Performance assessment of hybrid lubricating conditions on machining-induced surface/subsurface characteristics during a novel heat assisted machining Hastelloy C4

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dc.contributor.author Makhesana, Mayur
dc.contributor.author Arora, Amit
dc.contributor.author Patel, Kaushik
dc.contributor.author Khanna, Navneet
dc.coverage.spatial United States of America
dc.date.accessioned 2025-05-29T07:58:01Z
dc.date.available 2025-05-29T07:58:01Z
dc.date.issued 2025-08
dc.identifier.citation Makhesana, Mayur; Arora, Amit; Patel, Kaushik and Khanna, Navneet, "Performance assessment of hybrid lubricating conditions on machining-induced surface/subsurface characteristics during a novel heat assisted machining Hastelloy C4", Journal of Manufacturing Processes, DOI: 10.1016/j.jmapro.2025.05.019, vol. 148, pp. 45-60, Aug. 2025.
dc.identifier.issn 1526-6125
dc.identifier.issn 2212-4616
dc.identifier.uri https://doi.org/10.1016/j.jmapro.2025.05.019
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/11459
dc.description.abstract Nickel-based superalloys are widely used in important applications in various industries, including aerospace, defence, chemical processing, and marine. However, the difficulties encountered in machining these alloys pose specific challenges regarding the efficiency and quality of the parts. Thus, adopting economical and environmentally friendly cutting strategies during machining is essential for the environment and performance. For this purpose, silicon dioxide (SiO2) and aluminium oxide (Al2O3) nanoparticles were added to a base-cutting fluid to develop a novel hybrid nanofluid MQL (HNFMQL) cutting fluid, which is then applied during turning experiments. The thermo-physical characteristics, namely pH, thermal conductivity, and coefficient of friction of different fluid mixtures, are studied. The machining experiments are performed on Hastelloy C4 under conventional (dry, MQL, HNFMQL) and heat-assisted (HA) machining (HA dry, HA MQL, HA HNFMQL), and the cooling-lubrication ability is analyzed by measuring machining responses. Compared to HNFMQL and dry conditions, heat-assisted machining with HNFMQL reduced surface roughness by 20 % and 55.56 % and decreased tool wear by 14 % and 41.47 %. The SEM and EDX analysis of worn cutting tools revealed the efficacy of HNFMQL and HA HNFMQL with lower abrasive wear. Whereas, abrasion, adhesion, and chipping are observed under dry machining. The study of the material's microstructural behaviour using Electron Backscatter Diffraction (EBSD) revealed important details about its behaviour under various machining conditions. The EBSD investigation revealed a well-aligned microstructure, proving that heat impacts a limited region in heat-assisted machining.
dc.description.statementofresponsibility by Mayur Makhesana, Amit Arora, Kaushik Patel and Navneet Khanna
dc.format.extent vol. 148, pp. 45-60
dc.language.iso en_US
dc.publisher Elsevier
dc.subject Hastelloy C4
dc.subject Heat-assisted machining
dc.subject Hybrid nanofluid-MQL
dc.subject Surface roughness
dc.subject Tool wear
dc.subject Microstructure
dc.title Performance assessment of hybrid lubricating conditions on machining-induced surface/subsurface characteristics during a novel heat assisted machining Hastelloy C4
dc.type Article
dc.relation.journal Journal of Manufacturing Processes


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