Simulation and Analysis of Hydrodynamic Behavior in Different Nozzles and Its Corresponding Fluidized Beds

IF 2.8 4区 工程技术 Q2 ENGINEERING, CHEMICAL Processes Pub Date : 2024-08-07 DOI:10.3390/pr12081656
Minghang Tian, Junqiang Li, Wenlong Mo, Kunpeng Jiao, Wei Peng, Xiaoqin Yang, Shupei Zhang
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Abstract

Uniform air distribution is the basic condition for the stable operation of circulating fluidized beds and closely related to the hole layout of nozzles and the air outlet conditions. In this paper, CAD modeling software is used to establish different opening types for nozzles and the corresponding gasifier models, and Fluent simulation software for numerical simulations (k-ε model) is introduced to the hydrodynamic behavior of the upper opening, the side opening and the combined opening types of nozzles, as well as the corresponding single-nozzle fluidized bed gasifiers. The flow field distribution under the above opening modes is obtained, including the velocity distribution, static pressure distribution, and total pressure distribution, and the influence of the boundary conditions, including the inlet gas velocity and outlet pressure, on the flow field distribution inside the nozzle and in the single-nozzle fluidized bed gasifier is also investigated. The simulation results show that the suitable optimal operating conditions for the coal gasifier can be achieved with an inlet velocity of 30 m/s and an outlet pressure of 25 kPaG. Under the above conditions, the local fluidization dead zone at the elbow and top of the nozzle is narrower, the uniformity of the wind velocity can be improved, the pressure drop of the inner core tube of the nozzle is gentle, and the pressure distribution tends to be stable. Theoretically, the anti-slag performance of the nozzle is improved, which will enhance the stability and reliability of the operation of the gasification unit.
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模拟和分析不同喷嘴及其相应流化床中的流体力学行为
均匀配气是循环流化床稳定运行的基本条件,与喷嘴的开孔布局和出气条件密切相关。本文利用 CAD 建模软件建立了喷嘴的不同开口形式和相应的气化炉模型,并引入 Fluent 仿真软件对喷嘴的上开口、侧开口和组合开口形式以及相应的单喷嘴流化床气化炉的流体力学行为进行了数值模拟(k-ε 模型)。同时还研究了边界条件(包括入口气体速度和出口压力)对喷嘴内部和单喷嘴流化床气化炉内流场分布的影响。模拟结果表明,入口速度为 30 m/s、出口压力为 25 kPaG 时,煤气化炉可达到合适的最佳运行条件。在上述条件下,喷嘴肘部和顶部的局部流化死区较窄,风速的均匀性得以改善,喷嘴内芯管的压降平缓,压力分布趋于稳定。从理论上讲,喷嘴的防渣性能得到改善,这将提高气化装置运行的稳定性和可靠性。
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
Processes
Processes Chemical Engineering-Bioengineering
CiteScore
5.10
自引率
11.40%
发文量
2239
审稿时长
14.11 days
期刊介绍: Processes (ISSN 2227-9717) provides an advanced forum for process related research in chemistry, biology and allied engineering fields. The journal publishes regular research papers, communications, letters, short notes and reviews. Our aim is to encourage researchers to publish their experimental, theoretical and computational results in as much detail as necessary. There is no restriction on paper length or number of figures and tables.
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