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A state-of-the-art review on tool wear and surface integrity characteristics in machining of superalloys
Scopus
Toplam 283 atıf DOI
Today, superalloys (also known as hard-to-cut materials) such as nickel, titanium and cobalt based cover a wide range of areas in engineering applications. At the same time, challenging material properties namely high strength and low thermal conductivity cause low quality in terms of cutting tool life and surface integrity of the machined part. It is important to improve the machinability of this type of materials by applying various methods in the perspective of sustainability. Therefore, current study presents surface integrity, tool wear characteristics and initiatives to improve them during the machining of superalloys. In this manner, it is outlined the surface integrity characteristics containing surface defects, surface roughness, microstructure alterations and mechanical properties. Also, tool wear mechanisms for example abrasive, adhesive, oxidation, diffusion and plastic deformation are investigated in the light of literature review. Finally, possible improvement options for tool wear and surface integrity depend on machining parameters, tool modifications, cooling methods and trade-off strategies are highlighted. The paper can be a guide for the researchers and manufacturers in the area of sustainable machining of hard-to-cut materials as explaining the latest trends and requirements.
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Life Cycle and Machinability Analysis of Milling Incoloy 286 Using Sustainable Cooling/Lubrication Technologies
Scopus
Havuzumuzda 2 atıf almış
The current study scrutinized the machinability and techno-economics of milling Incoloy 286. The influence of cutting parameters and cooling method on various machining outputs was examined. Cryogenic conditions enhanced tool life by up to 70.73%, with MQL (53.33%) and flood cooling (44.44%) following closely behind. Cryogenic conditions lowered flank wear by up to 26.87%, followed by MQL (10.71%) and flood cooling (9.38%). Additionally, for all parameters except vc = 100 m/min and f = 0.1 mm/rev, the overall machining costs are as follows: cryogenic (LN2) < MQL < Flood < Dry. While expenses increased during dry milling, when MQL and cryogenic methods were applied, insert costs reduced by 70-135% when compared to dry milling. Furthermore, carbon emissions (CE) values increased by 50-85% when MQL and cryogenic cutting conditions were used versus flood machining. Total emissions are in the following order: MQL, Dry, Cryogenic, and Flood. In dry, MQL, and cryogenic cutting circumstances, the [CE]_CIF typically ranged from 8 to 27%. However, flood cooling had a significantly higher [CE]_CIF of 53-57%. As compared to dry milling, cryogenic cooling reduced emissions owing to power consumption by 11-39%.
Atıf Yapan Makale Bilgileri
Kurumlar (4)
Bingöl Üniversitesi
Bingol, Turkey
Institute of Infrastructure, Technology, Research And Management
Ahmedabad, India
Selçuk Üniversitesi
Selçuklu, Turkey
University of Portsmouth
Portsmouth, United Kingdom