309S stainless steel: heat resistance, fabrication and purchasing questions
Understand where 309S fits between 304 and 310S, and how temperature, loading, thermal cycles, furnace atmosphere and welding affect a purchase.
BUYING & FABRICATION GUIDE
Practical questions about 309S stainless steel
309S is a chromium-nickel austenitic stainless steel used for heat-resistant fabrication. Choosing it requires more than a furnace temperature: the metal must resist its atmosphere, carry any applied load and tolerate repeated heating and cooling. The following questions connect these engineering conditions with a clear material purchase.
Sheye Metal · Technical purchasing guide · Updated 9 September 2026
Where does 309S fit between 304 and 310S?
309S contains more chromium and nickel than standard 304, giving it a useful position in heat-resistant fabrication. It is a candidate for furnace baffles, annealing boxes and similar components where improved resistance to high-temperature oxidation is needed. Compared with 310S, its lower alloy content can offer a purchasing advantage when the service conditions permit. That decision should follow an assessment of atmosphere, metal temperature, load and cycling. A less expensive tonne is useful only if the component delivers the required service life; neither 304 nor 310S can be replaced using a single temperature rule.
Are 309S, S30908, SUS309S and EN 1.4833 interchangeable?
These references are associated with the 309 family, but the names alone do not establish identical acceptance requirements. Type 309S / UNS S30908 is an ASTM reference, SUS309S is a JIS designation, and EN 1.4833 belongs to a separate specification system. Chemistry limits, product scope, delivery condition and required tests must be checked in the applicable edition. In particular, an EN designation by itself does not demonstrate compliance with an ASTM carbon limit. State the required standard and grade on the order. Accept a cross-standard or dual-certified material only when its certificate demonstrates all the requirements being claimed.
What maximum operating temperature should be specified for 309S?
A published oxidation guide is a starting point for material selection, not a universal safe operating temperature. Continuous exposure in clean air differs from intermittent operation, flame impingement or a furnace containing reactive gases. The component's actual metal temperature can also differ from the furnace setpoint. Give the designer the normal metal temperature, excursions, holding time and number of cycles, together with the load and atmosphere. Oxidation resistance must then be assessed separately from creep strength. Outokumpu's Therma guidance explicitly treats temperature recommendations as guidance and considers several performance criteria together.
Why can repeated heating and cooling shorten component life?
The protective oxide scale and the underlying metal expand differently during temperature changes. Repeated cycling can crack or detach scale, exposing fresh metal to further oxidation. Temperature gradients also cause distortion and thermal stress, particularly around rigid supports, sharp changes in section or restrained welds. A part that performs well under steady heating may therefore behave differently during frequent starts and stops. Review the heating and cooling cycle, component shape, supports and allowance for expansion. A higher-alloy grade can be worth evaluating, but changing the steel alone does not correct an excessively restrained design or severe local overheating.
Does good oxidation resistance mean 309S can carry a heavy load at temperature?
No. Oxidation concerns reaction with the environment; creep is time-dependent deformation under sustained stress. A tray or support can sag even while its surface remains reasonably resistant to oxidation. Selection for a loaded component needs the design stress, exposure time, allowable deformation and relevant high-temperature material data. Room-temperature yield strength is not a substitute for this assessment. The design code may require a different grade, carbon range or material condition. A thicker plate or a higher carbon result should not be treated as an automatic solution without checking the complete component design.
Why does carbon content matter when comparing 309S with 309H?
The low-carbon intent of 309S reduces susceptibility to sensitization during welding or thermal exposure. This matters when equipment later encounters moisture or corrosive condensate, although low carbon does not eliminate every form of intergranular attack. A controlled higher-carbon grade such as 309H serves a different elevated-temperature design objective. It is not mandatory simply because a component exceeds a particular temperature. For a creep-governed design, specify the material required by the designer and applicable code. A heat falling within an overlapping carbon range is not automatically dual-certified: every relevant chemical, mechanical and other specification requirement must also be met.
Is 309S suitable for sulfur-bearing or carburizing furnace atmospheres?
It needs a service-specific assessment. Oxygen activity, carbon potential, sulfur species and deposits determine whether the protective oxide remains effective. Carbon uptake can change near-surface properties, while sulfur can attack protective scales or form damaging sulfides. Alloy selection therefore involves more than increasing chromium or nickel. The observation that high-nickel alloys can be vulnerable in some sulfur-bearing conditions does not make 309S automatically suitable for contaminated fuel gases. Provide the gas composition, operating cycle and deposit history, including reducing periods or process upsets. The Nickel Institute's high-temperature discussion explains these competing alloying effects.
Why should a used 309S component be assessed before repair?
Prolonged thermal exposure can change the microstructure, including the formation of brittle intermetallic phases under suitable conditions. A component that remained intact while hot may have reduced ductility after cooling. Oxidation, loss of section and accumulated distortion can further complicate straightening or welding. Treat its exposure history as part of the repair assessment and inspect the relevant areas before deciding on a procedure. A generic solution-treatment temperature is not a reliable restoration recipe for every used component. Any proposed heat treatment must suit the actual material, section, cooling capability and required properties after treatment.
Is 309S plate the same thing as 309L welding filler for dissimilar joints?
No. 309S describes the base material being fabricated; 309L describes a family of welding consumables used for certain joints and overlays. Their roles should not be combined in a purchase specification. For example, a suitable 309-type filler can accommodate dilution when joining carbon steel to stainless steel, as described in ESAB's dissimilar-metal welding guidance. Filler selection still depends on both parent metals, restraint and service conditions. A filler suitable for an ordinary dissimilar joint is not automatically suitable for every high-temperature assembly. Use the required welding procedure rather than selecting consumables from the plate name alone.
What should an overseas buyer include in a 309S inquiry?
Start with the product form, dimensions, tolerances, required standard and certificate. Add a component drawing or description, the intended fabrication route and the service information that drives grade selection. For critical hot-service parts, identify any project requirements for grain size, microstructure or additional testing before ordering. A universal grain-size band or ferrite target should not be imposed on every application. Keep each requirement linked to a purpose and an acceptance method. This allows competing offers to be compared on the same basis and avoids discovering after delivery that a general material certificate cannot satisfy a project-specific inspection plan.
Technical reading and source notes
Prepared from Sheye Metal’s technical material and the references below. Product datasheets and test methods have their own scope; a reference does not certify a supplied heat or approve a finished design.
Outokumpu — Therma range datasheet — Manufacturer guidance on heat-resistant stainless steels: performance criteria, oxidation, special atmospheres, structural stability and fabrication. Brand-specific typical values and guidance temperatures are not offered as Sheye Metal product guarantees.
Nickel Institute — The nickel advantage — High-temperature discussion distinguishes mechanical performance from oxidation, carburization and sulfur-related environmental attack.
Compare the exact designation, chemical limits and test conditions before specifying material. Related grades are not automatically interchangeable or certified to all four standards.
Grade references & product scope
EN 10028-7
No verified direct grade under EN10028-7:2016
Stainless steel flat products for pressure purposes. Grade, product form, thickness and delivery treatment must match the standard. It is not a bar/profile standard.
Reference: 2016 (DIN EN10028-7:2016-10 current, checked2026-09-09)Specification confirmation required
Common heat-resisting EN1.4833 is absent from EN10028-7:2016 Table3. The listed creep-resisting1.4950 has a0.04–0.08%C range and is a separate specification.
ASTM A240/A240M
Type 309S / UNS S30908
Plate, sheet and strip for pressure vessels and general applications. Flat-product reference data; not bar/profile specifications or guaranteed Sheye stock capability.
Cold-rolled stainless steel plate, sheet and strip. These flat-product data do not establish a hot-rolled plate, bar or profile specification.
Reference: JIS G 4305:2021 grade references; steelmaker summaries and explicitly labelled 2012 mechanical rows
GB/T 3280
06Cr23Ni13 / S30908
Cold-rolled stainless steel sheet, plate and strip, including slit wide strip. These values are not hot-rolled plate, bar or profile acceptance limits.
Reference: 2015
Chemical composition comparison
Mass %. ≤ means maximum; ≥ means minimum. A range includes both limits. “—” means no value published in this comparison; it never means zero.
Scroll the table horizontally to compare all standards.
Element
EN 10028-72016 (DIN EN10028-7:2016-10 current, checked2026-09-09)
JIS G 4305JIS G 4305:2021 grade references; steelmaker summaries and explicitly labelled 2012 mechanical rows
GB/T 32802015
Designation
No verified direct grade under EN10028-7:2016
Type 309S / UNS S30908
SUS309S
06Cr23Ni13 / S30908
C
—
≤0.08
≤0.08
≤0.08
Si
—
≤0.75
≤1.00
≤0.75
Mn
—
≤2.00
≤2.00
≤2.00
P
—
≤0.045
≤0.045
≤0.045
S
—
≤0.030
≤0.030
≤0.030
Cr
—
22.0–24.0
22.00–24.00
22.00–24.00
Ni
—
12.0–15.0
12.00–15.00
12.00–15.00
Room-temperature mechanical properties
Rp0.2 is 0.2% proof strength; Rm is tensile strength; A is elongation. The delivery condition, product form, thickness and specimen basis belong to the value. Rows identify the reference specification or manufacturer summary and its qualifications; values are not design allowables.
Standard / designation
Condition & thickness
Rp0.2
Rm
Elongation
Hardness
EN 10028-7No verified direct grade under EN10028-7:2016
No confirmed mechanical limits for this reference. Review the exact order specification.
—
—
—
—
ASTM A240/A240MType 309S / UNS S30908
Annealed / heat-treated flat-product reference; confirm A480/A480M delivery requirementsNo grade-specific thickness split in the cited Table 2 row
≥205 MPa (0.2% proof)
≥515 MPa
≥40% (50 mm gauge length)
≤217 HBW or ≤95 HRBW
JIS G 4305SUS309S
Solution-treated cold-rolled plate, sheet and strip; room-temperature reference limitsNo separate grade-specific thickness band is shown in this public summary; confirm thin-gauge test provisions in the contractual standard.
≥205 MPa (0.2% proof stress)
≥520 MPa
≥40%
HV ≤200
Public steelmaker JIS-grade summary, not typical measured values. Specimen type, direction, gauge length and any test exemptions require the contractual JIS edition.
GB/T 328006Cr23Ni13 / S30908
Solution treatedCold-rolled flat products; see test-thickness notes
≥205 MPa
≥515 MPa
≥40%
HBW ≤217 / HRB ≤95 / HV ≤220
A50 for t ≤3 mm; elongation/hardness reference only if t <0.3 mm.
Reference editions & ordering conditions
ASTM A240 covers flat products; EN 10028-7 is for pressure-purpose flat products. JIS G4305 and GB/T 3280 cover cold-rolled flat products. Their cold-rolled values must not be used as acceptance limits for hot-rolled plate, bars or profiles. Confirm the standard edition and all supplementary requirements in the purchase order and mill test certificate.
EN 10028-7 — 2016 (DIN EN10028-7:2016-10 current, checked2026-09-09)
Chemical values are cast-analysis mass percentages. A dash/omitted element means no limit stated in the selected table, never zero content. Cross-standard grade names are comparison references, not automatic equivalence or proof of Sheye certification.
Common heat-resisting EN1.4833 is absent from EN10028-7:2016 Table3. The listed creep-resisting1.4950 has a0.04–0.08%C range and is a separate specification.
Chemistry is heat-analysis mass percent. Omitted elements have no requirement in the cited row, not zero. A480/A480M governs product-analysis tolerances and general requirements. Mechanical values use the printed SI column. ASTM regards SI and inch-pound systems as independent: do not convert ksi to generate an SI acceptance limit. Room-temperature Table 2 reference properties. Confirm delivery heat treatment, specimen preparation, dimensional tolerances and all general requirements against the contractual A480/A480M edition. Yield is based on 0.2% offset; a 0.5% total-extension-under-load alternative is permitted unless otherwise specified. Elongation gauge length is 50 mm or 2 in. HBW and the specified Rockwell scale are alternative permissible methods; thin-gauge superficial hardness provisions apply. The full 2026 numerical tables were not available for verification. Display the reference edition and confirm the contractual edition and certificate before accepting an order.
Separate from309H. Room-temperature minima do not establish creep design strength or service-temperature limits.
JIS G 4305 — JIS G 4305:2021 grade references; steelmaker summaries and explicitly labelled 2012 mechanical rows
JSA confirms the 2021 edition remains valid and was reaffirmed on 20 October 2025. Full purchased normative tables and all footnotes were not available for a complete current-edition audit. Listed chemistry is mass percent from primary JIS-grade summaries, not typical mill analysis. Missing cells mean not reproduced or not verified, not zero. Mechanical limits apply to the stated annealed/solution-treated cold-rolled condition at room temperature. Sampling, gauge length, direction, thickness-related rules and acceptance methods require the contractual standard. Corresponding designations are comparisons, not unconditional equivalence or proof that every supplied heat meets all listed standards.
Chemistry is the JSSA published JIS grade limit summary, mass %. An omitted element is not a zero-content requirement. Reference grade comparison only; certification to one standard does not automatically establish compliance with another.
Chemistry is heat analysis, mass %. The GB designation is a related reference, not automatic cross-standard certification. For thickness below 0.3 mm, elongation and hardness are reference values only. A50 is used at thickness ≤3 mm. Mechanical testing of re-rolling feedstock is performed when requested and specified in the contract (8.2).
Sheye supplies 309S in coils, strips, sheets. Specify thickness, width or cut length, finish, quantity and the required delivery condition so the material and processing route can be reviewed together.
What to confirm for 309S
A high-chromium, high-nickel austenitic grade. Distinguish heat-resisting grade references from pressure-purpose creep grades. Specify the full grade designation and standard edition in the enquiry. Any dual-standard certification must be confirmed for the actual material.
Inspection & processing requirements
Include the mill test certificate requirements, heat traceability, dimensional tolerances and any additional tests. For processed coils or strip, also state edge condition, coil inside diameter, coil weight and surface protection. Processing feasibility is reviewed against the material strength and dimensions.
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