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Transport through Core-Shell Fibrous Biomaterials and Biological Systems

机译:通过核壳纤维生物材料和生物系统运输

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Core-shell fiber systems are three-component porous media with numerous applications in various fields, primarily in biomedical and biological systems and processes. Their effective diffusivity, viscous permeability, thermal and electrical conductivity, dielectric constant, refractive index and magnetic permeability are key transport parameters affecting the performance of such media in most applications. Nonetheless, there have been no theoretical or experimental results reported yet on the transport characteristics of such media. Our experimentally validated earlier and recent numerical methods for estimating effective mass, energy, and momentum transport properties of various types of fibrous media were extended to account for flow through beds of core-shell fibrous biomaterials of various core, shell, and matrix volume fractions and phase conductivities. The resulting numerical predictions for the effective diffusivity and viscous permeability of such systems are in agreement with earlier analytical predictions and experimental data of the literature for flow through systems of similar geometry. Further modification of our algorithms is under way, to derive the effective thermal and electrical conductivity, dielectric constant, refractive index and magnetic permeability of such systems. The numerical results will be compared to experimental data on the refractive index and thermal conductivity of core-shell fibrous media obtained through a focused beam laser ablation process.
机译:核 - 壳纤维的系统与在各个领域众多应用中,主要是在生物医学和生物系统和过程三组分多孔介质。它们的有效扩散率,粘性渗透性,导热和导电性,介电常数,折射率和磁导率是影响这样的介质在大多数应用中的性能关键传输参数。尽管如此,没有出现过的理论或实验结果对这种媒体的传输特性未见报道。我们的实验验证用于估计有效质量,能量,以及各种类型的纤维介质的动量传输性质较早和最近的数值方法进行了扩展,以说明流过的床核壳各种芯,壳和基质体积分数和的纤维生物材料相电导率。用于这样的系统的有效扩散率和粘性的渗透性将所得数值预测与前面的分析预测,并通过类似的几何形状的系统的文献用于流量的实验数据一致。我们的算法进一步修饰是正在进行中,以导出有效导热性和导电性,介电常数,折射率和这种系统的磁导率。数值结果将进行比较,以对折射率,并通过聚焦束激光烧蚀工艺所得的芯 - 壳纤维介质的热导率的实验数据。

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