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1.
The paper evaluated the mechanical properties of β-sialon composites prepared by hot-pressing sintering at 1600 °C in N2 atmosphere using α-Si3N4, Al2O3, Y2O3 and Fe3Al as raw materials. The influence of Al2O3 and Fe3Al content on flexure strength, fracture toughness, hardness, and relative density was investigated. And phase formation and morphology of the composites were characterized by X-ray diffraction and electron microscopy. The experimental results indicate that the raw material Fe3Al reacts with α-Si3N4 to form silicides at elevated temperature, and supplies more liquid phase to assist densification. Besides, the variation of flexure strength, fracture toughness and hardness is mainly consistent, and also in good agreement with the relative density measurements. The values all increase firstly, and then decrease when the Al2O3 content increases. Scanning electron microscopy illustrates that the metal particles act to inhibit the crack propagation.  相似文献   

2.
《Composites Part A》2007,38(2):615-620
Al2O3–FeCrAl composites were fabricated by mixing Fe2O3, Al and Cr powders and then reactive hot pressing. The high temperature alloy FeCrAl was formed by the reaction of extra Al, Cr and the Fe reduced from Fe2O3. The Al2O3–FeCrAl composites with various Al2O3 fractions were successfully fabricated by the proper addition of extra Fe, Cr, Al or Al2O3 powders. A five-layer functionally graded material of YSZ–FeCrAl was fabricated using the Al2O3–FeCrAl composites with compositions of 25, 53.2 and 75 vol.% Al2O3 as interlayer. The results from XRD analysis, optical microscope observation and thermal cycling test show that the composites fabricated by this method consist of α-Al2O3 phase and (Fe, Cr, Al) solid solution. The α-Al2O3 grain formed by this in-situ reaction between Fe2O3 and Fe is ultrafine and uniform distribution. The three-point bending strength is 305.0 MPa for the composite with 53.2 vol.% Al2O3 prepared by the reactive hot pressing, about 20% higher than that of the composite with same composition prepared by ex situ hot pressing method (252.0 MPa). No cracking was found in the functionally graded materials after 10 thermal cycles up to 1000 °C due to the better metal–ceramic bond, continuous in microstructure at interface of FGM and good oxidation resistance component FeCrAl alloy formed in the FGM.  相似文献   

3.
The (Al2O3 + Ni) composite, (Al2O3 + Ni)/Ni and Al2O3/(Al2O3 + Ni)/Ni laminated materials were prepared by aqueous tape casting and hot pressing. Results indicated that the (Al2O3 + Ni) composite had higher strength and fracture toughness than those of pure Al2O3. The fracture toughness of (Al2O3 + Ni)/Ni and Al2O3/(Al2O3 + Ni)/Ni laminated materials was higher than not only those of pure Al2O3, but also those of Al2O3/Ni laminar with the same layer numbers and thickness ratio. It was found that the toughness of the Al2O3/(Al2O3 + Ni)/Ni laminated material with five layers and layer thickness ratio = 2 could reach 16.10 MPa m1/2, which were about 4.6 times of pure Al2O3. The strength and toughness of the (Al2O3 + Ni)/Ni laminated material with three layers and layer thickness ratio = 2 could reach 417.41 MPa and 12.42 MPa m1/2. It indicated the material had better mechanical property.  相似文献   

4.
《Materials Letters》2006,60(9-10):1265-1268
Al2O3/Ni laminated composites were prepared by aqueous tape casting and hot pressing with intent to study mechanical properties including the fracture strength and toughness. The residual stress was evaluated and proved. The relations of mechanical properties with the thermal residual stress, the ductility of metal layers and the layer thickness ratio were studied, respectively. It was found that the toughness and work of fracture of Al2O3/Ni laminar reached to 12.56 MPa m1/2 and 12 450 J m 2, which are 3.6 and 478.8 times that of pure Al2O3.  相似文献   

5.
Directionally solidified ternary Al2O3/Y3Al5O12(YAG)/ZrO2 hypoeutectic rod composites were successfully fabricated by the laser zone remelting technique. The microstructure and mechanical properties of the composite were investigated. The microstructure presented a complex three-dimensional network structure consisting of fine Al2O3 (41 vol.%) and YAG (49 vol.%) phases, with smaller ZrO2 (10 vol.%) phases partially distributed at the Al2O3/YAG interfaces. The irregular growth behavior in the hypoeutectic was revealed. The hardness and fracture toughness at ambient temperature were measured to be 17.3 GPa and 5.2 MPa m1/2, respectively. The toughness enhancement in comparison with previous binary Al2O3/YAG composites was mainly attributed to the refined microstructure, and crack deflection, branching and bridging. Moreover, the residual stresses, generated by different thermal expansion coefficients of the component phases, also importantly contributed to the improved toughness. Correlations between the addition of the third component ZrO2 and the microstructure and properties were discussed as well.  相似文献   

6.
A zirconia/alumina nanocomposite stabilized with cerium oxide (Ce-TZP/Al2O3 nanocomposite) can be a good substitute as reinforcement in metal matrix composites. In the present study, the effect of the amount of 10Ce-TZP/Al2O3 particles on the microstructure and properties of Al/(10Ce-TZP/Al2O3) nanocomposites was investigated. For this purpose, aluminum powders with average size of 30 μm were ball-milled with 10Ce-TZP/Al2O3 nanocomposite powders (synthesized by aqueous combustion) in varying amounts of 1, 3, 5, 7, and 10 wt.%. Cylindrical-shape samples were prepared by pressing the powders at 600 MPa for 60 min while heating at 400–450 °C. The specimens were then characterized by scanning and transmission electron microscopy (SEM and TEM) in addition to different physical and mechanical testing methods in order to establish the optimal processing conditions. The highest compression strength was obtained in the composite with 7 wt.% (10Ce-TZP/Al2O3) sintered at 450 °C.  相似文献   

7.
《Materials Research Bulletin》2004,39(4-5):513-521
Fe3Al nano-particles and commercial purity Al2O3 powders were used as raw materials to fabricate in situ reinforced Al2O3/Fe3Al nano/micro-composites. Densification and microstructure were studied. The Al2O3 matrix grains were characterized by platelet grains. The Fe3Al particles inhibited the grain growth of Al2O3 grains and limited the densification of the composites. In Al2O3/Fe3Al composites, the Fe3Al particles were uniformly dispersed in the Al2O3 matrix. The major Fe3Al micro-particles, about 1 μm in average size, existed at Al2O3 grain boundaries, and the Fe3Al nano-particles were found embedded in the matrix grains. The grain size of the intragranular particles ranged from several to several hundred nanometers. The grain size and aspect ratio of Al2O3 platelet grains and distribution of intragranular Fe3Al could be optimized by controlling the Fe3Al contents and sintering process. The in situ formed Al2O3 platelet grains, as well as Fe3Al dispersoids, were beneficial to the increase of the mechanical properties of alumina.  相似文献   

8.
Ultra-fine grained γ-Ni–xFe (x = 20, 50, and 64 (nominal)) dispersed Al2O3-matrix composites were fabricated by a mechano-chemical process plus hot-pressing, and their mechanical and magnetic properties were explored. The results indicated that all composites incorporated with different γ-Ni–xFe alloys possessed high densities (relative density D  98%) and sub-micrometer-sized matrix dispersed with γ-Ni–xFe particles of sizes below ∼500 nm. As compared to other two composite systems, γ-Ni–20Fe/Al2O3 had finer microstructures and displayed superior fracture toughness and strength. In high iron-contained γ-Ni–64Fe/Al2O3 composite undesired FeAl2O4 phase formed on the matrix grain boundaries, which is mainly responsible for its inferior mechanical properties. Although Young’s modulus and hardness of Ni–20Fe/Al2O3 composite system decreased, its fracture toughness increased monotonously with increasing the alloy content in the composition range investigated. Moreover, incorporation of ferromagnetic γ-Ni–xFe particles led all the composite systems to display ferromagnetism with their saturation magnetization increasing almost linearly with increasing alloy content. In addition, experiments showed that their ferromagnetism had high thermal stability (Tc = ∼580 °C), no obvious magnetism degradation and magnetic interactions of the alloys with the matrix being observed. The combination of good mechanical properties with excellent magnetic performance would make this material be very valuable in industry.  相似文献   

9.
In this study, the addition of 1.00 wt.% Al2O3 crystals to the metal matrix of the liquid aluminum was studied. In order to investigate the influence of heat treatment on activation of Al2O3 powders and mechanical properties of Al–Al2O3 composites, the Al2O3 particles were heated at 1000 °C. X-ray Diffraction (XRD) analysis used to characterize the crystal lattice of Al2O3 and its variation during heat treatment. The size and morphology of the Al2O3 grains was evaluated by Scanning Electron Microscopy (SEM). The results showed a considerable change in morphology of Al2O3 grains during the heat treatment. Mechanical evaluation such as hardness, compression and wear tests showed enhancement in the properties of Al–1.00 wt.% heat treated Al2O3 vs. Al–1.00 wt.% Al2O3 composite.  相似文献   

10.
The route for the fabrication of an Al2O3/Al co-continuous composite by reactive melt infiltration was investigated using scanning electron microscopy, energy dispersive X-ray microanalysis and X-ray diffraction analysis. It was found that in the process of molten aluminium infiltration into the SiO2 preform, the chemical reaction of 3SiO2 + 4Al  2Al2O3 + 3Si occurred at the infiltration front, and generated a transition zone containing a new type of continuous porosity about 100 μm in width. The reaction continued with further infiltration of molten aluminium alloy into this porosity which reacted with the residual SiO2 until all the SiO2 was transformed into Al2O3. A comparison was made between this route and that by direct infiltration of molten aluminium alloy into the open porosity of an Al2O3 preform. As a result of the increased wetting ability of the molten aluminium alloy by the chemical reaction, reactive melt infiltration took place at a higher rate for the SiO2 preform than that for the direct infiltration of the Al2O3 preform. A fracture surface examination demonstrated a toughening effect provided by the continuous aluminium alloy in the composite.  相似文献   

11.
《Materials Research Bulletin》2006,41(9):1622-1630
The effects of doping 60 P2O5–40 Fe2O3 (mol%) glasses with 5–10 mol% SiO2, Al2O3 or B2O3 on their thermal stability, iron environments and redox were investigated. Thermal stability improved markedly with 5% dopant addition in the order Al2O3 > SiO2 > B2O3  base glass. Solubility of pro rata additions when melted at 1150 °C was 5–10% SiO2, <5% Al2O3, and >10% B2O3. It was possible to dissolve 5% Al2O3 by replacing Fe2O3. These additions generally had little effect on dilatometric measurements and iron environments, however the Fe2+/ΣFe redox ratio increased in the order base glass < Al2O3 < SiO2 < B2O3. This behaviour was broadly consistent with the effects of glass basicity. The increased thermal stability of these glasses may improve their suitability for applications such as waste immobilisation or sealing.  相似文献   

12.
《Materials Research Bulletin》2006,41(7):1215-1224
Two kinds of Al2O3/Ti(C0.7N0.3) nanocomposites were fabricated with traditional hot pressed sintering and repetitious-hot-pressing technology, one is added with nano-scale SiC, and the other is without SiC. The results showed that the mechanical properties of the former are higher than that of the latter, especially the fracture toughness can reach up to 8.3 MPa m1/2. Although the fracture toughness remains high, repetitious-hot-pressing results in the reduction of flexural strength. The improvement of the mechanical properties is interpreted from the different microstructure and fracture mode. The microstructure shows that the addition of nano-scale Ti(C0.7N0.3) and nano-scale SiC lead to the refinement of matrix grain, and the inter/intragranular microstructure can be formed instead of the intergranular microstructure in monolithic alumina. The higher fracture toughness resulted mainly from the transgranular fracture mode.  相似文献   

13.
In the present work, HA reinforced with Al2O3 and multiwalled carbon nanotubes (CNTs) is processed using spark plasma sintering (SPS). Vickers micro indentation and nanoindentation of the samples revealed contrary mechanical properties (hardness of 4.0, 6.1, and 4.4 GPa of HA, HA–Al2O3 and HA–Al2O3–CNT samples at bulk scale, while that of 8.0, 9.0, and 7.0 GPa respectively at nanoscale), owing to the difference in the interaction of the indenter with the material at two different length scales. The addition of Al2O3 reinforcement has been shown to enhance the indentation fracture toughness of HA matrix from 1.18 MPa m1/2 to 2.07 MPa m1/2. Further CNT reinforcement has increased the fracture toughness to 2.3 times (2.72 MPa m1/2). In vitro biocompatibility of CNT reinforced HA–Al2O3 composite has been evaluated using MTT assay on mouse fibroblast L929 cell line. Cell adhesion and proliferation have been characterized using scanning electron microscopy (SEM), and have been quantified using UV spectrophotometer. The combination of cell viability data as well as microscopic observations of cultured surfaces suggests that SPS sintered HA–Al2O3–CNT composites exhibit the ability to promote cell adhesion and proliferation on their surface and prove to be promising new biocompatible materials.  相似文献   

14.
In this research, in situ fabrication of Al3V based nanocomposite and its formation mechanism have been investigated. In order to synthesize Al3V/Al2O3 nanocomposite, a mixture of Al and V2O5 powders was subjected to high-energy ball milling and the nanocomposite was produced through a mechanochemical reaction. The produced structure was isothermally heat-treated at 500–600 °C for 0.5–2 h under argon atmosphere. In order to evaluate the structural changes during milling and annealing, the synthesized powders were characterized by X-ray diffraction (XRD). Moreover, the powder morphological changes were studied by scanning electron microscopy (SEM). It was observed that the reaction between Al and V2O5 occurred after about 30 min and, the Al3V and Al2O3 were formed in nanocrystalline structure with the continuing mechanical milling. Calculation of adiabatic temperature confirmed that reaction took place in combustion mode. In final stage of milling up to 40 h; it was observed that the Al3V decomposed to Al and V so that the optimum time of milling to achieve fabrication of nanocomposite was determined to be about 20 h. Calculations based on Miedema’s model verified partial disordering of Al3V during further milling and annealing of as-milled powder at 600 °C led to the ordering of Al3V. The crystallite size of Al3V and Al2O3 after annealing at 600 °C for 2 h remained in nanometer scale. So the final product appeared to be stable even after annealing.  相似文献   

15.
In this work, Al2O3/Co nanocomposite was successfully prepared by mechanochemical reaction between Co3O4 and Al powders in a planetary high energy ball mill. The mechanism of the reaction was dealt using X-ray diffraction (XRD), differential thermal analysis (DTA), and thermodynamics calculations. It was found that Co3O4 reacts with Al through a self-sustaining combustion reaction after an incubation period of 50 min and the reaction between Co3O4 and Al involves two steps. First, Co3O4 reacts with Al to form CoO and Al2O3 at the temperature around melting point of Al, and at higher temperature, CoO reacts with remaining Al to form Co and Al2O3. Mechanical activation process decreases the reaction temperature from 1041 °C for as-received Co3O4 and Al powder mixture to 869 °C for 45 min milled powders. After annealing of powder milled for 12 h, no phase transformation has been detected. The crystallite sizes of both α-Al2O3 and Co remained in nanometeric scale after annealing at 1000 °C for 1 h.  相似文献   

16.
The effect of titanium additions on the interface and mechanical properties of infiltrated Cu8 wt%Al–Al2O3 composites containing 57 ± 2 vol% ceramic are investigated, exploring two different Al2O3 particle types and four different Ti concentrations (0, 0.2, 1, 2 wt%Ti). Addition of 0.2 wt%Ti leads to the development of a thin (5–10 nm) layer enriched in Ti at the interface between Cu alloy and Al2O3 particles; this Ti concentration produces the best mechanical properties. With higher Ti-contents Ti3(Cu, Al)3O appears; this decreases both the interface and composite strength. Composites reinforced with vapor-grown polygonal alumina particles show superior mechanical properties compared to those reinforced by angular comminuted alumina particles, as has been previously documented for aluminum-based matrices. Micromechanical analysis shows that damage accumulation is more extensive, as is matrix hardening by dislocation emission during composite cooldown, in the present Cu8 wt%Al matrix composites compared with similarly reinforced and processed Al-matrix composites.  相似文献   

17.
In this investigation, a new kind of metal matrix composites with a matrix of pure aluminum and hybrid reinforcement of Al2O3 and SiC particles was fabricated for the first time by anodizing followed by eight cycles accumulative roll bonding (ARB). The resulting microstructures and the corresponding mechanical properties of composites within different stages of ARB process were studied. It was found that with increasing the ARB cycles, alumina layers were fractured, resulting in homogenous distribution of Al2O3 particles in the aluminum matrix. Also, the distribution of SiC particles was improved and the porosity between particles and the matrix was decreased. It was observed that the tensile strength of composites improved by increasing the ARB passes, i.e. the tensile strength of the Al/1.6 vol.% Al2O3/1 vol.% SiC composite was measured to be about 3.1 times higher than as-received material. In addition, tensile strength of composites decreased by increasing volume fraction of SiC particles to more than 1 vol.%. Scanning electron microscopy (SEM) observation of fractured surfaces showed that the failure mechanism of broken hybrid composite was shear ductile rupture.  相似文献   

18.
Nanopowders of Ni and Al2O3 were synthesized from 3NiO and 2Al powders by high energy ball milling. Nanocrystalline Al2O3 reinforced composite was consolidated by high frequency induction heated sintering method within 2 min from mechanically synthesized powders of Al2O3 and 3Ni. The relative density of the composite was 96%. The average hardness and fracture toughness values obtained were 645 kg/mm2 and 6.3 MPa m1/2, respectively.  相似文献   

19.
《Advanced Powder Technology》2014,25(4):1357-1361
Silicide compounds such as NbSi2 have many desirable properties such as high melting point, high resistance to oxidation and suitable electrical conductivity. However, they have limited practical use because of low ductility. To overcome this limit, we produced NbSi2 based nanocomposite containing Alumina second phase by an exothermic reaction between Al and Nb2O5 in mechanical alloying of Al–Nb2O5–Si system. Structural and phase evolution throughout milling were investigated by using X-ray diffraction and microscopy methods. It followed that after 10 h of MA, the reaction between Al and niobium oxide began in a gradual mode and after around 40 h of milling; the reaction was successfully completed. The final product consisted of NbSi2 intermetallic compound and nanocrystalline Al2O3 with a grain size of 15 and 45 nm, respectively. Microhardness and fracture toughness of nanocomposite were also measured which are greater than NbSi2 intermetallic. As the result of this research we showed that high strength together with increased ductility could be gained in nanocomposite compounds.  相似文献   

20.
The Zr2Al3C4/ZrB2 composites are in situ synthesized by spark plasma sintering using Zr, Al, graphite, and B4C powders as the initial materials. The introduction of ZrB2 can not only evidently hinder the coarsening of Zr2Al3C4 grains, but also benefit the densification and improve the hardness and Young’s modulus of the Zr2Al3C4/ZrB2 composites. When the ZrB2 content is 20 vol.%, the composite shows an optimum fracture toughness value of 4.37 MPa m1/2, about 20% higher than that of the monolithic Zr2Al3C4. The unique mechanical properties can be mainly ascribed to the contribution of ZrB2 as the reinforcing phase hindering the crack propagating. Compared with Zr2Al3C4, the Zr2Al3C4/20 vol.%ZrB2 composite also exhibits a relatively higher thermal conductivity and better oxidation resistance.  相似文献   

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