首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 522 毫秒
1.
《Ceramics International》2017,43(5):4379-4389
The tribological behaviors of Si3N4-hBN ceramic composites sliding against steels (austenitic stainless steel (ASS) and 45 steel) under dry friction conditions at different loads were investigated by using an MMW-1 type vertical universal friction and wear tester. The experimental results showed that the friction coefficients and wear rates first showed a decrease and then an increase with an increase in the load under dry friction conditions. The better tribological performance was exhibited by the SN10/ASS sliding pair under a load of 20 N (the friction coefficient was as low as 0.27 and the wear rates of both pin and disc had a magnitude of 10−6 mm3 N−1 m−1). This may be attributed to the formation of a black surface film (consisting of B2O3, SiO2, and Fe2O3). For the same sliding pair, when the load was 10 N, the dominating wear mechanism was abrasive wear. Hence, the friction coefficient was higher (0.7). When the load increased to 30 and 50 N, the wear mechanism of the SN10/ASS sliding pair was a combination of abrasive and adhesive wears, and higher friction coefficients (0.48 and 0.72 under loads of 30 and 50 N, respectively) were obtained. On the other hand, the contents of hBN also showed a significant impact on the tribological behaviors of the Si3N4-hBN/ASS sliding pairs. When the hBN content was less than 10%, the friction coefficients of the Si3N4-hBN/ASS sliding pairs decreased with an increase in the hBN content. On the other hand, at hBN contents of 10% or more, the friction coefficients of the sliding pairs increased with an increase in the hBN content. Under the same experimental conditions, the Si3N4-hBN/45 steel pairs showed poor tribological properties as compared with the Si3N4-hBN/ASS pairs.  相似文献   

2.
The research presented in this paper aims to investigate the effectiveness of different surface roughness and lubrication conditions on the interfacial tribological properties between silicon carbide (SiC) and silicon nitride (Si3N4) ceramics, particularly for providing insight into the mechanisms of how graphene reduces the friction and wear rate. The worn groove topography and surface composition were characterised in detail with 3D laser measuring microscopy and X-ray photoelectron spectroscopy. The tribological test results on the UMT-TriboLab show that a smooth initial surface is more likely to obtain a low friction coefficient and wear rate under water lubrication. The proper initial surface roughness for SiC and Si3N4 ceramics is approximately Ra 10?nm, and it will be lower in an alcohol or graphene aqueous solution. A large load does not worsen the tribological behaviour of a Si3N4 ball sliding against a SiC disk, and it reduces the friction coefficient and wear rate. Among the five lubrication states of dry friction, dry graphene lubrication, water lubrication, graphene solution lubrication, and self-developed graphene lubrication, the self-developed graphene lubricant can exhibit an ultra-low friction coefficient of 0.009 and ultra-low wear rate of 1.69?×?10?7?mm3/N·m. The excellent tribological property of the graphene-coated ceramic surface helps the prepared lubricant to decrease the friction coefficient effectively. Furthermore, the graphene film can protect the SiC from being oxidised by water under the tribo-activated action, and therefore, lead to ultra-low wear rate under low friction condition. Alcohol improves the tribological property of the self-developed graphene lubricant, mainly because of the good wettability between graphene and ethanol. The self-developed graphene lubricant can be applied in water-lubricated ceramic bearings and motorised precision spindles.  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.
《Ceramics International》2022,48(1):514-524
To enhance the tribological properties of Si3N4 based ceramics, surface textures of dimples combined with DLC coatings are fabricated on Si3N4/TiC ceramic surface by nanosecond laser and plasma enhanced chemical vapor deposition (PECVD). The dry friction and wear performances are evaluated by unidirectional sliding friction tests using a rotary ball-on-disk tribometer. Results reveal that the friction and wear properties of Si3N4/TiC ceramics are significantly enhanced by DLC coatings or dimpled textures, and the DLC coatings combined with dimpled textures show the best efficiency in reducing friction, adhesion and wear. This improvement can be explained by the synergistic effect of DLC coatings and surface textures, and the synergistic mechanisms are attributed to the formation of lubrication film and secondary lubrication, debris capture of dimpled textures, increased surface hardness and mechanical interlocking effect, and reduced contact area.  相似文献   

5.
Si3N4/Ag composites were firstly prepared through SPS technology, using Si3N4 and AgNO3 as raw materials. Utilizing the coordination bonding of Ag+ ions with nitrogen atoms of Si3N4, in situ generated Ag particles about 1 μm were tightly anchored on Si3N4 surface, thereby preventing the outflow of silver during sintering process. Meanwhile, smaller silver particles about 20 nm were located at the grain boundaries of Si3N4, which effectively improved the mechanical and tribological properties of Si3N4‐based composites. Finally, the Si3N4/Ag composites reinforced by Ag particles showed a friction coefficient of 0.48 ± 0.01, wear rate of 1.79 × 10?6 mm3 N?1 m?1 and fracture toughness of 7.05 ± 0.2 MPa m1/2, respectively.  相似文献   

6.
Graded Si3N4 ceramics with sandwich-like microstructure were fabricated by the combination of hot-pressing, spark plasma sintering and β-Si3N4 seeds. Phase compositions, microstructures, mechanical properties, and wear behaviors were investigated. Main α-Si3N4 phase were detected in the outer layers, and only β-Si3N4 phase were observed in the inner layers. The outer layer with ultra-fine equiaxed grains were well bonded to the inner layer with a distinct bimodal grain size distribution. Vickers hardness of outer layer (~21.2?GPa) was much higher than that of inner layer (~16.1?GPa), whereas fracture toughness of outer layer (~3.5?MPa?m1/2) was much lower than that of inner layer (~5.9?MPa?m1/2), indicative of the hard surface and tough core. Due to the ultra-fine microstructure and high hardness of outer layer, the graded Si3N4 ceramics exhibited superior wear resistance with low wear rate.  相似文献   

7.
The high temperature strength and fracture behavior of porous Si3N4 ceramics prepared via reaction bonded Si3N4 (RBSN) and sintered reaction bonded Si3N4 (SRBSN) were investigated at 800–1400?°C. The weight gain after oxidation for 15?min and the microstructure of the edge and center of the fracture surface clearly show that the internal oxidation of porous SRBSN is unavoidable with porosity of ~ 50% and mean pore size of 700?nm. The oxidation of Si3N4 and intergranular Y2Si3O3N4 phase may responsible for the high temperature strength degradation of SRBSN. Porous Si3N4 ceramics prepared with addition of 1?wt% C showed low strength degradation at temperature >?1200?°C.  相似文献   

8.
Graded Cr-CrN-Cr(1?x)Al(x)N coatings were synthesized onto M42 HSS substrates used in advanced machining operations by closed-field unbalanced magnetron sputtering (CFUBMS). The tribological behavior of these graded coatings was explored in detail by advanced electron microscopy, confocal laser scanning microscopy, nanoindentation and dry sliding wear tests. The presence and magnitude of residual stresses in these coatings were determined by the XRD – sin2ψ method, which revealed increasing compressive stresses with increasing Al content. The coating surface morphology, mechanical properties were determined prior to dry sliding wear by atomic force microscopy (AFM) and nanoindentation methods, which yielded decreasing surface roughness (Ra) as well as enhancement of hardness and modulus along with increase in H/E and H3/E2 ratios with increasing Al content. Tribological investigation was performed with a pin-on-disc arrangement by keeping the sliding velocity (0.2?ms?1) and normal axial load (10?N) constant and varying the sliding distance. Specific wear rates of the order ~ 10–17 m3 N?1 m?1 were encountered for all coatings with the wear rates increasing as the Al content increased implying a decrease of wear resistance of the coatings. Abrasive wear has been found to be the dominant wear mechanism during dry sliding wear. Increasing modulus mismatch between coating and substrate can be mainly attributed to a decrease in wear resistance of the coatings.  相似文献   

9.
In the present study, in-situ mullite/Si3N4 composites were prepared successfully by reaction spark plasma sintering. For this purpose, 5, 10 and 15?wt% of Si3N4 were added to stoichiometric mullite made of mechanically milled mixture of alumina and kaolin clay to investigate the effect of reinforcement content on the final properties of the prepared composites. The sintering processes were performed at 1400?°C under the initial and final applied pressures of 10 and 30?MPa and the vacuum condition of 17?Pa. The XRD patterns revealed the mullite and Si3N4 peaks as the dominant crystalline phases. Microstructural investigations demonstrated a uniform distribution of Si3N4 inside mullite matrix for the composites containing 5 and 10?wt% of the reinforcement particles. Meanwhile, some agglomerates of Si3N4 were observed in the microstructure of the mullite-15?wt%Si3N4 composite. Moreover, no evidence of reaction between the starting materials was detected through XRD and FESEM analyses. The highest values of hardness, bending strength, and fracture toughness obtained for the composite containing 15?wt% of Si3N4 were 19.14?GPa, 481?MPa and 3.85?MPa?m?1/2, respectively. The fracture toughness mechanisms were detected as crack branching, breaking and deflection, as well as particles pulling-out, all of which were observed in the mullite-15?wt%Si3N4 composite.  相似文献   

10.
Silicon nitride/glass fiber (Si3N4/GF) hybrid fillers are performed to prepare the Si3N4/GF/epoxy composites. Results showed the thermal conductivities of the Si3N4/GF/epoxy composites that are improved with the addition of Si3N4, and the thermal conductive coefficient λ is 1.412 W/mK with 38 vol% modified Si3N4/GF hybrid fillers (30 vol% Si3N4 + 8 vol% GF), seven times higher than that of pure epoxy resin. The flexural strength and impact strength of the composites are optimal with 13 vol% modified Si3N4/GF hybrid fillers (5 vol% Si3N4 + 8 vol% GF). The dielectric constant and dielectric loss of the composites are increased with the increasing addition of Si3N4. For a given Si3N4/GF hybrid fillers loading, the surface modification can further improve the thermal conductivities of the Si3N4/GF/epoxy composites. POLYM. COMPOS., 35:1338–1342, 2014. © 2013 Society of Plastics Engineers  相似文献   

11.
The tribological behaviour of silicon nitride (Si3N4) ceramics is investigated using a two-step strategy. A set of ceramic composites containing silicon carbide nanoparticles (SiCn) is developed and, subsequently, graphene-based fillers are added to the Si3N4/SiC composite with the best tribological performance. The friction coefficient and the wear rate of Si3N4 are reduced up to 22 % and 40 %, respectively, when a 10 vol.% of SiCn is incorporated into the ceramic matrix due to its improved mechanical response. Si3N4/SiC composites containing 11 vol.% of graphene nanoplatelets (GNPs) or reduced graphene oxide sheets (rGOs) are analysed under isooctane lubrication and dry testing. rGOs composite leads to an important decrease of the friction coefficient (50 %) under lubricated conditions, and an enhancement of the wear resistance (44 %) under dry sliding tests, as compared to the reference Si3N4/SiC. The best performance of rGOs composite is due to the nature of the lubricating tribofilm and its excellent toughness.  相似文献   

12.
We reported an oscillatory pressure sintering (OPS) process to consolidate Si3N4-SiCw composites. For comparison, the composites were also prepared by hot pressing (HP) method. The specimen by OPS process reveals an accelerated rate of grain growth in the c axial direction and thus an increased average aspect ratio compared with the specimen by HP process. The oscillatory pressure also performs a positive impact on the Si3N4-SiCw composites as the bulk density of the OPS specimen increases to 3.270?g?cm?3 accompanied with higher fracture strength and hardness of 1133?MPa and 16.1?GPa, respectively, compared with those of the HP specimen. Significantly, the increased fracture toughness and Weibull modulus found in the OPS specimen indicate toughening effects and material reliability are improved aided by the oscillatory pressure. Current results suggest OPS to be a promising technique for preparing highly densified Si3N4-SiCw composites with enhanced mechanical properties.  相似文献   

13.
《Ceramics International》2015,41(6):7387-7393
The aim of this study is to evaluate the influence of hexagonal boron nitride (hBN) addition on the tribological behavior of B4C-based ceramic composites under distilled water lubrication. Water-lubricated sliding tests of hot-pressed B4C–hBN ceramic composites with different hBN amounts against pure B4C ceramic were carried out on a pin-disc type wear apparatus. It was found that the addition of hBN into B4C ceramic matrix resulted in a severe decrease of the friction coefficient from 0.373 for B4C/B4C sliding pair to 0.005 for B4C–20 wt% hBN/B4C sliding pair. A B2O3 tribochemical film formed on the worn surface of the B4C–hBN specimen protected both B4C–hBN and B4C and facilitated the frictional surfaces to smooth. Therefore, the tribological behaviors of the pairs were significantly improved. The formation process of the film and its antifriction mechanism are discussed.  相似文献   

14.
Nanometer Si3N4 filled poly(ether ether ketone) (PEEK) composite blocks with different filler proportions were prepared by compression molding. Their friction and wear properties under distilled water lubrication, as well as under ambient dry conditions, were investigated on a block on ring machine by running a plain carbon steel (AISI 1045 steel) ring against the PEEK composite block. The worn surfaces of nanometer Si3N4 filled PEEK and the transfer film were observed by scanning electron microscopy (SEM) and electron probe microanalysis (EPMA). The results showed that distilled water could reduce the friction coefficient of nanometer Si3N4 filled PEEK but with the sacrifice of a large reduction in wear resistance. The SEM and EPMA pictures of the worn surfaces indicated that the wear mechanisms of nanometer Si3N4 filled PEEK under distilled water lubrication and ambient dry rubbing conditions were different. Under water lubrication, the dominant wear mechanism of the filled PEEK was severe abrasive wear with surface fracture. © 2000 John Wiley & Sons, Inc. J Appl Polym Sci 79: 1394–1400, 2001  相似文献   

15.
The tribological behaviors of silicon nitride (Si3N4) sliding against sintered polycrystalline diamond (PCD) were investigated by varying the relative humidity (RH) in the testing atmosphere. The results indicated that higher RH corresponds to higher wear loss of Si3N4 and the wear loss of PCD almost fell close to zero. Especially in the case of 85% RH, both a maximum wear loss of Si3N4 and a maximum friction coefficient were achieved. In addition, this study revealed insights into the interface chemistry effects on the wear behavior of Si3N4 under humidity. When water molecules were introduced into the testing atmosphere, the hydrolysis reaction occurred on the Si3N4 surface with the formation of the Si‐O‐Si bond across the sliding interface. And then, the hydration reaction dominated the process, during which Si‐OH was formed through the bond fracture of the Si‐O‐Si. The X‐ray photoelectron spectroscopy results showed that the ratios of Si‐OH/Si‐O and Si‐N/Si‐OH+Si‐O bonds increased as the relative RH levels increased. As a consequence, the wear loss of Si3N4 significantly increased. Thus, due to the hydrolysis and hydration reactions, the tribological behaviors of Si3N4 against sintered polycrystalline diamond can be essentially controlled via varying RH levels.  相似文献   

16.
A low-toxic and water-soluble monomer N, N-dimethylacrylamide (DMAA) was employed as a gelling agent in the gelcasting of porous Si3N4 ceramics. The process conditions and composition for slurry preparation (with a solid loading of 36?vol%), the consolidation and sintering of green bodies were investigated and optimized. The effects of various factors such as zeta potential, pH value of the premix solution, dispersant dosage and ball milling time on the rheological properties of the slurries were investigated. The results suggest that the best rheological properties (66.5 mPa.s at a shear rate of 96.3?s?1) of the slurries were obtained when pH value ranged between 9 and 11, dispersant dosage reached 1?wt%, and ball milling time was 6?h. All the as-prepared green bodies showed a homogeneous microstructure and high flexural strength ≥ 26?MPa with a maximum up to 46.3?MPa when the ratio of DMAA to MBAM, initiator dosage, polymerization temperature and time were 14, 1?wt%, 70?°C and 90?min, respectively. The sintered bodies had a homogeneous microstructure, excellent and regulatable properties, a flexural strength of 216.3–327.3?MPa, and a porosity of 39.6–29.1% by varying the sintering temperature from 1710?°C to 1810?°C and the holding time from 1?h to 3?h. The superior comprehensive effect makes DMAA a promising candidate for an environmentally friendly gelling agent in gelcasting of porous Si3N4 ceramics.  相似文献   

17.
Ceramic design based on reducing friction and wear-related failures in moving mechanical systems has gained tremendous attention due to increased demands for durability, reliability and energy conservation. However, only few materials can meet these requirements at high temperatures. Here, we designed and prepared a Sn-containing Si3N4-based composite, which displayed excellent tribological properties at high temperatures. The results showed that the friction coefficient and wear rate of the composites were reduced to 0.27 and 4.88 × 10?6 mm3 N?1 m?1 in air at 800 °C. The wear mechanism of the sliding pairs at different temperatures was revealed via detailed analyses of the worn surfaces. In addition, the tribo-driven graphitization was detected on the wear surfaces and in the wear debris, and the carbon phase was identified by SEM, TEM, and Raman spectrum.  相似文献   

18.
The present study focuses on the comparison of cathodic arc deposited AlCrN (ternary coating) and Ag alloyed a-C (amorphous carbon base coating) on chrome nitride (CrN) medical grade 316 LVM stainless steel. The work comprises of morphological, structural, nanomechanical and tribological evaluation in physiological simulated body fluid (SBF) lubrication following conditions pertaining to simulated hip joint. According to the findings, H/E, H3/E2 and Ecoating/Esubstrate significantly effect the nanomechanical and tribological properties of the coatings. While a-C:Ag/CrN exhibited better Ly value compared to AlCrN/CrN due to better surface quality, the later has shown higher Lc2 value during nanoscratch test attributed to lower H3/E2 and higher plastic work done. Inspite of lower friction coefficient, a-C:Ag/CrN observed higher wear rate during simulated tribotest attributed to low hardness, separate graphitic structure due to Ag doping and sudden increase of friction coefficient ascribed to severe abrasive delamination of a-C:Ag top layer. The wear mechanism observed under SEM microscopy indicate severe adhesion of Ti6Al4V counterbody on AlCrN/CrN coated surface. The size of wear debris obtained with AlCrN/CrN-Ti6Al4V tribopair was larger in size compared to a-C:Ag/CrN-Ti6Al4V tribopair. Nevertheless, despite inferior surface quality and lower Ly value and larger wear debris size, AlCrN/CrN coating performed better in nanoscratch (at Lc2 value) and demonstrated lower wear in simulated tribotest in physiological SBF condition.  相似文献   

19.
In this paper, the tribological behaviors of Ni–Cr alloy sliding against Si3N4 and WC–Co at 20 °C and 600 °C were investigated on a tribometer with a ball-on-disk configuration. The experimental results indicated that Ni–Cr alloy sliding against WC–Co exhibited higher wear resistance than that sliding against Si3N4. From the viewpoints of the interfacial interactions between metal and ceramic (chemical reaction, wetting, adhesion, transference), the wear mechanisms were elucidated. The tribological behaviors of Ni–Cr alloy/ceramic tribo-couples were well correlated with the interfacial characteristics, namely the reactive interface and the non-reactive interface. Ni–Cr alloy/Si3N4 tribo-couple showed severe adhesive wear as a result of the interfacial reaction between Ni and Si3N4, while the non-reactivity of Ni/WC interface is the most important factor corresponding to the moderate adhesive wear in Ni–Cr alloy sliding against WC–Co. Finally, the relations among the interfacial characteristics, wear behavior, and temperature were discussed. The results may provide some experimental evidences on the design and optimization of metal/ceramic tribo-couples.  相似文献   

20.
Si3N4/SiC porous ceramics were fabricated by a novel foam-gelcasting and microwave-assisted catalytic nitridation method at a temperature as low as 1273?K for 60?min or after only 10?min at 1373?K utilizing commercial Si and SiC with trace of impurity Fe (0.33?wt%) as starting materials. The Si3N4/SiC porous ceramics containing porosity of 68.54?±?0.73% which were fabricated at 1373?K for 10?min had flexural and compressive strengths of 5.28?±?0.17?MPa and 12.86?±?1.55?MPa.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号