| name | nitriding |
| description | Nitriding surface hardening — gas nitriding (Lehrer diagram, Kn control), plasma/ion nitriding, nitrocarburizing, compound layer (ε/γ' phases), diffusion zone hardness profiles, case depth definitions (effective/total), AMS 2759/10, steel grade selection (nitralloy 135M, 4140, H13), distortion, white layer control, and hardness/fatigue improvement. |
| metadata | {"priority":7,"promptSignals":{"phrases":["nitriding","gas nitriding","plasma nitriding","nitrocarburizing","nitrided case depth","compound layer"],"minScore":3}} |
Nitriding Surface Hardening — Complete Skill
Fundamentals
Nitrogen Thermochemistry
Nitrogen dissociation in gas nitriding:
2NH₃ → N₂ + 3H₂ [endothermic; forward at surface; nitrogen diffuses into steel]
Dissociation rate α = (H₂% + N₂%_fraction) from gas analysis; typical α = 15–85%
Nitriding potential Kn:
Kn = P_NH₃ / P_H₂^(3/2) [atm^(-1/2); controls phase formation at surface]
Kn < 0.2: no compound layer; only diffusion zone (nitriding zone)
Kn = 0.2–1.0: γ' (Fe₄N) compound layer forms
Kn > 1.0: ε (Fe₂₋₃N) compound layer forms; brittle if thick
Lehrer diagram:
Phase stability map in Kn vs. T space; defines γ'/ε/α-Fe zones
Operating window for compound-layer-free nitriding: T = 490–530°C, Kn < 0.2
Standard compound layer production: T = 510–530°C, Kn = 0.5–2.0
Diffusion Kinetics
Nitrogen diffusion in ferritic matrix:
D_N = D₀ × exp(-Q/RT) [D₀ ≈ 6×10⁻⁷ m²/s; Q = 77 kJ/mol for α-Fe]
At 520°C: D_N ≈ 2×10⁻¹² m²/s
Case depth (diffusion-controlled):
x_case ≈ 2 × √(D_N × t) [approximate; valid for early stages]
More accurately: x_case from hardness profile where H = H_core + 50 HV (effective case depth definition)
Effective case depth (ECD) definition:
Depth to 50 HV above core hardness (or to specific hardness per spec)
AMS 2759/10: ECD measured to 517 HV (≈50 HRC) threshold by default
Total case depth (TCD): depth where N content returns to base level (optical metallography)
Gas Nitriding
Process Parameters
Temperature range: 480–530°C (below A₁ = 723°C; no phase transformation; minimal distortion)
Time: 12–120 hours (longer for deeper case)
Atmosphere: NH₃ + N₂/H₂ mixture; ammonia concentration 20–100%
Typical furnace: retort furnace; gas-tight; recirculation fan; automatic Kn control via dissociation analyzer
Two-stage (Floe process):
Stage 1: T = 495°C, α = 20–30%, Kn = 1.5 (compound layer forms, dense γ')
Stage 2: T = 525°C, α = 60–85%, Kn = 0.3 (suppress surface ε; diffuse deeper)
Result: thin controlled γ' + deep diffusion zone; less distortion than single-stage
Case Depth vs. Time Table
| Time (hours) | ECD (mm) — 4140 steel at 520°C |
|---|
| 12 | 0.10–0.15 |
| 24 | 0.18–0.25 |
| 48 | 0.30–0.40 |
| 72 | 0.40–0.55 |
| 96 | 0.50–0.65 |
| 120 | 0.60–0.75 |
Nitralloy 135M achieves deeper case (Al forms AlN precipitates; higher surface hardness 900–1,100 HV)
Compound Layer (White Layer)
Composition:
ε phase (Fe₂N–Fe₃N): high N content; harder (~1,000 HV); more brittle; hexagonal
γ' phase (Fe₄N): lower N; ~700 HV; better toughness; FCC
White layer thickness:
Controlled nitriding: 2–15 μm (single-stage); minimal or zero (Floe two-stage)
Typical allowance: ≤ 25 μm for gears; ≤ 10 μm for precision components
White layer removal:
Lapping or honing after nitriding (typically 5–10 μm removal) for precision applications
Nitride diffusion zone must not be compromised during removal
Plasma (Ion) Nitriding
Physics
Glow discharge:
DC voltage 300–1,000 V between cathode (workpiece) and anode (furnace wall)
N₂/H₂ gas at 1–10 mbar; plasma ionizes N₂ → N⁺ ions bombard surface
Ion bombardment: sputters oxides; activates surface; heats part
Advantage over gas nitriding:
Precise Kn control via N₂/H₂ ratio (no ammonia required)
No compound layer if pure N₂/H₂ 20:80 mix (compound-layer-free nitriding)
Faster activation; can nitride stainless steel (plasma breaks passive oxide)
No pollution (no ammonia emission)
Process parameters:
Temperature: 350–600°C (lower than gas nitriding possible for some alloys)
Time: 4–24 hours (shorter than gas; faster surface kinetics)
Gas: N₂/H₂ = 1:4 (no compound layer) to N₂/H₂ = 4:1 (heavy compound layer)
Advantages for Stainless Steels
Passive oxide layer:
Ion bombardment removes Cr₂O₃ → allows nitrogen ingress
Gas nitriding cannot nitride stainless without special pre-treatment
Plasma nitriding at low T (≤ 450°C) produces S-phase (supersaturated N in austenite): very high hardness (1,200 HV) without Cr carbide precipitation → maintains corrosion resistance
Nitrocarburizing
Definition: simultaneous nitrogen + carbon introduction; always forms compound layer
Temperature: 550–590°C (slightly higher than nitriding)
Atmosphere: NH₃ + CO₂ or NH₃ + endogas (N + C sources)
Compound layer: primarily ε (Fe₂₋₃N) with C dissolved; tough ε layer (Fe₂₋₃N,C)
Thickness: 5–25 μm compound layer; diffusion zone below
Processes:
Ferritic nitrocarburizing (FNC): most common; T = 565–590°C; 1–4 hours
QPQ (Quench-Polish-Quench): nitrocarburize → oxidize → polish → oxidize; cosmetic + corrosion
Salt bath (Tennifer/Tufftride): AMSCO 6501; molten cyanate + cyanide; OSHA-regulated
Gas FNC: CO₂ or endogas addition to NH₃; cleaner than salt bath
FNC vs. nitriding comparison:
| Property | Gas Nitriding | FNC |
|---|
| Temperature | 490–530°C | 565–590°C |
| Time | 12–120 h | 1–4 h |
| Compound layer | γ' or ε, controlled | ε (always) |
| Case depth | 0.1–0.8 mm | 0.01–0.05 mm |
| Hardness (surface) | 550–1100 HV | 400–700 HV |
| Distortion | Very low | Very low |
| Cost | Moderate | Low |
| Application | Gears, dies, high fatigue | Wear + corrosion (automotive) |
Steel Selection for Nitriding
Steel Grades and Expected Hardness
| Steel | Surface Hardness (HV) | ECD (0.5 mm) | Notes |
|---|
| Nitralloy 135M (AISI 7140) | 900–1,100 | Yes | Al-alloyed; best surface hardness; Al₄N precipitates |
| 4140 (Cr-Mo) | 550–700 | Yes | Common; good toughness |
| 4340 (Ni-Cr-Mo) | 500–650 | Yes | High-strength core; aerospace |
| H13 (5% Cr tool steel) | 1,000–1,200 | Moderate | Dies; wear surfaces |
| 17-4 PH stainless | 900–1,100 | Shallow | Precipitation hardened; corrosion + wear |
| M2 HSS | 1,100–1,300 | Very shallow | Cutting tools; plasma only |
| 1018 carbon steel | 200–350 | Poor | Low alloy content; poor response |
Key alloying elements:
Cr, Mo, Al, V: form stable alloy nitrides → high hardness precipitates
Ni: has no affinity for N; does not contribute to hardness; improves core toughness
Plain carbon steel (<0.2% Cr): poor response; use only for FNC (wear improvement)
Pre-treatment
Required core hardness before nitriding:
Core must be tempered to final hardness before nitriding; nitriding temperature must not exceed prior tempering temperature (else softening)
4140: QT to 30–40 HRC (600°C temper); nitride at 520°C (safe)
Nitralloy 135M: QT to 28–34 HRC; nitride at 495°C
Surface condition:
Clean, scale-free; Ra ≤ 1.6 μm (ground preferred); no decarburization from prior heat treatment
Silver, copper, nickel plating can be used as stop-off masks (prevents N ingress under plating)
Oxide scale: must be removed (acid etch or grit blast); oxide prevents N absorption
Hardness Profiles and Properties
Hardness Profile Shape
Nitralloy 135M:
Surface: 900–1,100 HV; decreasing to core 280–320 HV over 0.3–0.5 mm
Steep gradient (Al-nitride precipitation zone)
4140:
Surface: 550–700 HV; more gradual gradient; softer core transition at ~0.4–0.6 mm ECD
Design implication:
Steep profile → better contact fatigue; higher surface compressive stress
Gradual profile → less risk of spalling under impact; better for shock loads
Residual Stress
Compressive residual stress (near-surface):
σ_residual = -200 to -700 MPa (compressive; beneficial for fatigue)
Caused by volume expansion of nitrided layer (lattice expansion from N)
Depth of compressive zone: ≈ ECD (all nitrided zone in compression)
Fatigue improvement:
Rotating bending fatigue limit improvement: +20–40% vs. un-nitrided base
Hertzian contact fatigue (gears, cams): improvement factor 2–4×
Distortion: minimal (process below A₁); dimensional change typically < 0.05 mm (predictable)
Distortion
Sources of distortion:
Stress relief of machining stresses
Volume expansion of nitrided layer (differential expansion)
Temperature gradients in furnace
Control:
Slow heating/cooling: ≤ 2°C/min above 300°C
Racking: hang parts; avoid horizontal trays for slender parts
Straightening: permitted if within elastic range; no cold re-straightening after nitriding (cracks compound layer)
Grinding allowance: 0.02–0.05 mm post-nitride grinding on precision surfaces
Quality Control and Specifications
AMS 2759/10 (Gas Nitriding)
Requirements:
ECD ≥ specified (measured by micro-Vickers traverse to threshold hardness)
Surface hardness ≥ specified minimum (HV or HRC)
Compound layer thickness ≤ specified maximum (metallographic cross-section)
No surface oxides; no decarburization
Testing:
Microhardness traverse: Vickers HV 0.3–1 kg load; spacing 0.05–0.1 mm
Compound layer: nital etch (2–4% HNO₃ in ethanol); white layer appears at surface
Case depth: measure from surface to core hardness + 50 HV
Other specifications:
AMS 2759/10: aerospace gas nitriding
SAE AMS 2753: plasma nitriding
DIN 17211: nitriding steels (German standard; Nitralloy-class)
ISO 15787: heat treatment requirements
Standards and References
| Standard | Scope |
|---|
| AMS 2759/10 | Gas nitriding of steel parts (aerospace) |
| AMS 2753 | Plasma nitriding |
| SAE J423 | Case hardening methods including nitriding |
| DIN 17211 | Nitriding steels — composition requirements |
| ASTM E18 | Rockwell hardness testing |
| ISO 6507 | Vickers hardness testing |
| ASM Handbook Vol. 4A | Heat treating steels (nitriding chapter) |
Output
Provide: process type (gas/plasma/FNC) with justification (alloy, compound layer requirement, stainless), steel grade (4140/Nitralloy 135M/H13; verify Cr/Mo/Al content), pre-treatment (core hardness [HRC]; tempering temperature vs. nitriding temperature check), process parameters (T [°C]; time [h]; atmosphere/Kn or N₂/H₂ ratio), expected ECD [mm] and surface hardness [HV], compound layer thickness [μm] target (or "compound-layer-free" if specified), distortion allowance [mm] and grinding stock, residual stress (compressive [MPa]; fatigue improvement [%]), mask areas (if selective nitriding), quality test (AMS 2759/10 micro-Vickers traverse; nital etch; threshold hardness [HV]), and applicable standard (AMS 2759/10, AMS 2753, DIN 17211).