| name | am-fatigue-metal |
| description | Metal AM fatigue — LPBF/DED fatigue properties, porosity effects, surface finish, residual stress, HIP treatment, S-N comparison to wrought, ASTM E466, crack initiation mechanisms. |
| metadata | {"priority":7,"promptSignals":{"phrases":["AM fatigue","additive manufacturing fatigue","LPBF fatigue","metal AM fatigue properties","SLM fatigue","additive fatigue","HIP fatigue"],"minScore":3}} |
Metal AM Fatigue — Complete Skill
Fatigue in Metal AM Parts
Key challenge: AM parts exhibit wide scatter in fatigue life due to:
- Porosity (lack of fusion, keyhole pores, gas pores)
- Rough surface finish (upskin Ra 5–15 μm; downskin Ra 15–40 μm)
- Residual tensile stress (surface tensile stress accelerates crack initiation)
- Columnar microstructure (anisotropic, direction-dependent)
- Oxidation inclusions and lack-of-fusion defects
Typical Fatigue Performance vs. Wrought
Ti-6Al-4V (LPBF, as-built):
- σ_endurance (10^7 cycles, R = -1): 200–350 MPa
- Wrought Ti-6Al-4V: 500–600 MPa
- As-built: 40–60% of wrought endurance limit
- Large scatter: scatter band 2–5× in life at given stress
After HIP + heat treat:
- σ_endurance: 400–500 MPa → 80–90% of wrought
- Remaining deficit: surface finish and residual defects
Inconel 625 (LPBF, as-built):
- σ_endurance: 250–350 MPa
- Wrought: 350–450 MPa
- As-built: ~75% of wrought
AlSi10Mg (LPBF, as-built):
- σ_endurance: 50–80 MPa
- Wrought A357: 100–140 MPa
- After T6 treatment: 80–120 MPa
Porosity Effects on Fatigue
Pore types:
- Lack-of-fusion (LOF) pores: large (50–500 μm); irregular; worst for fatigue; occur at low energy density
- Keyhole pores: spherical; 30–100 μm; high energy density; less harmful than LOF
- Gas pores: spherical; < 30 μm; from entrapped gas; minor effect
Stress intensity from pore:
K_pore ≈ 0.5 × σ × √(π × √(area_pore)) [Murakami's √area parameter]
√area_pore [μm] = √(projected area of pore perpendicular to principal stress)
Fatigue limit reduction (Murakami):
σ_endurance = C × (HV + 120) / (√area_pore)^(1/6)
C = 1.43 for surface defect; 1.56 for internal defect
HV = Vickers hardness; √area in μm
Acceptable pore size (Ti-6Al-4V, HV = 350):
σ_endurance_target = 400 MPa → √area_max ≈ 40 μm (sub-surface) or 25 μm (surface)
Residual Stress Effects
As-built LPBF: tensile surface residual stress (100–700 MPa depending on material and geometry)
Tensile residual stress ↑ mean stress → reduced fatigue life (Goodman/Gerber)
Effective stress ratio:
R_eff = (R_applied × σ_max + σ_residual) / (σ_max + σ_residual)
Tensile residual stress → R_eff increases → fatigue life decreases
Stress relief (SR):
Reduces residual stress by 50–80% at 650°C for Ti-6Al-4V, 4 hr
Fatigue improvement after SR: typically 20–40% improvement in life
Surface Finish Effects
As-built surface with Ra = 15 μm (downskin):
Stress concentration factor K_t ≈ 2–4 at deep valleys
Fatigue limit ≈ σ_endurance_smooth / K_t,surface (conservative)
Machined surface (Ra < 0.8 μm):
Near-smooth surface; fatigue approaches bulk material minus residual stress
Shot peening as-built surface:
- Removes sharp notches; introduces compressive residual stress
- Fatigue improvement: 30–80% increase in life
- Used for aerospace AM components as standard post-process
Electropolishing / chemical etching:
- Reduces Ra from 15 → 3 μm; removes sharp surface features
- Fatigue improvement: 20–50%; gentler than machining for complex geometry
HIP (Hot Isostatic Pressing)
Closes internal pores: 120–200 MPa, 900–1200°C (material-dependent), 2–4 hr
Eliminates LOF and keyhole pores (> 99% closure of pores < 200 μm)
Ti-6Al-4V HIP cycle:
920°C / 1000 bar / 2 hr → closes all pores; alters microstructure (annealed structure)
Follow HIP with solution treat + age to recover strength
Limitations:
HIP does NOT close surface-connected pores (open channels remain)
HIP does NOT eliminate surface roughness
After HIP + heat treat + machined surface:
Ti-6Al-4V fatigue life → 90–100% of wrought (best achievable for AM)
Fatigue Test Methods (ASTM E466)
Test setup:
R = -1 (fully reversed) or R = 0.1 (tensile-tensile)
Frequency: 10–100 Hz; specimen: hourglass smooth or notched; Kt = 2.0–3.0
Specimen orientation:
Test in both XY (horizontal) and Z (vertical) direction to capture anisotropy
Z-direction typically 10–30% lower fatigue limit than XY
S-N data needed:
≥ 10 specimens per condition; runout at 10^7 cycles; statistics: mean ± 2σ (B-basis allowable)
Comparative S-N (schematic at R = -1, 10^7 cycles):
| Condition | Ti-6Al-4V σ_e [MPa] |
|---|
| Wrought | 500–600 |
| LPBF as-built | 200–350 |
| LPBF + SR | 280–400 |
| LPBF + HIP | 380–480 |
| LPBF + HIP + machined | 450–520 |
Design Allowables for AM Parts
A-basis (99% exceedance, 95% confidence):
Use when single failure = catastrophic (aerospace critical)
Requires ≥ 30 specimens per condition
B-basis (90% exceedance, 95% confidence):
Minimum for most structural applications
σ_B = σ_mean - K_B × σ_std [K_B = tolerance factor from MIL-HDBK-5 table]
Recommendation: use B-basis from testing; apply additional safety factor of 1.25–1.5 for as-built surfaces
Output
Provide: fatigue endurance limit σ_e [MPa] at 10^7 cycles (by direction: XY and Z), comparison to wrought [%], dominant crack initiation mechanism (pore/surface/microstructure), porosity level [%] by CT scan, Murakami √area of critical defect [μm], residual stress state (tensile/compressive), recommended post-processing (SR/HIP/machining/shot peening), fatigue life improvement from each post-process [%], design allowable basis (A-basis/B-basis), and applicable test standard (ASTM E466/ASTM E468).