Experimental Investigations and Optimization of Surface Roughness Using Response Surface Methodology Coupled with Genetic Algorithm and Particle Swarm Optimization Techniques in Grinding of Inconel 718
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Publisher
Springer Science and Business Media LLC
Link
https://link.springer.com/content/pdf/10.1007/s12541-024-01038-z.pdf
Reference42 articles.
1. Sinha, M. K., Setti, D., Ghosh, S., & Venkateswara Rao, P. (2016). An investigation on surface burn during grinding of Inconel 718. Journal of Manufacturing Processes, 21(January), 124–133. https://doi.org/10.1016/j.jmapro.2015.12.004
2. Curtis, D., Krain, H., Winder, A., & Novovic, D. (2021). Impact of grinding wheel specification on surface integrity and residual stress when grinding Inconel 718. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture, 235(10), 1668–1681. https://doi.org/10.1177/0954405420961209
3. Zhao, Z. C., Xu, J. H., Fu, Y. C., & Zhang, Z. W. (2013). Creep feed grinding of Ni-based superalloy with micro-crystalline ceramic alumina wheels. Advanced Materials Research, 797, 511–515. https://doi.org/10.4028/www.scientific.net/AMR.797.511
4. Chen, J., Fu, Y., He, Q., Zhu, Y., & Zhang, W. (2017). Experimental investigation on high-efficiency grinding of Inconel 718 with heat pipe grinding wheel. Machining Science and Technology, 21(1), 86–102. https://doi.org/10.1080/10910344.2016.1260431
5. Gong, L., Bertolini, R., Bruschi, S., Ghiotti, A., & He, N. (2022). Surface integrity evaluation when turning Inconel 718 alloy using sustainable lubricating-cooling approaches. International Journal of Precision Engineering and Manufacturing - Green Technology, 9(1), 25–42. https://doi.org/10.1007/s40684-021-00310-1
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