JIS SUS630 Steel: AISI 630 / 17-4PH Equivalent — Precipitation-Hardening Stainless

SUS630 (JIS G4303) — known internationally as 17-4PH — is a precipitation-hardening martensitic stainless steel that achieves high-strength stainless performance impossible with conventional grades: 930–1310 MPa tensile strength with SUS316-class corrosion resistance, through a single low-temperature aging treatment rather than quenching. The 15–17.5% Cr / 3–5% Ni / 3–5% Cu composition forms a nearly full martensite on air cooling from solution treatment, then precipitates copper-rich particles at 480–620°C to raise strength without the distortion of conventional hardening. The result is a grade used in aerospace structural components, medical instruments, high-performance pump shafts, and precision machinery parts where strength, corrosion resistance, and dimensional stability must coexist.

Table of Contents
  1. International Equivalent Grades
  2. Chemical Composition
  3. Precipitation Hardening: How It Works
  4. Mechanical Properties by Condition
  5. Corrosion Resistance
  6. Machinability
  7. Common Mistakes
  8. When to Choose SUS630
  9. FAQ

1. International Equivalent Grades

StandardGradeRegionMatch Type
JIS G4303SUS630JapanReference
ASTM A564 / A693AISI 630 / Type 630 / 17-4PHUSA✅ Nearest Exact
UNSS17400USA (UNS)✅ Nearest Exact
EN 10088-11.4542 / X5CrNiCuNb16-4Europe✅ Nearest Exact
AMSAMS 5604 (sheet/strip), AMS 5643 (bar)Aerospace✅ Aerospace specification
GB/T 423705Cr17Ni4Cu4NbChina✅ Nearest Exact

2. Chemical Composition

ElementSUS630 (JIS G4303)AISI 630 (ASTM A564)1.4542 (EN 10088-1)
C≤ 0.07%≤ 0.07%≤ 0.07%
Si≤ 1.00%≤ 1.00%≤ 0.70%
Mn≤ 1.00%≤ 1.00%≤ 1.50%
Cr15.50–17.50%15.50–17.50%15.00–17.00%
Ni3.00–5.00%3.00–5.00%3.00–5.00%
Cu3.00–5.00%3.00–5.00%3.00–5.00%
Nb+Ta0.15–0.45%0.15–0.45%0.20–0.45% (Nb)

Copper (3–5%) is the precipitation-hardening agent. Niobium stabilizes carbon and acts as a secondary precipitation strengthener. These two elements distinguish SUS630 from all other stainless grades.

3. Precipitation Hardening: How It Works

SUS630’s strengthening mechanism differs fundamentally from both the austenitic 300-series (not hardenable) and the martensitic 400-series (hardened by carbon martensite).

Step 1 — Solution Treatment (Condition A)

Heat to 1020–1060°C (1868–1940°F), hold, then air cool. The material forms martensite on cooling (unlike austenitic grades), reaching approximately 35HRC in Condition A. The copper and niobium are dissolved in supersaturated solid solution — the matrix is soft martensite, not the strong final structure.

Step 2 — Aging (Precipitation)

Heat Condition A material to the aging temperature and hold. Copper-rich precipitate particles nucleate and grow throughout the martensite matrix, creating obstacles to dislocation movement and raising strength dramatically — with minimal dimensional change (typically < 0.05% linear). This is the manufacturing advantage: parts can be finish-machined in Condition A, then aged to final strength with negligible distortion.

4. Mechanical Properties by Condition

ConditionAging TempTensile Strength0.2% Proof StressElongationHardness
Condition A (solution treated)~1000 MPa (145 ksi)~793 MPa (115 ksi)~10%~35HRC
Condition H900480°C (896°F)≥ 1310 MPa (190 ksi)≥ 1170 MPa (170 ksi)≥ 10%~40–43HRC
Condition H925495°C (923°F)≥ 1170 MPa (170 ksi)≥ 1000 MPa (145 ksi)≥ 10%~38–42HRC
Condition H1025550°C (1022°F)≥ 1070 MPa (155 ksi)≥ 1000 MPa (145 ksi)≥ 12%~35–38HRC
Condition H1075580°C (1076°F)≥ 1000 MPa (145 ksi)≥ 862 MPa (125 ksi)≥ 13%~31–35HRC
Condition H1150620°C (1148°F)≥ 930 MPa (135 ksi)≥ 724 MPa (105 ksi)≥ 16%~28–32HRC
H900 vs H1150: The Key Trade-off

H900 maximizes strength (1310 MPa) but has the lowest toughness and stress-corrosion cracking resistance. H1150 sacrifices ~30% strength for significantly better toughness, ductility, and corrosion resistance. For aerospace structural parts, H900–H925 is standard. For general engineering and marine environments, H1075–H1150 is often preferred.

5. Corrosion Resistance

SUS630 in the H1025–H1150 conditions offers corrosion resistance comparable to SUS304 — significantly better than martensitic grades (SUS410, SUS420J2) at the same hardness level. H900 condition has noticeably lower resistance due to incomplete aging and residual stress effects.

ConditionPREN (approx.)vs SUS304vs SUS316
H1150~18–20ComparableLower (no Mo)
H1025~17–19Slightly lowerLower
H900~15–17LowerSignificantly lower

SUS630 does not contain Mo, so it should not be specified for high-chloride environments where SUS316 is the minimum. It is well-suited to mildly corrosive environments: freshwater, dilute acids, food-processing atmospheres, and outdoor conditions without Cl⁻ accumulation.

6. Machinability

In Condition A (~35HRC), SUS630 machines at approximately 50–60% of AISI 1212 — comparable to SUS304 but with less work-hardening tendency due to the martensitic structure. Standard carbide tooling at moderate speeds works well. After aging to H900 (~43HRC), conventional machining becomes difficult; grinding is the primary final finishing operation. Recommended machining sequence: rough and semi-finish in Condition A → age to final condition → finish grind to tolerance.

7. Common Mistakes

Case: H900 Condition Stress-Corrosion Cracking in Coastal Application
SituationSUS630 H900 fasteners used in marine-atmosphere structural connections on an offshore platform failed by stress-corrosion cracking (SCC) within 18 months. The specification had selected H900 for maximum strength, assuming 17% Cr content provided adequate corrosion resistance.
CauseH900 condition combines maximum strength with high residual stress from the aging treatment — the worst combination for SCC susceptibility in chloride environments. The 17% Cr without Mo provides insufficient resistance to Cl⁻-induced SCC at the stress levels present in preloaded fasteners. SUS316 or duplex grades are the correct specification for marine fasteners under sustained load.
CorrectionReplaced with SUS630 H1150 (lower residual stress, better SCC resistance) or SUS316 fasteners depending on load requirements. For the highest-stressed connections, duplex SUS329J3L was specified. Rule adopted: SUS630 H900 is not suitable for sustained-load applications in chloride environments — use H1075 or H1150 as minimum, or switch to Mo-alloyed grade.

8. When to Choose SUS630

SUS630 H900–H925: Maximum strength

Aerospace structural components, high-performance turbine shafts, precision mechanical parts requiring 1100+ MPa with stainless behavior. Not for sustained-load chloride environments.

SUS630 H1025–H1075: Engineering balance

Pump and valve shafts, medical instruments, mold components, precision machinery in mildly corrosive environments. Combines ~1000 MPa strength with good toughness and SUS304-class corrosion resistance.

SUS630 H1150: Maximum toughness

Parts requiring impact resistance and corrosion resistance with moderate strength (~930 MPa). Lower stress-corrosion cracking susceptibility makes this condition appropriate for pressurized or sustained-load applications in mildly corrosive environments.

Do NOT use SUS630 when…

High-chloride environments (marine immersion, chloride process fluids) — specify SUS316 or duplex instead. When strength above ~1300 MPa is needed continuously — high-alloy tool or maraging steels achieve this more reliably. When the application requires full non-magnetic properties — SUS630 is martensitic and ferromagnetic.

9. FAQ

Q: Is SUS630 the same as 17-4PH?

Yes. 17-4PH is the trade name (17% Cr, 4% Ni, precipitation hardening) coined by Armco Steel in the 1950s; AISI 630 and JIS SUS630 are the standard designations for the same alloy system. EN 1.4542 is the European equivalent. Material certified to any of these designations is interchangeable for most engineering purposes.

Q: What is the best condition for precision machined parts?

Machine in Condition A (solution treated, ~35HRC), then age to the required condition. The aging treatment causes minimal dimensional change (<0.05% linear), allowing tight tolerances to be held through the final heat treatment step. For extremely tight tolerances (<±0.005 mm), consult with your heat treater regarding expected dimensional change for your specific geometry.

Q: Can SUS630 be welded?

Yes, but welding requires care. Weld with ER630 filler in Condition A, then re-solution-treat the entire assembly and re-age to restore full mechanical properties. Welding after aging and attempting to re-age only the weld zone will produce inconsistent properties. For components that cannot be re-heat-treated after welding, austenitic 300-series grades are more practical.

Summary

  • SUS630 = AISI 630 = 17-4PH = EN 1.4542: 17% Cr, 4% Ni, 4% Cu precipitation-hardening martensitic stainless
  • Achieves 930–1310 MPa tensile strength via copper precipitation aging — no distortion-inducing quench required
  • Six standard conditions (H900–H1150): lower aging temperature = higher strength, lower toughness and SCC resistance
  • Corrosion resistance ≈ SUS304 in H1025–H1150; lower in H900. No Mo — not for high-chloride environments
  • Machine in Condition A, then age — dimensional change through aging is minimal (<0.05%)
  • H900 in sustained-load chloride environments causes SCC — use H1075/H1150 or switch to SUS316/duplex

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