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1.
Nitrogen-rich Ca–α-SiAlON ceramics with nominal compositions Ca x Si12−2 x Al2 x N16 and 0.2≤ x ≤2.6, extending along the Si3N4–1/2Ca3N2:3AlN tie line, were prepared from Si3N4, AlN, and CaH2 precursors by hot pressing at 1800°C. The x values attained were determined by energy-dispersive X-ray (EDX) microanalysis and X-ray powder diffraction (XRPD) data using the Rietveld method. The results show that Ca–α-SiAlONs form continuously within the compositional range x =0 to at least x =1.82. Phase assemblages, lattice parameters, Vickers hardness, and fracture toughness were determined and correlated to the calcium content, x . Owing to a high sintering temperature and the use of CaH2 as a precursor, grain growth was kinetically enhanced, resulting in self-reinforced microstructures with elongated grains. The obtained Ca–α-SiAlON ceramics demonstrate a combination of both high hardness ∼21 GPa, and high fracture toughness ∼5.5 MPa·m1/2.  相似文献   

2.
The in situ β-Si3N4/α'-SiAlON composite was studied along the Si3N4–Y2O3: 9 AlN composition line. This two phase composite was fully densified at 1780°C by hot pressing Densification curves and phase developments of the β-Si3N4/α'-SiAlON composite were found to vary with composition. Because of the cooperative formation of α'-Si AlON and β-Si3N4 during its phase development, this composite had equiaxed α'-SiAlON (∼0.2 μm) and elongated β-Si3N4 fine grains. The optimum mechanical properties of this two-phase composite were in the sample with 30–40%α', which had a flexural strength of 1100 MPa at 25°C 800 MPa at 1400°C in air, and a fracture toughness 6 Mpa·m1/2. α'-SiAlON grains were equiaxed under a sintering condition at 1780°C or lower temperatures. Morphologies of the α°-SiAlON grains were affected by the sintering conditions.  相似文献   

3.
Two calcium-doped α-SiAlON compositions (Ca0.6Si10.2Al1.8−O0.6N15.4 and Ca1.8Si6.6Al5.4O1.8N14.2) were prepared by hot pressing at 1600° and 1500°C, respectively, for complete phase transformation from α-Si3N4 to α-SiAlON. Both samples were subsequently fired at different temperatures for different periods of time to study the grain growth of α-SiAlON. Elongated α-SiAlON grains were developed in both samples at high temperatures. The kinetics of grain growth was investigated based on the variations in length and width of the α-SiAlON grains under different sintering conditions. Different growth rates were found between the length and width directions of the α-SiAlON crystals, resulting in anisotropic grain growth in the microstructural development.  相似文献   

4.
Gas-pressure sintering of α-Si3N4 was carried out at 1850 ° to 2000°C in 980-kPa N2. The diameters and aspect ratios of hexagonal grains in the sintered materials were measured on polished and etched surfaces. The materials have a bimodal distribution of grain diameters. The average aspect ratio in the materials from α-Si3N4 powder was similar to that in the materials from β-Si3N4 powder. The aspect ratio of large and elongated grains was larger than that of the average for all grains. The development of elongated grains was related to the formation of large nuclei during the α-to-β phase transformation. The fracture toughness of gaspressure-sintered materials was not related to the α content in the starting powder or the aspect ratio of the grains, but to the diameter of the large grains. Crack bridging was the main toughening mechanism in gas-pressure-sintered Si3N4 ceramics.  相似文献   

5.
Single-phase small crystals of Li-, Mg-, Ca-, Y-, Nd-, and Yb-α-SiAlONs have been obtained by liquid-phase sintering for various compositions and processing conditions. These crystals are suitable for seeding grain growth in α-SiAlON ceramics. The influence of chemical and processing parameters (starting composition and powders, green density, liquid content, heating schedule, nitrogen pressure, and temperature) on the size and morphology of seed crystals has been investigated. The results are compared with those for β-Si3N4 crystal formation, and the differences are discussed in terms of nucleation and growth kinetics during liquid-phase sintering.  相似文献   

6.
Single-phase α-SiAlON with elongated grains is obtained from α-Si3N4 powder for a broad range of compositions of practical interest. Following the concept of nucleation and growth, two-step firing is used for microstructure control. This method takes advantage of the slow transformation reaction from α-Si3N4 to α-SiAlON at low temperature when the composition is near the α-SiAlON phase boundary and, hence, is marginally stable. For more-stable compositions, the seeding of α-SiAlON crystals is more effective, because it allows elongated grains to grow onto the seed crystals. The fracture toughness is strongly correlated with the microstructure and is enhanced greatly in the optimized materials.  相似文献   

7.
Fine β-Si3N4 powders with or without the addition of 5 wt% of large β-Si3N4 particles (seeds) were gas-pressure sintered at 1900°C for 4 h using Y2O3 and Al2O3 as sintering aids. The microstructures were examined on polished and plasmaetched surfaces. These materials had a microstructure of in situ composites with similar small matrix grains and different elongated grains. The elongated grains in the materials with seeds had a larger diameter and a smaller aspect ratio than those in the materials without seeds. A core/rim structure was observed in the elongated grains; the core was pure β-Si3N4 and the rim was β-SiAION. These results show that the large β-Si3N4 particles acted as seeds for abnormal grain growth and the rim was formed by precipitation from the liquid containing aluminum.  相似文献   

8.
Carbothermal reduction—nitridation (CRN) of SiO2 is an attractive method to manufacture Si3N4 powders with controlled grain morphology. Moreover, β-SiAlON powders could also be synthesized from either pure powder mixture or some inexpensive raw minerals by CRN and the resulting powders favored the sintering of SiAlON product. However, there have been few works on preparing α-SiAlON powders so far. In this work, Ca α-SiAlON powder was synthesized by CRN of a SiO2—Al2O3—CaCO3 mixture. An unusual morphology of hollow beads 200 to 500 nm in diameter with a great deal of nanosize α-SiAlON particles around 10 to 30 nm in diameter was observed from the resultant Ca α-SiAlON powders, which has not been reported for SiAlON ceramics before.  相似文献   

9.
A microstructure that consisted of uniformly distributed, elongated β-Si3N4 grains, equiaxed β-SiC grains, and an amorphous grain-boundary phase was developed by using β-SiC and alpha-Si3N4 powders. By hot pressing, elongated β-Si3N4 grains were grown via alpha right arrow β phase transformation and equiaxed β-SiC grains were formed because of inhibited grain growth. The strength and fracture toughness of SiC have been improved by adding Si3N4 particles, because of the reduced defect size and the enhanced bridging and crack deflection by the elongated β-Si3N4 grains. Typical flexural-strength and fracture-toughness values of SiC-35-wt%-Si3N4 composites were 1020 MPa and 5.1 MPam1/2, respectively.  相似文献   

10.
By using α-Si3N4 and β-Si3N4 starting powders with similar particle size and distribution, the effect of α-β (β') phase transition on densification and microstructure is investigated during the liquid-phase sintering of 82Si3N4·9Al2O3·9Y2O3 (wt%) and 80Si3N4·13Al2O3·5AIN·5AIN·2Y2O3. When α-Si3N4 powder is used, the grains become elongated, apparently hindering the densification process. Hence, the phase transition does not enhance the densification.  相似文献   

11.
β-Si3N4 powder containing 1 mol% of equimolar Y2O3–Nd2O3 was gas-pressure sintered at 2000°C for 2 h (SN2), 4 h (SN4), and 8 h (SN8) in 30-MPa nitrogen gas. These materials had a microstructure of " in-situ composites" as a result of exaggerated grain growth of some β Si3N4 grains during firing. Growth of elongated grains was controlled by the sintering time, so that the desired microstructures were obtained. SN2 had a Weibull modulus as high as 53 because of the uniform size and spatial distribution of its large grains. SN4 had a fracture toughness of 10.3 MPa-m1/2 because of toughening provided by the bridging of elongated grains, whereas SN8 showed a lower fracture toughness, possibly caused by extensive microcracking resulting from excessively large grains. Gas-pressure sintering of β-Si3N4 powder was shown to be effective in fostering selective grain growth for obtaining the desired composite microstructure.  相似文献   

12.
The microstructure, crystal structure, and chemical composition of reaction-sintered Si3N4 containing iron were studied using conventional and scanning transmission electron microscopy. It was found that the grains of β -Si3N4 were large and blocklike with well-developed facets, a series of voids along some grain boundaries, a subgrain of iron silicide near the periphery, and penetration of iron silicide into the three-grain junctions and grain boundaries. At some distance from each β -Si3N4 grain was a region of small α-Si3N4 grains, with no evidence of iron silicide. Between this region and the β -Si3N4 grain was a zone containing both α- and β -Si3N4 and iron silicide. These observations suggest that the large β -Si3N4 grains grow in liquid iron silicide, that the smaller α-Si3N4 grains grow from the vapor, and that the latter are converted to the β form by solution in, and reprecipitation from, liquid iron silicide.  相似文献   

13.
Porous silicon nitride (Si3N4) ceramics with about 50% porosity were fabricated by pressureless sintering of α-Si3N4 powder with 5 wt% sintering additive. Four types of sintering aids were chosen to study their effect on the microstructure and mechanical properties of porous Si3N4 ceramics. XRD analysis proved the complete formation of a single β-Si3N4 phase. Microstructural evolution and mechanical properties were dependent mostly on the type of sintering additive. SEM analysis revealed the resultant porous Si3N4 ceramics as having high aspect ratio, a rod-like microstructure, and a uniform pore structure. The sintered sample with Lu2O3 sintering additive, having a porosity of about 50%, showed a high flexural strength of 188 MPa, a high fracture toughness of 3.1 MPa·m1/2, due to fine β-Si3N4 grains, and some large elongated grains.  相似文献   

14.
A fracture mechanics approach was used to investigate the high strength of hot-pressed Si3N4. Room-temperature flexural strengths, fracture energies, and elastic moduli were determined for material fabricated from α- and β-phase Si3N4 powders. When the proper powder preparation technique was used, α-phase powder resulted in a high fracture energy (69,000 ergs/cm2), a high flexural strength (95,000 psi), and an elongated (fiberlike) grain morphology, whereas β-phase powder produced a low fracture energy (16,000 ergs/cm2), a relatively low strength (55,000 psi), and an equiaxed grain morphology. It was hypothesized that the high strength of Si3N4 hot-pressed from α-phase powder results from its high fracture energy, which is attributed to the elongated grains. High-strength Si3N4 has directional properties caused, in part, by the elongated grain structure, which is oriented preferentially with respect to the hot-pressing direction.  相似文献   

15.
The microstructure of a pressureless sintered (1605°C, 90 min) O'+β' SiAlON ceramic with CeO2 doping has been investigated. It is duplex in nature, consisting of very large, slablike elongated O' grains (20–30 μm long), and a continuous matrix of small rodlike β' grains (< 1.0 μm in length). Many α-Si3N4 inclusions (0.1–0.5 μm in size) were found in the large O' grains. CeO2-doping and its high doping level as well as the high Al2O3 concentration were thought to be the main reasons for accelerating the reaction between the α-Si3N4 and the Si-Al-O-N liquid to precipitate O'–SiAlON. This caused the supergrowth of O' grains. The rapid growth of O' crystals isolated the remnant α–Si3N4 from the reacting liquid, resulting in a delay in the α→β-Si3N4 transformation. The large O' grains and the α-Si3N4 inclusions have a pronounced effect on the strength degradation of O'+β' ceramics.  相似文献   

16.
Thermal Conductivity of Gas-Pressure-Sintered Silicon Nitride   总被引:3,自引:0,他引:3  
Si3N4 with high thermal conductivity (120 W/(m.K)) was developed by promoting grain growth and selecting a suitable additive system in terms of composition and amount. β-Si3N4 doped with Y2O3-Nd2O3 (YN system) or Y2O3-A12O3 (YA system) was sintered at 1700°-2000°C. Thermal conductivity increased with increased sintering temperature because of decreased two-grain junctions, as a result of grain growth. The effect of the additive amount on thermal conductivity with the YN system was rather small because increased additive formed multigrain junctions. On the other hand, with the YA system, thermal conductivity considerably decreased with increased additive amount because the aluminum and oxygen in the YA system dissolved into β-Si3N4 grains to form a β-SiAlON solid solution, which acted as a point defect for phonon scattering. The key processsing parameters for high thermal conductivity of Si3N4 were the sintering temperature and additive composition.  相似文献   

17.
Plasma etching of β-Si3N4, α-sialon/β-Si3N4 and α-sialon ceramics were performed with hydrogen glow plasma at 600°C for 10 h. The preferential etching of β-Si3N4 grains was observed. The etching rate of α-sialon grains and of the grain-boundary glassy phase was distinctly lower than that of β-Si3N4 grains. The size, shape, and distribution of β-Si3N4 grains in the α-sialon/β-Si3N4 composite ceramics were revealed by the present method.  相似文献   

18.
Silicon nitride (Si3N4) ceramics, prepared with Y2O3 and Al2O3 sintering additives, have been densified in air at temperatures of up to 1750°C using a conventional MoSi2 element furnace. At the highest sintering temperatures, densities in excess of 98% of theoretical have been achieved for materials prepared with a combined sintering addition of 12 wt% Y2O3 and 3 wt% Al2O3. Densification is accompanied by a small weight gain (typically <1–2 wt%), because of limited passive oxidation of the sample. Complete α- to β-Si3N4 transformation can be achieved at temperatures above 1650°C, although a low volume fraction of Si2N2O is also observed to form below 1750°C. Partial crystallization of the residual grain-boundary glassy phase was also apparent, with β-Y2Si2O7 being noted in the majority of samples. The microstructures of the sintered materials exhibited typical β-Si3N4 elongated grain morphologies, indicating potential for low-cost processing of in situ toughened Si3N4-based ceramics.  相似文献   

19.
Tribological Properties of Unidirectionally Aligned Silicon Nitride   总被引:1,自引:0,他引:1  
A silicon nitride ceramic with unidirectionally aligned β-Si3N4 elongated grains (UA-SN) was fabricated by sintering the extruded Si3N4 green body with a small amount of rodlike β-Si3N4 seed. The effect of anisotropy in microstructure on tribological properties was investigated, compared with a fine-grained Si3N4 without seed. Block-on-ring tests without lubricant were conducted at sliding speeds of 0.15 and 1.5 m/s, with a normal load of 5 N and a sliding distance of 75 m, using the UA-SN and Si3N4 without seeds as block specimens and commercially supplied Si3N4 as ring specimens. For UA-SN, tribological properties were evaluated in three directions with respect to the grain alignment: the plane normal to the grain alignment, and in the direction parallel to or perpendicular to the grain alignment in the side plane. For both sliding speeds, the plane normal to the grain alignment exhibited the highest wear resistance, and the worn surface of this plane was quite smooth, in contrast to the other specimens whose surfaces were irregular owing to grain dropping. It is considered that the high wear resistance achieved in this plane is attributable to the inhibition of crack propagation along the sliding surface by the stacked elongated grains normal to the sliding surface.  相似文献   

20.
The kinetics of anisotropic β-Si3N4 grain growth in silicon nitride ceramics were studied. Specimens were sintered at temperatures ranging from 1600° to 1900°C under 10 atm of nitrogen pressure for various lengths of time. The results demonstrate that the grain growth behavior of β-Si3N4 grains follows the empirical growth law Dn– D0n = kt , with the exponents equaling 3 and 5 for length [001] and width [210] directions, respectively. Activation energies for grain growth were 686 kJ/mol for length and 772 kJ/mol for width. These differences in growth rate constants and exponents for length and width directions are responsible for the anisotropy of β-Si3N4 growth during isothermal grain growth. The resultant aspect ratio of these elongated grains increases with sintering temperature and time.  相似文献   

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