Effect of Robot Motion Accuracy on Surface Form during Computer-Controlled Optical Surfacing Process
Abstract
:1. Introduction
2. Model Development
2.1. Modeling of Pad Surface Topography
- i.
- We estimated the average spacing between the micropores on the pad surface by observing the total number of micropores on the pad surface and the total surface area of the polishing pad , as shown in Equation (1).
- ii.
- After the random displacement of the center position of the micropore was determined, the hemispherical “micropore” was simulated at the new position, with the diameter of the micropore obeying an exponential distribution with an average value of 85 μm, so as to simulate the pore distribution characteristics of the pad surface.
- iii.
- The statistical analysis of the distribution characteristics of the micropore diameter on the pad surface and the porosity of the pad surface was conducted. Compared with the measured data, if the error of the simulation result was less than 5%, the simulation met the requirements. Otherwise, we re-sampled and simulated the position of the central hole of the micropore until the micropore distribution characteristics met the requirements.
- iv.
- According to the distribution characteristics of the diversion grooves and the central hole on the pad surface, the height of the slurry supply hole and the position of the groove in the theoretical model was set to −1.5 mm; then, the theoretical simulation morphology of the polishing pad surface was generated.
2.2. Removal Mechanism for Single Particle
2.3. Material Removal Model under Planetary Motion
2.4. Material Removal Considering the Normal Error of the Polishing Tool
2.5. Surface Generation Considering Normal Error of Polishing Tool
3. Experimental Design
4. Results and Discussion
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
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Chen, Y.-T.; Liu, M.; Cao, Z.-C. Effect of Robot Motion Accuracy on Surface Form during Computer-Controlled Optical Surfacing Process. Appl. Sci. 2022, 12, 12301. https://doi.org/10.3390/app122312301
Chen Y-T, Liu M, Cao Z-C. Effect of Robot Motion Accuracy on Surface Form during Computer-Controlled Optical Surfacing Process. Applied Sciences. 2022; 12(23):12301. https://doi.org/10.3390/app122312301
Chicago/Turabian StyleChen, Yong-Tong, Mingyu Liu, and Zhong-Chen Cao. 2022. "Effect of Robot Motion Accuracy on Surface Form during Computer-Controlled Optical Surfacing Process" Applied Sciences 12, no. 23: 12301. https://doi.org/10.3390/app122312301
APA StyleChen, Y. -T., Liu, M., & Cao, Z. -C. (2022). Effect of Robot Motion Accuracy on Surface Form during Computer-Controlled Optical Surfacing Process. Applied Sciences, 12(23), 12301. https://doi.org/10.3390/app122312301