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In vivo mechanical characterization of human facial skin combining curved surface imaging and indentation techniques

机译:体内机械表征人体面部皮肤结合曲面成像和压痕技术

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Abstract Background The mechanical properties of human facial skin are of considerable importance for clinical research and cosmetic industry. As a result of their susceptibility to the individual difference and complex surroundings of human beings, the in vivo mechanical characterization by objective and quantitative devices is challenging. Methods In this study, an experimental setup was custom‐designed for the mechanical characterization combining curved surface optical imaging and indentation techniques. By means of an independently developed transparent indenter, the contact area and topography of facial skin can be in vivo and in situ captured in real time. Especially, the perpendicularity between indenter and facial skin can be adjusted and guaranteed by imaging analyses. Results A modified formula for the contact area calculation of silica gel, one of the most common materials used to simulate human facial skin, has been proposed. The highly improved agreement with the indentation tests shows its reliability and better applicability compared to the classical Hertz theory. Furthermore, we perform the in vivo indentation tests on human facial skin to evaluate the Young's modulus, which shows a potential for better understanding of their mechanical properties. Conclusion The device presented could give convincing results. The in vivo mechanical properties of human facial skin obtained by our modified formula agree well with open literature, and a better reliability than classical Hertz theory is evidenced.
机译:摘要背景对临床研究和化妆品行业的人体面部皮肤的力学性质具有重要意义。由于它们对人类的个体差异和复杂的周围环境的敏感性,客观和定量装置的体内机械表征是具有挑战性的。方法在该研究中,实验设置是定制的,用于组合弯曲表面光学成像和压痕技术的机械表征。通过独立开发的透明压痕,面部皮肤的接触面积和地形可以在体内,并且原位实时捕获。特别地,可以通过成像分析来调整压痕和面部皮肤之间的垂直性和保证。结果已经提出了一种用于硅胶接触面积计算的改性公式,已经提出了用于模拟人体面部皮肤的最常见材料之一。与古典赫兹理论相比,与压痕试验的高度改进的协议表明其可靠性和更好的适用性。此外,我们对人类面部皮肤进行体内压痕试验,以评估杨氏模量,这表明了更好地理解其机械性能的潜力。结论所提出的设备可以给出令人信服的结果。通过我们改进的公式获得的人体面部皮肤的体内机械性能与开放文献吻合良好,并且证明了比古典赫兹理论更好的可靠性。

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