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首页> 外文期刊>Journal of Mechanical Science and Technology >Effects of pressure and carbon dioxide, hydrogen and nitrogen concentration on laminar burning velocities and NO formation of methane-air mixtures
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Effects of pressure and carbon dioxide, hydrogen and nitrogen concentration on laminar burning velocities and NO formation of methane-air mixtures

机译:压力和二氧化碳,氢和氮的浓度对层流燃烧速度和甲烷-空气混合物中NO形成的影响

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摘要

We studied the effects of increasing pressure and adding carbon dioxide, hydrogen and nitrogen to Methane-air mixture on premixed laminar burning velocity and NO formation in experimentally and numerically methods. Equivalence ratio was considered within 0.7 to 1.3 for initial pressure between 0.1 to 0.5 MPa and initial temperature was separately considered 298 K. Mole fractions of carbon dioxide, hydrogen and nitrogen were regarded in mixture from 0 to 0.2. Heat flux method was used for measurement of burning velocities of Methane-air mixtures diluted with CO_2 and N_2. Experimental results were compared to the calculations using a detailed chemical kinetic scheme (GRI-MECH 3.0). The results in atmosphere pressure for Methane-air mixture were calculated and compared with the results of literature. Results were in good agreement with published data in the literature. Then, by adding carbon dioxide and nitrogen to Methane-air mixture, we witnessed that laminar burning velocity was decreased, whereas by increasing hydrogen, the laminar burning velocity was increased. Finally, the results showed that by increasing the pressure, the premixed laminar burning velocity decreased for all mixtures, and NO formation indicates considerable increase, whereas the laminar flame thickness decreases.
机译:我们通过实验和数值方法研究了增加压力并向甲烷空气混合物中添加二氧化碳,氢气和氮气对预混合层流燃烧速度和NO形成的影响。当初始压力在0.1到0.5 MPa之间时,当量比被认为在0.7到1.3之内,初始温度被认为是298K。二氧化碳,氢和氮的摩尔分数被认为是0到0.2的混合物。用热通量法测量了用CO_2和N_2稀释的甲烷-空气混合物的燃烧速度。使用详细的化学动力学方案(GRI-MECH 3.0)将实验结果与计算结果进行了比较。计算了甲烷-空气混合物的大气压力结果,并与文献结果进行了比较。结果与文献中公布的数据高度吻合。然后,通过向甲烷-空气混合物中添加二氧化碳和氮气,我们看到层流燃烧速度降低了,而通过增加氢气,层流燃烧速度增加了。最后,结果表明,通过增加压力,所有混合物的预混合层流燃烧速度均降低,NO的形成表明燃烧速率显着增加,而层流火焰厚度降低。

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