首页> 外文期刊>Arabian Journal for Science and Engineering >Effect of Ultra-low Vegetable Oil Droplets on Microporous Media Burner Under Surface and Submerged Flames
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Effect of Ultra-low Vegetable Oil Droplets on Microporous Media Burner Under Surface and Submerged Flames

机译:超低植物油液滴对表面和浸没火焰微孔介质燃烧器的影响

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摘要

This study presents experimental and numericalworks on porous media burner. The influence of ultra-lowvegetable oil droplets on burner performance was investigated. A unique dual-layer microporous media burner was fabricated to generate surface and submerged flames under lean conditions. Optimum equivalence ratio under lean conditions for surface and submerged flames was recorded at 0.7 and 0.5, respectively. The performance of the burner was examined by adding vegetable oil droplets of 20, 40, 60, or 80 mu L externally on the surface of reaction layer. At 80 mu L, the burner was at its best performance, while 80 mu L leads to unstable flames. The maximum thermal efficiency of the burner under surface flame without droplets was found out to be 90%, which was enhanced to 94% by enabling 80 mu L of vegetable oil. Similarly, with submerged flame maximum thermal efficiency progressively improved from 38 to 45%. The impact of vegetable oil at the microscopic level was determined by performing scanning electron microscopy and X-ray diffraction analysis. Digital thermal images were captured at critical ER to ensure a stable combustion. The emitted combustion gases were monitored continuously to detect the emissions (NOx and CO). These emissions were within controlled limits. Finally, three-dimensional numerical study was performed to effectively comprehend the experimental data for both temperature and emissions.
机译:本研究提出了多孔介质燃烧器上的实验和数值工程。研究了超低折叠的油滴对燃烧器性能的影响。制造独特的双层微孔介质燃烧器,以在贫条件下产生表面和浸没的火焰。瘦条件下的最佳等效比分别记录在0.7和0.5的0.7和0.5。通过在反应层表面上添加20,40,60或80μL的植物油滴来检查燃烧器的性能。在80 mu l,燃烧器处于最佳性能,而80亩l导致不稳定的火焰。没有液滴的表面火焰下燃烧器的最大热效率为90%,通过使80亩植物油能够增强至94%。同样,随着淹没的火焰最大热效率从38%到45%逐渐提高。通过进行扫描电子显微镜和X射线衍射分析来确定植物油在微观水平下的影响。在批判性ER中捕获数字热图像以确保稳定的燃烧。连续监测发出的燃烧气体以检测排放(NOx和CO)。这些排放量在受控限制范围内。最后,进行三维数值研究以有效地理解温度和排放的实验数据。

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