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Multiscale Analysis of Surface Topography for Engineering Applications in the Casting Industry
Damian Gogolewski1, Tomasz Kozior1, Paweł Zmarzły1
1Faculty of Mechatronics and Mechanical Engineering, Kielce University of Technology, Al. Tysiąclecia Państwa Polskiego 7, 25-314 Kielce, Poland.
The molding process has a minor impact on casting model surface irregularities, primarily affecting long-term features. Manufacturing method and parameters do not significantly influence this variation.
Area of Science:
- Materials Science and Engineering
- Manufacturing Technology
Background:
- Casting models are crucial for producing high-quality castings.
- Additive manufacturing technologies are increasingly adopted in various industries.
- Understanding the impact of manufacturing processes on surface topography is essential for quality control.
Purpose of the Study:
- To assess the influence of the molding process on the surface irregularity variability of casting models.
- To compare the surface topography characteristics of models produced by traditional machining and additive manufacturing.
- To evaluate the applicability of additive technologies in relation to surface topography changes.
Main Methods:
- Utilized a multiscale method, specifically wavelet transformation (discrete and continuous), for surface irregularity analysis.
- Manufactured test samples using traditional methods (machining of aluminum and wood) and three additive technologies.
- Employed Analysis of Variance (ANOVA) for statistical assessment of surface differences before and after forming cycles.
Main Results:
- The molding process has a relatively small impact on surface topography, primarily affecting long-term irregularity components.
- Statistical analysis confirmed the ability to distinguish surfaces before and after forming cycles.
- No significant functional dependencies were found between the forming process's impact on surface topography variation and the manufacturing method or its parameters.
Conclusions:
- Additive manufacturing technologies show potential for producing casting models with acceptable surface topography.
- The molding process's effect on surface irregularities is minimal and predictable.
- Further research can explore optimizing additive processes for enhanced surface finish in casting applications.
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