| Literature DB >> 29527546 |
Bing Wang1,2, Dongyue Tan1, Tung Lik Lee1,3, Jia Chuan Khong1,4, Feng Wang5, Dmitry Eskin5, Thomas Connolley6, Kamel Fezzaa7, Jiawei Mi1.
Abstract
The data presented in this article are related to the paper entitled 'Ultrafast synchrotron X-ray imaging studies of microstructure fragmentation in solidification under ultrasound' [Wang et al., Acta Mater. 144 (2018) 505-515]. This data article provides further supporting information and analytical methods, including the data from both experimental and numerical simulation, as well as the Matlab code for processing the X-ray images. Six videos constructed from the processed synchrotron X-ray images are also provided.Entities:
Year: 2018 PMID: 29527546 PMCID: PMC5842321 DOI: 10.1016/j.dib.2018.01.110
Source DB: PubMed Journal: Data Brief ISSN: 2352-3409
The measured amplitude of the sonotrode tip under different applied ultrasonic powers. The ultrasonic intensity was calculated using Eq. (1).
| Ultrasound power (W) | Amplitude (µm) | Ultrasonic intensity (W/mm2) |
|---|---|---|
| 20 | 30.12 | 276 |
| 40 | 42.67 | 553 |
| 60 | 55.22 | 926 |
| 80 | 65.26 | 1294 |
| 100 | 77.81 | 1839 |
Fig. 1Distribution of the acoustic pressure along the distance below the sonotrode tip under different powers calculated by using Eq. (2).
Fig. 2Growth of the solid Zn phase in percentage during the solidification of the Bi-8% Zn alloy under a cooling rate of 0.2 °C/s. Insets show the real-time X-ray images captured at Beamline I12 using 30 fps.
Fig. 3Experimental data extracted to determine the material constants for the Zn alloy at 20, 50 and 100 °C.
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