Simulation of Structural Characteristics and Depth Filtration Elements in Interconnected Nanofibrous Membrane Based on Adaptive Image Analysis

Mohammad Kazemi Pilehrood, P. Heikkilä, A. Harlin
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引用次数: 2

Abstract

Due to their unique structural features, electrospun membranes have gained considerable attention for use in applications where quality of depth filtration is a dominant performance factor. To elucidate the depth filtration phenomena it is important to quantify the intrinsic structural properties independent from the dynamics of transport media. Several methods have been proposed for structural characterization of such membranes. However, these methods do not meet the requirement for the quantification of intrinsic structural properties in depth filtration. This may be due to the complex influence of transport media dynamics and structural elements in the depth filtration process. In addition, the different morphological architectures of electrospun membranes present obstacles to precise quantification. This paper seeks to quantify the structural characteristics of electrospun membranes by introducing a robust image analysis technique and exploiting it to evaluate the permeation-filtration mechanism. To this end, a nanostructured fibrous network was simulated as an ideal membrane using adaptive local criteria in the image analysis. The reliability of the proposed approach was validated with measurements and comparison of structural characteristics in different morphological conditions. The results were found to be well compatible with empirical observations of perfect membrane structures. This approach, based on optimization of electrospinning parameters, may pave the way for producing optimal membrane structures for boosting the performance of electrospun membranes in end-use applications.
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基于自适应图像分析的互联纳米纤维膜结构特性及深度过滤元模拟
由于其独特的结构特点,静电纺膜在深度过滤质量是主要性能因素的应用中获得了相当大的关注。为了阐明深度过滤现象,重要的是量化不依赖于输运介质动力学的内在结构性质。已经提出了几种方法来表征这种膜的结构。然而,这些方法不能满足深度过滤中固有结构特性的量化要求。这可能是由于深层过滤过程中输运介质动力学和结构因素的复杂影响。此外,电纺丝膜的不同形态结构为精确定量提供了障碍。本文试图通过引入稳健的图像分析技术来量化静电纺丝膜的结构特征,并利用它来评估渗透过滤机制。为此,在图像分析中使用自适应局部准则将纳米结构纤维网络模拟为理想膜。通过测量和比较不同形态条件下的结构特征,验证了该方法的可靠性。结果与实验观察的完美膜结构相吻合。该方法基于静电纺丝参数的优化,可以为生产最佳膜结构铺平道路,从而提高静电纺丝膜在最终应用中的性能。
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