Punches & dies
Blanking, piercing, forming dies. The cold-work tooling default — air-hardening keeps tool dimensions on plan after HT.
Air-hardening tool steel · UNS T30102
The standard cold-work tool steel. Air-hardens with minimal distortion to 60–62 HRC, retains good toughness for a tool steel, and is widely available. Punches, dies, gauges, fixturing components — the workhorse of any tool room.
When to use
A2 is the moderate-alloy, moderate-toughness, moderate-cost cold-work tool steel — the default for punches, blanking dies, forming tools, gauges, and high-wear fixtures. Compared to D2 (more wear-resistant but more brittle) or O1 (oil-hardening, more distortion), A2 sits in the sweet spot of most tooling applications.
The big feature is air hardening. Heat to 950–980 °C, hold, then air-cool — A2 reaches 62 HRC without quenching. That dramatically reduces distortion compared to oil- or water-quenched grades, which is why precision tooling (gauges, master plates) routes through A2.
Strengths
Trade-offs
Specs
Properties for A2 in standard hardened condition (austenitize 950–980 °C, air-cool, temper 175–200 °C × 2 hr) — yielding 60–62 HRC. Annealed properties shown for comparison.
Mechanical
| Hardness (annealed) | ≤ 235 HB / 98 HRB |
|---|---|
| Hardness (HT typical) | 60–62 HRC |
| Hardness (HT max) | 63–64 HRC |
| UTS (annealed) | 620 MPa (90 ksi) |
| UTS (HT) | ~2000 MPa (290 ksi) |
| Yield strength (HT) | ~1900 MPa |
| Modulus of elasticity | 207 GPa |
| Charpy V-notch (60 HRC) Higher than D2 | 13 J |
| Compressive strength (HT) | ~3100 MPa |
Source: Crucible Industries / Carpenter datasheets. Tempering above 200 °C drops hardness rapidly — design accordingly.
Physical & thermal
| Density | 7.86 g/cc (0.284 lb/in³) |
|---|---|
| Specific heat | 0.460 J/g·°C |
| Thermal conductivity | 26 W/m·K |
| CTE (20–100 °C) | 10.7 µm/m·°C |
| Austenitize temp | 950 – 980 °C |
| Critical temp (Ac1) | 770 °C |
| Quench medium | Air (preferred) or oil |
| Magnetic | Ferromagnetic |
Air-quench eliminates the rapid temperature gradient that causes oil-quench distortion. Sections > 75 mm may require oil quench for full hardening.
Composition
| Carbon (C) | 0.95 – 1.05 |
|---|---|
| Chromium (Cr) | 4.75 – 5.50 |
| Molybdenum (Mo) | 0.90 – 1.40 |
| Vanadium (V) | 0.15 – 0.50 |
| Manganese (Mn) | 1.00 max |
| Silicon (Si) | 0.50 max |
| Phosphorus (P) | 0.030 max |
| Sulfur (S) | 0.030 max |
| Iron (Fe) | balance |
The Cr-Mo-V combination is what makes A2 air-hardening — without those alloys, plain carbon steel would need oil or water quench.
Specifications
Machining
Always machine annealed. After hardening to 60+ HRC, A2 becomes grind- or EDM-only territory. The standard workflow: rough machine with stock allowance → harden → finish-grind to size.
Applications
Blanking, piercing, forming dies. The cold-work tooling default — air-hardening keeps tool dimensions on plan after HT.
Inspection gauges, master plates, fixture components. Low distortion through HT lets gauges hold 0.0001″.
Soft-jaw blanks for CNC, locating pins, hardened bushings. Wear surfaces in production fixtures.
Compare
More wear
12% chromium content gives much better wear resistance — for stamping abrasive material, fiberglass, hardened parts. More brittle than A2.
More toughness
Shock-resistant grade for impact tooling — chisels, breakers, heavy stamping. Lower hardness ceiling (~58 HRC) but much higher Charpy.
Hot work
For die-casting, hot forging, and tooling that runs at 500+ °C. Holds hardness where A2 would soften.
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