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1.
Porous Si3N4‐Si2N2O‐BN ceramic was fabricated at 1750°C using Si3N4, BN, and (NH4)2HPO4 as starting materials. During the sintering process, oxygen from the decomposed products of (NH4)2HPO4 would bond Si and N in the liquid phase to form Si2N2O. The microstructure and properties of the porous ceramics were investigated. With the (NH4)2HPO4 content varied from 10 to 50 vol.%, porosity of the porous Si3N4‐Si2N2O‐BN ceramic increased from 43.5% to 51%. The microstructure, mechanical, and dielectric properties was well controlled by adjusting (NH4)2HPO4 contents. The present technique offers a more simple way of synthesizing porous Si3N4‐Si2N2O‐BN ceramics.  相似文献   

2.
Porous silicon oxynitride (Si2N2O) ceramics were prepared by gas pressure sintering at 1650°C for 2 hour under 1.5 MPa N2 in two different powder beds, that is, h‐BN/Si3N4 or h‐BN/(Si3N4 + SiO2). Effects of the gaseous atmosphere in the powder bed and the pore diameter in the ceramics on formation of the Si2N2O phase and the oxidation resistance of the sintered porous ceramics were investigated. Results showed that presence of the gaseous SiO in the powder bed played a crucial role in suppressing decomposition of the Si2N2O phase at the outer surface of the material. Permeability of the gaseous substances was decreased when the pore diameter was small, to affect the phase composition and the oxidation behavior of the porous Si2N2O ceramics. The oxidation weight gain curves of the porous Si2N2O ceramics fitted the asymptotic law. No significant changes in the dielectric constant of the Si2N2O ceramics were observed after oxidation at 1000°C‐1200°C for up to 30 minutes, whereas the dielectric loss tangent was reduced by oxidation due to formation of SiO2. The as‐obtained porous Si2N2O ceramics could withstand a highest thermal shock of 1200°C when the outer surface could be sealed by the oxidation‐derived SiO2 layer.  相似文献   

3.
Silicon nitride materials containing 1–5 wt% of hexagonal boron nitride (micro-sized or nano-sized) were prepared by hot-isostatic pressing at 1700 °C for 3 h. Effect of hBN content on microstructure, mechanical and tribological properties has been investigated. As expected, the increase of hBN content resulted in a sharp decrease of hardness, elastic modulus and bending strength of Si3N4/BN composites. In addition, the fracture toughness of Si3N4/micro BN composites was enhanced comparing to monolithic Si3N4 because of toughening mechanisms in the form of crack deflection, crack branching and pullout of large BN platelets. The friction coefficient was not influenced by BN addition to Si3N4/BN ceramics. An improvement of wear resistance (one order of magnitude) was observed when the micro hBN powder was added to Si3N4 matrix. Mechanical wear (micro-failure) and humidity-driven tribochemical reaction were found as main wear mechanisms in all studied materials.  相似文献   

4.
A kind of chemical vapor infiltration (CVI) Si3N4–BN–SiCN composite ceramic with excellent electromagnetic wave (EMW) absorbing properties is obtained by CVI BN interface and SiCN matrix on porous Si3N4 ceramics, and then annealed at high temperatures (1200°C‐1500°C) in N2 atmosphere. The crystallization behavior, EMW absorbing mechanism and mechanical properties of the composite ceramics have been investigated. Results showed CVI SiCN ceramics with BN interface were crystallized in the form of nanograins, and the crystallization temperature was lower. Moreover, both EMW absorbing properties and mechanical properties of CVI Si3N4–BN–SiCN composite ceramics firstly increased and then decreased with the increase in annealing temperature due to the influence of BN interface on the microstructure and phase composition of the composite ceramics. The minimum reflection coefficient (RC) and maximum effective absorption bandwidth (EAB) of the composite ceramics annealed at 1300°C were ?47.05 dB at the thickness of 4.05 mm and 3.70 GHz at the thickness of 3.65 mm, respectively. The flexural strength and fracture toughness of the composite ceramics annealed at 1300°C were 94 MPa and 1.78 MPa/m1/2, respectively.  相似文献   

5.
《Ceramics International》2022,48(13):18294-18301
Si3N4 ceramics were prepared using novel two-step sintering method by mixing α-Si3N4 as raw material with nanoscale Y2O3–MgO via Y(NO3)3 and Mg(NO3)2 solutions. Si3N4 composite powders with in situ uniformly distributed Y2O3–MgO were obtained through solid–liquid (SL) mixing route. Two-step sintering method consisted of pre-deoxidization at low temperature via volatilization of in situ-formed MgSiO3 and densification at high temperature. Variations in O, Y, and Mg contents in Si3N4–Y2O3–MgO during first sintering step are discussed. O and Mg contents decreased with increasing temperature because SiO2 on Si3N4 surface reacted with MgO to form low-melting-point MgSiO3 compound, which is prone to volatilize at high temperature. By contrast, Y content hardly changed due to high-temperature stability of Y–Si–O–N quaternary compound. In the second sintering step, skeleton body was densified, and the formation of Y2Si3O3N4 secondary phase occurred simultaneously. Two-step sintered Si3N4 ceramics had lower total oxygen content (1.85 wt%) than one-step sintered Si3N4 ceramics (2.51 wt%). Therefore, flexural strength (812 MPa), thermal conductivity (92.1 W/m·K), and fracture toughness (7.6 MPa?m1/2) of Si3N4 ceramics prepared via two-step sintering increased by 28.7%, 16.9%, and 31.6%, respectively, compared with those of one-step sintered Si3N4 ceramics.  相似文献   

6.
In situ synthesis of Si2N2O/Si3N4 composite ceramics was conducted via thermolysis of novel polysilyloxycarbodiimide ([SiOSi(NCN)3]n) precursors between 1000 and 1500 °C in nitrogen atmosphere. The relative structures of Si2N2O/Si3N4 composite ceramics were explained by the structural evolution observed by electron energy-loss spectroscopy but also by Fourier transform infrared and 29Si-NMR spectrometry. An amorphous single-phase Si2N2O ceramic with porous structure with pore size of 10–20 μm in diameter was obtained via a pyrolyzed process at 1000 °C. After heat-treatment at 1400 °C, a composite ceramic was obtained composed of 53.2 wt.% Si2N2O and 46.8 wt.% Si3N4 phases. The amount of Si2N2O phase in the composite ceramic decreased further after heat-treatment at 1500 °C and a crystalline product containing 12.8 wt.% Si2N2O and 87.2 wt.% Si3N4 phases was obtained. In addition, it is interesting that residual carbon in the ceramic composite nearly disappeared and no SiC phase was observed in the final Si2N2O/Si3N4 composite.  相似文献   

7.
Boron nitride/silicon nitride (BN/Si3N4) composite ceramics were fabricated via the in-situ nitridation of boron (B) and silicon (Si) powders in forming gas (95%N2/5%H2) at 1390?°C. The effect of the B content on the phase composition, microstructure, density/porosity, machinability as well as mechanical properties of nitridized BN/Si3N4 composite ceramics was investigated. The addition of B slightly increased the nitridation degree of the Si and B powders mixture, and improved the ratio of the β-Si3N4 phase significantly at low B contents. B powders may have acted as a nucleating agent to promote the formation of β-Si3N4 crystals. A core-shell Si3N4/BN structure was revealed by the TEM technique, and the number of BN layers increased with the increase of the B content. The in-situ BN formed by the nitridation of B played a similar role with the BN directly added in enhancing the machinability of the BN/Si3N4 composite ceramics. The method of the in-situ nitridation of B is also effective to prepare SiC fiber-reforced BN/Si3N4 ceramic matrix composites.  相似文献   

8.
Enhancement of the thermal conductivity of silicon nitride is usually achieved by sacrificing its mechanical properties (bending strength). In this study, β-Si3N4 ceramics were prepared using self-synthesized Y3Si2C2 and MgO as sintering additives. It was found that the thermal conductivity of the Si3N4 ceramics was remarkably improved without sacrificing their mechanical properties. The microstructure and properties of the Si3N4 ceramics were analyzed and compared with those of the Y2O3-MgO additives. The addition of Y3Si2C2 eliminated the inherent SiO2 and introduced nitrogen to increase the N/O ratio of the grain-boundary phase, inducing Si3N4 grain growth, increasing Si3N4 grain contiguity, and reducing lattice oxygen content in Si3N4. Therefore, by replacing Y2O3 with Y3Si2C2, the thermal conductivity of the Si3N4 ceramics was significantly increased by 31.5% from 85 to 111.8Wm−1K−1, but the bending strength only slightly decreased from 704 ± 63MPa to 669 ± 33MPa.  相似文献   

9.
Porous BN/Si3N4 composite ceramics with different BN contents have been fabricated by gel casting. The rheological behaviors of the suspensions, microstructure, mechanical properties, dielectric properties and critical temperature difference of thermal shock (ΔTC) of porous BN/Si3N4 composite ceramics with different BN contents were investigated. With BN contents increasing, the mechanical properties of the porous BN/Si3N4 composite ceramics were partially declined, but the dielectric properties and thermal shock resistances were enhanced at the same time. For the porous Si3N4 ceramic without BN addition, the porosity, flexural strength, dielectric constant and critical temperature difference were 48.1%, 128 MPa, 4.1 and 395 °C, while for the 10 vol% BN/Si3N4 porous composite ceramics, they were 49.4%, 106.6 MPa, 3.8, and 445 °C, respectively. The overall performance of the obtained porous BN/Si3N4 composite ceramics indicated that it could be one of the ideal candidates for high-temperature wave-transparent applications.  相似文献   

10.
The aim of present work is to fabricate porous Si3N4 ceramics with considerable dimensions and homogeneous microstructure by self-propagating high temperature synthesis (SHS) using Si, Si3N4 diluent and Y2O3 as raw materials. The results indicate that Si3N4 diluent with coarse particle sizes and appropriate β-phase content is beneficial to obtain porous Si3N4 ceramics with homogeneous microstructure and excellent mechanical property by controlling the shrinkage inside the sample. The produced Si3N4 ceramics possessed excellent flexural strength of 168 MPa~259 MPa, and high Weibull modulus of 11.0~17.2. Additionally, BN and SiC are added as second phase to modify the properties of Si3N4-based ceramics. Optimum flexural strength of 170 MPa and 137 MPa were obtained with 10 wt.% addition of BN and SiC respectively. After oxidation at 1100 °C~1300 °C, second phase-doped Si3N4 ceramics also presented higher residual strength than pure Si3N4 ceramics.  相似文献   

11.
Sintered reaction‐bonded Si3N4 ceramics with equiaxed microstructure were prepared with TiO2–Y2O3–Al2O3 additions by rapid nitridation at 1400°C for 2 hours and subsequent post‐sintering at 1850°C for 2 hours under N2 pressure of 3 MPa. It was found that α–Si3N4, β–Si3N4, Si2N2O, and TiN phases were formed by rapid nitridation of Si powders with single TiO2 additives. However, the combination of TiO2 and Y2O3–Al2O3 additives led to the formation of 100% β–Si3N4 phase from the nitridation of Si powders at such low temperature (1400°C), and the removal of Si2N2O phase. As a result, dense β–Si3N4 ceramics with equiaxed microstructure were obtained after post‐sintering at high temperature.  相似文献   

12.
Mechanical and dielectric properties of porous Si2N2O–Si3N4 in situ composites fabricated for use as radome by gel-casting process were investigated. The flexural strength of the Si2N2O–Si3N4 ceramics is 230.46 ± 13.24 MPa, the complex permittivity of the composites varies from 4.34 to 4.59 and the dissipation factor varies from 0.00053 to 0.00092 from room temperature to elevated temperature (1150 °C) at the X-band. In the porous regions, some Si2N2O fibers (50–100 nm in diameter) are observed which may improve the materials properties.  相似文献   

13.
《Ceramics International》2022,48(14):20126-20133
In this study, high-strength and wave-transmission silicon nitride (Si3N4) composites were successfully developed via selective laser sintering (SLS) with cold isostatic pressing (CIP) after debinding and before final sintering, and the optimal moulding process parameters for the SLS Si3N4 ceramics were determined. The effects of the sintering aids and secondary CIP on the bulk density, porosity, flexural strength, fracture toughness, and wave-transmitting properties of the Si3N4 composites were studied. The results showed that the increased CIP pressure was beneficial to the densification of SLS Si3N4 ceramics and improved their mechanical properties. However, the wave-transmitting performance decreased as the CIP pressure increased. The Si3N4 ceramics prepared by the moulding of sample S11 were more in line with the performance requirements of the radomes. To obtain good comprehensive performance, an additional 3% of interparticle Y2O3 was added to the pre-printed mixed powder of granulated Si3N4 particles and resin and the secondary CIP pressure was adjusted to 280 MPa. After sintering, the bending strength, fracture toughness, and dielectric constant of the Si3N4 ceramics were 651 MPa, 6.0 MPa m1/2, and 3.48 respectively. This study provides an important method for preparing of Si3N4 composite radomes using SLS process.  相似文献   

14.
《Ceramics International》2021,47(18):25689-25695
The high-temperature mechanical and dielectric properties of Si2N2O ceramics are often limited by the introduction of a sintering aid. Herein, dense Si2N2O was prepared at 1700 °C by hot-pressing oxidized amorphous Si3N4 powder without sintering additives. A homogeneous network with short-range order and a SiN3O structure was formed in the oxidized amorphous Si3N4 powder during the hot-pressing process. Si2N2O crystals preferentially nucleated at positions within the SiN3O structure and grew into rod-like and plate-like grains. Fully dense ceramics with mainly crystalline Si2N2O and some residual amorphous phases were obtained. The as-prepared Si2N2O possessed a good flexural strength of 311 ± 14.9 MPa at 1400 °C, oxidation resistance at 1500 °C, and a low dielectric loss tangent of less than 5 × 10−3 at 1000 °C.  相似文献   

15.
《Ceramics International》2021,47(19):27058-27070
The porous SiC–Si3N4 composite ceramics with good EMW absorption properties were prepared by combination of gelcasting and carbothermal reduction. The pre-oxidation of Si3N4 powders significantly improved the rheological properties of slurries (0.06 Pa s at 103.92 s−1) and also suppressed the generation of NH3 and N2 from Si3N4 hydrolysis and reaction between Si3N4 and initiator APS, thereby reducing the pore defects in green bodies and enhancing mechanical properties with a maximum value of 42.88 MPa. With the extension of oxidation time from 0 h to 10 h, the porosity and pore size of porous SiC–Si3N4 composite ceramics increased from approximately 41.86% and 1.0–1.5 μm to 46.33% and ~200 μm due to the production of CO, N2 and gaseous SiO, while the sintering shrinkage decreased from 16.24% to 10.50%. With oxidation time of 2 h, the Si2N2O fibers formed in situ by the reaction of Si3N4 and amorphous SiO2 effectively enhanced the mechanical properties, achieving the highest flexural strength of 129.37 MPa and fracture toughness of 4.25 MPa m1/2. Compared with monolithic Si3N4 ceramics, the electrical conductivity, relative permittivity and dielectric loss were significantly improved by the in-situ introduced PyC from the pyrolysis of three-dimensional network DMAA-MBAM gel in green bodies and the SiC from the carbothermal reduction reaction between PyC and SiO2 and Si3N4. The porous SiC–Si3N4 composite ceramics prepared by the unoxidized Si3N4 powders demonstrated the optimal EMW absorption properties with reflection loss of −22.35 dB at 8.37 GHz and 2 mm thickness, corresponding to the effective bandwidth of 8.20–9.29 GHz, displaying great application potential in EMW absorption fields.  相似文献   

16.
《Ceramics International》2023,49(19):31228-31235
Porous Si3N4 ceramics are highly regarded as ideal materials for radomes due to their unique characteristics. However, the slurry used for the preparation of porous Si3N4 ceramics suffers from a low cure depth, making it challenging to fabricate ceramic components using DLP technology. In this study, porous Si3N4 ceramics were prepared by combining DLP technology with pore-forming agent method. The addition of polymethyl methacrylate (PMMA) powders with lower refractive index than that of Si3N4 powders can improve the penetration depth of ultraviolet light in the Si3N4 slurry. A systematic study was conducted to investigate the influence of the addition of PMMA powders on the properties of Si3N4 slurries and porous Si3N4 ceramics. When PMMA powders were added at 10 wt%, the slurry with a lowest viscosity of 0.13 Pa s (the shear rate is 30 s−1) and cure depth of 40.0 μm (the exposure energy is 600 mJ/cm2) was obtained. With the increase of PMMA content, porous Si3N4 ceramics experienced a gradual decrease in both the flexural strength and bulk density, while the porosity increased from 14.41% to 27.62%. Specifically, when 20 wt% PMMA was added, the resulting porous Si3N4 ceramics had a lowest bulk density (2.41 g/cm3), a maximum porosity (27.62%), and a flexural strength (435.87 MPa). The study is of great significance in establishing an experimental foundation for fabricating porous Si3N4 ceramics by using DLP technology.  相似文献   

17.
The impact of Si3N4 and SiC additives incorporation in the microstructure and sintering behavior of TiB2-based composites were studied. Three ceramic composites including TiB2–Si3N4, TiB2–SiC, and TiB2–SiC–Si3N4 were manufactured by spark plasma sintering (SPS) at 1950 °C for 8 min under 35 MPa. The acquired ceramics were analyzed by X-ray diffractometry and scanning electron microscopy. In addition, the sintering thermodynamic was investigated using the HSC Chemistry package. X-ray diffraction patterns of the prepared ceramics revealed the in-situ formation of graphite and boron nitride in the final composites initiated from SiC and Si3N4, respectively. The thermodynamic assessments proved the role of liquid phase sintering on the sinterability enhancement of all composite samples. Field emission scanning electron microscopy and energy-dispersive X-ray spectroscopy verified the in-situ formation of both BN and graphite components in the sample containing SiC and Si3N4 additives. Finally, the fractographical investigations clarified the transgranular breakage as the main fracture mode in the TiB2-based ceramics.  相似文献   

18.
In this paper, novel porous Si3N4 ceramics were prepared by aqueous gelcasting using Si3N4 poly-hollow microspheres as pore-forming agent. The effect of Si3N4 poly-hollow microsphere content on the phase composition, microstructure, shrinkage, porosity and mechanical properties of the prepared porous Si3N4 ceramics were investigated. It is found that there is only β-Si3N4 phase in all the prepared porous Si3N4 ceramics. Meanwhile, the SEM results show that the pores in the porous Si3N4 ceramics distribute uniformly, the added Si3N4 poly-hollow microspheres and the basal body contact closely. With the increase of Si3N4 poly-hollow microsphere content, the shrinkage of the porous Si3N4 ceramics decreases gradually, and the porosity of the porous Si3N4 ceramics decreases firstly and then increases. Furthermore, the flexural strength and fracture toughness of the porous Si3N4 ceramics decrease with the increase of the Si3N4 poly-hollow microsphere content.  相似文献   

19.
《Ceramics International》2023,49(16):27040-27049
Porous Si3N4 ceramics with high strength and high transmittance have been widely used in the field of defense and military. Additive manufacturing (AM) technology is one of the effective means to fabricate porous Si3N4 ceramics. Nevertheless, it is difficult to prepare porous Si3N4 ceramics by using digital light processing (DLP) because of the large refractive index difference between Si3N4 powders and photosensitive resin. In this study, the effects of the amount of polystyrene (PS) powders on the properties of Si3N4 ceramic slurries and sintered ceramics were systematically discussed. The addition of PS reduced the overall refractive index of powders and increased the average particle size of powders, thus improving the cure depth of Si3N4 ceramic slurries from 11.0 ± 2.0 μm to 55.7 ± 1.8 μm. With the increase of PS content, the shrinkage and porosity of Si3N4 ceramics gradually increased, and the bulk density and flexural strength showed the opposite trend. The slurry with low viscosity (2.38 Pa٠s at a shear rate of 30 s−1) and high cure depth (51.2 ± 4.6 μm) was obtained when the content of PS was 15 wt%, which met the thickness requirements for printing. The total porosity of Si3N4 ceramics reached the maximum values at 28.21 ± 2.58%. The addition of PS solved the problem of low cure depth of slurries, and PS as a pore-forming agent could help Si3N4 ceramics form porous structure. This research provides valuable insights into the fabrication of non-oxide ceramics with high refractive index using DLP technology.  相似文献   

20.
Si3N4-ZrB2 ceramics were hot-pressed at 1500 °C using self-synthesized fine ZrB2 powders containing 2.0 wt% B2O3 together with MgO-Re2O3 (Re = Y, Yb) additives. Both Si3N4 and ZrB2 grains in the hot-pressed ceramics were featured with elongated and equiaxed morphology. The presence of elongated Si3N4 and ZrB2 grains led to the partial texture of the ceramics under the applied pressure. Vickers hardness and fracture toughness of Si3N4-ZrB2 ceramics with MgO-Re2O3 additives prepared at low temperature were about 19–20 GPa and 9–11 MPa m1/2, respectively, higher than the reported values of Si3N4-based ceramics prepared at high temperature (1800 °C or above) under the same test method.  相似文献   

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