Publication | Open Access
The Influence of Al2O3 Powder Morphology on the Properties of Cu-Al2O3 Composites Designed for Functionally Graded Materials (FGM)
34
Citations
12
References
2016
Year
Reinforcement MaterialEngineeringMechanical EngineeringCeramic PowdersCopper Matrix CompositesCu-al2o3 Composites DesignedCeramic Matrix CompositeStructural MaterialsMetal Matrix CompositeCeramic TechnologyMaterials ScienceMaterials EngineeringAl2o3 Powder MorphologyCu-al2o3 CompositesCeramic MaterialComposite TechnologyFunctionally Graded MaterialsResidual PorosityMicrostructureStructural CeramicCeramics MaterialsHigh-performance MaterialMetal-ceramic Systems
In order to meet the requirements of an increased efficiency applying to modern devices and in more general terms science and technology, it is necessary to develop new materials. Combining various types of materials (such as metals and ceramics) and developing composite materials seem to be suitable solutions. One of the most interesting materials includes Cu-Al2O3 composite and gradient materials (FGMs). Due to their potential properties, copper-alumina composites could be used in aerospace industry as rocket thrusters and components in aircraft engines. The main challenge posed by copper matrix composites reinforced by aluminum oxide particles is obtaining the uniform structure with no residual porosity (existing within the area of the ceramic phase). In the present paper, Cu-Al2O3 composites (also in a gradient form) with 1, 3, and 5 vol.% of aluminum oxide were fabricated by the hot pressing and spark plasma sintering methods. Two forms of aluminum oxide (αAl2O3 powder and electrocorundum) were used as a reinforcement. Microstructural investigations revealed that near fully dense materials with low porosity and a clear interface between the metal matrix and ceramics were obtained in the case of the SPS method. In this paper, the properties (mechanical, thermal, and tribological) of composite materials were also collected and compared. Technological tests were preceded by finite element method analyses of thermal stresses generated in the gradient structure, and additionally, the role of porosity in the formation process of composite properties was modeled. Based on the said modeling, technological conditions for obtaining FGMs were proposed.
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