Song Bowen, Zhang Dawei, Jing Xiubing, Ren Yingying, Chen Yun, Li Huaizhong
Key Laboratory of Equipment Design and Manufacturing Technology, Tianjin University, Tianjin 300072, China.
Pen-Tung Sah Institute of Micro-Nano Science and Technology, Xiamen University, Xiamen 361102, China.
Micromachines (Basel). 2024 Jan 16;15(1):139. doi: 10.3390/mi15010139.
Vibration-assisted micro milling is a promising technique for fabricating engineered mi-cro-scaled surface textures. This paper presents a novel approach for theoretical modeling of three-dimensional (3D) surface textures produced by vibration-assisted micro milling. The proposed model considers the effects of tool edge geometry, minimum uncut chip thickness (MUCT), and material elastic recovery. The surface texture formation under different machining parameters is simulated and analyzed through mathematical modeling. Two typical surface morphologies can be generated: wave-type and fish scale-type textures, depending on the phase difference between tool paths. A 2-degrees-of-freedom (2-DOF) vibration stage is also developed to provide vibration along the feed and cross-feed directions during micro-milling process. Micro-milling experiments on copper were carried out to verify the ability to fabricate controlled surface textures using the vibration stage. The simulated and experimentally generated surfaces show good agreement in geometry and dimensions. This work provides an accurate analytical model for vibration-assisted micro-milling surface generation and demonstrates its feasibility for efficient, flexible texturing.
振动辅助微铣削是一种用于制造工程微尺度表面纹理的很有前景的技术。本文提出了一种对振动辅助微铣削产生的三维(3D)表面纹理进行理论建模的新方法。所提出的模型考虑了刀具刃口几何形状、最小未切屑厚度(MUCT)和材料弹性恢复的影响。通过数学建模对不同加工参数下的表面纹理形成进行了模拟和分析。根据刀具路径之间的相位差,可以生成两种典型的表面形态:波浪型和鱼鳞型纹理。还开发了一个两自由度(2-DOF)振动平台,以便在微铣削过程中沿进给和横向进给方向提供振动。对铜进行了微铣削实验,以验证使用振动平台制造可控表面纹理的能力。模拟和实验生成的表面在几何形状和尺寸上显示出良好的一致性。这项工作为振动辅助微铣削表面生成提供了一个精确的分析模型,并证明了其在高效、灵活纹理化方面的可行性。