He Junfeng, Chen Wenjie, Wang Junjie, Wu Ming, Zhou Li, Chen Ri, Liang Huazhuo
School of Mechatronic Engineering, Guangdong Polytechnic Normal University, Guangzhou 510665, China.
School of Mechanical and Automotive Engineering, South China University of Technology, Guangzhou 510641, China.
Micromachines (Basel). 2024 Aug 26;15(9):1074. doi: 10.3390/mi15091074.
Zirconium alloys possess excellent wear resistance, which ensures the durability and longevity of the components, making them widely used in medical and other fields. To enhance the functionality of these materials, it is often necessary to fabricate functional microstructures on their surfaces. Electrochemical machining (ECM) techniques demonstrate excellent machining performance for these metals, particularly in the processing of microstructures on complex curved surfaces. However, ECM often faces challenges due to the fluid nature of the electrolyte, resulting in low machining accuracy and localization. This paper proposes a novel method for fabricating complex patterned microstructures using a maskless electrochemical direct writing technique with a polyacrylamide (PAM) polymer electrolyte. By leveraging the non-Newtonian properties of PAM, this method effectively confines the electrolyte to specific areas, thus addressing the issue of poor localization in traditional ECM and reducing stray corrosion. To elucidate the electrochemical removal mechanism of Zr702 in the presence of PAM, polarization curves, viscosity characteristics, and current efficiency parameters were analyzed. Additionally, an experimental study was conducted using a custom-designed nozzle structure. The results showed that the PAM electrolyte could effectively reduce the EF, positively impacting machining accuracy and localization. By controlling the nozzle's motion trajectory, complex microstructures were successfully fabricated through direct writing, demonstrating promising application prospects.
锆合金具有出色的耐磨性,这确保了部件的耐用性和长久性,使其在医学和其他领域得到广泛应用。为增强这些材料的功能,通常有必要在其表面制造功能性微观结构。电化学加工(ECM)技术在加工这些金属时展现出优异的加工性能,尤其是在复杂曲面上微观结构的加工方面。然而,由于电解液的流体性质,ECM常常面临挑战,导致加工精度和定位性较低。本文提出了一种使用带有聚丙烯酰胺(PAM)聚合物电解液的无掩膜电化学直接写入技术制造复杂图案化微观结构的新方法。通过利用PAM的非牛顿特性,该方法有效地将电解液限制在特定区域,从而解决了传统ECM中定位性差的问题并减少了杂散腐蚀。为阐明在PAM存在下Zr702的电化学去除机制,分析了极化曲线、粘度特性和电流效率参数。此外,使用定制设计的喷嘴结构进行了实验研究。结果表明,PAM电解液可有效降低电场因子,对加工精度和定位性产生积极影响。通过控制喷嘴的运动轨迹,通过直接写入成功制造出复杂的微观结构,展现出广阔的应用前景。