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Abstract

This study discusses results of an experimental program for determination of dust cloud combustion parameters of charged and fully discharged states of metastable alane (aluminum hydride, alpha-AlH3 polymorph) powder in air. The measured characterization parameters include: maximum deflagration pressure rise (Delta P-MAX), maximum rate of pressure rise (dP/dt)(MAX), minimum ignition temperature (T-c), minimum explosible concentration (MEC), and minimum ignition energy (MIE). These measured values are used for calculating the associated explosion severity (ES) index, and volume-normalized maximum rate of pressure rise (K-St). The experimental results show values of MEC and T-c of fully discharged alane to be greater than those of the charged alane but measured MIE values are about the same. Moreover, the results show higher reactivity of fully discharged alane dust cloud in air compared to its charged state. For example, ES and K-St of discharged alane dust cloud in air are about 300% and 35% greater, respectively, than ES and K-St of charged alane dust. The higher air reactivity of fully-discharged (primarily Al powder) dust cloud compared to its charged state can be attributed to the higher surface energy (J/m(2)) of Al compared to that of alpha-AlH3. These experimental insights have safety implications in postulated risk scenarios involving light-duty vehicles powered by PEM fuel cells. The core insights and critical data provided by this contribution are useful for supporting development and promulgation of hydrogen safety standards and augmenting property databases of hydrogen storage materials. (C) 2016 Elsevier Ltd. All rights reserved.

Year of Publication
2016
Journal
Journal of Loss Prevention in the Process Industries
Volume
44
Number of Pages
334-346
Type of Article
Article
ISBN Number
0950-4230
Accession Number
WOS:000390624900033
DOI
10.1016/j.jlp.2016.10.005
Alternate Journal
J Loss Prevent Proc
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