| Literature DB >> 27054180 |
Garrett J Marshall1, Scott M Thompson1, Nima Shamsaei1.
Abstract
An OPTOMEC Laser Engineered Net Shaping (LENS(™)) 750 system was retrofitted with a melt pool pyrometer and in-chamber infrared (IR) camera for nondestructive thermal inspection of the blown-powder, direct laser deposition (DLD) process. Data indicative of temperature and heat transfer within the melt pool and heat affected zone atop a thin-walled structure of Ti-6Al-4V during its additive manufacture are provided. Melt pool temperature data were collected via the dual-wavelength pyrometer while the dynamic, bulk part temperature distribution was collected using the IR camera. Such data are provided in Comma Separated Values (CSV) file format, containing a 752×480 matrix and a 320×240 matrix of temperatures corresponding to individual pixels of the pyrometer and IR camera, respectively. The IR camera and pyrometer temperature data are provided in blackbody-calibrated, raw forms. Provided thermal data can aid in generating and refining process-property-performance relationships between laser manufacturing and its fabricated materials.Entities:
Keywords: Additive manufacturing; Directed energy deposition; Heat affected zone; Heat transfer; Infrared thermography; Laser Engineered Net Shaping (LENS); Melt pool; Process monitoring; Thermal imaging
Year: 2016 PMID: 27054180 PMCID: PMC4802429 DOI: 10.1016/j.dib.2016.02.084
Source DB: PubMed Journal: Data Brief ISSN: 2352-3409
Set and measured dimensions of Ti–6Al–4V thin-walled structure.
| 50.8 mm | 30.48 mm | N/A | |
| 47.81 mm@top | 27.56 mm | 1.78 mm | |
| 51.78 mm@base |
Fig. 1As-built Ti-6Al-4V thin wall: dimensions (left) and photograph (right).
Fig. 2Photograph of inside the LENS™ chamber (window cover removed) with IR camera on custom mounting bracket, Ti–6Al–4V substrate, Ti–6Al–4V cylindrical rods, CNC stage, and deposition head consisting of nozzles and laser shaft. A ‘z-incrementing bracket’, which is connected to the laser shaft, is also shown in photograph for reference. Cylindrical specimens shown in photograph were in the chamber at the time of photograph and are unrelated and inconsequential to the presented data [1].
Pyrometer and IR camera specifications.
| Detector type | CMOS |
| Array size | 752×480 |
| Pixel pitch | 6.45 μm |
| Temperature range | 1000–2500 °C |
| Detector type | Uncooled VOx Microbolometer |
| Array size | 320×240 |
| Pixel pitch | 17 μm |
| Response range | 8–14 μm |
| NEdT @f/1.0 | <50 mK |
Fig. 3Side view (top) and aerial view (bottom) of IR camera and its orientation with respect to substrate and thin wall within the build chamber [1].
Fig. 4Pyrometer (left) and IR (right) images collected at the beginning, middle and end of manufacturing Ti-6Al-4V thin wall via LENSTM. A coordinate frame has been overlaid on the top images for reference.
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