Tailoring of Hydrogen Generation by Hydrolysis of Magnesium Hydride in Organic Acids Solutions and Development of Generator of the Pressurised H2 Based on this Process

Author:

Lototskyy Mykhaylo V.12ORCID,Davids Moegamat Wafeeq1,Sekgobela Tshepo Kgokane1ORCID,Arbuzov Artem A.2ORCID,Mozhzhukhin Sergey A.2,Zhu Yongyang3ORCID,Tang Renheng3,Tarasov Boris P.24

Affiliation:

1. HySA Systems Centre of Competence, South African Institute for Advanced Materials Chemistry (SAIAMC), University of the Western Cape, Bellville 7535, South Africa

2. Federal Research Centre of Problems of Chemical Physics and Medicinal Chemistry of Russian Academy of Sciences (FRC PCP MC RAS), 142432 Chernogolovka, Russia

3. The Institute of Resources Utilization and Rare Earth Development, Key Laboratory of Separation and Comprehensive Utilization of Rare Metals, Guangdong Provincial Key Laboratory of Rare Earth Development and Application, Guangdong Academy of Sciences, Guangzhou 510650, China

4. Higher School of Economy, National Research University, 101000 Moscow, Russia

Abstract

Hydrolysis of light metals and hydrides can potentially be used for the generation of hydrogen on-board fuel cell vehicles, or, alternatively, for refilling their fuel tanks with H2 generated and pressurised without compressor on site, at near-ambient conditions. Implementation of this approach requires solution of several problems, including the possibility of controlling H2 release and avoiding thermal runaway. We have solved this problem by developing the apparatus for the controlled generation of pressurised H2 using hydrolysis of Mg or MgH2 in organic acid solutions. The development is based on the results of experimental studies of MgH2 hydrolysis in dilute aqueous solutions of acetic, citric, and oxalic acids. It was shown that the hydrogen yield approaches 100% with a fast hydrolysis rate when the molar ratio acid/MgH2 exceeds 0.9, 2.0, and 2.7 for the citric, oxalic, and acetic acids, respectively. In doing so, the pH of the reaction solutions after hydrolysis corresponds to 4.53, 2.11, and 4.28, accordingly, testifying to the buffer nature of the solutions “citric acid/magnesium citrate” and “acetic acid/magnesium acetate”. We also overview testing results of the developed apparatus where the process rate is effectively controlled by the control of the acid concentration in the hydrolysis reactor.

Funder

Department of Science and Innovation (DSI) of South Africa within “Hydrogen South Africa” (HySA) Research, Development, and Innovation Program

South African National Research Foundation

Ministry of Science and Higher Education of the Russian Federation

Publisher

MDPI AG

Subject

Inorganic Chemistry

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