| name | jominy-test |
| description | Jominy end-quench hardenability test — ASTM A255/E18 procedure, specimen geometry, hardness traverse, H-band steels, ideal critical diameter DI, Grossmann multiplying factors, Jominy distance to DI conversion, SAE H-band steel selection, alloy effect on hardenability, case study. |
| metadata | {"priority":7,"promptSignals":{"phrases":["Jominy test","end quench test","hardenability test","Jominy hardenability","ideal critical diameter","ASTM A255 hardenability"],"minScore":3}} |
Jominy End-Quench Hardenability Test — Complete Skill
Purpose and Principle
Hardenability: ease with which a steel transforms to martensite upon quenching; NOT the same as hardness
High hardenability → martensite forms at slow cooling rates (thick sections, mild quench) → consistent through-hardening
Jominy test principle:
Austenitize standard specimen → quench one end with water jet → measure hardness traverse → position-dependent cooling rate maps to CCT diagram
Critical use cases:
- Select steel grade for required hardness at a given section depth
- Verify incoming material meets H-band specification (SAE H-steels)
- Design heat treatment: quench media + section size from DI value
Test Procedure (ASTM A255 / SAE J406)
Specimen Preparation
Specimen geometry:
Round bar: 25 mm (1 inch) diameter × 100 mm (4 inch) long
End face: machined square (flat, perpendicular to axis); no burrs
One end step: 25 mm diameter shoulder to locate in quench fixture
Austenitizing:
Temperature: per alloy → typically 860°C for 1020; 870°C for 4140; 855°C for 8620
Hold time: 30 minutes minimum at temperature (after thermal soak)
Furnace atmosphere: protective (endothermic or Ar) to prevent decarburization → decarb falsifies surface hardness
Transfer time: max 5 seconds from furnace to quench fixture (ASTM A255)
Specimen mounted in Jominy fixture: end face directly under water jet
Quench Parameters
Water jet:
Temperature: 24 ± 3°C (75 ± 5°F)
Orifice diameter: 12.5 mm (0.5 inch)
Free jet height (orifice to specimen end): 63.5 mm (2.5 inch)
Flow: 0.25 gallons/minute (ASTM A255) → produces standardized cooling rate at end face
Quench duration: until specimen is cold (≥ 10 minutes typical; end face reaches ambient T)
Sides of specimen: NOT quenched; air cools during test; slower than end face
Hardness Measurement
Flat ground on specimen: two diametrically opposite flats, 0.38 mm deep × 100 mm long, ground after quench
Hardness traverse:
Readings at J1.5, J3, J5, J7, J10, J13, J16, J19, J22, J25, J32, J38, J51, J64 mm from quenched end
(J notation: J + distance in mm; US also uses J + fraction inches: 1/16" = J1/16", 2/16" = J2/16", etc.)
Hardness scale: Rockwell C (HRC); all readings on same ground flat
Minimum HRC resolution: ±0.5 HRC; replicate reading within ±1 HRC
Jominy Hardenability Curve
Interpretation
Quenched end (J0): fastest cooling; approaches full martensite → maximum hardness
Remote from quench: increasingly pearlitic + bainitic → softer
Inflection point: where bainite becomes dominant; position varies by steel
Typical Jominy curves:
1020 (low carbon, low hardenability): drops rapidly from 50 HRC to 20 HRC by J3
4140 (medium alloy): starts 55 HRC; stays above 40 HRC to J15; gradual decline
4340 (high alloy): starts 57 HRC; stays above 52 HRC to J50+; very flat curve
Cooling rate correlation:
J end face = 350°C/s (very fast; essentially water quench rate)
J5 ≈ 35°C/s; J10 ≈ 14°C/s; J20 ≈ 7°C/s; J50 ≈ 2°C/s (approximate rates)
These rates correlate to specific CCT curve positions → hardness from % martensite
H-Band Steels (SAE H-Steels)
H-band specification: guaranteed hardenability range (max and min Jominy curve)
H-band width: typically ±5–8 HRC at critical J positions
Chemistry: composition specified with tighter limits than standard grades to control hardenability scatter
Designation: e.g., 4140H, 8620H, 4340H (H suffix = H-band)
H-band examples at J10 (from SAE J1268):
| Steel | J10 min HRC | J10 max HRC |
|---|
| 1045H | 22 | 42 |
| 4140H | 38 | 54 |
| 4340H | 50 | 60 |
| 8620H | 25 | 43 |
| 9310H | 30 | 47 |
Application: critical drivetrain gears, aerospace components where lot-to-lot property consistency is mandatory; mill cert must include Jominy data
Ideal Critical Diameter (DI) and Grossmann Method
DI Definition
DI: diameter of round bar that, when quenched in an ideal quench (H = ∞), produces 50% martensite at center
Ideal quench: instantaneous surface temperature drop to quench temperature; infinite cooling rate at surface; H = ∞
DI from Jominy curve:
J distance corresponding to 50% martensite hardness on Jominy curve = J_crit
DI = f(J_crit) from chart: DI [mm] ≈ 4 × J_crit [mm] (rough approximation; use actual chart from ASTM A255 Annex)
More precisely (from Jominy-DI chart, ASTM A255 Figure A1):
J_crit [1/16 inch] → DI [inch]; then convert to mm
Grossmann Multiplying Factors
Composition-based DI calculation:
DI = DI_base × f_C × f_Mn × f_Si × f_Ni × f_Cr × f_Mo × f_V
Base DI (carbon content and grain size, from chart):
DI_base = f(C%, grain size); typical DI_base for ASTM grain size 7 (average):
0.20% C → DI_base ≈ 9 mm; 0.40% C → DI_base ≈ 11 mm; 0.60% C → DI_base ≈ 13 mm
Grossmann multiplying factors (f_x):
| Element | Percent | Factor f_x |
|---|
| Mn | 0.50% | 1.26 |
| Mn | 1.00% | 1.59 |
| Mn | 1.50% | 2.01 |
| Si | 0.25% | 1.07 |
| Si | 0.50% | 1.15 |
| Ni | 0.50% | 1.09 |
| Ni | 1.00% | 1.19 |
| Ni | 3.50% | 1.71 |
| Cr | 0.25% | 1.11 |
| Cr | 0.50% | 1.24 |
| Cr | 1.00% | 1.56 |
| Mo | 0.15% | 1.37 |
| Mo | 0.25% | 1.64 |
| Mo | 0.50% | 2.60 |
| V | 0.05% | 1.15 |
Example (4140: 0.40C, 1.00Mn, 0.28Si, 0.10Ni, 1.00Cr, 0.20Mo):
DI = 11 × 1.59 × 1.06 × 1.04 × 1.56 × 1.56 ≈ 70 mm (approximately; match to tables for accuracy)
Real Quench Critical Diameter (D)
D vs. DI relationship:
D = DI × f(H) [D = actual bar diameter hardening to 50% martensite at center; H = Grossmann quench severity]
Quench severities: H = 0.2 (still oil) → 0.35 (agitated oil) → 0.7 (still water) → 1.0 (agitated water) → 2.0 (brine)
Conversion chart (Grossmann):
DI = 70 mm, H = 1.0 (agitated water) → D ≈ 55 mm (read from chart; bar ≤ 55 mm diameter fully hardening)
Polymer quench (PAG): H ≈ 0.5–0.8 depending on concentration; intermediate between oil and water
Application to Section Design
Given: section diameter D_actual and required core hardness:
- From required core hardness → required martensite % → find minimum DI (from Jominy chart)
- From H (quench severity) → DI_required = D_actual / f(H)
- Select steel with DI ≥ DI_required → use Grossmann factors to calculate DI and verify
Alloy Effects on Hardenability
Carbon: increases base DI; also directly affects max achievable hardness (H_max ≈ 20 + 60 × C%)
Manganese: most effective per % added; inexpensive; common in structural steels
Chromium: significant effect; also improves tempering resistance (Cr carbides)
Molybdenum: very powerful per %; prevents temper embrittlement; expensive
Nickel: moderate effect; improves low-temperature toughness; expensive
Vanadium: grain refiner (reduces DI_base) + moderate hardenability multiplier; net usually slightly positive
Boron: extraordinary effect in concentrations of 0.001–0.003% (1–30 ppm); f_B = 1.5–3.5
Boron effect only works when steel is aluminum killed (Al ties up nitrogen that would deactivate B)
Common Errors in Jominy Testing
Decarburization: falsely low hardness at surface (J0); prevent by protective atmosphere
Slow transfer: partial transformation before quench; lower J0 hardness
Non-standard water: temperature, flow, orifice size affect cooling rate → shifts curve
Grinding damage: surface overheating → temper → falsely low reading; use light grinding passes
Standards
| Standard | Scope |
|---|
| ASTM A255 | Standard test methods for Jominy end-quench hardenability |
| SAE J406 | Methods for determining hardenability of steel |
| SAE J1268 | H-band steel composition and hardenability limits |
| ASTM E18 | Rockwell hardness test |
| ISO 642 | Hardenability by Jominy method |
| AMS 2759 | Heat treatment of steel (references Jominy requirements) |
Output
Provide: steel grade and composition (C, Mn, Si, Cr, Mo, Ni, V [wt%]), Jominy curve (HRC vs. J distance [mm] at key positions: J1.5, J5, J10, J25, J50), H-band specification (SAE grade, min/max HRC at J10), DI calculation (DI_base from carbon content + grain size; multiplying factors product; final DI [mm]), actual quench severity H (quench medium), critical bar diameter D for 50% martensite at center [mm], core hardness estimate at section diameter of interest [HRC], comparison to H-band max and min bounds, grain size effect on DI (ASTM grain size 5 vs. 7 vs. 9), and applicable standard (ASTM A255, SAE J406, ISO 642).