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Numerical study on the SNCR application of space-limited industrial boiler

机译:SNCR在有限空间工业锅炉中应用的数值研究

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摘要

Considering that the direct application of SNCR method to existing industrial boiler is usually known as not quite satisfactory mainly due to the insufficient residence time by the limitation of SNCR application space, it is quite interesting to examine whether it is possible to improve the efficiency of SNCR reaction by the adjustment of design and operational parameters. Especially one of novel concepts is the introduction of auxiliary air employed for the increase of turbulence mixing of reduction material in SNCR injection system. To this end a comprehensive computer program is developed using SIMPLE algorithm by Patankar in order to evaluate the efficiency of SNCR system for the boiler with 40 tons of steam/h using heavy oil. The computer program is made in 3-D rectangular coordinate using various phenomenological models. For example, standard k-e turbulence model and typical eddy breakup model are incorporated for the Reynolds stresses and turbulent reaction of major fuel species, respectively. However, detailed data of chemical kinetics are also incorporated for the process of NO formation together with the NH{sub}3 reduction reaction of SNCR system. The complex coupling phenomena between combustion chemistry and turbulence are resolved by the strategy of harmonic mean expression assuming proper empiricism. Further, the calculation of droplet trajectory and volatilization is incorporated in Lagrangian frame assuming eight possible trajectories in each grid by the consideration of the calculation efficiency and accuracy. The validation of program developed was made by the comparison with the measured temperature profile and a series of parametric investigations have been performed to enhance the NO removal efficiency. The major variables considered in this study are droplet diameter, the injection location and amount of reduction agent together with the introduction of auxiliary mixing-enhanced air for the reduction material. Based on the results of the calculation, it is found that the removal efficiency of NO was improved to a significant amount by the increase of penetration depth of the reducing agent into the center region of boiler. The increase of penetration distance and thereby the enhancement of mixing efficiency was obtained either by the employment of the mixing air together with the increase of the injection velocity and droplet size, respectively. Based on this study, the successful application of SNCR method even for the space-limited industrial boiler can be achieved by the proper increase of the mixing of reducing agents.
机译:考虑到通常将SNCR方法直接应用于现有工业锅炉的效果并不令人满意,这主要是由于SNCR应用空间的限制而导致停留时间不足,因此研究是否有可能提高SNCR的效率非常有趣。通过调整设计和操作参数进行反应。特别地,新颖概念之一是引入辅助空气,该辅助空气用于增加SNCR喷射系统中还原材料的湍流混合。为此,帕坦卡公司使用SIMPLE算法开发了一套全面的计算机程序,以评估SNCR系统对重油每小时处理40吨蒸汽的锅炉的效率。使用各种现象学模型以3-D直角坐标制作计算机程序。例如,针对主要燃料种类的雷诺应力和湍流反应,分别采用了标准的k-e湍流模型和典型的涡流破碎模型。但是,也将详细的化学动力学数据与SNCR系统的NH {sub} 3还原反应一起用于NO的形成过程。燃烧化学和湍流之间的复杂耦合现象通过假设适当经验的谐波均值表达策略得以解决。此外,考虑到计算效率和精度,假设每个网格中有八种可能的轨迹,则将液滴轨迹和挥发的计算并入拉格朗日框架中。通过与测得的温度曲线进行比较来验证所开发程序的有效性,并进行了一系列参数研究以提高NO的去除效率。在这项研究中考虑的主要变量是液滴直径,还原剂的注入位置和量,以及为还原材料引入辅助混合增强空气。根据计算结果,发现通过还原剂向锅炉中心区域的渗透深度的增加,NO的去除效率显着提高。通过分别使用混合空气以及增加注射速度和液滴尺寸,可以获得渗透距离的增加,从而提高混合效率。在此基础上,通过适当增加还原剂的混合量,可以成功地将SNCR方法成功应用于空间有限的工业锅炉。

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