Zhao Baishun, Qiang Yuanbao, Wu Wangqing, Jiang Bingyan
State Key Laboratory of High-Performance Complex Manufacturing, Central South University, Lushan South Road 932, Changsha 410083, China.
School of Mechanical and Electrical Engineering, Central South University, Lushan South Road 932, Changsha 410083, China.
Polymers (Basel). 2021 Aug 27;13(17):2877. doi: 10.3390/polym13172877.
With the wide application of Micro-Electro-Mechanical Systems (MEMSs), especially the rapid development of wearable flexible electronics technology, the efficient production of micro-parts with thermoplastic polymers will be the core technology of the harvesting market. However, it is significantly restrained by the limitations of the traditional micro-injection-molding (MIM) process, such as replication fidelity, material utilization, and energy consumption. Currently, the increasing investigation has been focused on the ultrasonic-assisted micro-injection molding (UAMIM) and ultrasonic plasticization micro-injection molding (UPMIM), which has the advantages of new plasticization principle, high replication fidelity, and cost-effectiveness. The aim of this review is to present the latest research activities on the action mechanism of power ultrasound in various polymer micro-molding processes. At the beginning of this review, the physical changes, chemical changes, and morphological evolution mechanism of various thermoplastic polymers under different application modes of ultrasonic energy field are introduced. Subsequently, the process principles, characteristics, and latest developments of UAMIM and UPMIM are scientifically summarized. Particularly, some representative performance advantages of different polymers based on ultrasonic plasticization are further exemplified with a deeper understanding of polymer-MIM relationships. Finally, the challenges and opportunities of power ultrasound in MIM are prospected, such as the mechanism understanding and commercial application.
随着微机电系统(MEMS)的广泛应用,尤其是可穿戴柔性电子技术的迅速发展,采用热塑性聚合物高效生产微零件将成为收获市场的核心技术。然而,它受到传统微注塑成型(MIM)工艺局限性的显著制约,如复制保真度、材料利用率和能耗等。目前,越来越多的研究集中在超声辅助微注塑成型(UAMIM)和超声塑化微注塑成型(UPMIM)上,它们具有新的塑化原理、高复制保真度和成本效益等优点。本综述的目的是介绍功率超声在各种聚合物微成型工艺中的作用机制的最新研究进展。在本综述开始时,介绍了在不同超声能量场应用模式下各种热塑性聚合物的物理变化、化学变化和形态演变机制。随后,科学总结了UAMIM和UPMIM的工艺原理、特点和最新进展。特别是,基于超声塑化的不同聚合物的一些代表性性能优势通过对聚合物 - MIM关系的更深入理解进一步举例说明。最后,展望了功率超声在MIM中的挑战和机遇,如机理理解和商业应用。