Influence of Material Microstructure on Machining Characteristics of OFHC Copper C102 in Orthogonal Micro-Turning
Abstract
:1. Introduction
2. Experiment
2.1. Workpiece Material
2.2. Experimental Setup
3. Analysis and Discussion Results
3.1. Machined Surface Integrity
3.2. Cutting Forces
3.3. Chip Formation
4. Conclusions
- The toolpath on the machined surfaces of workpieces with a grain size of 60 μm were more prominent than the other two grain sizes. An explanation for this phenomenon is that material flows to the two sides closest to the cutting edge in the cutting process. The softer the material, the more prone it is to this flow phenomenon, and the workpiece with a grain size of 60 m is the softest. When the feed rate is equal to the grain size for the same grain size workpiece, the Sa of the surface completed is the smallest.
- The cutting forces increased with increasing feed rates. This indicates that the change in feed rates during the cutting process has a higher influence on the cutting force than the location of the microstructure when the cutting process takes place. When the feed rate was 30 μm, the cutting force Fc of the workpiece with a grain size of 30 μm (cutting happened largely at the grain boundaries) was less than that of the workpiece with a grain size of 40 μm (cutting mostly occurred inside the grain). The reason for this is that cutting inside the grain induced a lot of dislocation plugs, which resulted in a lot of cutting force. Similar behavior may be observed when the feed rate is set to 40 μm/rev.
- On the free surface, there were lamellar patterns that were nicely ordered and almost the same width on the same chip. The breadth of the lamellar patterns on the free surface was minimum when the feed rates were equal to the grain sizes. When the grain sizes were 30 μm and 40 μm, the width of the lamellar patterns of chips whose feed rates were smaller than the grain size was about 1.5 times wider than when the feed rates were equal to the grain size, and the width of the lamellar patterns of chips whose feed rates were greater than the grain size was about 2 times wider than when the feed rates were equal to the grain size.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Machine Tool | CKD6150H Lathe-Machining Center |
Cutting speed (m/min) | 50 |
Cutting tool | PVD-coated carbide insert (TiAlN) |
Workpiece material | OFHC copper |
Feed rate (μm/rev) | 20, 30, 40 |
30, 40, 50 | |
50, 60, 70 |
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Jing, C.-Z.; Wang, J.-L.; Li, X.; Li, Y.-F.; Han, L. Influence of Material Microstructure on Machining Characteristics of OFHC Copper C102 in Orthogonal Micro-Turning. Processes 2022, 10, 741. https://doi.org/10.3390/pr10040741
Jing C-Z, Wang J-L, Li X, Li Y-F, Han L. Influence of Material Microstructure on Machining Characteristics of OFHC Copper C102 in Orthogonal Micro-Turning. Processes. 2022; 10(4):741. https://doi.org/10.3390/pr10040741
Chicago/Turabian StyleJing, Chuan-Zhi, Ji-Lai Wang, Xue Li, Yi-Fei Li, and Lu Han. 2022. "Influence of Material Microstructure on Machining Characteristics of OFHC Copper C102 in Orthogonal Micro-Turning" Processes 10, no. 4: 741. https://doi.org/10.3390/pr10040741
APA StyleJing, C. -Z., Wang, J. -L., Li, X., Li, Y. -F., & Han, L. (2022). Influence of Material Microstructure on Machining Characteristics of OFHC Copper C102 in Orthogonal Micro-Turning. Processes, 10(4), 741. https://doi.org/10.3390/pr10040741