| name | quenching |
| description | Quenching and hardening — TTT/CCT diagrams, hardenability (Jominy end-quench, Grossmann DI), quench media (water, oil, polymer, air, salt bath), heat transfer coefficient h_q [W/m²·K], Grossmann H-factor, Leidenfrost effect in quenching, quench distortion and cracking (tensile vs. compressive surface stress), Biot number, case/core hardness prediction, ASTM A255 Jominy test, Taguchi quench optimization, and IQ (intensive quenching) process. |
| metadata | {"priority":7,"promptSignals":{"phrases":["quenching","heat treatment quench","hardenability","Jominy test","TTT diagram","CCT diagram"],"minScore":3}} |
Quenching and Hardening — Complete Skill
Metallurgical Background
TTT and CCT Diagrams
TTT (Time-Temperature-Transformation):
Isothermal diagram: temperature vs. log(time) at constant T; shows start (1%) and finish (99%) of transformation
Nose of TTT curve: minimum time for diffusional transformation (pearlite/bainite); typically 500–600°C for steels
CCT (Continuous Cooling Transformation):
Practical diagram: cooling paths superimposed; shows critical cooling rate for full martensite
Critical cooling rate R_c: minimum rate to avoid pearlite/bainite nose on CCT → full martensite
R_c (water quench): ~50–200°C/s for plain carbon steels; < 5°C/s for high-alloy steels (air hardening)
Martensite start/finish:
M_s: martensite start temperature (°C); M_f: finish (°C)
Andrews empirical (1965): M_s [°C] = 539 - 423C - 30.4Mn - 17.7Ni - 12.1Cr - 7.5Mo [C, Mn, etc. in wt%]
M_f ≈ M_s - 215 [approximate; often below room temperature for high-C steels → retained austenite]
Hardness from microstructure:
Martensite: HRC ≈ 20 + 60 × C% [wt% C]; H_martensite [HRC] = 30 + 50 × (%C)^0.5 (Krauss)
Full martensite 0.45%C: HRC ≈ 55–57; 0.60%C: HRC ≈ 62–64
Hardenability
Jominy End-Quench Test (ASTM A255)
Test procedure:
25 mm (1 in) diameter × 102 mm bar; austenitize at standard temperature; quench from one end with water at 23°C
Measure HRC every 1.6 mm (1/16 in) from quenched end → Jominy curve
Hardenability band:
AISI grades have specified H-bands: H (hardenability) designation
SAE 4140H, 4340H: guaranteed hardenability within band (max/min Jominy curves)
Reading Jominy curve:
Distance from quenched end (J-distance) = cooling rate equivalent
J1/16 = 1/16 in from end → cooling rate ≈ 480°C/s (fastest; max hardness)
J4 (4/16 = ¼ in) → ≈ 70°C/s; J8 → ≈ 30°C/s; J16 → ≈ 10°C/s; J40 → ≈ 2°C/s (slowest)
Grossmann H-Factor and Ideal Diameter
Ideal diameter DI:
Diameter of round bar that transforms 50% martensite at center when quenched in ideal (infinite) quench
DI correlates with Jominy at J1/4 (quarter-length hardenability indicator) or from alloy content:
DI = DI_base × f_Mn × f_Si × f_Ni × f_Cr × f_Mo × ... [multiplication factors from Grossmann charts]
Example:
SAE 4340 (0.40C, 0.70Mn, 1.65Ni, 0.80Cr, 0.25Mo): DI ≈ 100–150 mm → very high hardenability
Actual diameter DA (hardening in real quench):
DA = DI / (1 + DI / (H × 2.54)) [Grossmann; H = severity of quench = h_quench × diameter / k_steel]
H_values: water agitated = 1.0–2.0; still water = 0.9–1.0; oil agitated = 0.35–0.7; air = 0.02–0.05
Center hardness from DI and quench severity:
Use Grossmann's master chart: given DI and H → surface and center hardness from bar diameter
Quench Media
Heat Transfer Coefficients
Quench media comparison:
| Medium | h_q [W/m²·K] | H factor | Distortion risk | Cracking risk |
|---|
| Brine (10% NaCl) | 14,000–21,000 | 2.0 | High | High |
| Water (20°C, agitated) | 8,000–14,000 | 1.0 | High | Moderate |
| Water (60°C) | 3,000–6,000 | 0.6 | Moderate | Low |
| Polymer (PAG, 10%) | 3,000–8,000 | 0.4–0.8 | Moderate | Low |
| Fast quench oil | 1,800–3,000 | 0.35 | Low | Low |
| Slow quench oil | 800–1,500 | 0.25 | Low | Very low |
| Air (still) | 10–30 | 0.02 | Very low | Very low |
| Pressurized N₂ (gas quench) | 300–1,000 | 0.05–0.15 | Very low | Very low |
| Salt bath (180°C) | 2,000–4,000 | 0.5 | Low | Low |
Leidenfrost effect in water quenching:
First stage: vapor film around hot part (T > 600°C) → low h_q; film/vapor blanket phase
Second stage: T drops to 300°C → film collapses → nucleate boiling → h_q peaks (8,000–14,000 W/m²·K)
Third stage: T < 100°C → convective cooling; h_q moderate
Leidenfrost temperature: 100–300°C in water (affected by water temperature, agitation, additives)
Agitation suppresses Leidenfrost → more uniform cooling → less distortion
Polymer Quenching (PAG — Polyalkylene Glycol)
Properties:
Reverse solubility: PAG precipitates from solution above critical temperature (~70°C) → forms polymer film on part
Film insulates → slower, more uniform cooling than water → less distortion; lower cracking risk
Concentration control: 10–25% PAG by volume → cooling rate between water and oil
Monitoring: viscosity or refractive index → maintain concentration
Advantage:
Less fire hazard than oil; adjustable cooling rate; environmentally preferred over oil
Used for aluminum alloys (precipitation hardening: T6 treatment), alloy steel large parts
Heat Transfer Analysis
Biot Number and Cooling
Biot number:
Bi = h_q × L_c / k_steel [L_c = characteristic length = volume/area = R/3 for sphere, R/2 for cylinder]
Bi >> 1: surface-controlled cooling; temperature gradient inside part significant
Bi << 1: lumped capacitance; uniform T throughout (valid for Bi < 0.1)
Lumped capacitance (Bi < 0.1):
T(t) = T_q + (T_i - T_q) × exp(-h_q × A / (ρ × V × c_p) × t) [exponential cooling]
Time to cool from austenitize T_a to M_s: t_critical = ρVc_p/(h_qA) × ln((T_a - T_q)/(M_s - T_q))
Finite difference (for thick parts):
Discretize part → solve heat equation; compare center cooling curve with CCT → predict microstructure at each node
Quench Distortion and Cracking
Mechanisms
Thermal stress:
Non-uniform cooling → temperature gradient → differential thermal contraction → residual stress
Rapid surface quench: surface compressive (cools and contracts first, supported by hot core); then tensile as core cools
Transformation stress:
Martensite formation: volume expansion ≈ 4% → compressive stress in newly formed martensite zone
Timing: if surface transforms before core → compressive surface stress (beneficial, like shot peening)
If core transforms after surface (typical in through-hardened parts): core expansion pulls surface into tension → cracking risk
Distortion types:
Size change (dimensional): uniform shrinkage/expansion; predictable; compensate in drawing
Shape change (distortion): asymmetric cooling or geometry → bowing, oval, etc.
Cracking factors:
Surface tensile stress after quench → cracks at stress concentrators (keyways, threads, cross-holes)
High carbon (> 0.6%C) → brittle martensite → more cracking; temper immediately after quench
Distortion prevention:
Symmetrical fixturing (vertical hanging vs. horizontal laying)
Interrupted quench (marquenching): quench to above M_s (~200°C salt bath) → hold for equalization → air cool through M_s; reduces stress gradient
Intensive Quenching (IQ)
Principle:
Very high quench rate throughout (h_q > 10,000–20,000 W/m²·K) → compressive residual stress at surface
IQ produces compressive surface after quench (opposite of typical through-hardened tensile surface)
Mechanism: very rapid surface hardening → core still austenitic when surface forms martensite → core contracts on martensite; surface in compression
IQ benefits:
Fatigue life improvement: 2–5× vs. conventional quench; equivalent to carburizing surface treatment
No distortion increase (compressive residual stress arrests distortion)
Materials: works for medium carbon steels (0.35–0.65%C); IQ replaces carburizing + quench in some applications
Tempering After Quench
Mandatory: do not leave quenched steel in martensite state → brittleness; cracking risk
Temper within 2 hours of quench for high-C steels
Tempering temperatures:
100–200°C: stress relief; precipitation of ε-carbide; small hardness drop; high retained hardness
200–400°C: tempered martensite (TM); toughness and ductility improve significantly; hardness drops to HRC 50–55 for 0.45%C steel
400–650°C: sorbite (fine pearlite); lower hardness; good toughness; structural steels
Secondary hardening: at 500–550°C for high-speed steels (M2, M35) and tool steels → carbide precipitation → hardness recovers after temper dip
Standards and References
| Standard | Scope |
|---|
| ASTM A255 | Standard test methods for determining hardenability of steel (Jominy) |
| ASTM A370 | Mechanical testing of steel products |
| AMS 2759 | Heat treatment of steel parts (general) |
| SAE J406 | Methods of determining hardenability |
| AGMA 2004 | Gear material and heat treatment manual |
| ASM Handbook Vol. 4A | Steel heat treating; quenching and distortion |
Output
Provide: steel grade (AISI/SAE; C [wt%]; alloy composition; AMS designation if applicable), austenitizing temperature T_a [°C] and time [min], M_s [°C] and M_f [°C] (Andrews formula), ideal diameter DI [mm] (Grossmann; hardenability calculation), Jominy position equivalent for critical section (J-distance [1/16 in]; H [HRC] from band), quench medium selected (H-factor; h_q [W/m²·K]; agitation; justification vs. hardenability + distortion risk), Biot number Bi (surface vs. core cooling; uniform vs. non-uniform T), cooling time to M_s [s] and predicted surface/center hardness [HRC], tempering (T [°C]; time [hr]; final hardness HRC; microstructure: TM/sorbite), distortion risk assessment (cracking tendency; tensile vs. compressive surface; fixturing recommendation), and applicable standard (ASTM A255 Jominy, AMS 2759, ASM Handbook Vol. 4A).