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FEM Study of the Strain Kinematics in the 3D Nanofibrous Structure Prepared by the Electrospinning Process

机译:电纺过程制备的3D纳米纤维结构中应变运动学的有限元研究

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Finite element model (FEM) was used for the study and description of the arising 3D nanofiber structure strain caused by the pressure of the flowing gas. Computer simulation using an adaptive networking through implicit FEM algorithm can be utilized for a significant improvement of the study of anisotropic strain in the deformed 3D nanostructure. The created model is based on the empirical Laplace-Poisson differential equation for the flow, where gas particles are moving with certain kinetic energy. The kinetic energy depends on the speed, time and temperature and affects the resulting strain of 3D nanofiber structure. The simulation results were compared to the results obtained from the image analysis of real samples and showed that this FEM model can determine individual phases of structure strain. The comparison shows that the developed FEM model can be an important tool in the study of the strain in the arising 3D nano- fiber structure and it can provide valuable information for optimization of 3D nanofiber structure production by the electrospinning process.
机译:有限元模型(FEM)用于研究和描述由流动气体的压力引起的3D纳米纤维结构应变。使用通过隐式有限元算法的自适应网络进行的计算机仿真可用于显着改善变形3D纳米结构中各向异性应变的研究。创建的模型基于经验拉普拉斯-泊松微分方程,其中气体颗粒以一定的动能运动。动能取决于速度,时间和温度,并影响3D纳米纤维结构的应变。将仿真结果与实际样品的图像分析结果进行了比较,结果表明该有限元模型可以确定结构应变的各个相。比较表明,开发的有限元模型可以作为研究3D纳米纤维结构中应变的重要工具,并且可以为通过电纺工艺优化3D纳米纤维结构生产提供有价值的信息。

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