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Numerical modelling of the interaction between eccrine sweat and textile fabric for the development of smart clothing

机译:智能服装纺织纺织面料交互的数值模型

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Purpose Live non-invasive monitoring of biomarkers is of great importance for the medical community. Moreover, some studies suggest that there is a substantial business gap in the development of mass-production commercial sweat-analysing wearables with great revenue potential. The objective of this work is to quantify the concentration of biomarkers that reaches the area of the garment where a sensor is positioned to advance the development of commercial sweat-analysing garments. Design/methodology/approach Computational analysis of the microfluidic transport of biomarkers within eccrine sweat glands provides a powerful way to explore the potential for quantitative measurements of biomarkers that can be related to the health and/or the physical activity parameters of an individual. The numerical modelling of sweat glands and the interaction of sweat with a textile layer remain however rather unexplored. This work presents a simulation of the production of sweat in the eccrine gland, reabsorption from the dermal duct into the surrounding skin and diffusion within an overlying garment. Findings The model represents satisfactorily the relationship between the biomarker concentration and the flow rate of sweat. The biomarker distribution across an overlying garment has also been calculated and subsequently compared to the minimum amount detectable by a sensor previously reported in the literature. The model can thus be utilized to check whether or not a given sensor can detect the minimum biomarker concentration threshold accumulated on a particular type of garment. Originality/value The present work presents to the best of our knowledge, the earliest numerical models of the sweat gland carried out so far. The model describes the flow of human sweat along the sweat duct and on to an overlying piece of garment. The model considers complex phenomena, such as reabsorption of sweat into the skin layers surrounding the duct, and the structure of the fibres composing the garment. Biomarker concentration maps are obtained to check whether sensors can detect the threshold concentration that triggers an electric signal. This model finds application in the development of smart textiles.
机译:目的,生物标志物的实际无侵入性监测对于医学界非常重要。此外,一些研究表明,大规模生产商业汗水分析可带有巨大收入潜力的可穿戴物的发展存在大幅的业务差距。这项工作的目的是量化到达衣服面积的生物标志物的浓度,其中传感器被定位以推进商业汗水分析服装的发展。设计/方法/方法对生物标志物中的微流体传输的计算分析提供了生态汗腺中的生物标志物的微流体运输提供了一种强大的方法来探索与个人健康和/或身体活动参数有关的生物标志物的定量测量的可能性。然而,汗腺的数值建模和汗液与纺织层的相互作用仍然是未开发的。这项工作提出了一种模拟生态腺体中汗水的生产,从皮肤管中重新吸收到覆盖衣服内的周围皮肤和扩散中。结果模型代表令人满意的生物标志物浓度与汗液流速之间的关系。还已经计算过覆盖衣服的生物标志物分布,随后与先前在文献中报道的传感器可检测的最小量进行比较。因此,该模型可以用于检查给定的传感器是否可以检测累积在特定类型的衣服上的最小生物标志物浓度阈值。原创性/价值目前的工作据我们所知,最早的汗腺最早的数值模型到目前为止。该模型描述了沿着汗水管道和覆盖的衣服流动的流动。该模型考虑了复杂的现象,例如汗液中的吸收到围绕管道的皮肤层,以及构成衣服的纤维的结构。获得生物标志物浓度图以检查传感器是否可以检测触发电信号的阈值浓度。该模型在智能纺织品的开发中找到了应用。

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