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AISI 316L, additively manufactured, PBF-LB (St_T_30_v_3)

Bei diesem Datensatz handelt es sich um Ergänzungen zu folgender Materialbeschreibung: AISI 316L

The elastic properties (Young's modulus, shear modulus) of austenitic stainless steel AISI 316L were investigated between room temperature and 900 °C in an additively manufactured variant (laser powder bed fusion, PBF‑LB/M) and from a conventional process route (hot rolled sheet). The moduli were determined using the dynamic resonance method. The data set includes information on processing parameters, heat treatments, grain size, specimen dimensions and weight, Young’s and shear modulus as well as their measurement uncertainty.

The dataset was generated in an accredited testing lab using calibrated measuring equipment. The calibrations meet the requirements of the test procedure and are metrologically traceable. The dataset was audited as BAM reference data. The dataset was made available under the Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/legalcode).

Publikationstyp Forschungsergebnis
Anwendungsgebiete aerospace; energy; medical; automotive; high temperature application
Schlagwörter
BAM reference data
Young's modulus
Shear modulus
Zenodo
Data set
Bauform blank type: tower; Inclination of specimen (L-direction) relative to building direction = 0°; layer thickness = 30 µm; m = 9.168 g
Versuchsaufbau
  • Measurement of Young´s modulus and shear modulus: Elastotron 2000 (HTM Reetz, Berlin, Germany)
weitere Angaben
  • T = temperature
  • m = mass
  • ff(e) = fundamental resonance frequency of the bar in flexure (edge wise)
  • ff(f) = fundamental resonance frequency of the bar in flexure (flat wise)
  • ft = fundamental resonance frequency of the bar in torsion

Herstellungsverfahren und Ausgangsmaterialien

Name additively manufactured, PBF-LB
Beschreibung machine: SLM Solutions 280HL (SLM Solutions Group AG, Germany); heat treatment: 450°C/4h + furnace cooling
Ausgangsmaterial

Physikalische Eigenschaften

Name Wert Bemerkung Messverfahren und -bedingungen
(mittlere) Korngröße 0.065 mm EBSD, section parallel to building direction
Abmessung (Länge) 64 mm T = 24 °C
Abmessung (Länge) 64.08 mm T = 100 °C
Abmessung (Länge) 64.19 mm T = 200 °C
Abmessung (Länge) 64.3 mm T = 300 °C
Abmessung (Länge) 64.42 mm T = 400 °C
Abmessung (Länge) 64.55 mm T = 500 °C
Abmessung (Länge) 64.68 mm T = 600 °C
Abmessung (Länge) 64.82 mm T = 700 °C
Abmessung (Länge) 64.97 mm T = 800 °C
Abmessung (Länge) 65.04 mm T = 850 °C
Abmessung (Länge) 65.12 mm T = 900 °C
Abmessung (Breite) 6.005 mm T = 24 °C
Abmessung (Breite) 6.012 mm T = 100 °C
Abmessung (Breite) 6.022 mm T = 200 °C
Abmessung (Breite) 6.033 mm T = 300 °C
Abmessung (Breite) 6.045 mm T = 400 °C
Abmessung (Breite) 6.056 mm T = 500 °C
Abmessung (Breite) 6.069 mm T = 600 °C
Abmessung (Breite) 6.082 mm T = 700 °C
Abmessung (Breite) 6.096 mm T = 800 °C
Abmessung (Breite) 6.103 mm T = 850 °C
Abmessung (Breite) 6.11 mm T = 900 °C
Abmessung (Tiefe) 3.005 mm T = 24 °C
Abmessung (Tiefe) 3.009 mm T = 100 °C
Abmessung (Tiefe) 3.014 mm T = 200 °C
Abmessung (Tiefe) 3.019 mm T = 300 °C
Abmessung (Tiefe) 3.025 mm T = 400 °C
Abmessung (Tiefe) 3.031 mm T = 500 °C
Abmessung (Tiefe) 3.037 mm T = 600 °C
Abmessung (Tiefe) 3.044 mm T = 700 °C
Abmessung (Tiefe) 3.05 mm T = 800 °C
Abmessung (Tiefe) 3.054 mm T = 850 °C
Abmessung (Tiefe) 3.058 mm T = 900 °C
Dichte 7.938 g/cm³ T = 24 °C
7.91 g/cm³ T = 100 °C
7.87 g/cm³ T = 200 °C
7.828 g/cm³ T = 300 °C
7.784 g/cm³ T = 400 °C
7.738 g/cm³ T = 500 °C
7.69 g/cm³ T = 600 °C
7.64 g/cm³ T = 700 °C
7.589 g/cm³ T = 800 °C
7.562 g/cm³ T = 850 °C
7.535 g/cm³ T = 900 °C
Mechanische Eigenschaften
 
Schubmodul 77 GPa ft = 18067.0 Hz ASTM E 1875, T = 24 °C
75 GPa ft = 17875.0 Hz ASTM E 1875, T = 100 °C
71 GPa ft = 17355.0 Hz ASTM E 1875, T = 200 °C
67 GPa ft = 16913.0 Hz ASTM E 1875, T = 300 °C
64 GPa ft = 16523.0 Hz ASTM E 1875, T = 400 °C
61 GPa ft = 16125.0 Hz ASTM E 1875, T = 500 °C
58 GPa ft = 15689.0 Hz ASTM E 1875, T = 600 °C
54 GPa ft = 15238.0 Hz ASTM E 1875, T = 700 °C
51 GPa ft = 14789.0 Hz ASTM E 1875, T = 800 °C
49 GPa ft = 14592.0 Hz ASTM E 1875, T = 850 °C
48 GPa ft = 14341.0 Hz ASTM E 1875, T = 900 °C
Zug-Elastizitätsmodul 197 GPa mean ASTM E 1875, T = 24 °C
196 GPa flat-wise in the thickness direction, ff(f) = 3724.0 Hz ASTM E 1875, T = 24 °C
197 GPa edge-wise in the width direction, ff(e) = 7285.0 Hz ASTM E 1875, T = 24 °C
193 GPa mean ASTM E 1875, T = 100 °C
192 GPa flat-wise in the thickness direction, ff(f) = 3688.0 Hz ASTM E 1875, T = 100 °C
193 GPa edge-wise in the width direction, ff(e) = 7213.0 Hz ASTM E 1875, T = 100 °C
182 GPa mean ASTM E 1875, T = 200 °C
182 GPa flat-wise in the thickness direction, ff(f) = 3592.0 Hz ASTM E 1875, T = 200 °C
183 GPa edge-wise in the width direction, ff(e) = 7024.0 Hz ASTM E 1875, T = 200 °C
173 GPa mean ASTM E 1875, T = 300 °C
173 GPa flat-wise in the thickness direction, ff(f) = 3503.0 Hz ASTM E 1875, T = 300 °C
174 GPa edge-wise in the width direction, ff(e) = 6853.0 Hz ASTM E 1875, T = 300 °C
166 GPa mean ASTM E 1875, T = 400 °C
166 GPa flat-wise in the thickness direction, ff(f) = 3431.0 Hz ASTM E 1875, T = 400 °C
166 GPa edge-wise in the width direction, ff(e) = 6711.0 Hz ASTM E 1875, T = 400 °C
158 GPa mean ASTM E 1875, T = 500 °C
158 GPa flat-wise in the thickness direction, ff(f) = 3354.0 Hz ASTM E 1875, T = 500 °C
159 GPa edge-wise in the width direction, ff(e) = 6561.0 Hz ASTM E 1875, T = 500 °C
150 GPa mean ASTM E 1875, T = 600 °C
150 GPa flat-wise in the thickness direction, ff(f) = 3270.0 Hz ASTM E 1875, T = 600 °C
150 GPa edge-wise in the width direction, ff(e) = 6396.0 Hz ASTM E 1875, T = 600 °C
142 GPa mean ASTM E 1875, T = 700 °C
142 GPa flat-wise in the thickness direction, ff(f) = 3184.0 Hz ASTM E 1875, T = 700 °C
142 GPa edge-wise in the width direction, ff(e) = 6229.0 Hz ASTM E 1875, T = 700 °C
134 GPa mean ASTM E 1875, T = 800 °C
134 GPa flat-wise in the thickness direction, ff(f) = 3099.0 Hz ASTM E 1875, T = 800 °C
135 GPa edge-wise in the width direction, ff(e) = 6064.0 Hz ASTM E 1875, T = 800 °C
131 GPa mean ASTM E 1875, T = 850 °C
130 GPa flat-wise in the thickness direction, ff(f) = 3057.0 Hz ASTM E 1875, T = 850 °C
131 GPa edge-wise in the width direction, ff(e) = 5981.0 Hz ASTM E 1875, T = 850 °C
125 GPa mean ASTM E 1875, T = 900 °C
125 GPa flat-wise in the thickness direction, ff(f) = 3000.0 Hz ASTM E 1875, T = 900 °C
Thermische Eigenschaften
 
linearer Längenausdehnungskoeffizient 16 10⁻⁶/K T = 100 °C
16.5 10⁻⁶/K T = 200 °C
17 10⁻⁶/K T = 300 °C
17.5 10⁻⁶/K T = 400 °C
18 10⁻⁶/K T = 500 °C
18.5 10⁻⁶/K T = 600 °C
19 10⁻⁶/K T = 700 °C
19.5 10⁻⁶/K T = 800 °C
19.8 10⁻⁶/K T = 850 °C
20 10⁻⁶/K T = 900 °C

Abbildungen und Diagramme

Tensile Modulus of Elasticity at different Temperatures
Tensile Modulus of Elasticity at different Temperatures
Change of Dimensions at different Temperatures compared to 24 °C
Change of Dimensions at different Temperatures compared to 24 °C
Density at different Temperatures
Density at different Temperatures
Coefficient of Linear Thermal Expansion at different Temperatures
Coefficient of Linear Thermal Expansion at different Temperatures
Shear Modulus at different Temperatures
Shear Modulus at different Temperatures
Fundamental Resonance Frequency of the Bar in Torsion at different Temperatures
Fundamental Resonance Frequency of the Bar in Torsion at different Temperatures
Fundamental Resonance Frequency of the Bar in Edge-Wise Flexure at different Temperatures
Fundamental Resonance Frequency of the Bar in Edge-Wise Flexure at different Temperatures
Fundamental Resonance Frequency of the Bar in Flat-Wise Flexure at different Temperatures
Fundamental Resonance Frequency of the Bar in Flat-Wise Flexure at different Temperatures

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Haftungsausschluss

Die BAM Referenzdaten wurden von der Bundesanstalt für Materialforschung und -prüfung (BAM) unter der Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/legalcode) auf Zenodo bereitgestellt.Die SLUB hat die bereitgestellten Inhalte einer Normalisierung unterzogen, die notwendig ist, um eine umfassende Recherche und die Vergleichbarkeit der Materialien zu ermöglichen. Trotz größter zumutbarer Sorgfalt können bei diesem Normalisierungsprozess Fehler auftreten, weshalb ausdrücklich darauf hingewiesen wird, dass auf Grundlage der im Material Hub vorhandenen Daten keine Entscheidungen zur Verwendung oder Anschaffung eines Materials getroffen werden dürfen. Vielmehr ist es notwendig den Datenerzeuger im Vorfeld einer solchen Entscheidung direkt zu kontaktieren, um die Korrektheit der Daten zu verifizieren.

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Letzte Aktualisierung: 29.07.2024
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