Numerical Simulation and Modeling of Powder Flow for Rectangular Symmetrical Nozzles in Laser Direct Energy Deposition
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Experimental Setup
2.3. Methods
2.3.1. Physical Model of the Rectangular Powder Nozzle
2.3.2. Assumptions
- (1)
- Since the volume fraction of powder particles in the feeding gas is less than 10%, the discrete phase model (DPM) is utilized to simulate the movement of powder particles [3]. The interactions among particles are ignored; the Lagrange method and Euler method are used to calculate the movement of particles and gas, respectively.
- (2)
- The heat transfer between the powder and the laser during flight is negligible; the particle shape and flight track have also not been affected.
- (3)
- The particle size conforms to the Rosin–Rammler distribution [14].
- (4)
- The inertia, gravity, and drag force of powder particles are considered [7].
- (5)
- (6)
- The steady state is adopted to solve the powder flow field.
2.3.3. Parameter Configurations for Solution
3. Results and Discussion
3.1. Dynamic Properties of the Powder Flow Field
3.2. Powder Concentration Distribution of the Rectangular Nozzle
3.2.1. Location of Powder Stream Focal Plane
3.2.2. Spatial Powder Concentration Distribution
3.2.3. Verification of Powder Concentration Distribution on the Focal Plane
3.3. Powder Spot on the Focal Plane
3.4. Mathematical Model of Powder Flow Field for Rectangular Nozzle
4. Conclusions
- (1)
- The powder focal plane exhibits two characteristic phenomena: peak powder concentration and minimal particle velocity. The locations of the powder flow intersections and the focal plane strongly depend on the nozzle geometry. Powder feeding parameters (carrier gas flow rate, shielding gas flow rate, and powder feeding rate) have negligible effects on the waist position of the powder flow.
- (2)
- The maximum powder concentration on the focal plane has a linear positive correlation with the powder feeding rate and decreases exponentially with the increase in the powder gas flow rate. Different from conventional annular nozzles, wide-beam LDED employs rectangular powder delivery profiles to achieve optimal laser-powder coupling.
- (3)
- Round-beam LDED demonstrates a typical Gaussian powder concentration profiles in both the fast axis and slow axis. Wide-beam LDED exhibits hybrid distribution patterns: Gaussian distribution along the scanning direction and quasi-uniform flat-top distribution perpendicular to the scanning direction. This optimized energy-powder spatial coupling configuration improves clad layer homogeneity.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Cr | Ni | Mn | Mo | Si | P | C | Fe | S |
---|---|---|---|---|---|---|---|---|
16.2 | 12.6 | 0.62 | 2.48 | 0.85 | 0.011 | 0.006 | Bal. | 0.006 |
Size Distribution (μm) | Flow Rate (s/50 g) | Degree of Spherical | |||
---|---|---|---|---|---|
D10 | D50 | D90 | D97 | ||
66.71 | 108.8 | 177.6 | 219.6 | 15.19 | 0.835 |
Para. | a/mm | b/mm | g/mm | l/mm | β/° | e/mm | h/mm | m/mm | n/mm |
---|---|---|---|---|---|---|---|---|---|
Value | 22 | 21 | 1 | 82 | 76 | 7 | 35 | 34 | 26 |
Phase | Parameter | Value |
---|---|---|
Continuous phase (argon) | Density | 1.613 kg/m3 |
Viscosity | 2.262 × 10−5 Pa.s | |
Discrete phase (powder) | Density | 7800 kg/m3 |
Minimum size | 67.3 μm | |
Maximum size | 219.8 μm | |
Average size | 110 μm | |
Coefficient of rebound | 0.95 |
Qf (L/min) | (g/min) | Powder Spot Size (mm) |
---|---|---|
6 | 30 | 7.20 × 2.33 |
8 | 30 | 7.15 × 2.28 |
10 | 30 | 7.10 × 2.33 |
12 | 30 | 7.10 × 2.37 |
10 | 16.45 | 7.15 × 2.36 |
10 | 21.41 | 7.18 × 2.35 |
10 | 29.35 | 7.10 × 2.33 |
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Hu, B.; Wang, J.; Zhang, L. Numerical Simulation and Modeling of Powder Flow for Rectangular Symmetrical Nozzles in Laser Direct Energy Deposition. Coatings 2025, 15, 744. https://doi.org/10.3390/coatings15070744
Hu B, Wang J, Zhang L. Numerical Simulation and Modeling of Powder Flow for Rectangular Symmetrical Nozzles in Laser Direct Energy Deposition. Coatings. 2025; 15(7):744. https://doi.org/10.3390/coatings15070744
Chicago/Turabian StyleHu, Bin, Junhua Wang, and Li Zhang. 2025. "Numerical Simulation and Modeling of Powder Flow for Rectangular Symmetrical Nozzles in Laser Direct Energy Deposition" Coatings 15, no. 7: 744. https://doi.org/10.3390/coatings15070744
APA StyleHu, B., Wang, J., & Zhang, L. (2025). Numerical Simulation and Modeling of Powder Flow for Rectangular Symmetrical Nozzles in Laser Direct Energy Deposition. Coatings, 15(7), 744. https://doi.org/10.3390/coatings15070744