Production of Hybrid Nanocomposites Based on Iron Waste Reinforced with Niobium Carbide/Granite Nanoparticles with Outstanding Strength and Wear Resistance for Use in Industrial Applications
Abstract
:1. Introduction
2. Experimental Set Up
2.1. Samples Preparation
2.2. Description of Starting Materials and Milled Nanocomposites Powders
2.3. Properties of the Sintered Nanocomposites
2.3.1. Physical Properties
2.3.2. Thermal Analysis
2.3.3. Mechanical Properties
2.3.4. Tribology Test
3. Results and Discussions
3.1. XRD Analyses
3.2. TEM Observations
3.3. Characterization of the Sintered Samples by SEM
3.4. Physical Parameters
3.5. Thermal Expansion
3.6. Mechanical Properties
- According to Equation (5), the inclusion of uniformly distributed NbC and granite reinforcements can increase the microhardness of nanocomposites [42].
- It is known that the microhardness (H) and the rest of the mechanical properties have a strong relationship with the grain size (d) based on the Hall–Petch effect, as shown in Equation (15) [43]. The addition of ceramics increases the dislocation density as well as grain refinement, which leads to an increase in the grain boundaries. Thus, the dislocation movement is hindered, which leads to an improvement in strength and other mechanical properties [44].
- The Orowan mechanism states that the strength of composite materials results from the interaction between reinforcing particles and dislocations. After dislocations travel through them, the remaining dislocation loops are positioned around each particle. In fact, these particles increase the material’s strength by preventing the movement of dislocations [45].
- The interfacial contact between the Fe alloy and the ceramics particles is sufficient, as evidenced by the effective load transfer (σefficient) from the Fe alloy matrix to the NbC and granite reinforcement during compressive testing, which helps to strengthen the nanocomposites.
3.7. Wear Analysis
4. Conclusions
- It was discovered that the PM approach, in addition to having a high capacity to evenly distribute the hybrid reinforcement in the Fe alloy matrix and minimize the particle size of the milled powders, is ideal for obtaining Fe waste in powder form.
- The particle and crystallite sizes decreased with the increase of the ceramics content, reaching 38.25 and 17.82 nm for the sample that contained 4 vol.% NbC and 8 vol.% granite fume (FBG8).
- The bulk density and relative density of the Fe–Cu alloy matrix decreased gradually with the increase of the contents of hybrid reinforcements, while the apparent porosity increased.
- The coefficient of thermal expansion (CTE) of the Fe alloy was reduced with an increase in the percentage of the reinforcement particle size up to 9.25 × 10−6/°C for sample FNG8. In other words, the CTE of this sample decreased by about 26% compared to the non-hardened alloy (FNG0), which indicated high dimensional stability.
- The remarkable improvement in microhardness, ultimate strength and longitudinal modulus reached 269.9, 383.1 and 401.62 GPa for the sample, which improved about 93.7, 74.8 and 68.8% compared to the FNG0 sample.
- The Fe alloy’s wear resistance was considerably enhanced by introducing hybrid reinforcement and increased sliding slip, which decreased with increasing applied stresses. The wear rates for the FNG0 and FNG8 samples were 0.0222 and 0.0092 mg/s, respectively, after a sliding distance of 300 m and an applied force of 10 N, while the wear rates were 0.00138 and 0.00052 mg/s, respectively, after a sliding distance of 1500 m at the same applied load.
- Based on the promising results obtained, it can be concluded that the prepared nanocomposites can be useful for application in automobile brakes, gear boxes, and wind turbines.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Element | Fe | C | Mn | Al | P | Others |
---|---|---|---|---|---|---|
wt.% | 99.78 | 0.06 | 0.04 | 0.03 | 0.02 | 0.07 |
Element | SiO2 | Al2O3 | Fe2O3 | CaO | MgO | K2O | TiO2 | Residue |
---|---|---|---|---|---|---|---|---|
wt.% | 62.89 | 18.19 | 6.19 | 4.97 | 2.64 | 3.42 | 1.58 | 0.12 |
Sample Code | Composition (Vol.%) | |||
---|---|---|---|---|
Fe | Cu | NbC | Granite | |
FNG0 | 93 | 10 | 0 | 0 |
FNG1 | 91 | 10 | 0.5 | 1 |
FNG2 | 89 | 10 | 1 | 2 |
FNG4 | 85 | 10 | 2 | 4 |
FNG8 | 77 | 10 | 4 | 8 |
Sample | Crystal Size (nm) | Lattice Strain (%) | Dislocation Density (%) |
---|---|---|---|
FNG0 | 32.47 | 0.2882 | 9.49 × 10−4 |
FNG1 | 30.26 | 0.3092 | 10.92 × 10−4 |
FNG2 | 27.18 | 0.3443 | 13.54 × 10−4 |
FNG4 | 22.77 | 0.4110 | 19.30 × 10−4 |
FNG8 | 17.82 | 0.5251 | 31.49 × 10−4 |
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Issa, S.A.M.; Almutairi, A.M.; Albalawi, K.; Dakhilallah, O.K.; Zakaly, H.M.H.; Ene, A.; Abulyazied, D.E.; Ahmed, S.M.; Youness, R.A.; Taha, M.A. Production of Hybrid Nanocomposites Based on Iron Waste Reinforced with Niobium Carbide/Granite Nanoparticles with Outstanding Strength and Wear Resistance for Use in Industrial Applications. Nanomaterials 2023, 13, 537. https://doi.org/10.3390/nano13030537
Issa SAM, Almutairi AM, Albalawi K, Dakhilallah OK, Zakaly HMH, Ene A, Abulyazied DE, Ahmed SM, Youness RA, Taha MA. Production of Hybrid Nanocomposites Based on Iron Waste Reinforced with Niobium Carbide/Granite Nanoparticles with Outstanding Strength and Wear Resistance for Use in Industrial Applications. Nanomaterials. 2023; 13(3):537. https://doi.org/10.3390/nano13030537
Chicago/Turabian StyleIssa, Shams A. M., Abeer M. Almutairi, Karma Albalawi, Ohoud K. Dakhilallah, Hesham M. H. Zakaly, Antoaneta Ene, Dalia E. Abulyazied, Sahar M. Ahmed, Rasha A. Youness, and Mohammed A. Taha. 2023. "Production of Hybrid Nanocomposites Based on Iron Waste Reinforced with Niobium Carbide/Granite Nanoparticles with Outstanding Strength and Wear Resistance for Use in Industrial Applications" Nanomaterials 13, no. 3: 537. https://doi.org/10.3390/nano13030537
APA StyleIssa, S. A. M., Almutairi, A. M., Albalawi, K., Dakhilallah, O. K., Zakaly, H. M. H., Ene, A., Abulyazied, D. E., Ahmed, S. M., Youness, R. A., & Taha, M. A. (2023). Production of Hybrid Nanocomposites Based on Iron Waste Reinforced with Niobium Carbide/Granite Nanoparticles with Outstanding Strength and Wear Resistance for Use in Industrial Applications. Nanomaterials, 13(3), 537. https://doi.org/10.3390/nano13030537