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Recent advances of high entropy alloys for aerospace applications: A review

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dc.contributor.author Dada, M
dc.contributor.author Popoola, P
dc.contributor.author Mathe, Ntombizodwa R
dc.date.accessioned 2022-02-11T08:09:09Z
dc.date.available 2022-02-11T08:09:09Z
dc.date.issued 2021-08
dc.identifier.citation Dada, M., Popoola, P. & Mathe, N.R. 2021. Recent advances of high entropy alloys for aerospace applications: A review. <i>World Journal of Engineering.</i> http://hdl.handle.net/10204/12268 en_ZA
dc.identifier.issn 1708-5284
dc.identifier.uri https://doi.org/10.1108/WJE-01-2021-0040
dc.identifier.uri http://hdl.handle.net/10204/12268
dc.description.abstract This study aims to review the recent advancements in high entropy alloys (HEAs) called high entropy materials, including high entropy superalloys which are current potential alternatives to nickel superalloys for gas turbine applications. Understandings of the laser surface modification techniques of the HEA are discussed whilst future recommendations and remedies to manufacturing challenges via laser are outlined. Design/methodology/approach. Materials used for high-pressure gas turbine engine applications must be able to withstand severe environmentally induced degradation, mechanical, thermal loads and general extreme conditions caused by hot corrosive gases, high-temperature oxidation and stress. Over the years, Nickel-based superalloys with elevated temperature rupture and creep resistance, excellent lifetime expectancy and solution strengthening L12 and precipitate used for turbine engine applications. However, the superalloy’s density, low creep strength, poor thermal conductivity, difficulty in machining and low fatigue resistance demands the innovation of new advanced materials. Findings: HEAs is one of the most frequently investigated advanced materials, attributed to their configurational complexity and properties reported to exceed conventional materials. Thus, owing to their characteristic feature of the high entropy effect, several other materials have emerged to become potential solutions for several functional and structural applications in the aerospace industry. In a previous study, research contributions show that defects are associated with conventional manufacturing processes of HEAs; therefore, this study investigates new advances in the laser-based manufacturing and surface modification techniques of HEA. Research limitations/implications. The AlxCoCrCuFeNi HEA system, particularly the Al0.5CoCrCuFeNi HEA has been extensively studied, attributed to its mechanical and physical properties exceeding that of pure metals for aerospace turbine engine applications and the advances in the fabrication and surface modification processes of the alloy was outlined to show the latest developments focusing only on laser-based manufacturing processing due to its many advantages. Originality/value It is evident that high entropy materials are a potential innovative alternative to conventional superalloys for turbine engine applications via laser additive manufacturing. en_US
dc.format Abstract en_US
dc.language.iso en en_US
dc.relation.uri https://www.emerald.com/insight/content/doi/10.1108/WJE-01-2021-0040/full/html en_US
dc.source World Journal of Engineering en_US
dc.subject Aerospace applications en_US
dc.subject High entropy alloys en_US
dc.subject High entropy materials en_US
dc.subject Laser surface modification en_US
dc.title Recent advances of high entropy alloys for aerospace applications: A review en_US
dc.type Article en_US
dc.description.pages 32 en_US
dc.description.note © Emerald Publishing Limited. Due to copyright restrictions, the attached PDF file contains the abstract of the published paper. For access to the published item, please consult the publisher's website: https://doi.org/10.1108/WJE-01-2021-0040 en_US
dc.description.cluster Manufacturing en_US
dc.description.impactarea Laser Enabled Manufacturing en_US
dc.identifier.apacitation Dada, M., Popoola, P., & Mathe, N. R. (2021). Recent advances of high entropy alloys for aerospace applications: A review. <i>World Journal of Engineering</i>, http://hdl.handle.net/10204/12268 en_ZA
dc.identifier.chicagocitation Dada, M, P Popoola, and Ntombizodwa R Mathe "Recent advances of high entropy alloys for aerospace applications: A review." <i>World Journal of Engineering</i> (2021) http://hdl.handle.net/10204/12268 en_ZA
dc.identifier.vancouvercitation Dada M, Popoola P, Mathe NR. Recent advances of high entropy alloys for aerospace applications: A review. World Journal of Engineering. 2021; http://hdl.handle.net/10204/12268. en_ZA
dc.identifier.ris TY - Article AU - Dada, M AU - Popoola, P AU - Mathe, Ntombizodwa R AB - This study aims to review the recent advancements in high entropy alloys (HEAs) called high entropy materials, including high entropy superalloys which are current potential alternatives to nickel superalloys for gas turbine applications. Understandings of the laser surface modification techniques of the HEA are discussed whilst future recommendations and remedies to manufacturing challenges via laser are outlined. Design/methodology/approach. Materials used for high-pressure gas turbine engine applications must be able to withstand severe environmentally induced degradation, mechanical, thermal loads and general extreme conditions caused by hot corrosive gases, high-temperature oxidation and stress. Over the years, Nickel-based superalloys with elevated temperature rupture and creep resistance, excellent lifetime expectancy and solution strengthening L12 and precipitate used for turbine engine applications. However, the superalloy’s density, low creep strength, poor thermal conductivity, difficulty in machining and low fatigue resistance demands the innovation of new advanced materials. Findings: HEAs is one of the most frequently investigated advanced materials, attributed to their configurational complexity and properties reported to exceed conventional materials. Thus, owing to their characteristic feature of the high entropy effect, several other materials have emerged to become potential solutions for several functional and structural applications in the aerospace industry. In a previous study, research contributions show that defects are associated with conventional manufacturing processes of HEAs; therefore, this study investigates new advances in the laser-based manufacturing and surface modification techniques of HEA. Research limitations/implications. The AlxCoCrCuFeNi HEA system, particularly the Al0.5CoCrCuFeNi HEA has been extensively studied, attributed to its mechanical and physical properties exceeding that of pure metals for aerospace turbine engine applications and the advances in the fabrication and surface modification processes of the alloy was outlined to show the latest developments focusing only on laser-based manufacturing processing due to its many advantages. Originality/value It is evident that high entropy materials are a potential innovative alternative to conventional superalloys for turbine engine applications via laser additive manufacturing. DA - 2021-08 DB - ResearchSpace DP - CSIR J1 - World Journal of Engineering KW - Aerospace applications KW - High entropy alloys KW - High entropy materials KW - Laser surface modification LK - https://researchspace.csir.co.za PY - 2021 SM - 1708-5284 T1 - Recent advances of high entropy alloys for aerospace applications: A review TI - Recent advances of high entropy alloys for aerospace applications: A review UR - http://hdl.handle.net/10204/12268 ER - en_ZA
dc.identifier.worklist 25316 en_US


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