Capturing Age-Dependent Properties of Human Skin Using Magnetorheological Elastomers

Kyle A. Weaver, J. Koo, Tae-Heon Yang, Young-Min Kim
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Abstract

Artificial and synthetic skins are widely used in the medical field; used in applications ranging from skin grafts to suture training pads. There is a growing need for artificial skins with tunable properties. However, current artificial skins do not take into account the variability of mechanical properties between individual humans as well as the age-dependent properties of human skin. Furthermore, there has been little development in artificial skins based on these properties. Thus, the primary purpose of this research is to develop variable stiffness artificial skin samples using magnetorheological elastomers (MREs) whose properties that can be controlled using external magnetic fields. In this study, multiple MRE skin samples were fabricated with varying filler particle volume contents. Using a precision dynamic mechanical analyzer, a series of indenting experiments were performed on the samples to characterize their mechanical properties. The samples were tested using a spherical indenter that indented a total depth of 1 mm with a speed of 0.01 mm/s and unloaded at the same rate. The results show that the modulus or stiffness increases significantly as the iron percent (w/w) in the sample increases. Additionally, the stiffness of the sample increases proportional to the intensity of the applied external magnetic field. To assess the MRE samples’ variability of properties, the testing results were compared with in vivo human skin testing data. The results show the MRE samples are feasible to represent the age-dependent stiffness demonstrated in in vivo human skin testing. The MRE materials studied will be further studied as a variable-stiffness skin model in medical devices, such as radial pulse simulators.
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利用磁流变弹性体捕捉人体皮肤随年龄变化的特性
人造和合成皮肤广泛应用于医疗领域;应用范围从皮肤移植到缝合训练垫。对具有可调性能的人造皮肤的需求越来越大。然而,目前的人造皮肤并没有考虑到人类个体之间机械性能的可变性以及人类皮肤的年龄依赖性。此外,基于这些特性的人造皮肤几乎没有发展。因此,本研究的主要目的是利用磁流变弹性体(MREs)开发可变刚度的人造皮肤样品,其性能可以通过外部磁场控制。在本研究中,制备了多个具有不同填充颗粒体积含量的MRE皮肤样品。利用精密动态力学分析仪对试样进行了一系列压痕实验,表征了试样的力学性能。样品使用球形压头进行测试,以0.01 mm/s的速度压痕总深度为1 mm,并以相同的速度卸载。结果表明,随着试样中铁含量(w/w)的增加,试样的模量或刚度显著增加。此外,样品的刚度与外加磁场的强度成正比。为了评估MRE样品的性能变异性,将测试结果与体内人体皮肤测试数据进行比较。结果表明,MRE样品可以很好地反映人体皮肤试验中年龄相关的刚度。研究的MRE材料将作为可变刚度皮肤模型在医疗设备中进一步研究,如径向脉冲模拟器。
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