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首页> 外文期刊>Journal of combustion >The Role of Molecule Clustering by Hydrogen Bond in Hydrous Ethanol on Laminar Burning Velocity
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The Role of Molecule Clustering by Hydrogen Bond in Hydrous Ethanol on Laminar Burning Velocity

机译:含水乙醇中氢键分子簇对层流燃烧速度的作用

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摘要

The role of hydrogen bond molecule clustering in laminar burning velocities was observed. The water in hydrous ethanol can change the interaction between water-ethanol molecules. A certain amount of water can become oxygenated which increases the burning velocity. The hydrogen bond interaction pattern of ethanol and water molecules was modeled. Based on the molecular model, azeotropic behavior emerges from ethanol-water hydrogen bond, which is at a 95.1%v composition. The interaction with water molecule causes the ethanol molecule to be clustered with centered oxygenated compound. So, it supplies extra oxygen and provides intermolecular empty spaces that are easily infiltrated by the air. In the azeotropic composition, the molecular bond chain is the shortest, so hypothetically the burning velocity is anticipated to increase. The laminar burning velocity of ethanol fuel was tested in a cylindrical explosion bomb in lean, stoichiometric, and rich mixtures. The experimental result showed that the maximum burning velocity occurred at hydrous ethanol of 95.5%v composition. This discrepancy is the result of the addition of energy from 7.7% free ethanol molecules that are not clustered. At the rich mixture, the burning velocity of this composition is higher than that of anhydrous ethanol.
机译:观察到氢键分子聚集在层流燃烧速度中的作用。含水乙醇中的水可以改变水-乙醇分子之间的相互作用。一定量的水会被氧化,从而增加燃烧速度。模拟了乙醇和水分子的氢键相互作用模式。基于分子模型,共沸行为是由乙醇-水的氢键形成的,其组成为95.1%v。与水分子的相互作用导致乙醇分子与中心含氧化合物聚集。因此,它提供了额外的氧气,并提供了容易被空气渗透的分子间空的空间。在共沸组合物中,分子键链最短,因此,假设燃烧速度有望提高。在稀薄,化学计量和浓混合气的圆柱形爆炸炸弹中测试了乙醇燃料的层流燃烧速度。实验结果表明,最大燃烧速度发生在95.5%v成分的含水乙醇上。这种差异是由于未聚簇的7.7%游离乙醇分子增加了能量的结果。在浓混合气下,该组合物的燃烧速度高于无水乙醇的燃烧速度。

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  • 来源
    《Journal of combustion》 |2016年第2016期|5127682.1-5127682.9|共9页
  • 作者单位

    Mechanical Engineering Department, Bali State Polytechnic, Badung, Bali 80361, Indonesia,Department of Mechanical Engineering, University of Brawijaya, Malang, East Java, Indonesia;

    Department of Mechanical Engineering, University of Brawijaya, Malang, East Java, Indonesia;

    Department of Mechanical Engineering, University of Brawijaya, Malang, East Java, Indonesia;

    Department of Mechanical Engineering, University of Brawijaya, Malang, East Java, Indonesia;

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