Melt pool temperature and cooling rates in laser powder bed fusion

Температура расплавленного бассейна и скорости охлаждения при лазерном послойном спекании (LPBF)
Paul A. Hooper
2018-05-19

Ti6Al4Vcoaxial high-speed two-wavelength imagingcooling rateslaser powder bed fusionmelt pool temperature
In laser powder bed fusion, melt pool dynamics and stability are driven by the temperature field in the melt pool. If the temperature field is unfavourable defects are likely to form. The localised and rapid heating and cooling in the process presents a challenge for the experimental methods used to measure temperature. As a result, understanding of these process fundamentals is limited. In this paper a method is developed that uses coaxial imaging with high-speed cameras to give both the spatial and temporal resolution necessary to resolve the surface temperature of the melt pool. A two wavelength imaging setup is used to account for changes in emissivity. Temperature fields are captured at 100 kHz with a resolution of 20 μm during the processing of a simple Ti6Al4V component. Thermal gradients in the range 5–20 K/μm and cooling rates in range 1–40 K/μs are measured. The results presented give new insight into the effect of parameters, geometry and scan path on the melt pool temperature and cooling rates. The method developed here provides a new tool to assist in optimising scan strategies and parameters, identifying the causes of defect prone locations and controlling cooling rates for local microstructure development.
1
A coaxial high-speed two-wavelength imaging method was developed to resolve melt pool surface temperature with spatial (20 μm) and temporal (100 kHz) resolution.
2
Measured cooling rates in Ti6Al4V melt pools ranged from 1–40 K/μs during processing.
3
Measured thermal gradients in Ti6Al4V melt pools ranged from 5–20 K/μm during laser powder bed fusion.
4
Temperature fields reveal that process parameters, part geometry, and scan path significantly affect melt pool temperature and cooling rates.
5
The developed method can help optimize scan strategies and parameters, identify defect-prone locations, and control local cooling rates for microstructure development.
6
Using two-wavelength imaging accounts for changes in emissivity, enabling more accurate temperature measurement of the melt pool surface.

Melt pool on Ti6Al4V during laser powder bed fusion

Spatial and temporal temperature fields, thermal gradients and cooling rates of the melt pool and their dependence on processing parameters, geometry and scan path

Publication Details
Publication Date
2018-05-19
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Paul A. Hooper
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%