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Material chemistry reference · 2026

304 Stainless Steel Chemical Composition

Grade 304 / UNS S30400 is an austenitic stainless steel built around 18.0–20.0% chromium and 8.0–10.5% nickel. For ASTM A240 flat products, carbon is limited to 0.08%, manganese to 2.00%, silicon to 0.75%, phosphorus to 0.045%, sulfur to 0.030% and nitrogen to 0.10%, with iron as the balance.

Austenitic microstructure of AISI 304 stainless steel
The key distinctionA specification range is not the same as a typical mill heat.

304 austenitic microstructure: Melancholia~itwiki, Wikimedia Commons, CC BY-SA 4.0.

Chromium18.0–20.0%

Forms and repairs the chromium-rich passive film that makes the alloy corrosion resistant in suitable environments.

Nickel8.0–10.5%

Supports the austenitic structure, ductility, formability and toughness associated with conventional 304.

Carbon0.08% max

The upper limit for standard 304. Low-carbon 304L reduces sensitization risk in many welded applications.

IronBalance

Iron is the base metal. Its percentage is calculated after the specified and residual alloying elements are accounted for.

How to read the numbers

The purchase standard controls—not the “18/8” nickname.

“18/8 stainless” is useful shorthand for the nominal chromium and nickel concept behind 304. It is not an acceptance document. A real order must identify the grade, product form and governing product specification. ASTM A240/A240M covers chromium and chromium-nickel stainless plate, sheet and strip for pressure-vessel and general applications; bar, pipe, tubing, forgings and fasteners use different product standards.

The table below presents the commonly specified ASTM A240 heat-analysis limits for UNS S30400. A mill can legally deliver chemistry anywhere inside the permitted window. A supplier datasheet often publishes typical chemistry—such as about 18.1% Cr and 8.1% Ni—but typical values are not guaranteed limits unless the purchase order makes them contractual.

That distinction matters for welding, deep drawing, corrosion exposure, magnetic response and material verification. Two heats can both meet 304 while behaving slightly differently in forming or becoming more or less magnetic after cold work. Chemistry also cannot substitute for surface condition, heat treatment, mechanical properties or corrosion testing.

Practical answer: use the element chart for initial engineering, but accept material against the applicable standard and the heat-specific mill test report—not a generic web table or seller description.
Full element chart

304 stainless steel chemical composition by weight.

This chart is an engineering summary for UNS S30400 flat products ordered to ASTM A240/A240M. Always check the edition and product standard named on the purchase order.

ElementSymbolMinimum, wt.%Maximum, wt.%Why it is controlled
CarbonC0.08Strength and processing response; excessive carbon increases susceptibility to chromium-carbide sensitization.
ManganeseMn2.00Steelmaking deoxidation and austenite balance; not a substitute for verifying nickel and chromium.
PhosphorusP0.045Residual element limited to protect ductility, hot workability and weld integrity.
SulfurS0.030Residual element restricted for weldability and corrosion performance; free-machining grades intentionally differ.
SiliconSi0.75Deoxidizer and oxidation-response contributor. Note that some non-ASTM tables show a different limit.
ChromiumCr18.020.0Creates the chromium-rich passive surface film and is the defining corrosion-resistance element.
NickelNi8.010.5Stabilizes austenite and supports ductility, formability and toughness.
NitrogenN0.10Austenite former and strength contributor; also enters pitting-resistance calculations.
IronFeBalanceThe base metal after specified and residual elements are accounted for.

“—” means no minimum is listed in this summary. It does not mean that the element is absent. Heat analysis and product analysis can also have different permitted variation rules.

Element-by-element interpretation

What each alloying element changes—and what it does not prove.

Composition establishes the metallurgical starting point. Final behavior still depends on product form, solution annealing, cold work, welding, finish and service environment.

Cr
Chromium provides passivity.

Chromium reacts with oxygen to produce a thin, self-repairing surface film. Damage can repassivate when oxygen and the environment allow it, but chlorides, deposits, heat tint and crevices can defeat local protection.

Ni
Nickel stabilizes the austenitic structure.

It supports room-temperature ductility, deep drawing and toughness. Nickel content also influences phase stability and how readily cold work creates strain-induced martensite.

C
Carbon separates standard, L and H decisions.

Carbon affects strength and high-temperature behavior. During unfavorable thermal exposure it can combine with chromium at grain boundaries, leaving adjacent zones depleted in chromium.

Mn
Manganese supports steelmaking and phase balance.

It acts as a deoxidizer and austenite former. A maximum limit does not imply every mill heat runs near that maximum.

Si
Silicon is a controlled deoxidizer.

It contributes to oxidation response and melt practice. Use the value from the correct standard—online charts frequently mix the 0.75% ASTM limit with limits from other specifications.

P/S
Phosphorus and sulfur are restricted residuals.

Keeping them low generally supports fabrication and corrosion reliability. Grade 303 deliberately uses more sulfur for machinability, which is one reason it is not simply interchangeable with 304.

N
Nitrogen contributes strength and austenite stability.

It is limited in standard 304. Nitrogen-bearing variants such as 304N or 304LN are separate designations and must be ordered deliberately.

Finished 304 stainless steel pipe

304 stainless pipe: Libowei111, Wikimedia Commons, CC BY-SA 4.0.

Chemistry identifies the alloy family—not the finished quality.

Surface finish, dimensional tolerance, heat treatment, cleanliness and traceability remain separate acceptance items.

Carbon variants

304, 304L and 304H share a chromium-nickel base but solve different thermal problems.

The suffix is not cosmetic. Carbon level—and for 304H, additional product requirements—changes the correct welding and elevated-temperature decision.

UNS S30400

304

The general-purpose grade, with carbon limited to 0.08%. It suits broad fabrication where the design, welding procedure and corrosion exposure do not require the low-carbon or high-carbon variant.

C: 0.08% maximum
UNS S30403

304L

Low carbon reduces the amount available for chromium-carbide precipitation. It is widely selected for welded corrosion-resistant equipment, especially when post-weld solution annealing is impractical.

C: 0.030% maximum
UNS S30409

304H

The controlled higher-carbon grade is intended for specified elevated-temperature applications where creep strength and code rules matter. Grade selection must follow the design code and product specification.

C: 0.04–0.10%
What “dual certified 304/304L” should mean: the heat chemistry meets the tighter 304L carbon limit while the product also satisfies the applicable mechanical and certification requirements for both designations. Check the MTR, product standard and project code; do not accept “dual grade” as an unsupported sales label.
Nearby grade decisions

304 vs 316: molybdenum changes the chloride conversation.

304 is not a lower-quality version of 316. They occupy different corrosion windows, and the correct choice depends on chlorides, temperature, deposits, cleaning chemistry and geometry.

Composition factor304 / S30400316 / S31600Engineering meaning
Chromium18.0–20.0%16.0–18.0%Both rely on chromium passivity; chromium percentage alone does not rank real-world corrosion performance.
Nickel8.0–10.5%10.0–14.0%The higher nickel range helps maintain the austenitic matrix but is not the principal reason 316 resists chloride pitting better.
MolybdenumNo required Mo addition2.0–3.0%Molybdenum improves resistance to localized pitting and crevice corrosion, especially in chloride-bearing service.
Default use decisionGeneral indoor, food, architectural and industrial service when the environment is compatibleMarine, coastal, salt, chemical or washdown duties where verified conditions justify added resistanceService data and corrosion testing should decide—not a generic “316 is always better” rule.

Do not use a magnet as the grade certificate.

Annealed 304 is normally weakly magnetic or effectively non-magnetic, but cold forming, machining and welding can create magnetic response. Conversely, a weak response does not prove that material is 304. Use traceability and chemistry-based PMI.

Do not call every chromium-nickel sheet “304.”

Grades 201, 301, 304, 304L, 321 and others can look similar. Composition, product certification and service requirements distinguish them. Surface appearance and spark tests are screening clues, not acceptance evidence.

Global designations

Similar grade names are cross-references—not automatic legal equivalents.

ISO 15510 compiles stainless compositions across major systems, but an international designation does not replace the product standard, delivery condition or certification required by the project.

System / regionCommon designationTypical chemistry distinctionWhat to verify before substitution
UNS / ASTMS30400 / Type 304C ≤0.08; Cr 18.0–20.0; Ni 8.0–10.5The exact ASTM product standard, edition, dimensions, finish and mechanical requirements.
European EN1.4301 / X5CrNi18-10Often listed with C ≤0.07 and Cr 17.5–19.5 under the applicable EN composition tableDo not claim that the lower carbon ceiling makes 1.4301 equivalent to 304L / 1.4307.
Japanese JISSUS304A broadly comparable 18Cr-8Ni austenitic gradeProduct form, JIS specification, dimensional tolerances and inspection certificate.
Chinese GB06Cr19Ni10A comparable chromium-nickel composition designationThe exact GB/T product standard, heat analysis, surface, delivery condition and project approval.
ISO composition name4301-304-00-IComposition-based cross-reference used within ISO's stainless grade systemISO composition listing does not by itself establish product-form equivalence or code acceptance.
Heavily sensitized microstructure of type 304 stainless steel
Heavily sensitized 304 microstructure: Webcorr, Wikimedia Commons, CC BY-SA 3.0.
Welding and heat exposure

Carbon matters most when the thermal cycle creates a sensitization opportunity.

During exposure in a susceptible temperature range, chromium carbides can precipitate at grain boundaries. The surrounding metal can become locally depleted in chromium and more vulnerable to intergranular attack in a compatible corrosive environment. Time, peak temperature, cooling rate, carbon level, prior condition and service exposure all matter.

304L reduces this risk because less carbon is available, but “L” is not a universal immunity label. Long thermal exposure, severe corrosion conditions, weld contamination, heat tint, poor shielding or an unsuitable design can still produce failures. Stabilized grades such as 321 or 347 may be considered for specific thermal duties, subject to the governing code.

  • Confirm whether the drawing and welding procedure require 304, 304L or a stabilized/high-temperature grade.
  • Control joint cleanliness, fit-up, travel speed, power, focus, shielding gas and backside protection.
  • Inspect penetration, porosity, distortion and heat tint against the actual acceptance criteria.
  • Restore the corrosion-resistant surface by the qualified cleaning, pickling or passivation route when required.
Incoming inspection workflow

How to verify that delivered material is really 304.

Use layered evidence. No single handheld reading replaces heat traceability, the correct certificate and a test method capable of measuring the elements that distinguish the required grade.

01 · DOCUMENTS

Review the MTR

Match grade, heat number, product standard, dimensions, heat analysis, mechanical results and delivery condition to the purchase order.

02 · TRACEABILITY

Match the heat identity

Verify markings, tags, packaging and cut-piece transfer records so the certificate can be connected to the actual material.

03 · SCREENING PMI

Use XRF for Cr/Ni

Handheld XRF is effective for rapid alloy screening and can distinguish many stainless families through chromium, nickel and molybdenum.

04 · CARBON CHECK

Use LIBS or OES

When 304 vs 304L vs 304H matters, use a method qualified to measure carbon, supported by calibration, surface preparation and the inspection procedure.

Critical limitation: conventional handheld XRF cannot measure carbon. It may identify the 304 alloy family, but it cannot by itself prove the low-carbon “L” or controlled-carbon “H” suffix.
Purchase-order checklist

Specify more than “304 stainless.”

A chemistry-only order leaves too many decisions to the seller. Define the evidence, condition and end-use requirements that determine whether the delivered material can actually be fabricated and placed in service.

Minimum useful request: grade + product standard + form + dimensions + finish + condition + inspection certificate + required testing.
01 · GRADE304, 304L or 304H

Name the UNS designation when ambiguity could affect the weld, heat treatment or service case.

02 · PRODUCT STANDARDA240 is not universal

Plate/sheet, bar, pipe, tube, wire, forging and fastener products use different specifications.

03 · FORM & CONDITIONAnnealed, cold worked or fabricated

Condition changes strength, ductility, flatness and magnetic response.

04 · SURFACEFinish and protective film

Define 2B, No. 4, BA or project finish plus surface-defect and film requirements.

05 · CERTIFICATIONHeat-specific test report

Require the certificate type, heat number, chemistry and mechanical results needed by the project.

06 · PMI PLANExtent and test method

State sampling, XRF screening and carbon-capable testing where grade suffix verification is critical.

07 · FABRICATIONWPS and acceptance criteria

Connect material selection to welding, forming, inspection and post-weld surface restoration.

08 · SERVICEEnvironment and design code

Document chlorides, temperature, cleaning chemicals, pressure rules and corrosion allowances.

Frequently asked questions

304 stainless steel composition questions, answered directly.

These answers separate nominal shorthand, chemical limits and field-verification reality.

What is the chemical composition of 304 stainless steel?

For ASTM A240 flat products, UNS S30400 contains 18.0–20.0% chromium, 8.0–10.5% nickel, up to 0.08% carbon, 2.00% manganese, 0.75% silicon, 0.045% phosphorus, 0.030% sulfur and 0.10% nitrogen, with iron as the balance. Verify the product-specific standard and edition on the purchase order.

Why is 304 stainless called 18/8?

“18/8” describes the nominal concept of about 18% chromium and 8% nickel. It is not a complete grade specification and does not replace the permitted composition range, UNS designation, product standard or mill certificate.

What is the difference between 304 and 304L composition?

The main distinction is carbon: 304 allows up to 0.08%, while 304L limits carbon to 0.030%. Other limits can also differ by the applicable product standard. The lower carbon level reduces susceptibility to sensitization during many welding cycles.

Does 304 stainless steel contain molybdenum?

Standard 304 does not require a molybdenum addition. Type 316 intentionally contains roughly 2.0–3.0% molybdenum, which improves localized pitting and crevice-corrosion resistance in many chloride environments.

Can handheld XRF distinguish 304 from 304L?

Not reliably by itself. XRF can screen chromium, nickel and other heavier elements and can identify the 304 family, but conventional handheld XRF does not measure carbon. Carbon-capable LIBS, OES or qualified laboratory analysis is needed when the L or H suffix must be verified.

Is 304 stainless steel magnetic?

Solution-annealed 304 is normally weakly magnetic or effectively non-magnetic, but cold work and welding can create strain-induced or transformation products that increase magnetic response. Magnet response is not a dependable grade-certification test.

Is 304 stainless steel automatically food grade?

No material is made suitable for a food application by grade name alone. 304 is widely used in food equipment, but suitability also depends on finish, hygienic design, fabrication, weld quality, cleaning chemistry, passivation, contamination control and applicable regulations.

Is EN 1.4301 exactly the same as ASTM 304?

They are closely related austenitic chromium-nickel grades and are commonly cross-referenced, but their composition limits, product standards and certification requirements are not identical in every detail. Treat them as comparable grades requiring engineering and contractual review, not automatic substitutes.

Primary technical references

Standards and first-party data behind this guide.

The visible article summarizes these sources; the final purchase decision must use the licensed standard edition and project documents named in the order.

ASTM InternationalASTM A240/A240M-26Scope and current edition for chromium and chromium-nickel plate, sheet and strip.
ISOISO 15510:2014International compilation of stainless steel chemical compositions and designations.
worldstainlessCategories, grades and product formsOverview of austenitic stainless steels and the nominal 18Cr-8Ni concept.
OutokumpuCore range technical dataManufacturer typical chemistry and property context for 304/304L family products.
Nickel InstituteWelded fabrication guidelinesSensitization, low-carbon grades and corrosion-resistant stainless fabrication.
Thermo Fisher ScientificXRF, LIBS and OES for PMIMethod capabilities and the carbon-measurement limitation of XRF.

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