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Design and fabrication of thin microvascularised polymer matrices inspired from secondary lamellae of fish gills

机译:受鱼secondary次生薄片启发的薄型微血管化聚合物基质的设计和制造

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Gills are one of the most primitive gas, solute exchange organs available in fishes. They facilitate exchange of gases, solutes and ions with a surrounding water medium through their functional unit called secondary lamella. These lamellae through their extraordinary morphometric features and peculiar arrangement in gills, achieve remarkable mass transport properties. Therefore, in the current study, modeling and simulation of convection-diffusion transport through a two dimensional model of secondary lamella and theoretical analysis of morphometric features of fish gills were carried out. Such study suggested an evolutionary conservation of parametric ratios across fishes of different weights. Further, we have also fabricated a thin microvascularised PDMS matrices mimicking secondary lamella by use of micro-technologies like electrospinning. In addition, we have also demonstrated the fluid flow by capillary action through these thin microvascularised PDMS matrices. Eventually, we also illustrated the application of these thin microvascularied PDMS matrices in solute exchange process under capillary flow conditions. Thus, our study suggested that fish gills have optimized parameteric ratios, at multiple length scale, throughout an evolution to achieve an organ with enhanced mass transport capabilities. Thus, these defined parametric ratios could be exploited to design and develop efficient, scaled-up gas/solute exchange microdevices. We also proposed an inexpensive and scalable method of fabrication of thin microvascularised polymer matrices and demonstrated its solute exchange capabilities under capillary flow conditions. Thus, mimicking the microstructures of secondary lamella will enable fabrication of microvascularised thin polymer systems through micro manufacturing technologies for potential applications in filtration, self-healing/cooling materials and bioengineering.
机译:ill是鱼类中最原始的气体,溶质交换器官之一。它们有助于通过其称为次级薄片的功能单元与周围的水介质交换气体,溶质和离子。这些薄片通过其非凡的形态特征和in中奇特的排列,实现了卓越的传质性能。因此,在当前的研究中,通过次级薄片的二维模型对流-扩散传输进行了建模和仿真,并对鱼g的形态特征进行了理论分析。这项研究表明,在不同重量的鱼类中,参数比例的进化保守性。此外,我们还通过使用微技术(如静电纺丝)制造了模拟次级薄片的薄微血管化PDMS基质。另外,我们还证明了通过毛细作用通过这些薄的微血管化PDMS基质的流体流动。最后,我们还说明了这些薄微血管化PDMS基质在毛细管流动条件下的溶质交换过程中的应用。因此,我们的研究表明,在整个进化过程中,鱼g在多个长度尺度上具有优化的参数比,以实现具有增强的大众运输能力的器官。因此,可以利用这些定义的参数比率来设计和开发有效的,按比例放大的气体/溶质交换微器件。我们还提出了一种制造薄的微血管化聚合物基质的廉价且可扩展的方法,并证明了其在毛细管流动条件下的溶质交换能力。因此,模仿次要薄片的微观结构将使通过微制造技术制造微血管化的薄聚合物系统成为可能,可应用于过滤,自修复/冷却材料和生物工程领域。

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