Abstract
Magnesium powder is considered a highly promising high-density energy carrier capable of storing and transporting renewable energy while contributing to future CO2 emission reduction. This work focuses on measuring the burning time of single magnesium particles in CO2, H2O, and CO2–H2O–N2 mixtures, conditions scarcely investigated despite their relevance to solid rockets and metal-fueled ramjet applications. Magnesium was found to burn with a visible diffusion flame in both pure CO2 and pure H2O, with burning times following a power-law relation t=K·D0n where n ranges from ∼1.4 in water vapor to about ∼2.0 in CO2. Dilution with N2 increases burning time, while increasing temperature and oxidizer concentration shorten it markedly. As the oxidizer concentration gradient is the driving force for diffusion and can be approximated by the oxidizer molar concentration, evaporation constant scales linearly with oxidizer concentration. Mixtures of CO2 and H2O indicate that H2O plays the dominant role in driving combustion compared with CO2. Water vapor exhibits roughly twice the oxidizing capacity of CO2, resulting in significantly faster burning. All measured burning-time data were processed to develop a new empirical correlation applicable to CO2–H2O–N2 mixtures. This correlation fills the long-standing gap in burning-time data for magnesium particles in mixed-gas environments.
| Original language | English |
|---|---|
| Pages (from-to) | 893-901 |
| Number of pages | 9 |
| Journal | Acta Astronautica |
| Volume | 240 |
| DOIs | |
| State | Published - Mar 2026 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
Keywords
- Burning time
- Carbon dioxide
- Magnesium particle
- Metal fuel
- Water vapor
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