| name | cold-spraying |
| description | Cold spray coating — kinetic energy deposition, critical velocity, bonding mechanism, powder materials (Cu/Ti/Al/MCrAlY), coating properties, process parameters, HVAF comparison, SAE AMS2440. |
| metadata | {"priority":7,"promptSignals":{"phrases":["cold spray","cold spraying","kinetic spray","cold gas dynamic spray","cold spray coating"],"minScore":3}} |
Cold Spray Coating — Complete Skill
Process Fundamentals
Cold spray: supersonic particles (300–1200 m/s) impact substrate at solid state (no melting) → bonding through adiabatic shear instability and plastic deformation
Temperature: particles < melting point; typically 100–600°C gas temperature (vs. 2000–3500°C for thermal spray)
Pressure: 20–70 bar driving gas (N₂ or He)
No oxidation: particles bond without melting → minimal oxide formation
Compressive residual stress: particle impact → compressive stress (unlike tensile in APS)
No phase transformation: feedstock retained (WC, cermets, reactive metals)
Critical Velocity
Critical particle velocity for bonding:
v_crit = √[4σ_f (1 + C_p T_p / (σ_f/ρ))] / √ρ [m/s; simplified]
Empirical model (Assadi et al.):
v_crit = -0.25 (T_m - T_i) + 667/(ρ_p) - 14 (σ_UTS/ρ) + 0.08 T_m + 7 c_p
Practical critical velocities:
| Material | v_crit [m/s] |
|---|
| Copper | 570–600 |
| Aluminum | 680–720 |
| Titanium | 700–900 |
| Steel | 550–650 |
| MCrAlY | 750–850 |
| Ni | 620–650 |
Above v_crit: adiabatic shear at particle-substrate interface → intimate bonding
Below v_crit: particles bounce off (erosion of substrate); no coating builds
Particle velocity from nozzle:
v_p = v_gas × [1 - exp(-π c_D ρ_gas r_nozzle² L / (4 m_p))] [approximate]
Or: use isentropic flow + drag equations; typically v_p = 0.85–0.95 × v_gas
Gas velocity (converging-diverging nozzle):
At exit: v_gas = M_exit × a_exit [M = exit Mach from nozzle design; a = sound speed at T_exit]
Gas Selection
Nitrogen (N₂):
Lower molecular weight (28 vs. He 4) → lower particle velocity
P = 20–70 bar; T = 300–800°C
Lower cost; most common for Cu, Al, Ni
v_gas ≈ 500–700 m/s at nozzle exit
Helium (He):
4× higher sound speed → much higher particle velocity
v_gas ≈ 1200–1500 m/s; much higher v_p possible
Use for: high-strength alloys requiring high v_crit (Ti, steel, ceramics); expensive (~10× N₂)
Often He at 5–15 bar gives same v_p as N₂ at 70 bar
Powder Materials and Properties
Copper (Cu)
Applications: electrical conductivity (additive repair, bus bar, electronics); corrosion barrier
Process: N₂ at 30 bar, 500°C; v_p = 600–800 m/s; easily exceeds v_crit
Coating properties:
Porosity: < 0.5%; electrical conductivity: 85–90% IACS
Hardness: 120–150 HV (work-hardened vs. 70–80 HV annealed Cu)
Thermal conductivity: 340–380 W/(m·K)
Titanium (Ti, CP Ti)
Applications: aircraft repair, corrosion protection, bone implant coating
Process: He or high-P N₂; T = 600–700°C; v_p = 800–1000 m/s
Properties:
Porosity: 1–3% (N₂ spray); < 0.5% (He spray)
Oxygen content: 0.5–0.9% (vs. 0.15% for wrought; some oxidation even without melting)
Adhesion: > 50 MPa (cold spray); requires bonding temperature
Aluminum (Al)
Applications: aircraft structure repair, galvanic protection, thermal management
Process: N₂ at 25–40 bar, 300–500°C
Properties:
Porosity: 0.5–2%
Electrical conductivity: 30–40 MS/m (vs. 37 MS/m for wrought)
Adhesion: 40–70 MPa
MCrAlY (Bond Coat Alternative)
Cold spray MCrAlY: preserves chemistry; no Y₂O₃ oxidation (critical for TBC adhesion)
Process: He + high P; T = 700–900°C gas T
Properties:
Lower oxidation than HVOF MCrAlY → better TBC life
Porosity 1–3%; densification by HIP improves properties
Process Parameters
| Parameter | Effect |
|---|
| Gas pressure ↑ | v_p ↑ → better bonding; less porosity |
| Gas temperature ↑ | v_gas ↑ (sound speed ↑); material softer → lower v_crit |
| He vs. N₂ | He: much higher v_p; much higher cost |
| Particle size ↓ | v_p ↑; too small → poor inertia; optimal 10–45 μm |
| Stand-off distance | Optimal typically 15–40 mm |
| Spray angle | Best at 90°; < 45° → porosity increases significantly |
Deposition efficiency (DE):
DE = mass deposited / mass fed × 100% [typically 50–80% above v_crit; strongly material-dependent]
Comparison to HVAF/HVOF
| Feature | Cold spray | HVOF | HVAF |
|---|
| Temperature | Below melting | Near-melting | Very low |
| Oxidation | Minimal | Moderate | Low |
| Phase preservation | Excellent | Good | Excellent |
| Velocity | 300–1200 m/s | 600–900 m/s | > 900 m/s |
| Residual stress | Compressive | Compressive | Compressive |
| Porosity | < 0.5–3% | 0.5–2% | 0.5–2% |
| Best for | Reactive metals, thick deposits, repair | WC-Co, MCrAlY | WC-Co |
Standards
| Standard | Scope |
|---|
| SAE AMS2440 | Cold spray metallic coatings |
| ASTM B532 | Porosity measurement for coatings |
| AMS2449 | HVOF (for comparison; cold spray being added) |
| MIL-STD-1687 | Thermal spray coatings (being updated for cold spray) |
Output
Provide: powder material and size [μm], driving gas (N₂/He) and pressure [bar], gas temperature [°C], nozzle type (de Laval), estimated particle velocity v_p [m/s] vs. v_crit [m/s], coating thickness [μm] per pass and total, porosity [%], hardness [HV], adhesion strength [MPa], residual stress (compressive), deposition efficiency [%], application (repair/protection/additive), and applicable standard (SAE AMS2440).