Austenitic Stainless Steels Sourced numerical data plus engineering analysis
Material / Grade

1.4435

Supra 316L/4435

Shaygan Steel

1.4435 / Supra 316L/4435 is a Austenitic Stainless Steels grade centred on corrosion resistance, ductility and fabrication capability in an austenitic stainless structure. This dossier separates sourced values from engineering guidance and comparison indices.

Hardness potential42 / 100Comparison index
Toughness98 / 100Comparison index
Impact resistance98 / 100Comparison index
Bending resistance86 / 100Comparison index
Abrasive wear41 / 100Comparison index
Steel Overview

Complete introduction and metallurgical analysis

1.4435 / Supra 316L/4435 belongs to Austenitic Stainless Steels and selection centres on corrosion resistance, ductility and fabrication capability in an austenitic stainless structure.

1.4435 / Supra 316L/4435 is a Austenitic Stainless Steels grade centred on corrosion resistance, ductility and fabrication capability in an austenitic stainless structure. This dossier separates sourced values from engineering guidance and comparison indices.

The principal recorded elements are C≈0.02%, Cr≈17.3%, Ni≈12.6%, Mo≈2.6%. Mid-range values support engineering interpretation and do not replace purchase limits.

The expected microstructure is predominantly austenitic matrix, with ferrite or secondary phases controlled by composition and thermal history; delivery condition, section size, melt quality and processing history can change that state.

Comparison indices are hardness 42/100, toughness 98/100, impact 98/100, wear 41/100 and bending 86/100. These are internal indices, not standard test results.

The screening temperature range is 400–800 °C; strength or hardness loss, oxidation, exposure time and creep must be assessed separately.

A representative process route is solution annealing, rapid cooling and suitable post-fabrication cleaning or passivation. Obtain actual temperatures, times and cooling media from the grade and product data sheet.

Manufacturing indices are weldability 88/100, machinability 35/100, corrosion resistance 75/100 and fatigue resistance 75/100; use them for screening only.

The principal risk is chloride pitting, crevice corrosion, stress-corrosion cracking or sensitisation in an unsuitable environment or thermal cycle. Evaluate geometry, surface condition, environment and the governing failure mechanism together.

A similar name or calculated relationship is not proof of interchangeability; match chemistry, specification, condition, heat treatment and MTC.

Engineering conclusion: 1.4435 / Supra 316L/4435 is a rational candidate when broad corrosion resistance with good forming and welding behaviour matches the real load, environment and certified product condition.

Recorded standards:EN 1.4435ASTM/AISI 316LUNS S31603
International Equivalents

International equivalents and designations

A close counterpart is not automatically interchangeable. Confirm chemistry, product standard, delivery condition, dimensions and heat treatment.

JISOfficial designation for the same grade
Supra 316L/4435
A registered identity within the same grade record.
EN / W.NrOfficial designation for the same grade
1.4435
A registered identity within the same grade record.
OutokumpuClose counterpart requiring verification
Supra 316L/4435
Match chemistry, product standard, delivery condition, heat treatment and MTC before substitution.
EN/W.NrOfficial designation for the same grade
1.4435
A registered identity within the same grade record.
ASTM/AISI TypeClose counterpart requiring verification
316L
Match chemistry, product standard, delivery condition, heat treatment and MTC before substitution.
UNSClose counterpart requiring verification
S31603
Match chemistry, product standard, delivery condition, heat treatment and MTC before substitution.
Chemical Composition

Chemical composition and the role of each element

The principal recorded elements are C≈0.02%, Cr≈17.3%, Ni≈12.6%, Mo≈2.6%. Mid-range values support engineering interpretation and do not replace purchase limits. Composition is shown for screening and traceability. The current purchase standard and the heat-specific MTC remain authoritative.

ElementWeight-percent rangeMetallurgical role and effect
C≈ 0.02 %Carbon raises hardness, strength and carbide potential; excessive carbon can reduce toughness and weldability.
Cr≈ 17.3 %Chromium promotes hardenability and carbide formation and, at sufficient levels, corrosion or oxidation resistance.
Ni≈ 12.6 %Nickel generally improves toughness and through-section response and stabilises austenite in stainless systems.
Mo≈ 2.6 %Molybdenum improves hardenability and temper resistance and can support hot strength or pitting resistance.

Outokumpu range datasheet — typical chemical composition, % by mass Sourced with conditions

Engineering Behaviour

Engineering behaviour and selection response

Hardness potential42 / 100

Not hardenable by heat treatment; cold work increases strength and hardness. Internal comparison index: 42/100.

Engineering analysis
Toughness98 / 100

Toughness has an internal index of 98/100 (very high). Actual performance requires a documented product condition, heat treatment and test context.

Engineering analysis
Impact resistance98 / 100

Impact resistance has an internal index of 98/100 (very high). Actual performance requires a documented product condition, heat treatment and test context.

Engineering analysis
Bending resistance86 / 100

Bending resistance has an internal index of 86/100 (very high). Actual performance requires a documented product condition, heat treatment and test context.

Engineering analysis
Abrasive wear41 / 100

Abrasive wear has an internal index of 41/100 (low). Actual performance requires a documented product condition, heat treatment and test context.

Engineering analysis
Corrosion resistance75 / 100

Corrosion resistance has an internal index of 75/100 (high). Actual performance requires a documented product condition, heat treatment and test context.

Engineering analysis
Weldability88 / 100

Weldability has an internal index of 88/100 (very high). Actual performance requires a documented product condition, heat treatment and test context.

Engineering analysis
Machinability35 / 100

Machinability has an internal index of 35/100 (low). Actual performance requires a documented product condition, heat treatment and test context.

Engineering analysis
High-temperature strength68 / 100

Temperature behavior is grade- and environment-specific; no single universal maximum service temperature applies. Internal comparison index: 68/100.

Engineering analysis
Creep resistance69 / 100

Creep resistance has an internal index of 69/100 (high). Actual performance requires a documented product condition, heat treatment and test context.

Engineering analysis
Fatigue resistance75 / 100

Fatigue resistance has an internal index of 75/100 (high). Actual performance requires a documented product condition, heat treatment and test context.

Engineering analysis

Numerical scores are internal comparison indices. They are not standard test results, allowable design stresses or a manufacturer guarantee. Data Method

Hardness & Hardenability

Hardness and hardenability

Not hardenable by heat treatment; cold work increases strength and hardness. Internal screening index: 42/100 (low).

42/100

low

Comparison index

Governing factors

  • Chemistry and section size
  • Austenitising and quench severity
  • Tempering temperature and time
  • Test method and surface preparation

Data limits

Final acceptance requires the current standard, product form, dimensions, delivery condition and heat-specific MTC.

Impact & Toughness

Toughness, impact and fracture behaviour

Impact resistance is indexed at 98/100 and toughness at 98/100. These are not Charpy or Izod energy values; temperature, orientation, geometry and actual microstructure govern component behaviour.

98/100very highComparison index
  • Microstructure, hardness and grain size influence impact tolerance.
  • Sharp radii, notches and surface defects reduce fracture resistance.
  • Test temperature, specimen direction and section must be identified.
  • For critical parts, accept impact energy only from a documented test of the same condition.
Temperature & Creep

Service temperature, thermal stability and creep

Temperature behavior is grade- and environment-specific; no single universal maximum service temperature applies. 400–800 °C is a screening range or sourced limit according to its evidence label. Check strength loss, oxidation, creep, exposure time and environment.

Continuous service

400–800 °CEngineering guidance

Review the limit against strength or hardness loss and exposure time.

Intermittent service

Do not assign an intermittent limit without product-specific source data.

Tempering and phase stability

Working and coating temperatures must remain compatible with the tempering condition and required microstructure.

Oxidation and environment

Oxidation or corrosion may become limiting before the strength criterion.

Relative creep resistance69/100Comparison index

The relative creep index is 69/100 (high). It is not an allowable creep stress or rupture-life value.

Do not select this grade for long-term static high-temperature loading from the internal index alone.

Wear & Surface Behaviour

Wear resistance and surface behaviour

Abrasive wear

The abrasive-wear index is 41/100; final hardness, carbides, microstructure, contact mode and lubrication govern actual resistance.

Comparison index

Adhesive wear

Assess adhesive wear with the counterface material, lubrication, roughness, pressure and temperature.

Engineering analysis

Surface improvement

Evaluate surface treatment or coating only after confirming compatibility with chemistry, substrate and process temperature.

Engineering guidance
Mechanical & Physical Properties

Mechanical and physical properties

The record contains 2 sourced mechanical-property rows; each applies only to its stated condition, dimensions and test temperature.

PropertyValueConditionDimensionTest temperature
Yield strength Rp0.2≥ 240 MPaCold-rolled strip in the cited product conditionAccording to the product data sheet20 °C
Elongation A≥ 40 %Reference elongation in manufacturer tableAccording to the product data sheet20 °C
Sourced with conditions

Physical properties

Density≈ 7.9 g/cm³Sourced with conditions
Elastic modulus≈ 200 GPaSourced with conditions
Thermal expansion 20–100°C≈ 16 ×10⁻⁶/KSourced with conditions
Thermal conductivity≈ 15 W/m·KSourced with conditions
Heat capacity≈ 500 J/kg·KSourced with conditions
Electrical resistivity≈ 0.73 Ω·mm²/mSourced with conditions
Heat Treatment

Heat-treatment stages and process controls

The representative family route is solution annealing, rapid cooling and suitable post-fabrication cleaning or passivation. Numerical temperatures are shown only when supported by the record.

1

Annealing / stress relief

1000–1100 °CSourced with conditions

Assess the supply condition, residual stress, section size and prior machining before selecting time and temperature.

Cooling: Grade- and process-specific cooling
2

Annealing / stress relief

Engineering guidance

Assess the supply condition, residual stress, section size and prior machining before selecting time and temperature.

Cooling: Grade- and process-specific cooling
3

Preheating and austenitising

Engineering guidance

Set preheat steps and austenitising parameters from the grade/product data sheet and actual section size.

Cooling: Grade- and process-specific cooling
4

Quenching / controlled cooling

Engineering guidance

Choose the quench medium and cooling severity against hardenability, geometry, distortion and crack risk.

Cooling: Grade- and process-specific cooling
5

Tempering / property adjustment

Engineering guidance

Set tempering or ageing to the required hardness, toughness and service-temperature balance.

Cooling: Grade- and process-specific cooling
Process control: Review delivery condition, actual section, equipment capability, crack and distortion risk and target hardness before approving the cycle.
Engineering Charts

Hardness, toughness, impact, temperature and process charts

Chemistry data retain their evidence label; 0–100 charts are internal indices and stages without temperature are process sequences.

Multi-axis engineering profile

Comparison index

Chemical composition

Derived from source data

Hardness–toughness balance

Comparison index

Toughness, impact and fatigue

Comparison index

Wear and surface response

Comparison index

Mechanical properties or comparison indices

Sourced with conditions

Service temperature

Engineering guidance

Heat treatment

Sourced with conditions

Related-grade similarity

Comparison index

All comparison indices

Comparison index
Failure Modes & Selection

Potential failure modes and selection guidance

Potential failure mechanisms

  • chloride pitting, crevice corrosion, stress-corrosion cracking or sensitisation in an unsuitable environment or thermal cycle.
  • Fatigue initiation from surface defects, section transitions or stress concentration.
  • Property loss after unsuitable heat treatment, cooling or finishing.
  • Corrosion, oxidation or environmental attack when protection is inadequate.

Selection and design notes

  • Match designation, material number, product standard and supply form before purchase.
  • Compare the governing failure mechanism with hardness 42, toughness 98, impact 98 and wear 41 indices out of 100.
  • Use mechanical values only within their cited condition, dimensions and test temperature.
  • Confirm the heat-treatment route and target hardness with the processor before final machining.
  • Review the heat number, MTC and required test results before release.

Derived calculations

Pitting-resistance equivalent PREN (indicative)25.9 Calculated

Calculated from recorded inputs; apply only within the stated formula scope and limitations.

Advantages & Limitations

Advantages, limitations and unsuitable applications

Advantages

  • broad corrosion resistance with good forming and welding behaviour.
  • A clearly labelled engineering profile supports comparison with related grades.
  • Grade identity, chemistry, counterparts and references remain traceable in one dossier.

Limitations and weaknesses

  • chloride pitting, crevice corrosion, stress-corrosion cracking or sensitisation in an unsuitable environment or thermal cycle.
  • A 0–100 index cannot be converted into design stress, impact energy or creep life.
  • Hardness and toughness depend on section, delivery condition and actual processing.
  • Do not approve a substitute before checking the product standard and heat-specific MTC.

Cases requiring caution or an alternative material

Critical design without condition- and section-specific test dataDirect substitution based only on name or similarity scoreLong-term creep service without sourced time–stress–temperature datachloride pitting, crevice corrosion, stress-corrosion cracking or sensitisation in an unsuitable environment or thermal cycle
Applications & Processing

Industrial applications and processing

Typical applications

  • Furnace, heat-treatment and high-temperature process components
  • Food, beverage, hygienic and pharmaceutical equipment
  • Chemical and process equipment, tanks and piping
  • Marine, chloride-bearing and desalination service
  • Valves, pumps and flanges
  • Plate, sheet and tubular products to the applicable product standard
  • Architectural and formed components
  • process and food equipment

Manufacture, welding and surface engineering

Weldability has an internal index of 88/100 (very high). Actual performance requires a documented product condition, heat treatment and test context.

Forming and forging depend on steel family, delivery condition and the grade-specific qualified temperature range.

  • Clean and passivate after fabrication or welding where the specification requires it.
  • Electropolishing may be used where cleanliness or corrosion performance requires it.
  • Prevent free-iron contamination and preserve the specified surface condition.
Engineering Conclusion

Engineering conclusion and selection recommendation

1.4435 / Supra 316L/4435 is worth evaluating when the principal need is broad corrosion resistance with good forming and welding behaviour. Internal indices of hardness 42/100, toughness 98/100, impact 98/100 and wear 41/100 must be aligned with the real failure mechanism. The leading risk is chloride pitting, crevice corrosion, stress-corrosion cracking or sensitisation in an unsuitable environment or thermal cycle. Final approval requires the current standard, product form, dimensions, delivery condition, heat treatment and heat-specific MTC.

Engineering analysis
Shaygan Steel — the right choice in alloy steel
Frequently Asked Questions

Frequently asked questions

What is 1.4435 / Supra 316L/4435 steel?

1.4435 / Supra 316L/4435 is a Austenitic Stainless Steels grade centred on corrosion resistance, ductility and fabrication capability in an austenitic stainless structure. This dossier separates sourced values from engineering guidance and comparison indices.

What are the main applications of 1.4435 / Supra 316L/4435?

Application contexts include Furnace, heat-treatment and high-temperature process components, Food, beverage, hygienic and pharmaceutical equipment, Chemical and process equipment, tanks and piping and Marine, chloride-bearing and desalination service, subject to the product standard and actual condition.

How hard can 1.4435 / Supra 316L/4435 be?

Not hardenable by heat treatment; cold work increases strength and hardness. Internal screening index: 42/100 (low).

Is 1.4435 / Supra 316L/4435 suitable for impact loading?

Impact resistance is indexed at 98/100 and toughness at 98/100. These are not Charpy or Izod energy values; temperature, orientation, geometry and actual microstructure govern component behaviour.

What is the service-temperature limit of 1.4435 / Supra 316L/4435?

Temperature behavior is grade- and environment-specific; no single universal maximum service temperature applies. 400–800 °C is a screening range or sourced limit according to its evidence label. Check strength loss, oxidation, creep, exposure time and environment.

Can 1.4435 / Supra 316L/4435 be replaced by a close grade?

Approve substitution only after matching chemistry, specification, product form, condition, heat treatment and MTC.

Steel Comparison

Engineering steel comparison

Compare this grade with any other dossier. Scores from 0 to 100 are internal screening indices, not laboratory values or allowable design stresses.

Close suggestions:
Current grade1.4435 / Supra 316L/4435Austenitic Stainless Steels
VS
Selected grade1.4404 / Supra 316L/4404Austenitic Stainless Steels

Current-grade chemistry

Second-grade chemistry

Current-grade heat treatment

Second-grade heat treatment

Current-grade applications

    Limitations

      Second-grade applications

        Limitations

          Select a second grade to update the comparison.

          Sources & Evidence

          Sources, methodology and evidence

          Sources support grade identity, recorded values or the engineering method. General guidance does not replace product-specific certification.

          Grade-specific sources

          Outokumpu Supra rangeManufacturer Range Page · Tier A

          Reference supporting grade identity or recorded values; interpret it within the cited product and condition context. Role: manufacturer range page.

          View source
          Outokumpu Supra range datasheetManufacturer data sheet · Tier A

          Reference supporting grade identity or recorded values; interpret it within the cited product and condition context. Role: manufacturer datasheet.

          View source
          steelnumber.comDesignation cross-reference · Tier B

          Reference supporting grade identity or recorded values; interpret it within the cited product and condition context. Role: identity crosswalk.

          View source
          stahldaten.deOfficial material-number register · Tier A

          Reference supporting grade identity or recorded values; interpret it within the cited product and condition context. Role: official material number register.

          View source

          Methodology and analysis sources

          TWI — Carbon equivalent formulae in relation to hydrogen cracking

          Reference supporting the calculation method or the limits of the engineering analysis.

          View source
          Outokumpu — Corrosion resistance and PRE/PREN

          Reference supporting the calculation method or the limits of the engineering analysis.

          View source
          Uddeholm — Cold work tooling technical guide

          Reference supporting the calculation method or the limits of the engineering analysis.

          View source
          Ovako Steel Navigator — Steel grades and material data sheets

          Reference supporting the calculation method or the limits of the engineering analysis.

          View source
          Laxcon Steels open grade dataset — CC BY 4.0

          Reference supporting the calculation method or the limits of the engineering analysis.

          View source
          Outokumpu — Handbook of Stainless Steel

          Reference supporting the calculation method or the limits of the engineering analysis.

          View source

          Dossier reviewed: 2026-08-25 · Evidence status: Sourced numerical data plus engineering analysis

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