Huang Yubo, Gao Han, Wu Zhiheng, Xiao Hongyang, Xia Cao, Xia Yuanlin, Wang Zhuqing
School of Mechanical Engineering, Sichuan University, Chengdu 610065, China.
Pittsburgh Institute, Sichuan University, Chengdu 610225, China.
Micromachines (Basel). 2024 Aug 14;15(8):1033. doi: 10.3390/mi15081033.
Hot embossing is a manufacturing technique used to create microchannels on polymer substrates. In recent years, microchannel fabrication technology based on hot embossing has attracted considerable attention due to its convenience and low cost. A new evaluation method of microchannels, as well as an approach to obtaining optimal hot embossing conditions based on the Taguchi method, is proposed in this paper to fabricate precise microchannels for a flexible proton-exchange membrane fuel cell (PEMFC). Our self-made hot embossing system can be used to fabricate assorted types of micro-channel structures on polymer substrates according to various applications, whose bottom width, top width, height and cross-sectional area vary in the aims of different situations. In order to obtain a high effective filling ratio, a new evaluation method is presented based on the four parameters of channel structures, and the Taguchi method is utilized to arrange three main factors (temperature, force and time) affecting the hot embossing in orthogonal arrays, quickly finding the optimal condition for the embossing process. The evaluation method for microchannels proposed in this paper, compared to traditional evaluation methods, incorporates the area factor, providing a more comprehensive assessment of the fabrication completeness of the microchannels. Additionally, it allows for the quick and simple identification of optimal conditions. The experimental results indicate that after determining the optimal embossing temperature, pressure and time using the Taguchi method, the effective filling rate remains above 95%, thereby enhancing the power density. Through variance analysis, it was found that temperature is the most significant factor affecting the hot embossing of microchannels. The high filling rate makes the process suitable for PEMFCs. The results demonstrate that under optimized process conditions, a self-made hot embossing system can effectively fabricate columnar structure microchannels for PEMFCs.
热压印是一种用于在聚合物基底上制造微通道的制造技术。近年来,基于热压印的微通道制造技术因其便利性和低成本而备受关注。本文提出了一种新的微通道评估方法,以及一种基于田口方法获得最佳热压印条件的方法,以制造用于柔性质子交换膜燃料电池(PEMFC)的精确微通道。我们自制的热压印系统可根据各种应用在聚合物基底上制造各种类型的微通道结构,其底部宽度、顶部宽度、高度和横截面积根据不同情况的目标而变化。为了获得较高的有效填充率,基于通道结构的四个参数提出了一种新的评估方法,并利用田口方法将影响热压印的三个主要因素(温度、压力和时间)安排在正交阵列中,快速找到压印过程的最佳条件。本文提出的微通道评估方法与传统评估方法相比,纳入了面积因素,对微通道的制造完整性提供了更全面的评估。此外,它还允许快速简单地识别最佳条件。实验结果表明,使用田口方法确定最佳压印温度、压力和时间后,有效填充率保持在95%以上,从而提高了功率密度。通过方差分析发现,温度是影响微通道热压印的最显著因素。高填充率使该工艺适用于质子交换膜燃料电池。结果表明,在优化的工艺条件下,自制的热压印系统可以有效地为质子交换膜燃料电池制造柱状结构微通道。