Stability, reactivity and decomposition kinetics of surface passivated α-AlH3 crystals

被引:28
|
作者
Yu, Ming-Hui [1 ]
Xie, Wu-Xi [2 ]
Zhu, Zhao-Yang [3 ]
Yan, Qi-Long [1 ]
机构
[1] Northwestern Polytech Univ, Sci & Technol Combust Internal Flow & Thermostruc, Xian 710072, Peoples R China
[2] Xian Modern Chem Res Inst, Xian 710065, Peoples R China
[3] Hubei Inst Aerosp Chem Technol, Sci & Technol Aerosp Chem Power Lab, Xiangyang 441003, Peoples R China
关键词
Aluminum hydride; Hydrochloric acid; Passivation; Stability; Solid propellants; ALUMINUM-HYDRIDE; HYDROGEN STORAGE; COMBUSTION; ALH3; DEHYDROGENATION; PROPELLANTS; PERFORMANCE; MECHANISMS; OXIDATION; BEHAVIOR;
D O I
10.1016/j.ijhydene.2021.12.212
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
As a novel high energy fuel, aluminum hydride (AlH3) has great potential in the field of solid propellants because of its high hydrogen capacity, which can significantly improve the specific impulse of solid propellants. In order to improve the stability of alpha-AlH3, hydrochloric acid has been used to stabilize AlH3 and the stabilization mechanism has been investigated. Various characterization techniques including scanning electron microscopy, X-ray electron spectrometer, X-ray diffraction, thermal analysis, and vacuum stability test have been employed to investigate the morphology, crystal structure, thermal stability, and decomposition kinetics of raw and passivated alpha-AlH3. The results showed that the honeycomb-like structures could be formed on the surface of alpha-AlH3 after passivation. First of all, the initial decomposition temperatures of the passivated samples were slightly increased. In particular, for the optimized sample with 105 min passivation time (AlH3-105min), the initial decomposition temperature (173.4 degrees C) is increased by 5.6 degrees C. Moreover, the total decomposition time (1652 min) is improved by about 50% than that of the raw sample (1098 min). Besides, the decomposition activation energies (E-a) of passivated samples are much higher than that of the raw sample (84.8 kJ mol(-1)), in which the optimized sample (AlH3-105min) reaches 107.1 kJ. mol(-1). The decomposition kinetics model may change from 3-D nucleation and nucleus growth model to 2-D nucleation and nucleus growth model. It demonstrates the passivated samples have a lower decomposition rate and higher thermal stability. The stabilization mechanism is as follows: removing the impurities on the surface and accelerating the hydrolysis reaction of AlH3 to generate complete and dense oxide layers. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:8916 / 8928
页数:13
相关论文
共 35 条
  • [21] Effect of AlH3 and MgH2 on Thermal Decomposition of Ammonium Perchlorate
    Long M.-H.
    Cui L.-M.
    Huang K.-Q.
    Xia L.-H.
    Wang Y.-N.
    Zhang T.-L.
    Huozhayao Xuebao/Chinese Journal of Explosives and Propellants, 2022, 45 (04): : 522 - 528
  • [22] INFLUENCE OF THE MECHANICAL ACTIVATION ON THE THERMAL STABILITY OF THE AlH3 IN Al-C-H SYSTEM
    Lukashev, R. V.
    Klyamkin, S. N.
    Bulychev, B. M.
    Tarasov, B. P.
    CARBON NANOMATERIALS IN CLEAN ENERGY HYDROGEN SYSTEMS, 2008, : 275 - +
  • [23] Formation of aluminium hydride (AlH3) via the decomposition of organoaluminium and hydrogen storage properties
    Wang, Lei
    Rawal, Aditya
    Quadir, Md Zakaria
    Aguey-Zinsou, Kondo-Francois
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (34) : 16749 - 16757
  • [24] Character of change in the work of nucleation of β-quartz, diamond, and aluminum hydride (α-AlH3) crystals in homogeneous media
    Bazarov, LS
    Drebushchak, TN
    Gordeeva, VI
    Urakaev, FK
    JOURNAL OF CRYSTAL GROWTH, 1999, 206 (1-2) : 75 - 80
  • [25] Reaction kinetics for the solid state synthesis of the AlH3/MgCl2 nano-composite by mechanical milling
    Duan, C. W.
    Hu, L. X.
    Sun, Y.
    Zhou, H. P.
    Yu, H.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2015, 17 (34) : 22152 - 22159
  • [26] A first-principle study on the formation and migration of AlH3 defect on (112) NaAlH4 surface
    Liu, Chuan
    Guo, Pan
    Qiao, Yulong
    Zhang, Shengli
    CHEMICAL PHYSICS, 2020, 538
  • [27] Ultrasound coupled recrystallization to grow KH2PO4 crystals on mesoporous SiO2: Application to suppression of AlH3 explosion
    Xue, Chenlu
    Jiang, Haipeng
    Zhu, Chenchen
    Gao, Wei
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 61 : 481 - 492
  • [28] Thermal decomposition mechanism of nitroglycerin by nano-aluminum hydride (AlH3): ReaxFF-lg molecular dynamics simulation
    Zhao, Ying
    Zhao, Feng-Qi
    Xu, Si-Yu
    Ju, Xue-Hai
    CHEMICAL PHYSICS LETTERS, 2021, 770 (770)
  • [29] Achieving both high hydrogen capacity and low decomposition temperature of the metastable AlH3 by proper ball milling with TiB2
    He, Shixuan
    Li, Guangxu
    Wang, Ye
    Liu, Liu
    Lu, Zhaoqiu
    Xu, Li
    Sheng, Peng
    Wang, Xinhua
    Chen, Haiqiang
    Huang, Cunke
    Lan, Zhiqiang
    Zhou, Wenzheng
    Guo, Jin
    Liu, Haizhen
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2023, 48 (09) : 3541 - 3551
  • [30] Thermal Decomposition Mechanism of 1,3,5,7-Tetranitro-1,3,5,7-tetrazocane Accelerated by Nano-Aluminum Hydride (AlH3): ReaxFF-Lg Molecular Dynamics Simulation
    Zhao, Ying
    Mei, Zheng
    Zhao, Feng-Qi
    Xu, Si-Yu
    Ju, Xue-Hai
    ACS OMEGA, 2020, 5 (36): : 23193 - 23200