Driven by dual-carbon targets, marine engines are accelerating their transition towards low-carbon and zero-carbon. Ammonium-hydrogen fusion fuel is considered to be one of the most promising fuels for ship decarbonization. Using non-thermal plasma (NTP) catalytic ammonia on-line hydrogen production technology to achieve hydrogen supply is one of the most important means to guarantee the safety and effectiveness of hydrogen energy in the storage and transportation process. However, the efficiency of ammonia catalytic hydrogen production can be influenced to some extent by the presence of several factors, and the reaction mechanism is complex under the conditions of ship engine temperature emissions. This makes it difficult to realize the precise control of plasma catalytic hydrogen production from ammonia technology under temperature emission conditions, thus restricting an improvement in the ammonia conversion rate. In this study, a kinetic model of hydrogen production from ammonia catalyzed by NTP was established. The influencing factors (reaction temperature, pressure, N/NH ratio in the feed gas) and mechanism path of hydrogen production from ammonia decomposition were explored. The results show that the increase in reaction temperature will lead to an increase in the ammonia conversion rate, while the ammonia conversion rate will decrease with the increase in reaction pressure and N/NH ratio. When the reaction temperature is 300 K, the pressure is 1 bar, the feed gas is 98%N/2%NH, and the ammonia conversion rate is 16.7%. The reason why the addition of N is conducive to the hydrogen production from NH decomposition is that the reaction N(A3) + NH => N + NH + H, triggered by the electron excited-state N(A3), is the main reaction for NH decomposition.

Download full-text PDF

Source
http://dx.doi.org/10.3390/molecules30051054DOI Listing

Publication Analysis

Top Keywords

hydrogen production
28
production ammonia
16
ammonia conversion
16
conversion rate
16
reaction temperature
12
ammonia
10
hydrogen
9
ammonia decomposition
8
catalytic hydrogen
8
factors reaction
8

Similar Publications

An accelerated development of durable and affordable sustainable energy technologies is often hindered by a limited understanding of how nonprecious materials within these systems degrade. In acidic proton exchange membrane fuel cells and water electrolyzers, metallic cobalt (Co) is considered an unstable component that is often combined with precious metals or other stabilizers. To understand the mechanisms behind Co instability, we employ an experimental platform that quantifies dissolution with on-line inductively coupled plasma mass spectrometry and product formation with electrochemical mass spectrometry during electrochemical testing, along with ex situ characterization.

View Article and Find Full Text PDF

Suppressing Spontaneous Acidic Corrosion and Hydrogen Evolution for Stable Zn//MnO2 Batteries.

Angew Chem Int Ed Engl

March 2025

Tsinghua University, The low-dimensional materials and devices laboratory, Shenzhen Geim Graphene Center (SGC), Tsinghua-Berkeley Shenzhen Institute (TBSI), 1001 Xueyuan Road, 518055, Shenzhen, CHINA.

Rechargeable aqueous Zn//MnO2 batteries have attracted significant attention due to their high safety and cost-effective for potential large-scale energy storage. However, the severe acidic corrosion and hydrogen evolution reaction (HER) on Zn anodes in acidic electrolytes pose critical challenges to their practical application. Here, we introduce trace amounts of p-Hydroxybenzaldehyde (M4) into the electrolyte to address the above anode issues.

View Article and Find Full Text PDF

Catalytic Production of Aromatic Amines From Nitroaromatics - Adressing a Critical Challenge in Environmental Remediation.

Chemistry

March 2025

Wrocław University of Science and Technology, Department of Process Engineering and Technology of Polymer and Carbon Materials, Wybrzeże Wyspiańskiego 27, 50-370, Wrocław, POLAND.

The present work reviews the continuous flow hydrogenation of nitroaromatic compounds (NACs) to aromatic amines, highlighting its significance in sustainable chemical manufacturing. These processes offer enhanced efficiency, scalability, and safety compared to traditional batch methods, addressing the environmental concerns associated with NAC contamination. In this context, the flow mode processes of NACs hydrogenation may be considered as tools for catalytically-driven extraction of fine chemical products.

View Article and Find Full Text PDF

Recent Progress in Oxygen Reduction Reaction Toward Hydrogen Peroxide Electrosynthesis and Cooperative Coupling of Anodic Reactions.

Adv Mater

March 2025

Key Laboratory of Advanced Ceramics and Machining Technology of Ministry of Education, School of Materials Science and Engineering, Tianjin University, Tianjin, 300072, P. R. China.

Electrosynthesis of hydrogen peroxide (HO) via two-electron oxygen reduction reaction (2e ORR) is a promising alternative to the anthraquinone oxidation process. To improve the overall energy efficiency and economic viability of this catalytic process, one pathway is to develop advanced catalysts to decrease the overpotential at the cathode, and the other is to couple 2e ORR with certain anodic reactions to decrease the full cell voltage while producing valuable chemicals on both electrodes. The catalytic performance of a 2e ORR catalyst depends not only on the material itself but also on the environmental factors.

View Article and Find Full Text PDF

Hydrogenated isoprenoids are found in a range of biologically important natural products, such as isoprenoid quinones, chlorophyll, vitamin E, and dolichol. In this study, a new method was developed for determining the chirality of the tetrahydrogenated isoprenoid (THI) structures of two natural products, namely heptaprenylcycli-14,18-diene and (22,5,9,13,17)-6,10,14,18,22,26-hexamethylheptacosa-5,9,13,17-tetraen-2-one, for which the chiral carbon centres have never been elucidated. Our research group previously isolated the former sesquarterpene from , while the latter was isolated as a new polyprenyl acetone from in the current study.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!