| Literature DB >> 33437003 |
Mangesh V Pantawane1,2, Teng Yang3,2, Yuqi Jin3, Sameehan S Joshi1,2, Sriswaroop Dasari1, Abhishek Sharma1, Arkadii Krokhin3, Srivilliputhur G Srinivasan1, Rajarshi Banerjee1,2, Arup Neogi3,2, Narendra B Dahotre4,5.
Abstract
Rapid thermokinetics associated with laser-based additive manufacturing produces strong bulk crystallographic texture in the printed component. The present study identifies such a bulk texture effect on elastic anisotropy in laser powder bed fused Ti6Al4V by employing an effective bulk modulus elastography technique coupled with ultrasound shear wave velocity measurement at a frequency of 20 MHz inside the material. The combined technique identified significant attenuation of shear velocity from 3322 ± 20.12 to 3240 ± 21.01 m/s at 45[Formula: see text] and 90[Formula: see text] orientations of shear wave plane with respect to the build plane of printed block of Ti6Al4V. Correspondingly, the reduction in shear modulus from 48.46 ± 0.82 to 46.40 ± 0.88 GPa was obtained at these orientations. Such attenuation is rationalized based on the orientations of [Formula: see text] crystallographic variants within prior columnar [Formula: see text] grains in additively manufactured Ti6Al4V.Entities:
Year: 2021 PMID: 33437003 PMCID: PMC7804281 DOI: 10.1038/s41598-020-80710-6
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379