Author Contributions
Conceptualization, A.D. and N.R.; Methodology, A.D. and B.L.; Formal Analysis, A.D.; Investigation, A.D., B.L. and N.R.; Software, A.D., N.R., J.P., Ł.J.O. and B.L.; Literature review, A.D., N.R. and Ł.J.O.; Resources, A.D. and B.L.; Data Curation, A.D., J.P. and B.L.; Writing—Original Draft Preparation, B.L. and A.D; Writing—Review & Editing, A.D. and J.P.; Visualization, B.L. and J.P.; Supervision, A.D.; Project Administration, A.D. and B.L.; Funding acquisition, A.D., N.R., B.L. and J.P. All authors have read and agreed to the published version of the manuscript.
Figure 1.
Grains of the Cr3C2–NiCr powder.
Figure 1.
Grains of the Cr3C2–NiCr powder.
Figure 2.
Cr3C2–NiCr coating surface microstructure (SSS after the APS process).
Figure 2.
Cr3C2–NiCr coating surface microstructure (SSS after the APS process).
Figure 3.
Microstructure of the Cr3C2–NiCr coating after the APS process for SSS.
Figure 3.
Microstructure of the Cr3C2–NiCr coating after the APS process for SSS.
Figure 4.
Morphology of the laser-alloyed tracks of surface of SSSs for sample 1.
Figure 4.
Morphology of the laser-alloyed tracks of surface of SSSs for sample 1.
Figure 5.
Morphology of the laser-alloyed tracks of surface of SSSs for sample 2.
Figure 5.
Morphology of the laser-alloyed tracks of surface of SSSs for sample 2.
Figure 6.
Morphology of the laser-alloyed tracks of surface of SSSs for sample 3.
Figure 6.
Morphology of the laser-alloyed tracks of surface of SSSs for sample 3.
Figure 7.
Cross-section of the entire alloyed zone for sample 1.
Figure 7.
Cross-section of the entire alloyed zone for sample 1.
Figure 8.
Cross-section of the entire alloyed zone for sample 2.
Figure 8.
Cross-section of the entire alloyed zone for sample 2.
Figure 9.
Cross-section of the entire alloyed zone for sample 3.
Figure 9.
Cross-section of the entire alloyed zone for sample 3.
Figure 10.
Microstructure of the central part of the alloyed zone for (a) sample 1; (b) sample 2; (c) sample 3.
Figure 10.
Microstructure of the central part of the alloyed zone for (a) sample 1; (b) sample 2; (c) sample 3.
Figure 11.
Line mapping analysis EDS on cross-section after laser alloying process for sample 1.
Figure 11.
Line mapping analysis EDS on cross-section after laser alloying process for sample 1.
Figure 12.
Line mapping analysis EDS on cross-section after laser alloying process for sample 2.
Figure 12.
Line mapping analysis EDS on cross-section after laser alloying process for sample 2.
Figure 13.
Line mapping analysis EDS on cross-section after laser alloying process for sample 3.
Figure 13.
Line mapping analysis EDS on cross-section after laser alloying process for sample 3.
Figure 14.
Diffractograms after laser alloying process for (a) sample 1, (b) sample 2, and (c) sample 3.
Figure 14.
Diffractograms after laser alloying process for (a) sample 1, (b) sample 2, and (c) sample 3.
Figure 15.
Topography of surface: (a) sample 1 (1 m/min); (b) sample 2 (2 m/min); (c) sample 3 (1 m/min); (d) sample of the Cr3C2–NiCr coating.
Figure 15.
Topography of surface: (a) sample 1 (1 m/min); (b) sample 2 (2 m/min); (c) sample 3 (1 m/min); (d) sample of the Cr3C2–NiCr coating.
Figure 16.
Summary of the results of hardness measurements: (a) sample 1; (b) sample 2; (c) sample 3.
Figure 16.
Summary of the results of hardness measurements: (a) sample 1; (b) sample 2; (c) sample 3.
Figure 17.
Marginal means plot for AZ hardness with respect to the lambda (share of AISI316L) and rate (speed of alloying) explanatory variables.
Figure 17.
Marginal means plot for AZ hardness with respect to the lambda (share of AISI316L) and rate (speed of alloying) explanatory variables.
Figure 18.
Marginal means plot for HAZ hardness with respect to the lambda (share of AISI316L) and rate (speed of alloying) explanatory variables.
Figure 18.
Marginal means plot for HAZ hardness with respect to the lambda (share of AISI316L) and rate (speed of alloying) explanatory variables.
Table 1.
Chemical composition of steel powders (% wt.).
Table 1.
Chemical composition of steel powders (% wt.).
Powder Grade | Cr | Ni | Mo | Si | Mn | C | S | Fe |
---|
AISI 316L
| 16.80 | 12.00 | 2.00 | 0.90 | 0.10 | 0.022 | 0.005 | Balance |
AISI 409L
| 11.86 | 0.14 | 0.02 | 0.82 | 0.14 | 0.020 | 0.010 | Balance |
Table 2.
Percentages of powders in each series of samples (% wt.).
Table 2.
Percentages of powders in each series of samples (% wt.).
Series of Samples | Powder Grade |
---|
AISI 316L | AISI 409L |
---|
1
| 20 % | 80 % |
2
| 50 % | 50 % |
3
| 80% | 20 % |
Table 3.
Parameters of laser alloying process.
Table 3.
Parameters of laser alloying process.
Parameters | Series of Samples |
---|
1 | 2 | 3 |
---|
Laser power (kW)
| 3 | 3 | 3 |
Speed of movement (m/min)
| 1 | 1 1.5 2 | 1 1.5 2 |
Gas Ar (L/min)
| 10 | 10 | 10 |
Repetition rate (Hz)
| 50,000 | 50,000 | 50,000 |
Distance of nozzle to material (mm)
| 35 | 35 | 35 |
Laser beams (mm)
| 1 × 10 | 1 × 10 | 1 × 10 |
Operating mode
| Continuous | Continuous | Continuous |
Table 4.
Results of the alloyed cross-section.
Table 4.
Results of the alloyed cross-section.
Series of Samples | Parameters of Laser Alloying Process | Width (μm) | Maximum Depth (μm) |
---|
1
| 1 m/min | 9280.00 | 175.79 |
2
| 1 m/min | 9690.00 | 232.69 |
1.5 m/min | 9540.00 | 163.01 |
2 m/min | 9510.00 | 147.03 |
3
| 1 m/min | 9800.00 | 282.55 |
1.5 m/min | 9520.00 | 228.21 |
2 m/min | 9500.00 | 191.79 |
Table 5.
EDX–analysis after laser alloying (AZ—alloying zone, HAZ—heat-affected zone, NM—native material) for sample 1.
Table 5.
EDX–analysis after laser alloying (AZ—alloying zone, HAZ—heat-affected zone, NM—native material) for sample 1.
Parameters of Laser Alloying Process | Element | Weight (%) |
---|
AZ | HAZ | NM |
---|
1 m/min
| Cr | 28.46 | 25.94 | 12.72 |
Ni | 6.57 | 6.20 | – |
C | 9.67 | 7.19 | 5.74 |
Fe | 53.52 | 59.13 | 76.83 |
Si | 0.47 | 0.48 | 2.00 |
Table 6.
EDX–analysis after laser alloying (AZ—alloying zone, HAZ—heat-affected zone, NM—native material) for sample 2.
Table 6.
EDX–analysis after laser alloying (AZ—alloying zone, HAZ—heat-affected zone, NM—native material) for sample 2.
Parameters of Laser Alloying Process | Element | Weight (%) |
---|
AZ | HAZ | NM |
---|
1 m/min
| Cr | 22.08 | 20.27 | 13.51 |
Ni | 8.30 | 7.17 | 5.61 |
C | 5.87 | 4.50 | 2.51 |
Fe | 61.12 | 65.46 | 75.41 |
Si | 0.51 | 0.50 | 0.82 |
1.5 m/min
| Cr | 29.98 | 21.48 | 12.81 |
Ni | 8.20 | 7.32 | 2.01 |
C | 11.52 | 6.71 | 8.87 |
Fe | 46.80 | 60.93 | 72.59 |
Si | 0.32 | 0.71 | 0.96 |
2 m/min
| Cr | 26.97 | 22.16 | 14.33 |
Ni | 8.66 | 7.66 | 8.16 |
C | 10.99 | 5.82 | 3.97 |
Fe | 50.80 | 61.48 | 70.04 |
Si | 0.38 | 0.72 | 0.73 |
Table 7.
EDX–analysis after laser alloying (AZ—alloying zone, HAZ—heat-affected zone, NM—native material) for sample 3.
Table 7.
EDX–analysis after laser alloying (AZ—alloying zone, HAZ—heat-affected zone, NM—native material) for sample 3.
Parameters of Laser Alloying Process | Element | Weight (%) |
---|
AZ | HAZ | NM |
---|
1 m/min
| Cr | 16.85 | 16.12 | 15.84 |
Ni | 9.32 | 9.88 | 9.96 |
C | 1.99 | 2.46 | 4.96 |
Fe | 68.33 | 68.19 | 64.84 |
Si | 0.93 | 0.70 | 0.58 |
1.5 m/min
| Cr | 27.15 | 16.35 | 15.74 |
Ni | 12.21 | 10.75 | 10.01 |
C | 5.47 | 4.06 | 4.09 |
Fe | 52.08 | 64.96 | 65.38 |
Si | 0.54 | 1.02 | 0.99 |
2 m/min
| Cr | 16.34 | 16.36 | 15.56 |
Ni | 9.32 | 9.59 | 9.81 |
C | 3.14 | 2.79 | 6.57 |
Fe | 68.24 | 68.27 | 64.10 |
Si | 0.67 | 0.75 | 0.70 |
Table 8.
Parameters of the SGS of the Cr3C2–NiCr coating.
Table 8.
Parameters of the SGS of the Cr3C2–NiCr coating.
SGS Parameters | Cr3C2–NiCr Coating |
---|
Sq (μm) | 7.73 |
Ssk | 0.46 |
Sku | 3.56 |
Sp (μm) | 65.10 |
Sv (μm) | 32.07 |
Sz (μm) | 97.19 |
Sa (μm) | 6.01 |
Table 9.
Parameters of the SGS after laser alloying (sample 1).
Table 9.
Parameters of the SGS after laser alloying (sample 1).
SGS Parameters | Speed of Movement (m/min) |
---|
1 |
---|
Sq (μm) | 5.90 |
Ssk | 0.44 |
Sku | 2.89 |
Sp (μm) | 24.66 |
Sv (μm) | 21.68 |
Sz (μm) | 46.34 |
Sa (μm) | 4.70 |
Table 10.
Parameters of the SGS after laser alloying (sample 2).
Table 10.
Parameters of the SGS after laser alloying (sample 2).
SGS Parameters | Speed of Movement (m/min) |
---|
1 | 1.5 | 2 |
---|
Sq (μm) | 5.54 | 11.96 | 10.07 |
Ssk | 0.68 | 0.98 | 0.26 |
Sku | 3.12 | 4.25 | 2.75 |
Sp (μm) | 21.21 | 55.45 | 36.03 |
Sv (μm) | 14.27 | 24.26 | 25.62 |
Sz (μm) | 35.48 | 79.68 | 61.65 |
Sa (μm) | 4.42 | 9.58 | 8.26 |
Table 11.
Parameters of the SGS after laser alloying (sample 3).
Table 11.
Parameters of the SGS after laser alloying (sample 3).
SGS Parameters | Speed of Movement (m/min) |
---|
1 | 1.5 | 2 |
---|
Sq (μm) | 13.36 | 23.27 | 10.80 |
Ssk | −1.61 | −1.17 | −1.07 |
Sku | 8.67 | 5.32 | 5.82 |
Sp (μm) | 24.39 | 41.36 | 37.86 |
Sv (μm) | 96.56 | 112.30 | 76.15 |
Sz (μm) | 120.95 | 153.67 | 114.01 |
Sa (μm) | 9.84 | 17.72 | 7.85 |
Table 12.
Hardness measurements of specimens (AZ—alloying zone, HAZ—heat-affected zone, NM—native material).
Table 12.
Hardness measurements of specimens (AZ—alloying zone, HAZ—heat-affected zone, NM—native material).
Series of Samples | Parameters of Laser Alloying Process | Cr3C2–NiCr Coating | Hardness (HV 0.1) |
---|
AZ | HAZ | NM |
---|
1
| 1 m/min | 762 | 554 | 424 | 188 |
2
| 1 m/min | 676 | 463 | 263 | 179 |
1.5 m/min | 480 | 269 |
2 m/min | 482 | 272 |
3
| 1 m/min | 723 | 336 | 184 | 128 |
1.5 m/min | 256 | 170 |
2 m/min | 297 | 162 |
Table 13.
ANOVA of AZ hardness with respect to the lambda and rate explanatory variables.
Table 13.
ANOVA of AZ hardness with respect to the lambda and rate explanatory variables.
Source | DF | Seq SS | Contribution | Adj SS | Adj MS | F-Value | p-Value |
---|
lambda | 2 | 72,171 | 95.48% | 63796 | 31,898.1 | 26.78 | 0.036 |
rate | 2 | 1036 | 1.37% | 1036 | 518.2 | 0.44 | 0.697 |
Error | 2 | 2382 | 3.15% | 2382 | 1191.2 | | |
Total | 6 | 75,589 | 100.00% | | | | |
Table 14.
ANOVA of HAZ hardness with respect to the lambda and rate explanatory variables.
Table 14.
ANOVA of HAZ hardness with respect to the lambda and rate explanatory variables.
Source | DF | Seq SS | Contribution | Adj SS | Adj MS | F-Value | p-Value |
---|
lambda | 2 | 49,494.9 | 99.42% | 40,624.2 | 20,312.1 | 164.47 | 0.006 |
rate | 2 | 43.0 | 0.09% | 43.0 | 21.5 | 0.17 | 0.852 |
Error | 2 | 247.0 | 0.50% | 247.0 | 123.5 | | |
Total | 6 | 49,784.9 | 100.00% | | | | |