| Literature DB >> 31775276 |
Adedayo Sheriff Adeniyi1, Bilal Anjum Ahmed2, Abbas Saeed Hakeem3, Faheemuddin Patel1, Akolade Idris Bakare3, Anwar Ul-Hamid4, Amir Azam Khan5, Muhammad Ali Ehsan3, Tahir Irfan Khan6.
Abstract
This study investigates the effect of micron-sized nickel particle additions on the microstructural, thermal, and mechanical property changes of α-sialon ceramic composites. The α-sialon/Ni composites were synthesized with an increasing amount of Ni (10-40 wt.%) using the spark plasma sintering technique and nanosized alpha precursors at a relatively low synthesis temperature of 1500 °C with a holding time of 30 min in each case. The density of the samples increased with the increase in Ni content of up to 15 wt.% and, with the further increase in Ni content, it became almost constant with a slight decrease. Furthermore, thermal conductivity and thermal expansion properties of Ni-sialon composites improved slightly with the inclusion of 10 wt.% Ni. The addition of Ni to α-sialon matrix resulted in a decrease in the hardness of the composites from HV10 21.6 to HV10 16.3, however the presence of Ni as a softer interfacial phase resulted in a substantial increase in the fracture toughness of these composites. Fracture toughness was found to increase by approximately 91% at 40 wt.% Ni addition.Entities:
Keywords: densification; mechanical properties; microstructure; sialon–nickel composite; spark plasma sintering; thermal properties; α-sialon
Year: 2019 PMID: 31775276 PMCID: PMC6956311 DOI: 10.3390/nano9121682
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
The weight percentage of the Ni (micron-size) additive and α-sialon powder precursors.
| Sample No. | Ni wt.% | CaO wt.% | SiO2 wt.% | AlN wt.% | Si3N4 wt.% |
|---|---|---|---|---|---|
| S1 | 0 | 7.572 | 2.028 | 19.370 | 71.030 |
| S2 | 10 | 6.815 | 1.825 | 17.433 | 63.927 |
| S3 | 15 | 6.436 | 1.724 | 16.464 | 60.375 |
| S4 | 20 | 6.058 | 1.622 | 15.496 | 56.824 |
| S5 | 25 | 5.679 | 1.521 | 14.527 | 53.272 |
| S6 | 30 | 5.300 | 1.420 | 13.559 | 49.721 |
| S7 | 40 | 4.543 | 1.217 | 11.622 | 42.618 |
Figure 1Spark plasma sintering (SPS) densification curve illustrating the synthesis mechanism of Ni + sialon composite (sample S2).
Figure 2FESEM micrographs (a–g) of the sintered α-sialon samples with various wt.% Ni contents of 0, 10, 15, 20, 25, 30, and 40, respectively. The gray region reveals the sialon matrix, while the white region represents Ni particles dispersed in the sialon matrix. The red circles in figures (b) and (c) indicate the pinholes developed upon fracture due to the pullout of Ni particles.
Figure 3Micro-CT images of the alpha (α)-sialon samples containing (a) 10 and (b) 40 wt.% Ni.
Figure 4Room temperature XRD plots of the sintered Sialon samples with different Ni content.
Figure 5(a) High-temperature XRD plots of the sintered Sialon with 40 wt.% Ni and (b) XRD of nickel powder at room temperature.
Properties of the samples sintered at 1500 °C by SPS. Sample IDs are according to Table 1.
| Sample IDs | S1 | S2 | S3 | S4 | S5 | S6 | S7 |
|---|---|---|---|---|---|---|---|
| Ni wt.% | 0 | 10 | 15 | 20 | 25 | 30 | 40 |
| Density (g/cm3) | 3.16(4) | 3.35(6) | 3.39(4) | 3.33(8) | 3.30(6) | 3.30(7) | 3.30(6) |
| Theoretical Density (g/cm3) | 3.25(6) | 3.47(5) | 3.59(4) | 3.72(5) | 3.86(6) | 4.01(8) | 4.36(4) |
| Relative Density * | 98 | 97 | 95 | 90 | 86 | 83 | 76 |
| Thermal Conductivity (W/m·k) ** | 5.67 | 5.81 | 5.78 | 5.74 | 5.80 | 5.81 | 5.81 |
| Thermal Expansion (ppm·K−1) | 2.62 | 3.17 | 2.96 | 2.89 | 2.84 | 2.75 | 2.70 |
| Hardness HV10
| 21.6(6) | 18.3(8) | 17.5(5) | 17.1(6) | 16.6(7) | 16.5(7) | 16.3(5) |
| Fracture Toughness K1c (MPa*m1/2) | 7.3(6) | 7.8(8) | 8.2(4) | 8.8(7) | 10.2(5) | 12.1(5) | 14.1(6) |
* Density of Ni 8.96 g/cm3 ** Thermal Conductivity at 25 °C.
Figure 6Image shows FESEM micrograph of the crack propagation path within the sialon/Ni matrix. FESEM image, along with the schematic, represents the toughness strengthening mechanisms of crack deflection and blunting.