Comparative Study on Combustion and Flame Characteristics of Laminar Methane/Air and N-Butane/Air Flames in a Micro-Slot Burner

IF 2.3 4区 工程技术 Q3 ENGINEERING, CHEMICAL International Journal of Chemical Engineering Pub Date : 2022-11-15 DOI:10.1155/2022/1821147
Soroush Sheykhbaglou, S. M. Robati
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Abstract

Combustion and flame characteristics of laminar methane/air and n-butane/air flames in a 3D-printed micro-slot burner is compared and reported in this study. The stability limit, flame appearance, and emission performance are investigated experimentally. In addition, past research on conventional burners is compared with the results of this study throughout the paper. The construction of this micro-slot burner was met by selective laser melting (SLM) process. Flame characteristics such as lift-off height, length, visible area, maximum width, and neck width are obtained using an image processing algorithm and are examined at different fuel and airflow rates. The results show that the blow-out limits of methane/air and n-butane/air flames are almost the same when compared at the same volume flow rates, although the methane/air flames are more stable than n-butane/air flames at the same thermal input powers. A region of interesting rope-like oscillatory flames (that has never been seen before in conventional burners) is observed in a small portion of a stable region for n-butane with a period ranging from 75.0 to 210.0   m s . It is also observed that the fuel type and fuel and airflow rates affect the flame shape and appearance and the flames formed by heavier fuel (n-butane) have longer length, lift-off height, maximum width, and visible area and lower neck width. Furthermore, methane/air flames exhibit lower values of C O and higher values of N O x in the flue gas when compared to n-butane/air flames.
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甲烷/空气和正丁烷/空气层流火焰在微槽燃烧器中燃烧和火焰特性的比较研究
本研究比较并报道了甲烷/空气和正丁烷/空气层流火焰在3D打印微槽燃烧器中的燃烧和火焰特性。对其稳定性极限、火焰外观和发射性能进行了实验研究。此外,将过去对传统燃烧器的研究与本文的研究结果进行了比较。该微槽燃烧器的结构是通过选择性激光熔化(SLM)工艺实现的。使用图像处理算法获得火焰特性,如起飞高度、长度、可见面积、最大宽度和颈部宽度,并在不同的燃料和气流速率下进行检查。结果表明,在相同的体积流量下,甲烷/空气火焰和正丁烷/空气火焰的吹出极限几乎相同,尽管在相同的热输入功率下,甲烷-空气火焰比正丁烷-空气火焰更稳定。在正丁烷稳定区域的一小部分中观察到一个有趣的绳状振荡火焰区域(以前在传统燃烧器中从未见过),其周期为75.0至210.0  m秒。还观察到,燃料类型、燃料和气流速率影响火焰形状和外观,较重燃料(正丁烷)形成的火焰具有较长的长度、上升高度、最大宽度、可见面积和较低的颈部宽度。此外,与正丁烷/空气火焰相比,甲烷/空气火焰在烟道气中表现出较低的CO值和较高的NOx值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Chemical Engineering
International Journal of Chemical Engineering Chemical Engineering-General Chemical Engineering
CiteScore
4.00
自引率
3.70%
发文量
95
审稿时长
14 weeks
期刊介绍: International Journal of Chemical Engineering publishes papers on technologies for the production, processing, transportation, and use of chemicals on a large scale. Studies typically relate to processes within chemical and energy industries, especially for production of food, pharmaceuticals, fuels, and chemical feedstocks. Topics of investigation cover plant design and operation, process design and analysis, control and reaction engineering, as well as hazard mitigation and safety measures. As well as original research, International Journal of Chemical Engineering also publishes focused review articles that examine the state of the art, identify emerging trends, and suggest future directions for developing fields.
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