| Literature DB >> 34901344 |
Gitanjali Shanbhag1, Evan Wheat1, Shawn Moylan2, Mihaela Vlasea1.
Abstract
Additive manufacturing quality assessment often relies on tensile testing as the preferred methodology to qualify builds and materials. The data included in this article provides additional supporting information on our manuscript (Shanbhag et al., 2021) on the effect of specimen geometry and orientation on tensile properties of Ti-6Al-4V manufactured by electron beam powder bed fusion. As such, the data in brief provides in-depth details on the tensile specimen specifications, the tensile specimen build layout and replicate notations, and the tensile testing datasets. The information presented herein complements the manuscript.Entities:
Keywords: Additive manufacturing; Geometry; Qualification; Tensile properties; Ti-6Al-4V; X-ray computed tomography
Year: 2021 PMID: 34901344 PMCID: PMC8637463 DOI: 10.1016/j.dib.2021.107613
Source DB: PubMed Journal: Data Brief ISSN: 2352-3409
ASTM E8/E8M tensile specimen types along with their dimensions [2].
| Specimen Type | |||||||
|---|---|---|---|---|---|---|---|
| Flat (Large) | Flat (Small) | E8-3 | E8M-2 | E8M-3 | E8M-4 | E8M-5 | |
| G (Gauge length in mm) | 50.0 ± 0.1 | 25.0 ± 0.1 | 24.0 ± 0.1 | 45.0 ± 0.1 | 30.0 ± 0.1 | 20.0 ± 0.1 | 12.5 ± 0.1 |
| W (Width in mm) | 12.5 ± 0.2 | 6.0 ± 0.1 | - | - | - | - | - |
| D (Diameter in mm) | - | - | 6.0 ± 0.1 | 9.0 ± 0.1 | 6.0 ± 0.1 | 4.0 ± 0.1 | 2.5 ± 0.1 |
| T max (Maximum thickness) | 19 | 6 | - | - | - | - | - |
| T (Thickness used in the current work in mm) | 3 | 3 | - | - | - | - | - |
| R (Radius of fillet in mm) | 12.5 | 6 | 6 | 8 | 6 | 4 | 2 |
| L (Overall Length in mm) | 200 | 100 | 88.57 | 115.98 | 94.57 | 79.71 | 73.12 |
| A (Length of reduced parallel section, min in mm) | 57 | 32 | 30 | 54 | 36 | 24 | 20 |
| B (Length of grip section used in the current work in mm) | 62.5 | 29.5 | 25 | 25 | 25 | 25 | 25 |
| C (Width of grip section, approximate in min) | 20 | 10 | 9.6 | 14.4 | 9.6 | 6.4 | 4 |
Build orientation, location, and naming scheme for all specimen replicates as per ASTM 52921:2013 [3].
| Specimen Type | Orientation | Specimen Replicate | |||||
|---|---|---|---|---|---|---|---|
| Replicate 1 | Replicate 2 | Replicate 3 | |||||
| Specimen designation | Location ( | Specimen designation | Location ( | Specimen designation | Location ( | ||
| Flat (Large) | E | 0.0, -61.4, 15.0 | J | 0.0, -9.9, 15.0 | R | 0.0, 62.6, 15.0 | |
| Flat (Small) | C | -46.1, -70.3, 10.0 | T | 44.8, 70.2, 10.0 | Q | 47.9, 54,7, 10.0 | |
| E8-3 | G | 47.9, -47.9, 9.8 | N | -52.3, 36.6, 9.8 | I | 48.9, -19.5, 9.8 | |
| E8M-2 | A | -37.3, -87.3, 12.2 | M | 0.4, 15.0, 12.2 | U | 38.7, 88.0, 12.2 | |
| E8M-3 | H | -46.7, -19.1, 9.8 | O | 48.5, 31.9, 9.8 | F | -50.9, -39.9, 9.8 | |
| E8M-4 | K | -45.7, - 0.1, 8.2 | P | -55.5, 54.1, 8.2 | S | -55.5, 71.4, 8.2 | |
| E8M-5 | B | 60.8, -90.9, 7.0 | D | 59.0, -69.7, 7.0 | L | 54.3, 0.2, 7.0 | |
| Flat (Large) | 1B | 29.9, -34.0, 100.0 | 2B | -63.8, -29.4, 100.0 | 3B | -26.7, 27.3, 100.0 | |
| Flat (Small) | 4 | 11.3, 45.0, 149.9 | 10 | -73.9, 24.4, 149.9 | 11 | -32.5, -29.3, 149.9 | |
| E8-3 | 7 | -36.3, 84.4, 154.9 | 8 | 4.5, 0.6, 154.9 | 9 | 52.7, -80.5, 154.9 | |
| E8M-2 | 1 | -71.9, 87.3, 141.9 | 5 | -86.7, 15.2, 141.9 | 6 | 50.3, 44.1, 141.9 | |
| E8M-3 | 13 | 36.3, 84.4, 47.2 | 14 | 4.5, 0.6, 47.2 | 15 | 52.7, -80.5, 47.2 | |
| E8M-4 | 17 | 75.3, 15.1, 160.0 | 20 | 67.9, -35.4, 59.1 | 22 | -50.4, -77.9, 59.1 | |
| E8M-5 | 28 | 49.6, 78.9, 163.3 | 27 | -10.4, -53.4, 163.3 | 29 | 73.4, -83.5, 163.3 | |
Anomalous stress-strain curves.
| Type | Orientation | Designation | Notes |
|---|---|---|---|
| E8M-5 | Horizontal | B | Failed outside gauge length as per testing laboratory |
| Flat (Large) | Horizontal | R | Failed outside gauge length as per testing laboratory |
| Flat (Small) | Horizontal | Q | Failed outside gauge length as per testing laboratory |
| E8-3 | Vertical | 7 | Odd shape, suspected early failure |
| E8M-3 | Horizontal | O | Odd shape, suspected early failure |
| E8M-5 | Horizontal | L | Odd shape, Suspected sample slippage in the grips |
| Flat (Large) | Horizontal | E | Odd shape, suspected early failure |
| Flat (Large) | Horizontal | J | Odd shape, suspected early failure |
| Flat (Small) | Horizontal | C | Odd shape, suspected early failure |
| Subject | Engineering, Materials Science |
| Specific subject area | Additive Manufacturing |
| Type of data | Tabulated data |
| How data were acquired | An Arcam A2X1 electron beam powder bed fusion additive manufacturing system was used to fabricate the tensile specimens using the build STL file and an Instron MTS Criterion tensile test instrument was used by an external certified lab to extract all tensile data that is provided in the XLSX file. |
| Data format | Raw |
| Parameters for data collection | As described in the manuscript (Shanbhag et al., 2021). Additional supporting data is included in this Data in Brief manuscript. |
| Description of data collection | Test specimens were fabricated in vertical and horizontal directions via the electron beam powder bed fusion (EB-PBF) technique. Tensile testing was performed at an external NADCAP certified lab and these tests were conducted following ASTM |
| Data source location | Multi-Scale Additive Manufacturing Laboratory, University of Waterloo, Waterloo, ON, Canada |
| Data accessibility | With the article |
| Related research article | G. Shanbhag, E. Wheat, S. Moylan, M. Vlasea. Effect of specimen geometry and orientation on tensile properties of Ti-6Al-4V manufactured by electron beam powder bed fusion, .Addit. Manuf. 48 (2021) 102366. |
1Certain commercial equipment, instruments, or materials are identified in this paper to foster understanding. Such identification does not imply recommendation or endorsement by the National Institute of Standards and Technology and the University of Waterloo, nor does it imply that the materials or equipment identified are necessarily the best available for the purpose.