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鎂含量對鋁鎂合金粉塵燃爆反應動力學特性的影響分析

Analysis of the Influence of Magnesium Content on the Reaction Kinetic Characteristics of Powder Combustion and Explosion Reactions in Al-Mg Alloys

  • 摘要: 利用化學反應動力學模擬技術,研究了不同鎂含量條件下鋁鎂合金燃爆過程中的反應動力學特性,著重對比分析了五種鋁鎂合金粉Al-xMg(x=10、20、30、40和50 wt%)燃爆過程的溫度、關鍵自由基·O、·AlO、·Al2O的變化規律,并總結得出鋁鎂合金粉塵燃爆反應動力學機理。結果表明:鎂含量顯著影響了鋁鎂合金的燃爆特性,鎂含量越多,合金反應越劇烈。鋁鎂合金燃爆過程中,鎂的高活性使其優先與氧氣迅速反應生成MgO,而鋁則經歷了三個階段,初期鋁先與氧氣反應生成AlO/Al2O等中間產物,接著AlO/Al2O又繼續與·O自由基結合,最終轉換為Al2O3。鋁鎂合金反應動力學機理揭示了燃爆過程中,鎂通過氧化競爭,使反應路徑發生改變,隨著鎂含量的增加,鋁的反應路徑縮短,單位質量內·O、·AlO、·Al2O產量減少。此外,鋁鎂合金升溫的關鍵基元反應以Al與·O的反應為主,而鎂的加入抑制了鋁氧反應,因此隨著鎂含量的增加,合金的反應溫度變低。研究結果為工業生產過程中鋁鎂合金的選用以及燃爆事故的防控提供了理論依據。

     

    Abstract: This study utilizes chemical kinetics simulation technology to systematically investigate the combustion and explosion characteristics of aluminum-magnesium (Al-Mg) alloy powder under varying magnesium (Mg) contents (10, 20, 30, 40, and 50 wt%). It employs a zero-dimensional closed homogeneous reactor model in the Chemkin software to conduct numerical simulations of the combustion process of Al-xMg alloys, focusing on analyzing temperature evolution patterns, generation and consumption dynamics of key free radicals (·O, ·AlO, and ·Al2O), and evolution mechanisms of oxidation reaction pathways. Results show that Mg content significantly influences the combustion and explosion characteristics of Al-Mg alloys: the higher the Mg content, the more intense the alloy reaction. The combustion and explosion of Al-Mg alloys undergo three stages: in the initial stage, the high reactivity of Mg causes it to rapidly react with oxygen to form MgO, while Al reacts with remaining oxygen to generate intermediate products such as AlO/Al2O; subsequently, AlO/Al2O continues to react with ·O free radicals, ultimately converting to Al2O3. By comparing the reaction kinetic pathways of Al-90 wt%Mg and Al-50 wt%Mg powders, it is found that the number of reaction pathways of Al-50 wt%Mg powder is relatively fewer. Among them, the main reaction pathways of ·Al free radicals decrease from 3 to 2, and no intermediate product ·Al2O is generated. This is because during the combustion and explosion process, there is oxidative competition between Mg and Al. The entire process occurs in a closed container; due to the stronger chemical activity of Mg compared to Al, Mg preferentially reacts with oxygen in the container, leading to a reduction in the concentration of ·O free radicals in the gas phase and weakening of the Al-O reaction. The higher the Mg content, the more ·O free radicals are consumed. Therefore, when the Mg content increases to 50 wt%, ·Al can only react with the remaining ·O to form ·AlO and ·Al2O, but cannot be further oxidized to form ·AlO?. Similarly, the main reaction pathways of AlO also decrease from 4 to 3. The reaction kinetic mechanism of Al-Mg alloys reveals the microscopic changes of chemical substances during the combustion and explosion process.In addition, during the combustion and explosion of Al-Mg alloys, temperature rise is dominated by the elementary reaction between Al and ·O; the addition of Mg suppresses the Al-O reaction, thus decreasing the overall reaction temperature with increasing Mg content. These research findings provide theoretical support for the selection of Al-Mg alloys in inpowderrial production and the prevention and control of combustion and explosion accidents.

     

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