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Modeling and Experimental Study of the Localized Electrochemical Micro Additive Manufacturing Technology Based on the FluidFM

机译:基于FluidFM的局部电化学微添加剂制造技术的建模与实验研究。

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摘要

In this work, the localized electrochemical micro additive manufacturing technology based on the FluidFM (fluidic force microscope) has been introduced to fabricate micro three-dimensional overhang metal structures at sub-micron resolution. It breaks through the localized deposition previously achieved by micro-anode precision movement, and the micro-injection of the electrolyte is achieved in a stable electric field distribution. The structure of electrochemical facilities has been designed and optimized. More importantly, the local electrochemical deposition process has been analyzed with positive source diffusion, and the mathematical modeling has been revealed in the particle conversion process. A mathematical model is proposed for the species flux under the action of pulsed pressure in an innovatively localized liquid feeding process. Besides, the linear structure, bulk structure, complex structure, and large-area structure of the additive manufacturing are analyzed separately. The experimental diameter of the deposited cylinder structure is linearly fitted. The aspect ratio of the structure is greater than 20, the surface roughness value is between 0.1–0.2 μm at the surface of bulk structures, and the abilities are verified for deposition of overhang, hollow complex structures. Moreover, this work verifies the feasibility of 3D overhang array submicron structure additive manufacturing, with the application of pulsed pressure. Furthermore, this technology opens new avenues for the direct fabrication of nano circuit interconnection, tiny sensors, and micro antennas.
机译:在这项工作中,已经引入了基于FluidFM(流体力显微镜)的局部电化学微添加剂制造技术,以亚微米分辨率制造了三维三维悬垂金属结构。它突破了以前通过微阳极精确移动实现的局部沉积,并且在稳定的电场分布中实现了电解质的微注入。电化学设备的结构已经过设计和优化。更重要的是,已经对局部电化学沉积过程进行了正源扩散分析,并在颗粒转化过程中揭示了数学模型。在创新的局部液体进料过程中,提出了在脉冲压力作用下物质通量的数学模型。此外,分别分析了增材制造的线性结构,整体结构,复杂结构和大面积结构。沉积圆柱结构的实验直径是线性拟合的。该结构的长宽比大于20,在散装结构的表面的表面粗糙度值在0.1–0.2μm之间,并且已验证了用于悬垂,空心复合结构的沉积的能力。此外,这项工作通过脉冲压力的应用验证了3D悬垂阵列亚微米结构增材制造的可行性。此外,这项技术为直接制造纳米电路互连,微型传感器和微型天线开辟了新途径。

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