Please use this identifier to cite or link to this item: https://scholarbank.nus.edu.sg/handle/10635/58200
DC FieldValue
dc.titleEffect of temperature in single phase regime on aging response of (Al-2Cu)/SiC metal matrix composite synthesised using disintegrated melt deposition technique
dc.contributor.authorGupta, M.
dc.contributor.authorLai, M.O.
dc.contributor.authorLing, S.
dc.date.accessioned2014-06-17T05:11:57Z
dc.date.available2014-06-17T05:11:57Z
dc.date.issued1997
dc.identifier.citationGupta, M.,Lai, M.O.,Ling, S. (1997). Effect of temperature in single phase regime on aging response of (Al-2Cu)/SiC metal matrix composite synthesised using disintegrated melt deposition technique. Materials Science and Technology 13 (3) : 187-191. ScholarBank@NUS Repository.
dc.identifier.issn02670836
dc.identifier.urihttp://scholarbank.nus.edu.sg/handle/10635/58200
dc.description.abstractIn the present study, an aluminium based metal matrix composite ((Al-2 wt-%Cu)/SiC) was synthesised using an innovative disintegrated melt deposition technique and investigated to determine its microstructural characteristics and the effect of temperature in the single phase regime on the peak aging characteristics. Microstructural characterisation carried out on the as processed composite revealed the presence of a dendritic-equiaxed microstructure, non-interconnected porosity, uniform distribution of SiC particles, and good interfacial integrity. The results of solutionising studies indicated that the peak hardness during solutionising can only be realised if the composite is soaked at a critical solutionising temperature. Further, the results also indicated that the time required to attain peak solutionising hardness at various temperatures in the single phase regime is independent of the solutionising temperatures investigated in this study. The results of the aging studies revealed that the maximum hardness following aging is achieved for the composite solutionised at a critical solutionising temperature and time. The results of heat treatment characterisation were finally rationalised in terms of the changes in the constitutional and microstructural features during the various stages of the heat treatment procedure used in the present study. © 1997 The Institute of Materials.
dc.sourceScopus
dc.typeArticle
dc.contributor.departmentMECHANICAL & PRODUCTION ENGINEERING
dc.description.sourcetitleMaterials Science and Technology
dc.description.volume13
dc.description.issue3
dc.description.page187-191
dc.description.codenMSCTE
dc.identifier.isiutNOT_IN_WOS
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