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Experimental Optimization of Process Parameters in CuNi18Zn20 Micromachining.
Andrea Abeni1, Alessandro Metelli1, Cristian Cappellini2
1Department of Mechanical and Industrial Engineering, University of Brescia, Via Branze 38, 25123 Brescia, Italy.
Optimizing ultraprecision micromachining parameters enhances efficiency and precision for complex microstructures. This study demonstrates improved quality and cost-effectiveness in watchmaking by refining cutting speed, feed rate, and depth of cut.
Area of Science:
- Manufacturing Engineering
- Materials Science
- Precision Engineering
Background:
- Ultraprecision micromachining fabricates complex 3D microstructures crucial for electronics, biomedicine, optics, and watchmaking.
- Increasing miniaturization and functional integration demand higher precision and tighter tolerances in micro-manufacturing.
- Achieving superior surface finish and dimensional accuracy is vital for high-performance micro-components.
Purpose of the Study:
- To optimize micromachining process parameters for enhanced efficiency and effectiveness.
- To investigate the correlation between cutting parameters and the quality of machined microfeatures.
- To reduce post-machining costs and meet stringent quality standards in high-end horology.
Main Methods:
- An experimental factorial plan was employed to vary cutting speed, feed rate, and depth of cut.
- The study focused on manufacturing main-plates and bridges for wristwatch movements.
- Evaluated dimensions, geometry, and surface finishing of micro-holes, pins, and pockets.
Main Results:
- Identified specific correlations between micromachining parameters and feature quality.
- Demonstrated that optimized parameters lead to conformity with technical specifications.
- Achieved excellent surface finishing and high precision in manufactured wristwatch components.
Conclusions:
- Parameter optimization is crucial for achieving high precision and surface finishing in micromachining.
- The presented technique enables cost-effective manufacturing of high-quality micro-components.
- Successful application in horology validates the method for meeting strict industrial requirements.
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