Skip to main content

Lund University Publications

LUND UNIVERSITY LIBRARIES

Effect of temperature on the interaction rules between grain size and reaction rate of Al-Ga-based alloys for hydrogen generation

Yang, Xinyu ; Shi, Jie ; Jin, Zhijiang ; Qu, Hongyan ; Guo, Mingzhu ; Wang, Hongchao ; Xia, Maosheng ; Zhang, Zhongyuan ; Gao, Qian and Sun, Xiaoli LU , et al. (2025) In Journal of Alloys and Compounds 1024.
Abstract

Controllable hydrogen generation rate of Al-Ga-based on-site hydrogen supply materials significantly impacts their practical application. In many scenarios, the hydrolysis reaction occurs at elevated temperatures, which is a factor often overlooked in its effect on reaction kinetics. This study investigates the relationship between grain size and reaction rate in Al-Ga-based alloys for hydrogen generation, specifically examining temperature influences. We synthesized a series of Al-Ga-based alloys with antimony (Sb) as a refining agent, systematically varying the Sb content to modulate grain size. The hydrogen production rates were measured across various temperatures. Our results indicate that Sb effectively refines Al alloys,... (More)

Controllable hydrogen generation rate of Al-Ga-based on-site hydrogen supply materials significantly impacts their practical application. In many scenarios, the hydrolysis reaction occurs at elevated temperatures, which is a factor often overlooked in its effect on reaction kinetics. This study investigates the relationship between grain size and reaction rate in Al-Ga-based alloys for hydrogen generation, specifically examining temperature influences. We synthesized a series of Al-Ga-based alloys with antimony (Sb) as a refining agent, systematically varying the Sb content to modulate grain size. The hydrogen production rates were measured across various temperatures. Our results indicate that Sb effectively refines Al alloys, significantly affecting the Al-H2O reaction rate by altering selective growth orientation and grain size. The most pronounced refinement is at 0.1 wt% Sb, yielding the smallest grain size and highest hydrogen production rate, making it suitable for substantial hydrogen generation applications. Further investigations reveal a non-linear relationship between Sb's effect on grain size and the reaction rate. At elevated temperatures, the fragmentation of the Al alloy intensifies, amplifying the impact of grain size on the hydrogen generation rate. In contrast, this regulatory mechanism is diminished at lower temperatures. We also validated this relationship with previously reported Al-Ga-based hydrogen-producing alloys. These findings offer valuable insights, suggesting that strategic grain size modifications can effectively enhance hydrogen generation rates at elevated temperatures.

(Less)
Please use this url to cite or link to this publication:
author
; ; ; ; ; ; ; ; and , et al. (More)
; ; ; ; ; ; ; ; ; ; and (Less)
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Al-Ga-based alloys, Grain size refinement, On-site hydrogen supply, Sb refiner, Temperature effect
in
Journal of Alloys and Compounds
volume
1024
article number
180182
publisher
Elsevier
external identifiers
  • scopus:105001797835
ISSN
0925-8388
DOI
10.1016/j.jallcom.2025.180182
language
English
LU publication?
yes
id
07c586e6-8c48-4436-9ca3-a0a381b7701d
date added to LUP
2025-08-11 12:34:17
date last changed
2025-08-11 12:34:33
@article{07c586e6-8c48-4436-9ca3-a0a381b7701d,
  abstract     = {{<p>Controllable hydrogen generation rate of Al-Ga-based on-site hydrogen supply materials significantly impacts their practical application. In many scenarios, the hydrolysis reaction occurs at elevated temperatures, which is a factor often overlooked in its effect on reaction kinetics. This study investigates the relationship between grain size and reaction rate in Al-Ga-based alloys for hydrogen generation, specifically examining temperature influences. We synthesized a series of Al-Ga-based alloys with antimony (Sb) as a refining agent, systematically varying the Sb content to modulate grain size. The hydrogen production rates were measured across various temperatures. Our results indicate that Sb effectively refines Al alloys, significantly affecting the Al-H<sub>2</sub>O reaction rate by altering selective growth orientation and grain size. The most pronounced refinement is at 0.1 wt% Sb, yielding the smallest grain size and highest hydrogen production rate, making it suitable for substantial hydrogen generation applications. Further investigations reveal a non-linear relationship between Sb's effect on grain size and the reaction rate. At elevated temperatures, the fragmentation of the Al alloy intensifies, amplifying the impact of grain size on the hydrogen generation rate. In contrast, this regulatory mechanism is diminished at lower temperatures. We also validated this relationship with previously reported Al-Ga-based hydrogen-producing alloys. These findings offer valuable insights, suggesting that strategic grain size modifications can effectively enhance hydrogen generation rates at elevated temperatures.</p>}},
  author       = {{Yang, Xinyu and Shi, Jie and Jin, Zhijiang and Qu, Hongyan and Guo, Mingzhu and Wang, Hongchao and Xia, Maosheng and Zhang, Zhongyuan and Gao, Qian and Sun, Xiaoli and Li, Yifan and Deng, Guang}},
  issn         = {{0925-8388}},
  keywords     = {{Al-Ga-based alloys; Grain size refinement; On-site hydrogen supply; Sb refiner; Temperature effect}},
  language     = {{eng}},
  publisher    = {{Elsevier}},
  series       = {{Journal of Alloys and Compounds}},
  title        = {{Effect of temperature on the interaction rules between grain size and reaction rate of Al-Ga-based alloys for hydrogen generation}},
  url          = {{http://dx.doi.org/10.1016/j.jallcom.2025.180182}},
  doi          = {{10.1016/j.jallcom.2025.180182}},
  volume       = {{1024}},
  year         = {{2025}},
}