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1.
Compacts of TiB2 with densities approaching 100% are difficult to obtain using pressureless sintering. The addition of SiC was very effective in improving the sinterability of TiB2. The oxygen content of the raw TiB2 powder used in this research was 1.5 wt%. X-ray photoelectron spectroscopy showed that the powder surface consisted mainly of TiO2 and B2O3. Using vacuum sintering at 1700°C under 13–0.013 Pa, TiB2 samples containing 2.5 wt% SiC achieved 96% of their theoretical density, and a density of 99% was achieved by HIPing. TEM observations revealed that SiC reacts to form an amorphous phase. TEM-EELS analysis indicated that the amorphous phase includes Si, O, and Ti, and X-ray diffraction showed the reaction to be TiO2+ SiC → SiO2+ TiC. Therefore, the improved sinterability of TiB2 resulted from the SiO2 liquid phase that was formed during sintering when the raw TiB2 powder had 1.5 wt% oxygen.  相似文献   

2.
Hot pressing of TiB2 has been investigated with particular emphasis on the evolution of secondary phases originating from the initial surface oxide layer on the TiB2 powders. Carbothermal reduction of the surface oxides during sintering was also investigated by adding carbon to the TiB2 powder. TiO1− x C x was shown to be the main secondary phase in hot-pressed TiB2, and carbon was shown to strongly influence on sintering process and the amount, composition and distribution of the secondary phase TiO1− x C x . The formation of TiO1− x C x is discussed in relation to volatile boron oxide, which reacts with the graphite die to produce CO gas, which further may cause transport of carbon into TiB2 during sintering before pore closure. Finally it was demonstrated that the density could be controlled by addition of carbon to the TiB2 powder.  相似文献   

3.
Unlubricated fretting wear tests on TiB2 and TiB2–5 wt% TiSi2 ceramics against two different mating materials (bearing grade steel and WC–6 wt% Co balls) were performed with a view to understand the counterbody-dependent difference in friction and wear properties. The fretting experiments were conducted systematically by varying load (2–10 N) at an oscillating frequency of 4 Hz and 100 μm linear stroke, for a duration of 100,000 cycles. Adhesion, abrasion, and three-body wear have been observed as mechanisms of material damage for both the TiB2/steel and TiB2/WC–Co tribosystems. The third body is predominantly characterized as tribochemical layer for TiB2/steel and loose wear debris particles for TiB2/WC–Co tribocouple. An explanation on differences in tribological properties has been provided in reference to the counterbody material as well as microstructure and mechanical properties of flat materials.  相似文献   

4.
The stoichiometric self-propagating high-temperature synthesis (SHS) thermite reaction involving magnesium (Mg), titanium dioxide (TiO2), and boron oxide (B2O3) forms MgO and titanium diboride (TiB2) as final products. Selective acid leaching is used to remove the MgO leaving TiB2 powder. This study investigates the acid leaching of SHS-produced MgO/TiB2 powders and a stoichiometric mixture of commercially obtained MgO and TiB2 powders. Leaching was conducted at pH levels of 4.0, 2.5, and 1.0 by the introduction of concentrated aliquots of HNO3. This method maintains a minimum pH target throughout the leaching process, thereby sustaining a dynamic concentration to remove the oxide. The optimal leaching conditions were determined to be at 90°C at a minimum pH target of 2.5 for the SHS-produced product. At these conditions, conversion percentages of 83%–84% of MgO were measured with only trace amounts of TiB2 measured in the solution (<100 μg/L). Conversion percentages for each leaching condition and dissolution mass of solid MgO and TiB2 at each pH are also reported. Results from powder X-ray diffraction confirm the removal of MgO and minimal dissolution of TiB2, and indicate the formation of unidentified compounds. Inductively coupled plasma mass spectrometry (ICP) was used to analyze the ionic composition and extent of leaching. Scanning electron microscopy was used to observe the particle morphology of the leached powders.  相似文献   

5.
The frictional properties of sintered TiN-TiB2 and Ti(CN)-TiB2 ceramics were investigated in air at temperatures up to 1073 K. Friction coefficients as low as 0.1 to 0.2 can be obtained at 973 to 1073 K because oxidation of TiB2 produces a lubricating, glassy phase of boron oxide on the sliding surfaces.  相似文献   

6.
The self-propagating high-temperature synthesis (SHS) process has been applied to formation of composites consisting of TiB2 and TiN ceramics synthesized simultaneously. Ti, B, and BN powders were used as raw materials. The SHS reaction was initiated by a tungsten heating coil. XRD experiments confirmed that the reaction was complete, and that only TiB2 and TiN phases were detected. Microstructural observations revealed that both TiN and TiB2 crystal grains had small sizes of less than 1 μm in the composites with high TiN content. Inhibition of grain growth can be attributed to the pinning effect of TiN grains. Excellent corrosion resistance was obtained for HCl reagent.  相似文献   

7.
The densification of non-oxide ceramics like titanium boride (TiB2) has always been a major challenge. The use of metallic binders to obtain a high density in liquid phase-sintered borides is investigated and reported. However, a non-metallic sintering additive needs to be used to obtain dense borides for high-temperature applications. This contribution, for the first time, reports the sintering, microstructure, and properties of TiB2 materials densified using a MoSi2 sinter-additive. The densification experiments were carried out using a hot-pressing and pressureless sintering route. The binderless densification of monolithic TiB2 to 98% theoretical density with 2–5 μm grain size was achieved by hot pressing at 1800°C for 1 h in vacuum. The addition of 10–20 wt% MoSi2 enables us to achieve 97%–99%ρth in the composites at 1700°C under similar hot-pressing conditions. The densification mechanism is dominated by liquid-phase sintering in the presence of TiSi2. In the pressureless sintering route, a maximum of 90%ρth is achieved after sintering at 1900°C for 2 h in an (Ar+H2) atmosphere. The hot-pressed TiB2–10 wt% MoSi2 composites exhibit high Vickers hardness (∼26–27 GPa) and modest indentation toughness (∼4–5 MPa·m1/2).  相似文献   

8.
Up to 50 vol% of TiB2, TiC0.5N0.5, TiN, or TiC was added to Y2O3-stabilized tetragonal ZrO2 polycrystals (Y-TZP) and hot pressed under vacuum. The influence of the type of secondary phase on the microstructure and mechanical properties was studied, as a function of the hot-pressing temperature. The influence of the secondary-phase content on the mechanical properties was studied by varying the TiB2 content up to 50 vol%. Fully dense Y-TZP-based composites with very high toughness (up to 10 MPa·m1/2), excellent bending strength (up to 1237 MPa), and increased hardness, with respect to ZrO2 (Vickers hardness up to 1450 kg/mm2), were obtained.  相似文献   

9.
The electrical resistivity of monocrystalline and polycrystalline TiB2, was measured under an inert atmosphere by a four-point ac impedance technique over the range 298 to 1373 K. The results are expressed in the form ρ-ρ298= m(T -298). The following values of ρ298 (μω.cm) and m (nω.cm-K-1) were determined: for polycrystalline TiB2 (69% dense) 18.2 and 95; for polycrystalline TiB2 (99% dense) 7.4 and 42; and for monocrystalline TiB2, 6.6 and 34.9.  相似文献   

10.
In an earlier work, it was observed that the use of MoSi2 (up to 10 wt%) enhanced the densification and mechanical properties of TiB2. Therefore, the motivation of this study is three-fold: (a) to assess whether a small amount of MoSi2 addition can enhance wear resistance property, (b) to study whether the MoSi2 addition will influence the formation of a tribochemical layer, and (c) to correlate the wear resistance with material properties in TiB2–MoSi2 materials. In order to address these issues, a series of fretting experiments were conducted systematically by varying load (2, 5, and 10 N) at an oscillating frequency of 4 Hz and a 100 μm linear stroke, for a duration of 100 000 cycles with a cemented carbide (WC—6 wt% Co cermet) ball as a counterbody. The average coefficient of friction of the TiB2 samples varied within a narrow range (0.50–0.54), without being much affected by either the sintering additive or the load. The wear volume increased with increasing load, while the specific wear rate of all the TiB2 compositions falls within a mild wear regime (1.1–3.4 × 10−6 mm3/Nm). Based on the experimental results, it can be said that the addition of MoSi2 degrades neither the wear resistance properties nor the frictional properties of TiB2, within the investigated load regime. The microcracking-induced spalling has been found to be the dominant mechanism and, consequently, the wear volume is observed to have a linear dependency on the abrasion parameter. It is noteworthy that the tribo-oxidation as well as the formation of finer wear debris particles occurs to a limited extent.  相似文献   

11.
The microstructure of materials compacted from commercially produced TiB2 powders was investigated using transmission electron microscopy. A number of impurity phases that are introduced during the various processing stages were identified. After exposure to liquid aluminum, grain boundaries and triple junctions of TiB2 were found to be penetrated by aluminum. In the penetrated regions pure aluminum, two aluminum oxides, and an (Al2OC)1- x (AlN) x . phase were identified. A SiO2 glass phase, introduced during hot isostatic pressing, is believed to be responsible for the formation of alumina. None of the other impurity phases were found to react with aluminum.  相似文献   

12.
The efficiency of the Hall–Heroult electrolytic reduction of aluminum can be substantially improved by the use of a TiB2 cathode. The use of TiB2 components, however, has been hampered by the brittle nature of the material and the grain boundary attack of sintering-aid phases by molten aluminum. In the current work, TiB2 is toughened through the use of reinforcing fibers, with chemical vapor infiltration used to produce the TiB2 matrix. In early efforts it was observed that the formation of TiB2 from chloride precursors at fabrication temperatures below 900–1000°C may have allowed the retention of destructive levels of chlorine. At higher fabrication temperatures (>1000°C), using appropriate infiltration conditions as determined from the use of a process model, TiB2/THORNEL P-25 fiber composites have been fabricated in 20 h. The improved composite material has been demonstrated to be stable in molten aluminum in short-duration (24 h) tests.  相似文献   

13.
A novel microstructure of in situ produced TiC/TiB2/MoSi2 composite and its mechanical properties were investigated. The results indicate that TiC/TiB2/MoSi2 composites can be fabricated by reactive hot pressing the mixed powders of MoSi2, B4C, and Ti. A novel microstructure consisting of hollow particles of TiC and TiB2 grains in an MoSi2 matrix was obtained. Grains of in situ produced TiC and TiB2 were much finer, from 100 to 400 nm. During the fracture process, hollow particles relieved crack tip stress, encouraging crack branching and changing the original direction of the main crack. The highest bending strength of this composite achieved was 480 MPa, twice that of monolithic MoSi2, and the greatest fracture toughness of the composite reached 5.2 MPa·m1/2.  相似文献   

14.
Titanium diboride (TiB2) was hot-pressed at a temperature of 1800°C, and silicon nitride (Si3N4) was added as a sintering aid. The amount of Si3N4 that was added had a significant influence on the sinterability and mechanical properties of the TiB2. When a small amount (2.5 wt%) of Si3N4 was added, the Si3N4 reacted with titania (TiO2) that was present on the surface of the TiB2 powder to form titanium nitride (TiN), boron nitride (BN), and amorphous silica (SiO2). The elimination of TiO2 suppressed the grain growth effectively, which led to an improvement in the densification of TiB2. The formation of SiO2 also was deemed beneficial for densification. The mechanical properties-especially, the flexural strength-were enhanced remarkably through these improvements in the sinterability and microstructure. On the other hand, when a large amount (greaterthan equal to5 wt%) of Si3N4 was added, the mechanical properties were not improved much, presumably because of the extensive formation of a glassy Si-Ti-O-N phase at the grain boundaries.  相似文献   

15.
Using spark plasma sintering techniques, homogeneous microstructures of titanium diboride (TiB2) ceramics were obtained by sintering of boron and titanium powder mixtures. The results show that an additional electric current is essential for achieving a large number of evenly distributed ignition points that ensure that the self-propagating reaction simultaneously takes place within the entire volume. The effects of the electric current, the use of Mg additions, and the heating rates on the resulting TiB2 ceramic densities and microstructures are discussed.  相似文献   

16.
TiB2–Cu ceramic–metal composites were prepared by combustion synthesis of elemental titanium, boron, and copper powders. The synthesized product consisted of two phases: TiB2 and copper. The addition of copper improved the strength and fracture toughness, thermal expansion coefficient, and thermal conductivity of TiB2. Thermal shock and ablation resistances of TiB2–Cu composites were studied using a plasma torch arc heater. Monolithic TiB2 failed catastrophically when the plasma arc flow reached the specimen surface. However, no cracks were found on the ablation surface of the TiB2–Cu ceramic–metal composites. The fractional mass loss was 4.09% for a TiB2–40Cu composite, which was close to the traditional W/Cu alloys. Volatilization of metal binder and mechanical erosion of TiB2 were observed to be the major ablation mechanisms. An ablation process model is proposed for the TiB2–Cu composites.  相似文献   

17.
The resistance of several polycrystalline TiB2 materials to penetration by liquid aluminum at 970°C was investigated, and their microstructures were characterized. The grain-boundary properties of individual diborides rather than the intrinsic properties of TiB2 are thought to control stress corrosion susceptibility in liquid metal environments.  相似文献   

18.
In the present investigation, we explore the feasibility of using TiSi2 as a sintering aid to densify titanium diboride (TiB2) at a lower sintering temperature (<1700°C). The hot-pressing experiments were conducted in the temperature range of 1400°–1650°C for 1 h in an argon atmosphere and TiSi2 addition to TiB2 was restricted up to 10 wt%, with an overall objective to densify the materials with a fine microstructure as well as to assess the feasibility of enhancing the mechanical and electrical properties. When all the materials were hot pressed at 1650°C, the hot-pressed TiB2– X % TiSi2 ( X =0, 2.5, 5, 10 wt%) composites were found to be densified to more than 98%ρth (theoretical density), except monolithic TiB2 (∼94%ρth). An interesting observation is the formation of a Ti5Si3 phase and this phase formation is described by thermodynamically feasible sintering reactions. Our experimental results suggest that the optimal TiB2–5 wt% TiSi2 composite can exhibit an excellent combination of properties, including a high hardness of 25 GPa, an elastic modulus of 518 GPa, an indentation toughness of ∼6 MPa·m1/2, a four-point flexural strength of more than 400 MPa, and an electrical resistivity of 10 μΩ·cm.  相似文献   

19.
The use of monoclinic ZrO2 as an additive improves the mechanical properties of TiB2-based composites without the use of stabilizers. In particular, TiB2-30% ZrO2 compacts exhibited a transverse rupture strength of 800 MN/m2, few pores, and a KI c of 5 MPa·m1/2. The high strength and toughness are thought to result mainly from the presence of partially stabilized tetragonal ZrO2 and from solid solution of (TiZr)B2 formed in sintering.  相似文献   

20.
Reactive hot pressing of Ti and BN powder mixtures is used to produce dense TiN x –TiB2 composites. The effect of excess Ti along with a small addition, ∼1 wt% Ni, on the reaction and densification of the composite was investigated. A composite of ∼99.9% relative density (RD) was produced at 1200°C at 40 MPa for 30 min with 1 wt% Ni, whereas composites produced without Ni are porous and contain residual reactants. The microstructural studies on composite samples with excess Ti produced at short durations indicate the presence of a transient (Ni–Ti) phase from which Ti is finally removed to form substoichiometric TiN x . The hardness of the dense TiN x –TiB2 composite is ∼22 GPa. The densification mechanism in this system is contrasted with the role of nonstoichiometry in the Zr–B4C system.  相似文献   

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