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DMLS 316L Stainless Steel vs. Iron

Compare DMLS 316L Stainless Steel vs. Iron strength, stiffness, weight and thermal properties.

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DMLS 316L Stainless Steel3D printed metal (DMLS)
IronWrought
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Mechanical
Yield strength530MPasourcetypical, as manufactured, horizontal186MPasourcetypical (0.2% YS), hot rolled + SRA/recrystallization anneal
Ultimate tensile strength640MPasourcetypical, as manufactured, horizontal290MPasourcetypical, SRA/recrystallization anneal
Elongation at break40%sourcetypical at break, as manufactured, horizontal38%sourcetypical, gauge 4D0
Young's modulus (stiffness)185GPasourcetypical, as built, horizontal (XY); EOSINT M280-400W / M290-400W, 316L_Surface 1.0, 20 µm (2014 sheet)207GPasourcetypical, after SRA/recrystallization anneal
Density7,900kg/m³sourcepart density (ISO 3369, not labelled min or typical), EOS M 290, 40 µm FlexLine7,860kg/m³sourcetypical
Strength to weight67.1kN·m/kg2.84x higher23.7kN·m/kg
Stiffness to weight23.4MN·m/kg26.3MN·m/kg12% higher
Poisson's ratio0.3sourcebase material: austenitic stainless steels incl. 1.4404 (316L), design value0.282sourceNIST critically evaluated best value (polycrystalline iron)
Shear modulus71.2GPa80.7GPa13% stiffer in shear
Bulk modulus154GPa158GPa
Speed of sound4,839m/s5,132m/s
Thermal
Thermal conductivity16.2W/m·Ksourcebase material: wrought 316/316L (Cleveland-Cliffs), at 100 °C73.2W/m·Ksourcetypical at 20 °C
Thermal expansion15.7µm/m·Ksourcemean 25-100 °C, ASTM E22813.7µm/m·Ksourcemean, 20-399 °C
100 mm part over a 50 °C swing78.6µm growth68.5µm growth15% less
Specific heat500J/kg·Ksourcebase material: wrought 316/316L (Cleveland-Cliffs), 0-100 °C450J/kg·Ksourcetypical
Heats up and cools (diffusivity)4.1mm²/s20.7mm²/s5.05x faster
Thermal shock resistance2,067W/m3,447W/m1.67x more resistant
Melting pointnot sourced1,532°Csourcetypical
Values forEOS StainlessSteel 316L (powder 9011-0032), EOS M 290, ParameterSet 316L 20µm Surface M290/400W, as manufactured, horizontal; ISO 6892-1Cleveland-Cliffs / AK Steel ARMCO Pure Iron Product Data Bulletin (07/2022): Table 1 typical physical properties, Table 2 typical mechanical properties after SRA/recrystallization anneal.

Every value links to the document that states it. "Not sourced" means no citable source states it (or only a specification minimum); figures computed from it are left out too.

DMLS 316L Stainless Steel is 3D printed: its properties depend on build direction and print settings; these are typical values.

Questions

Is DMLS 316L Stainless Steel stronger than Iron?

DMLS 316L Stainless Steel is stronger: its yield strength is 530 MPa against 186 MPa for Iron (2.85x).

Which is lighter, DMLS 316L Stainless Steel or Iron?

Iron is lighter: 7,860 kg/m³ against 7,900 kg/m³ for DMLS 316L Stainless Steel.

Which is stiffer, DMLS 316L Stainless Steel or Iron?

Iron is stiffer: Young's modulus 207 GPa against 185 GPa for DMLS 316L Stainless Steel, so the same part in Iron deflects less under the same load.

Which is lighter for the same job, DMLS 316L Stainless Steel or Iron?

For the same stiffness or strength: DMLS 316L Stainless Steel is lighter for a strong rod or tie, strong beam, strong panel or plate; Iron is lighter for a stiff rod or tie (tension), stiff beam (bending), stiff panel or plate.

Part that must beDMLS 316L Stainless SteelIron
Stiff rod or tie (tension)12% heavierlighter
Stiff beam (bending)6% heavierlighter
Stiff panel or plate4% heavierlighter
Strong rod or tielighter2.84x heavier
Strong beamlighter2x heavier
Strong panel or platelighter1.68x heavier

For the same stiffness or strength, mass scales with density over stiffness (or strength) raised to a power set by how the part is loaded: 1 for a rod in tension, 1/2 for a beam in bending, 1/3 for a panel (the standard material-selection indices).

Which conducts heat better, DMLS 316L Stainless Steel or Iron?

Iron conducts heat better: 73.2 W/m·K against 16.2 W/m·K for DMLS 316L Stainless Steel.

Which expands less with temperature?

Iron expands less: 13.7 µm/m·K against 15.7 µm/m·K for DMLS 316L Stainless Steel.

Among 59 materials

1k10k0.1110100Density (kg/m³)Young's modulus (GPa)Plastic PLAPlastic PETGPlastic ABSPlastic TPUPlastic NylonAluminumSteelTitaniumSteel AISI 1018Stainless Steel 304Stainless Steel 316Aluminum 6061-T6Aluminum 7075-T6Brass C360Copper C110GlassSteel AISI 1045Steel AISI 4340Steel A992Stainless Steel 303Stainless Steel 17-4PHAluminum 2024-T351Aluminum 5052-H32Aluminum 7050-T7451Titanium Ti-6Al-4VBrass C260Nickel Inconel 718Magnesium AZ31B-H24Zinc Zamak 3Plastic ABS (bulk/injection)Plastic PolycarbonatePlastic POM/AcetalPlastic Nylon PA6Plastic Nylon PA66Plastic PEEKPlastic UHMWPEPlastic HDPEPlastic PolypropylenePlastic PMMAFDM ASAFDM PolycarbonateFDM PAHT-CFFDM HIPSSLA Resin Tough 2000SLS PA12 NylonDMLS AlSi10Mg AluminumDMLS Ti-6Al-4V ELI TitaniumDMLS 17-4PH Stainless SteelDMLS 316L Stainless SteelIron
Stiffness against density
1k10k101001kDensity (kg/m³)Yield strength (MPa)Plastic PLAPlastic PETGPlastic ABSPlastic TPUPlastic NylonRubberAluminumSteelTitaniumSteel AISI 1018Stainless Steel 304Stainless Steel 316Aluminum 6061-T6Aluminum 7075-T6Brass C360Copper C110GlassSteel AISI 1045Steel AISI 4340Steel A992Stainless Steel 303Stainless Steel 17-4PHAluminum 2024-T351Aluminum 5052-H32Aluminum 7050-T7451Titanium Ti-6Al-4VBrass C260Nickel Inconel 718Magnesium AZ31B-H24Zinc Zamak 3Plastic ABS (bulk/injection)Plastic PolycarbonatePlastic POM/AcetalPlastic Nylon PA6Plastic Nylon PA66Plastic PEEKPlastic PTFEPlastic UHMWPEPlastic HDPEPlastic PolypropylenePlastic PMMAFDM ASAFDM PolycarbonateFDM PAHT-CFFDM HIPSSLA Resin Tough 2000SLA Resin Elastic 50ASLS PA12 NylonDMLS AlSi10Mg AluminumDMLS Ti-6Al-4V ELI TitaniumDMLS 17-4PH Stainless SteelBrickDMLS 316L Stainless SteelIron
Strength against density

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