manufacturer of nickel alloy, stainless steel, tool steel, alloy steel

X2CrTiNb18 / 1.4509 / S43940 / SUS430LX Dual-Stabilized Ferritic Stainless Steel (AISI 441) — FUSHUN METAL

X2CrTiNb18 (EN 1.4509 / UNS S43940 / JIS SUS430LX), commercially designated AISI 441, is a dual-stabilized ferritic stainless steel containing 17.5–18.5% chromium with both titanium (Ti: 0.10–0.60%) and niobium (Nb: (3 × C) + 0.30 to 1.00%). This dual-stabilization is the defining metallurgical feature: Ti binds interstitial carbon, while Nb pins grain boundaries at elevated temperature — together they suppress sensitization during welding and resist creep deformation in high-temperature service. The result is a nickel-free, 18% Cr ferritic grade that outperforms single-stabilized 439 (1.4510, Ti-only) in thermal fatigue, hot strength, and oxidation resistance — making it the preferred material for heavy-gauge exhaust manifolds, turbo flanges, and EGR systems where temperatures routinely exceed 800°C. At FUSHUN METAL, X2CrTiNb18 / 1.4509 is produced and stocked under ISO 9001 and AS9120B certified quality systems — every heat verified by OES spectrometry with full traceability to EN 10204 Type 3.1.

Equivalent Grades of X2CrTiNb18 / S43940 Across International Standards

Standard Body Designation
EN (Europe) X2CrTiNb18 / 1.4509
ASTM (USA) AISI 441 / UNS S43940
JIS (Japan) SUS430LX
GB (China) 022Cr18NbTi / S11873
DIN (Germany) X2CrTiNb18 / X6CrTiNb18 / 1.4509
AFNOR (France) Z3CTNb18
ISO X2CrTiNb18 / 4509-439-40-X
KS (Korea) STS430LX
BS (UK) X2CrTiNb18

FUSHUN METAL supplies X2CrTiNb18 / 1.4509 certified to EN 10088-2, ASTM A240, and EN 10095 (heat-resisting applications) — EN 10204 3.1 documentation per shipment.

X2CrTiNb18 / 1.4509 Stainless Steel Round Bars
X2CrTiNb18 / 1.4509 Round Bars
FUSHUN METAL

Why Dual Stabilization — Ti + Nb in X2CrTiNb18 / 441

Ti: Interstitial Scavenger

Titanium preferentially binds carbon and nitrogen to form stable Ti(C,N) precipitates, preventing chromium carbide/nitride formation at grain boundaries during welding — the same sensitization-resistance mechanism as 439.

Nb: Grain-Boundary Pinner

Niobium forms finely dispersed Nb(C,N) particles that exert a Zener pinning effect on grain boundaries, resisting grain coarsening at sustained high temperature — giving 441 superior creep strength and thermal fatigue resistance.

Combined Effect

Ti handles short-range chemical stabilization (weld HAZ); Nb handles long-range microstructural stability (creep, thermal cycling). Together they deliver oxidation resistance and mechanical integrity at temperatures where single-stabilized grades degrade.

FUSHUN METAL’s technical team verifies the Ti/Nb stabilization ratio on every heat — Nb ≥ (3 × C) + 0.30% and Ti within 0.10–0.60% — ensuring the dual-stabilization metallurgy is correctly executed in every delivered bar, sheet, and tube.

Industrial Applications of X2CrTiNb18 / S43940

Automotive Exhaust

Exhaust manifolds, turbocharger flanges, EGR cooler housings, catalytic converter shells, flex couplings — sustained service at >800°C with superior creep resistance vs 439.

Heat Exchangers

High-temperature recuperators, waste-heat recovery units, flue-gas coolers, condensing boiler heat cells — Nb pinning maintains tube-bundle dimensional stability through repeated thermal cycles.

Chemical Processing

Nitric acid pipelines, acid storage/transport tanks, NOx scrubbing ductwork — excellent resistance to oxidizing acids and stress-corrosion cracking, PREN 16–18.

Power Generation

Gas turbine exhaust ducting, HRSG casing panels, biomass boiler flue components — replaces 304 in dry, high-temperature oxidizing service at lower cost.

Food & Dairy

Brewery piping, fruit-juice processing tanks, vegetable-wash lines — resists organic acid attack with no nickel leaching; suitable where 304 is over-specified on cost.

Appliance & Textile

Oven burner tubes, textile dyeing vessels, industrial dryer drums — good oxidation resistance at sustained mid-range temperatures with no nickel surcharge in raw material cost.

FUSHUN METAL delivers X2CrTiNb18 / 1.4509 to demanding thermal-cycling applications worldwide — ISO 9001 & AS9120B certified, full EN 10204 3.1 traceability, optional third-party NDT per order.

Supply Range — X2CrTiNb18 / 1.4509 at FUSHUN METAL

Hot-Rolled Round Bar

Diameter: 10–800 mm
Length: 2,000–12,000 mm
Surface: Black / Peeled / Ground
Standard: EN 10088-3, ASTM A276

Cold-Rolled Sheet / Coil

Thickness: 0.3–6.0 mm
Width: 20–1,540 mm
Finish: 2B / BA / No.4 / HL
Standard: EN 10088-2, ASTM A240

Forged Round Bar

Diameter: 100–1,200 mm
Length: 1,000–8,000 mm
Process: Open-die forged 1130–750°C
UT tested per EN 10228-3

Welded Tube / Pipe

OD: 6–630 mm
WT: 0.5–40 mm
Length: up to 12,000 mm
Standard: EN 10296-2, ASTM A268

Additional forms: hot-rolled flat bar (3–120 × 20–800 mm), hot-rolled plate (4–200 mm), bright-drawn bar (h9/h11), wire rod (ø5.5–20 mm), custom-cut blanks and slit strip. FUSHUN METAL maintains strategic stock of X2CrTiNb18 / 1.4509 in standard gauge/thickness for rapid dispatch — all products under ISO 9001 & AS9120B quality assurance.

Chemical Composition of X2CrTiNb18 per EN 10088-2

C Si Mn P S Cr Nb Ti Fe
≤ 0.030 ≤ 1.00 ≤ 1.00 ≤ 0.040 ≤ 0.015 17.5–18.5 (3×C)+0.30 – 1.00 0.10 – 0.60 Balance

All values in weight %. The dual-stabilization formula operates on two independent stoichiometric rules: (1) Nb ≥ 3 × C + 0.30% provides high-temperature grain-boundary pinning against creep; (2) Ti = 0.10–0.60% scavenges interstitial C and N to prevent weld sensitization. This combined chemistry gives 441 its signature performance advantage over single-stabilized grades. At FUSHUN METAL, OES spectrometry verifies all elements including Nb and Ti on every heat, with LECO combustion for carbon/sulfur cross-check. Each shipment carries EN 10204 Type 3.1 certification signed by our ISO 9001 / AS9120B authorized quality representative.

Mechanical Properties of X2CrTiNb18 in Annealed Condition (+A)

Property Value Standard / Condition
Tensile Strength, Rm 420 – 620 MPa EN 10088-2, +A, all thicknesses
Yield Strength, Rp0.2 ≥ 200 MPa EN 10088-2, +A, longitudinal
Elongation A80 ≥ 18% (L + T) EN 10088-2, gauge 80 mm
Hardness ≤ 200 HBW EN ISO 6506, annealed
Density ~7.70 g/cm³ Physical; magnetic (ferritic)
Thermal Conductivity ~25 W/(m·K) at 20°C EN 10088-1 reference
Modulus of Elasticity ~220 GPa at 20°C EN 10088-1
Thermal Expansion Coeff. 10.0 × 10-6/K (20–200°C) Lower than austenitic grades
Specific Heat Capacity 460 J/(kg·K) at 20°C EN 10088-1
Melting Range 1,425 – 1,530°C Typical for 18% Cr ferritic
PREN 16.0 – 18.0 PREN = %Cr + 3.3 × %Mo

Solution annealing at 750–850°C followed by air cooling — this grade cannot be hardened by quench-and-temper. Hot forming is performed at 1,100–800°C (air cool). Forging starts at 1,100–1,130°C and finishes above 750°C. Note: due to the Ti+Nb content, this grade does not achieve a high-gloss mirror polish — applications should prioritize thermal-mechanical performance over decorative surface finish. FUSHUN METAL conducts per-heat tensile testing per ISO 6892-1 and Brinell hardness per EN ISO 6506 on every bar end, with optional ultrasonic inspection per EN 10228-3 for forged products.

Frequently Asked Questions — X2CrTiNb18 / 1.4509

What is the difference between 441 (X2CrTiNb18) and 439 (X3CrTi17)?

The critical difference is niobium. 439 (1.4510) uses Ti-only stabilization, which effectively prevents weld sensitization but offers limited high-temperature grain-boundary pinning. 441 adds Nb at Nb ≥ 3 × C + 0.30%, which forms stable Nb(C,N) precipitates that resist grain coarsening under sustained thermal exposure. In practice: 439 performs well in lower-temperature exhaust components (mufflers, tailpipes); 441 is required for heavy-gauge exhaust manifolds, turbo flanges, and EGR systems where thermal cycles routinely exceed 800°C and creep deformation would degrade a Ti-only grade. 441 also has slightly higher Cr (17.5–18.5% vs 16–18%), improving baseline oxidation resistance.

Can X2CrTiNb18 / 441 be welded? What precautions are needed?

Yes — but 441 demands more careful welding practice than 439. Due to the dual Ti+Nb stabilization, the molten pool has higher viscosity, and hydrogen/nitrogen-containing shielding gas must be strictly avoided. Recommendations: use TIG with pure argon shielding, ER441 or matching filler, minimize heat input below 1 kJ/mm, avoid weaving/oscillation, and ensure the workpiece is oil- and grease-free. Pre-heating is not required. Post-weld annealing at 750–850°C restores full ductility. FUSHUN METAL can supply matching filler wire alongside base material to ensure full metallurgical compatibility.

Why can’t 441 be mirror-polished? Is this a defect?

This is not a defect — it is a deliberate consequence of the Ti and Nb alloy additions. These elements form microscopic carbonitride particles distributed throughout the microstructure. While the particles are essential for high-temperature performance (grain pinning, creep resistance), they create micro-scale surface imperfections that prevent a true #8 mirror finish. For applications requiring a high-gloss decorative surface (elevator panels, architectural trim), 439 or 430 are better choices. For thermal-mechanical applications (exhaust systems, heat exchangers), the surface limitation is irrelevant — 441 is selected for its hot-strength, not its reflectivity.

How does FUSHUN METAL ensure X2CrTiNb18 / 1.4509 quality?

FUSHUN METAL applies a six-stage quality protocol specific to dual-stabilized grades: (1) incoming billet chemistry by OES with LECO C/S verification; (2) dual-stabilization ratio audit — Nb ≥ 3 × C + 0.30% and Ti 0.10–0.60% individually confirmed; (3) in-process dimensional checks during rolling/forging; (4) post-annealing mechanical testing (tensile ISO 6892-1, hardness EN ISO 6506 on each bar end); (5) intergranular corrosion test per EN ISO 3651-2 (optional, on request); (6) final dimensional/visual inspection and bar-end stamping. Full chain runs under ISO 9001 and AS9120B certification, EN 10204 3.1 documentation, traceable to melt origin.

Can 441 replace 304 in exhaust and chemical service?

Yes — and in some environments it outperforms 304. 441 offers excellent resistance to stress-corrosion cracking (SCC), which is a known failure mode of 304 in hot chloride-bearing condensates. In dry, high-temperature oxidizing environments (exhaust gas, flue gas, hot air), 441’s 18% Cr provides comparable oxidation resistance to 304 at roughly 35–40% lower raw material cost (Ni-free). However, 441 cannot replace 304 in wet, chloride-rich environments (marine, swimming pools, coastal architecture) where the 8–10.5% Ni in 304 provides essential pitting resistance. FUSHUN METAL’s technical team can assist with grade selection based on specific service conditions — contact us with your application parameters for a recommendation.

About Us

Founded in 1998, FuShun covers an area of 3000 square meters, annual sales volume of 20000 tons. We are engaged in the manufacture and export of Tool Steel, Nickel Alloy, Stainless Steel and other special steel products…,View more content About Me.

Contact Lists

General Manager: Ms. Florence

[email protected]

Get A Free Quote!

Find your steel grade and get a quote today.

NOW Send Your Inquiry To : [email protected]

x