通过电纺丝工艺实现吸收基板的预测数学模型

C. Mihai, A. Ene, R. Hertzog, D. Popescu, A. Vladu
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引用次数: 0

摘要

新一代的伤口敷料旨在创造一个最佳环境,使上皮细胞能够轻松移动,以支持再生。这样的最佳条件包括伤口床周围潮湿的环境,有效的氧气循环帮助细胞和组织再生,低细菌污染。复合基质有几层,可以用作初级或次级敷料。大多数复合敷料有三层,分别为半粘附层或非粘附层、吸收层和细菌屏障层。一种获得这些材料的方法,可以吸收到逐层沉积,或者可以在这种情况下操作,是由静电纺丝表示的。然而,静电纺丝沉积技术在纺织品表面(织物或非织造布)引起了一些与具有介电性能的纺织纤维的静电行为有关的问题。在这种情况下,射流的特性与纺织材料的厚度成正比,导致纳米或微纤维沉积的缺陷,如不均匀和/或溅射(形成滴,与电纺丝纤维混合沉积)。本文提出了一个数学模型,该模型预测了用于烧伤或枪伤治疗的多层基质结构的吸收层组成中的纤维直径,考虑到上述参数与用于预测静电纺丝射流行为的薄剖面的特定电动力学理论(例如,航空中使用的理论)之间的非线性关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PREDICTIVE MATEHMATICAL MODEL FOR ABSORBANT SUBSTRATE ACHIEVEMENT, THROUGH ELECTROSPINNING PROCESS
The new generations of wound dressings aim to create an optimal environment that allows epithelial cells to move easily in order to support regeneration. Such optimal conditions include a humid environment around the wound bed, efficient oxygen circulation to help regenerate cells and tissues, and low bacterial contamination. Composite matrices have several layers and can be used as primary or secondary dressings. Most composite dressings have three layers, respectively a semi-adherent or non-adherent layer, an absorbent layer, and a bacterial barrier layer. A method to obtaining these materials, which can be assimilated to layerby- layer deposition, or which can be operated in this regime, is represented by electrospinning. However, the deposition technique by electrospinning on textile surfaces (fabrics or nonwovens) raises some problems related to the electrostatic behaviour of textile fibres with dielectric properties. In this case, the characteristics of the jet are affected directly proportional with the thickness of the textile material, resulting in defects of nano- or micro-fibrillar deposition, such as unevenness and/or sputter (formation of drops, which are deposited in mixture with electro spun fibres). The article presents a mathematical model that predicts the diameter of the fibres in the composition of the absorbent layer of the multilayer matrix structure for the treatment of burns or gunshot wounds, taking into account the nonlinear relationships between the parameters explained above and specific theories of electrodynamics for thin profiles (for instance, those used in aeronautics) for the prediction of the behaviour of the electrospinning jet.
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