环形挡板对循环流化床锅炉冲蚀的影响

IF 2.1 Q2 ENGINEERING, MULTIDISCIPLINARY Cogent Engineering Pub Date : 2023-11-02 DOI:10.1080/23311916.2023.2274534
M.S.K. Tony Suryo Utomo, Ir. Eflita Yohana, Bramantya Krisna, M. Farkhan Dwinanda, Mohammad Tauviqirrahman, Kwang-Hwan Choi
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引用次数: 0

摘要

由于在燃烧过程中可以燃烧多种燃料,因此循环流化床锅炉在燃煤电厂中有着非常广泛的应用。空气和颗粒的均匀性分布不均匀以及某些地方的体积分数大可能导致炉壁的侵蚀。为了减少冲蚀的影响,在炉壁上增加了环形挡板。为了比较0.15 m、0.3 m和0.45 m时环形挡板深度形式的数据变化,以及环形挡板1和2的数量变化,采用CFD方法。试验因素包括压降分布、颗粒体积分数分布、颗粒轴向和径向速度分布以及剪切应力。当体积百分比的最大值为0.012时,两个深度为0.3 m的环形挡板的变化在锅炉循环流化床内的均匀性方面提供了最好的结果。此外,由于环形挡板处测得的最大轴向和径向速度分别为27.1 m/s和2.46 m/s,因此压力降低了7.38 kPa。此外,由于反映颗粒体积百分比的剪切应力轮廓,炉壁可以避免可能的侵蚀。
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Effect of ring baffle on erosion in circulating fluidized bed boiler
Because a variety of fuels can be burned during the combustion process, CFB boilers have a very wide range of applications in coal-fired power plants. The uneven distribution of homogeneity between the air and the particles and the large volume fraction in some locations could result in erosion of the furnace walls. In order to decrease the impacts of erosion, the ring baffle feature is added to the furnace wall. In order to compare data variations in the form of ring baffle depth with variations of 0.15 m, 0.3 m, and 0.45 m as well as the number of ring baffles 1 and 2, the CFD approach is utilized. The factors tested included pressure drop distribution, particle volume fraction distribution, particle axial and radial velocity distribution, and shear stress. With a maximum value of 0.012 for the volume percent, the variation of two ring baffles with a depth of 0.3 m each offered the best results in terms of homogeneity inside the CFB of the boiler. Additionally, a pressure decrease of 7.38 kPa was seen due to the maximum axial and radial speeds that were measured at the ring baffle, which were 27.1 m/s and 2.46 m/s, respectively. Additionally, the furnace wall can avoid probable erosion thanks to the shear stress contours, which mirror the volume percentage of particles.
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来源期刊
Cogent Engineering
Cogent Engineering ENGINEERING, MULTIDISCIPLINARY-
CiteScore
4.00
自引率
5.30%
发文量
213
审稿时长
13 weeks
期刊介绍: One of the largest, multidisciplinary open access engineering journals of peer-reviewed research, Cogent Engineering, part of the Taylor & Francis Group, covers all areas of engineering and technology, from chemical engineering to computer science, and mechanical to materials engineering. Cogent Engineering encourages interdisciplinary research and also accepts negative results, software article, replication studies and reviews.
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