the indispensable information for electronic skin to perceive external signals. The external mechanical stimuli are transduced into impulses and transmitted via nerve fiber, and finally, the sensation is perceived via the procession of the nerve system. However, the mathematical mechanism for pain sensation due to mechanical stimuli remains unclear. In this paper, a mathematical model for skin pain sensation under compression is established, in which the Flament solution, the revised Hodgkin-Huxley model, and the mathematical model gate control theory are considered simultaneously. The proposed model includes three parts: a mechanical model of skin compression, a model of transduction, and a model of modulation and perception. It is demonstrated that the pain sensation degree increases with the compression amplitude and decreases with deeper nociceptor location in the skin. With the help of the proposed model, the quantitative relationship between compression pain sensation and external mechanical stimuli is revealed, which has a significant benefit in promoting the design and mechanism research of electronic skin with pain perception function.
机械压迫引起的皮肤疼痛是日常生活中最常见的疼痛之一,也是电子皮肤感知外部信号不可或缺的信息。外部机械刺激被转换为冲动并通过神经纤维传递,最终通过神经系统的处理来感知感觉。然而,机械刺激导致疼痛感觉的数学机制仍不清楚。本文建立了一种压缩状态下皮肤疼痛感觉的数学模型,该模型同时考虑了细丝解、修正的霍奇金-赫胥黎模型和数学模型门控理论。所提出的模型包括三个部分:皮肤压缩的力学模型、转换模型以及调制与感知模型。结果表明,疼痛感觉程度随压缩幅度的增加而增加,随皮肤中伤害感受器位置的加深而降低。借助所提出的模型,揭示了压缩疼痛感觉与外部机械刺激之间的定量关系,这对促进具有疼痛感知功能的电子皮肤的设计和机制研究具有重要意义。