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基于电化学分析的中性盐溶液中钼的精密电化学微加工

Precision Electrochemical Micro-Machining of Molybdenum in Neutral Salt Solution Based on Electrochemical Analysis.

作者信息

Wu Yuqi, Wang Guoqian, Yang Moucun, Zhang Yan

机构信息

School of Mechanical and Power Engineering, Nanjing Tech University, Nanjing 211816, China.

出版信息

Micromachines (Basel). 2024 Sep 26;15(10):1191. doi: 10.3390/mi15101191.

Abstract

Molybdenum is an important material in modern industry, widely used in extreme environments such as rocket engine nozzles and microelectrodes due to its high melting point, excellent mechanical properties, and thermal conductivity. However, as a difficult-to-machine metal, traditional machining methods struggle to achieve the desired microstructures in molybdenum. Electrochemical machining (ECM) offers unique advantages in manufacturing fine structures from hard-to-machine metals. Studies have shown that molybdenum exhibits a fast corrosion rate in alkaline or acidic solutions, posing significant environmental pressure. Therefore, this study investigates the electrochemical machining of molybdenum in neutral salt solutions to achieve high-precision microstructure fabrication. First, the polarization curves and electrochemical impedance spectroscopy (EIS) of molybdenum in NaNO3 solutions of varying concentrations were measured to determine its electrochemical reaction characteristics. The results demonstrate that molybdenum exhibits good electrochemical reactivity in NaNO3 solutions, leading to favorable surface erosion morphology. Subsequently, a mask electrochemical machining technique was employed to fabricate arrayed microstructures on the molybdenum surface. To minimize interference between factors, an orthogonal experiment was used to optimize the parameter combination, determining the optimal machining process parameters. Under these optimal conditions, an array of micro-groove structures was successfully fabricated with an average groove width of 110 μm, a depth-to-width ratio of 0.21, an aspect ratio of 9000, and a groove width error of less than 5 μm.

摘要

钼是现代工业中的一种重要材料,因其高熔点、优异的机械性能和热导率,广泛应用于火箭发动机喷嘴和微电极等极端环境中。然而,作为一种难加工金属,传统加工方法难以在钼中实现所需的微观结构。电化学加工(ECM)在由难加工金属制造精细结构方面具有独特优势。研究表明,钼在碱性或酸性溶液中腐蚀速率很快,带来了巨大的环境压力。因此,本研究探讨在中性盐溶液中对钼进行电化学加工,以实现高精度微观结构制造。首先,测量了钼在不同浓度NaNO3溶液中的极化曲线和电化学阻抗谱(EIS),以确定其电化学反应特性。结果表明,钼在NaNO3溶液中表现出良好的电化学反应性,导致良好的表面侵蚀形态。随后,采用掩膜电化学加工技术在钼表面制造阵列微观结构。为了最小化因素之间的干扰,使用正交实验优化参数组合,确定最佳加工工艺参数。在这些最佳条件下,成功制造出了平均槽宽为110μm、深宽比为0.21、纵横比为9000且槽宽误差小于5μm的微槽结构阵列。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c7f8/11509719/1e971a026739/micromachines-15-01191-g001.jpg

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