Xie Yu, Fang Qi, Zhao Han, Li Yang, Lin Zhihai, Chen Jianxiong
School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350100, China.
Micromachines (Basel). 2023 Jul 18;14(7):1437. doi: 10.3390/mi14071437.
Melt electrospinning writing is a new and promising method for fabricating micro/nanofibers, which has shown great prospects in the biomedical fields such as 3D printing of porous scaffolds. The diameter of the melt electrospinning writing fiber can determine the resolution of the microstructure; thus, the controllability of the fiber diameter is of great significance to the whole fabrication process. In this paper, an orthogonal design experiment (six factors, three levels) was used to explore the impacts of six melt electrospinning parameters (melt temperature, collector speed, tip-to-collector distance, melt flow rate, voltage, and needle gauge) on the fiber diameter. In this experiment, the diameter of fibers obtained with the designed experimental parameters and conditions varied from 10.30 μm to 20.02 μm. The range analysis of orthogonal test results showed that the melt flow rate was the most important factor influencing the diameter of melt electrospinning writing fiber, while the voltage was the least influential factor. The variance analysis of orthogonal test results showed that melt temperature, collector velocity, tip-to-collector distance and melt flow rate had a significant influence on the diameter of melt electrospinning writing fiber. On the basis of the first-order regression equation, the fiber diameter of poly-ε-caprolactone can be accurately controlled, thus improving the engineering applications of poly-ε-caprolactone.
熔体静电纺丝书写是一种用于制造微/纳米纤维的新型且有前景的方法,它在诸如多孔支架的3D打印等生物医学领域已展现出巨大前景。熔体静电纺丝书写纤维的直径可决定微观结构的分辨率;因此,纤维直径的可控性对整个制造过程具有重要意义。本文采用正交设计实验(六因素,三水平)来探究六个熔体静电纺丝参数(熔体温度、收集器速度、喷头到收集器的距离、熔体流速、电压和针规)对纤维直径的影响。在该实验中,在设计的实验参数和条件下获得的纤维直径在10.30μm至20.02μm之间变化。正交试验结果的极差分析表明,熔体流速是影响熔体静电纺丝书写纤维直径的最重要因素,而电压是影响最小的因素。正交试验结果的方差分析表明,熔体温度、收集器速度、喷头到收集器的距离和熔体流速对熔体静电纺丝书写纤维的直径有显著影响。基于一阶回归方程,可精确控制聚ε-己内酯的纤维直径,从而改善聚ε-己内酯的工程应用。