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1.
Based on experimental and modeling studies, the rate of increase in the martensite start temperature M s for the tetragonal-to-monoclinic transformation with increase in zirconia grain size is found to rise with decrease in ZrO2 content in the zirconia-toughened alumina ZTA system. The observed grain size dependence of M s can be related to the thermal expansion mismatch tensile (internal) stresses which increase with decrease in zirconia content. The result is that finer zirconia grain sizes are required to retain the tetragonal phase as less zirconia is incorporated into the alumina, in agreement with the experimental observations. At the same time, both the predicted and observed applied stress required to induce the transformation are reduced with increase in the ZrO2 grain size. In addition, the transformation-toughening contribution at temperature T increases with increase in the M s temperature brought about by the increase in the ZrO2 grain size, when T > M s. In alumina containing 20 vol% ZrO2 (12 mol% CeO2), a toughness of ∼10 MPa. √m can be achieved for a ZrO2 grain size of ∼2 μm ( M s∼ 225 K). However, at a grain size of ∼2 μm, the alumina–40 vol% ZrO2 (12 mol% CeO2) has a toughness of only 8.5 MPa. √m ( M s∼ 150 K) but reaches 12.3 MPa. ∼m ( M s∼ 260 K) at a grain size of ∼3 μm. These findings show that composition (and matrix properties) play critical roles in determining the ZrO2 grain size to optimize the transformation toughening in ZrO2-toughened ceramics.  相似文献   

2.
The fracture strengths of sintered Al2O3 containing 20 and 40 vol% ZrO2(12 mol% CeO2)—zirconia-toughened alumina (ZTA)—composites along with the fracture resistance can be increased (e.g., to ∼900 MPa and >12 Mpa·m1/2, respectively), by increasing the mean grain size of the t -ZrO2 (and the Al2O3) from ∼0.5 μm to ∼3 μm. At these lower t -ZrO2 contents, the fracture strength-fracture resistance curves show a continuous rise as opposed to the strength maxima observed in polycrystalline t -ZrO2(12 mol% CeO2), CeTZP, and ZrO2(12 mol% CeO2) ceramics containing ≤20 vol% Al2O3. The toughened composites also exhibit excellent damage resistance with fracture strengths of 500 MPa retained with surfaces containing ∼150- N Vickers indentations which produce cracks of ∼160-μm radius. Greater damage resistance correlates with an increase in the apparent R -curve response of these composites.  相似文献   

3.
NiAl/10-mol%-ZrO2(3Y) composites of almost full density have been fabricated via spark plasma sintering (SPS) for 10 min at 1300°C and 30 MPa. The former intermetallic compound, which contains a trace amount of Al2O3, has been prepared via self-propagating high-temperature synthesis. The composite microstructures are such that tetragonal ZrO2 (∼0.2 μm) and Al2O3 (∼0.5 μm) particles are located at the grain boundaries of the NiAl (∼46 μm) matrix. Improved mechanical properties are obtained: the fracture toughness and bending strength are 8.8 MPa·m1/2 and 1045 MPa, respectively, and high strength (>800 MPa) can be retained up to 800°C.  相似文献   

4.
The initial strength of (σi) and thermal shock resistances (Δ Tc and σri), as determined by quench tests, of Al2O3-ZrO2 composites are increased by increasing amounts of tetragonal ZrO2 second phase for contents of up to ∼15 vol%. For composites with ≤9 vol% ZrO2 the increases in σr and Δ Tc reflect the increase in γIC with addition of ZrO2 However, for ZrO2contents >9 vol%, the thermal shock resistances (Δ Tc and σri) and σi are also affected by machining-induced microcracking in the surface of the samples. For ZrO2 contents >14 vol%, bulk microcracking can become extensive and result in a degradation of σi and Δ Tc .  相似文献   

5.
The effect of Al2O3 inclusions with a greater average size (0.6 μm) than the average particle size of the major phase powder (<0.1 μm) on grain gowth was examined by sintering ZrO2/Al2O3 composites (0,3,5,10, and 20 vol%) at 1400°C and then heat-treating at temperatures up to 1700°C. Normal grain growth was observed for all conditions. The inclusions appeared to have no effect on grain growth until the ZrO2 grain size was ∼1.5 times the average inclusion size. Grain growth inhibition increased with volume fraction of the Al2O3 inclusion phase. At temperatures 1600°C, the inclusions were relatively immobile and most were located within the ZrO2 grains for volume fractions <0.20; at higher temperatures, the inclusions could move with the grain boundary to coalesce. Grain growth was less inhilited when the inclusions could move with the boundaries, resulting in a larger increase in grain size than observed at lower temperatures. Analogies between mobile voids, entrapped within grain at lower temperature due to abnormal grain growth during the last state of sintering, and the observations concerning the mobile inclusions are made suggesting that grain-boundary movement can "sweep" voids to grain boundaries and eventually of four-grain junctions, where they are more likely to disappear by mass transport.  相似文献   

6.
Al2O3–SiC particulate composites were fabricated by hot-pressing mixtures of 5–30 vol% SiC with either α-Al2O3, γ-Al2O3, or boehmite (γ-AlOOH) to determine whether grain growth or the α-alumina phase transformation could be used to fabricate intragranular particulate composites. Samples starting with α-alumina resulted in primarily intergranular SiC of 0.3 μ and an alumina grain size of 1.5–4.1 μm. Heat treatments resulted in SiC coarsening but no entrapment of SiC by grain boundary breakaway. The α-alumina transformation in the samples starting with γ-alumina resulted in the entrapment of ∼48% of the 5 vol% of SiC added whereas 79% of the SiC was entrapped in the α-alumina grains in samples starting with boehmite. Only SiC particles ≤0.2 SmUm were entrapped in the α-alumina grains during the phase transformation. With increasing SiC content, the relative volume of intragranular SiC decreased, but the amount of intragranular SiC was constant and independent of the amount of SiC added before transformation. The formation of intragranular composites from γ-alumina and boehmite samples was explained with a model that attributes particle entrapment to the vermicular growth of α-alumina into the transition alumina matrix during the α-alumina phase transformation. Seeding the boehmite-based samples did not affect the concentration of entrapped SiC, but did lower the hot-pressing densification temperature by as much as 150°C.  相似文献   

7.
Simulataneous additions of SrO and Al2O3 to ZrO2 (12 mol% CeO2) lead to the in situ formation of strontium aluminate (SrO · 6Al2O3) platelets (∼0.5 μm in width and 5 to 10 μm in length) within the Ce-TZP matrix. These platelet-containing Ce-TZP ceramics have the strength (500 to 700 MPa) and hardness (13 to 14 GPa) of Ce-TZP/Al2O3 while maintaining the high toughness (14 to 15 MPa ± m1/2) of Ce-TZP. Optimum room-temperature properties are obtained at SrO/Al2O3 molar ratios between 0.025 and 0.1 for ZrO2 (12 mol% CeO2) with starting Al2O3 contents ranging between 15 and 60 vol%. The role of various toughening mechanisms is discussed for these composite ceramics.  相似文献   

8.
ZrO2–Al2O3 nanocrystalline powders have been synthesized by oxidizing ternary Zr2Al3C4 powders. The simultaneous oxidation of Al and Zr in Zr2Al3C4 results in homogeneous mixture of ZrO2 and Al2O3 at nanoscale. Bulk nano- and submicro-composites were prepared by hot-pressing as-oxidized powders at 1100°–1500°C. The composition and microstructure evolution during sintering was investigated by XRD, Raman spectroscopy, SEM, and TEM. The crystallite size of ZrO2 in the composites increased from 7.5 nm for as-oxidized powders to about 0.5 μm at 1500°C, while the tetragonal polymorph gradually converted to monolithic one with increasing crystallite size. The Al2O3 in the composites transformed from an amorphous phase in as oxidized powders to θ phase at 1100°C and α phase at higher temperatures. The hardness of the composite increased from 2.0 GPa at 1100°C to 13.5 GPa at 1400°C due to the increase of density.  相似文献   

9.
Addition of α-Fe2O3 seed particles to alkoxide-derived boehmite sols resulted in a 10-fold increase in isothermal rate constants for the transformation of γ- to α-Al2O3. Changes in porosity and surface area with sintering temperature showed no effect of seeding on coarsening of the transition alumina gels, but the 200-fold decrease in surface area associated with transformation to α-Al2O3 occurred ∼ 100°C lower in seeded gels compared with unseeded materials. As a result of high nucleation frequency and reduced microstructure coarsening, fully transformed seeded alumina retained specific surface areas >22 m2/g and exhibited narrow pore size distributions, permitting development of fully dense, submicrometer α-Al2O3 at ∼ 1200°C.  相似文献   

10.
Monolithic alumina bodies with a grain size of 0.5 μm and submicrometer tetragonal ZrO2 (3 mol% Y2O3) polycrystals were produced and investigated. With decreasing indentation load, the hardness increases but may again decrease below about 5 N; relevant measurements require the application of fairly high loads. Decreasing grain sizes increase the hardness of alumina and zirconia ceramics even for very small grain sizes in the submicrometer range.  相似文献   

11.
High-pressure sintering of nanocrystalline γ-A12O3 has been studied over a temperature range of 923-1323 K and at a pressure of 1 GPa. The γ-Al2O3 to α-Al2O3 transformation temperature changed from 1473 K without pressure to ∼1023 K at 1 GPa. Full density was obtained at 1273 and 1323 K in 10 min. The microhardness value of fully dense α-alumina with a grain size of 142 nm was found to be 25.3 ± 0.8 GPa. The Hall-Petch slope for the very fine grain size range is different from that of the coarse-grained alumina.  相似文献   

12.
The possibility of eliminating finger or vermicular growth of α-Al2O3 particles obtained by calcination of boehmite was examined. Heterogeneous precipitation of boehmite in a well-dispersed θ-Al2O3 suspension was first prepared, in which the mass ratio of boehmite to θ-crystallite was evaluated to form agglomerates of similar sizes that will form α-Al2O3 crystallites of <100 nm in diameter. θ- to α-phase transformation of alumina experiences a nucleation and growth mechanism, with the critical size of nucleation being ∼25 nm for θ-Al2O3 and the size for accomplishment of transformation followed by finger growth being ∼100 nm. Hence, fabricating agglomerates that would form α-Al2O3 crystallites with sizes <100 nm accompanied with appropriate thermal treatments can be a method for obtaining α-Al2O3 crystallites free of finger growth. It is found that proper preparation of the agglomerate with appropriate size may initiate a simultaneous and lower temperature θ- to α-Al2O3 phase transformation for such powder systems, substantially limiting the mass transfer among the newly formed α-Al2O3 particles. Moreover, α-Al2O3 crystallites free of finger growth can be obtained.  相似文献   

13.
CrN powder consisting of granular particles of ∼3 μm has been prepared by self-propagating high-temperature synthesis under a nitrogen pressure of 12 MPa using Cr metal. Dense pure CrN ceramics and CrN/ZrO2(2Y) composites in the CrN-rich region have been fabricated by hot isostatic pressing for 2 h at 1300°C and 196 MPa. The former ceramics have a fracture toughness ( K IC) of 3.3 MPa ·m1/2 and a bending strength (σb) of 400 MPa. In the latter materials almost all of the ZrO2(2Y) grains (0.36–0.41 μm) are located in the grain boundaries of CrN (∼4.6 μm). The values of K IC (6.1 MPa · m1/2) and σb (1070 MPa) are obtained in the composites containing 50 vol% ZrO2(2Y).  相似文献   

14.
Sintering tetragonal ZrO2 with 35 vol% TiC results in a microstructure where all grain facets are free of amorphous interfaces independent of sintering aids as TiH2 or MgO/ Y2O3; grain sizes are below 1 μm. With substoichiometric TiC1-x, a relative density of 95% and closed porosity are obtained at a lower sintering temperature than with stoichiometric TiC, but subsequent cladless hot isostatic pressing (HIP) is required to achieve 99% density. High densities of 98% accompanied by good mechanical properties become possible by pressureless sintering with the use of TiH2. MgO/Y2O3 doping also promotes densification, but results in less transformable zirconia and increases the number and size of amorphous triple junctions. The consequences are a lower fracture toughness and strength.  相似文献   

15.
Composites of β-Ce2O3·11Al2O3 and tetragonal ZrO2 were fabricated by a reductive atmosphere sintering of mixed powders of CeO2, ZrO2 (2 mol% Y2O3), and Al2O3. The composites had microstructures composed of elongated grains of β-Ce2O3·11Al2O3 in a Y-TZP matrix. The β-Ce2O3·11Al2O3 decomposed to α-Al2O3 and CeO2 by annealing at 1500°C for 1 h in oxygen. The elongated single grain of β-Ce2O3·11Al2O3 divided into several grains of α-Al2O3 and ZrO2 doped with Y2O3 and CeO2. High-temperature bending strength of the oxygen-annealed α-Al2O3 composite was comparable to the β-Ce2O3·11Al2O3 composite before annealing.  相似文献   

16.
Preliminary results indicate that large strains (∼80%) and strain rates (0.001 s−1) can be obtained without tearing (or cracking) in fine-grain ZrO2 (0.3 μm) and Al2O3/ZrO2 (1 μm) ceramics. Alumina develops crystallographic and morphological texture as previously reported by Heuer et al.1  相似文献   

17.
An epitaxial β-alumina crystal growth method was used to modify α-AI2O3 platelet surfaces before inclusion as a reinforcing phase in partially stabilized zirconia (3Y-TZP). The as-grown surface phase was Na-β"-AI2O3. This was converted to Ca-β"-AI2O3 by ion exchange, as the latter is more temperature-stable at composite sintering temperatures. The conditions of formation, thermal stability, and chemical compatibility of these interfacial phases were examined. α-AI2O3 platelets with Ca-β"-AI2O3 film were incorporated into 3Y-TZP. The β"-AI2O3/ZrO2 interface was found to promote platelet debonding and pullout, thus enhancing the α-AI2O3 platelet/crack interactions during the fracture process.  相似文献   

18.
The transformation of ultrafine powders (particle size, 0.01 to 0.04 μm) of the system ZrO2–Al2O3, prepared by spraying their corresponding nitrate solutions into an inductively coupled plasma (ICP) of ultrahigh temperature, was investigated. The powders were composed of metastable tetragonal ZrO2 ( mt- ZrO2) and γ-Al2O3. On heating, the mt- ZrO2 (or tetragonal ZrO2, t -ZrO2) was retained up to 1200°C. At 1380°C the transformation to monoclinic ZrO2 ( m -ZrO2) occurred and the amount of the m -ZrO2 decreased with the increase in Al2O3 content, thus indicating the stabilization of the t -ZrO2 by the Al2O3, which seems to be explained in terms of the retardation of grain growth.  相似文献   

19.
Intermetallic CoAl powder has been prepared via self-propagating high-temperature synthesis (SHS). Dense CoAl materials (99.6% of theoretical) with the combined additions of ZrO2(3Y) and Al2O3 have been fabricated via spark plasma sintering (SPS) for 10 min at 1300°C and 30 MPa. The microstructures are such that tetragonal ZrO2 (0.3 μm) and Al2O3 (0.5 μm) particles are located at the grain boundaries of the CoAl (8.5 μm) matrix. Improved mechanical properties are obtained; especially the fracture toughness and the bending strength of the materials with ZrO2(3Y)/Al2O3= 16/4 mol% are 3.87 MPa·m1/2 and 1080 MPa, respectively, and high strength (>600 MPa) can be retained up to 1000°C.  相似文献   

20.
Crystallization of an MgO-Al2O3-SiO2-ZrO2 sintered glass frit was studied. Heat treatment at 850° or 900°C caused initial crystallization of μ-cordierite and tetragonal ( t ) ZrO2. The t -ZrO2 crystallized with an irregular dendritic morphology and could be transformed to monoclinic ( m ) symmetry under certain conditions; the cordierite underwent the μ→α a transformation with extended annealing. Heat treatments at 1000°C caused crystallization of t -ZrO2 rods and spheroids in an α-cordierite matrix; these ZrO2 crystals, however, are resistant to transformation to m -ZrO2. The beneficial effects of ZrO2 on the fracture toughness of cordierite-based glass-ceramics are described.  相似文献   

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