scholarly journals Highly targeted solidification behavior of hazardous components in phosphogypsum

2022 ◽  
Vol 9 ◽  
pp. 100227
Author(s):  
Fenghui Wu ◽  
Shan Liu ◽  
Guangfei Qu ◽  
Bangjin Chen ◽  
Chenyang Zhao ◽  
...  
Materials ◽  
2021 ◽  
Vol 14 (11) ◽  
pp. 2920
Author(s):  
Qin Peng ◽  
Bin Yang ◽  
Benjamin Milkereit ◽  
Dongmei Liu ◽  
Armin Springer ◽  
...  

Understanding the rapid solidification behavior characteristics, nucleation undercooling, and nucleation mechanism is important for modifying the microstructures and properties of metal alloys. In order to investigate the rapid solidification behavior in-situ, accurate measurements of nucleation undercooling and cooling rate are required in most rapid solidification processes, e.g., in additive manufacturing (AM). In this study, differential fast scanning calorimetry (DFSC) was applied to investigate the nucleation kinetics in a single micro-sized Al-20Si (mass%) particle under a controlled cooling rate of 5000 K/s. The nucleation rates of primary Si and secondary α-Al phases were calculated by a statistical analysis of 300 identical melting/solidification experiments. Applying a model based on the classical nucleation theory (CNT) together with available thermodynamic data, two different heterogeneous nucleation mechanisms of primary Si and secondary α-Al were proposed, i.e., surface heterogeneous nucleation for primary Si and interface heterogenous nucleation for secondary α-Al. The present study introduces a practical method for a detailed investigation of rapid solidification behavior of metal particles to distinguish surface and interface nucleation.


Author(s):  
Takashi Morimoto ◽  
Wataru Komatsu ◽  
Hayato Kimata ◽  
Makoto Kato ◽  
Hiroyuki Kumano

1990 ◽  
Vol 106 (1) ◽  
pp. 101-115 ◽  
Author(s):  
D.O. Frazier ◽  
B.R. Facemire ◽  
B.H. Loo ◽  
D. Burns ◽  
D.B. Thiessen

Rare Metals ◽  
2018 ◽  
Vol 39 (11) ◽  
pp. 1279-1287 ◽  
Author(s):  
Xin-Xiang Yu ◽  
Jie Sun ◽  
Zhu-Tie Li ◽  
Han Dai ◽  
Hong-Jie Fang ◽  
...  

2012 ◽  
Vol 135 (2) ◽  
Author(s):  
A. A. El-Sebaii ◽  
F. Al-Agel

The melting temperature of acetanilide C8H9NO equals 116 °C which lies in the range of solar cooking (boiling cooking) of most kinds of food. Acetanilide was used in previous studies as a storage medium integrated within box type solar cookers. However, detailed studies of melting and/or solidification behavior of acetanilide were not reported. Therefore, the main aim of this work was to study the effect of fast thermal melting/solidification cycling of commercial grade acetanilide on its melting point and latent heat of fusion. One thousand thermal cycles had been performed and the thermophysical properties of acetanilide were measured using the differential scanning calorimetric technique. It was indicated that acetanilide solidifies with ∼15 °C of supercooling; consequently, it is recommended to overcome the supercooling problem before using acetanilide as a thermal storage material for solar energy applications.


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