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SO2, CO and NOx analysis of a SL calciner using a MI-CFD model

机译:所以使用MI-CFD模型 2 ,co和no x 分析SL计算器

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Combustion, calcination and emission (CO, NOx, SO) optimization results are presented from a separate line (SL) calciner, and are compared, where possible, with another SL calciner. Over 60% of the total fuel is fired in the calciner achieving 95% calcination levels in relatively short residence times (2.5 seconds). The use of petcoke and alternative fuels (AFR's) saves fuel costs, but their thermal substitution rate is limited by emissions and operational difficulties. In addition to the problems of complying with emission limits (i.e., CO, NOx, VOC's), kiln instabilities may result due to the higher sulfur and chloride contents of AFR' s, or petcoke. The problem is exacerbated if the meal injected in the calciner drops through - at the kiln inlet/tertiary air inlet due to the formation of meal-slugs or presence of lower velocities regions. A detailed study of a Canadian cement plant's separate line calciner is presented using a 3-D mineral interactive computational fluid dynamics (MI-CFD) model and results related to flow aerodynamics, calcination, combustion of conventional and alternative fuels and emissions (CO, SOx, and NOx) are compared with other separate line calciners. In addition, the effect of fuel-mix on emissions is analyzed and recommendations are made with regard to the burners, burner locations, meal inlets, specific to calciner geometrical characteristics. The computed results are compared with the plant data and additional MI-CFD model predictions are carried out for alternative fuels to be fired in the next project-phase. As a result, of the on-going calciner measurement and MI-CFD campaigns, the plant can easily achieve the legislative limits of NOx, CO and SO for coal, low to higher sulfur petcoke blends as well as for 50% thermal substitution levels of AFR. The plant is 'AFR-ready' pending its permitting process, which is in its final stages.
机译:燃烧,煅烧和发射(CO,NOx,SO)优化结果由单独的线路(SL)煅烧炉提出,并在可能的情况下与另一个SL煅烧炉进行比较。超过60%的总燃料在煅烧炉中射击,在相对较短的停留时间(2.5秒)中实现了95%的煅烧水平。使用佩科咽和替代燃料(AFR)节省了燃料成本,但它们的热替代率受到排放和操作困难的限制。除了遵守排放限制(即,CO,NOX,VOC)的问题外,由于AFR的硫和氯化物含量较高,可能导致窑型无限度。如果在煅烧炉中注入的膳食通过 - 在窑入口/三级空气入口下,该问题会加剧,由于膳食盒或较低速度区域的存在。使用3-D矿物交互式计算流体动力学(MI-CFD)模型和常规和替代燃料和排放(CO,SOX)的流动空气动力学,煅烧,燃烧相关的结果,给出了加拿大水泥厂的单独线路煅烧炉的详细研究。和NOx)与其他单独的线路煅烧炉进行比较。此外,分析了燃料混合物对排放的影响,并在燃烧器,燃烧器位置,膳食入口方面进行建议,具体到煅烧炉几何特征。将计算的结果与工厂数据进行比较,并且对在下一个项目阶段进行替代燃料进行额外的MI-CFD模型预测。因此,在进行正在进行的煅烧牌测量和MI-CFD运动,该植物可以容易地实现NOx,CO等的立法限制,低至更高的硫熟蛋胨共混物以及50%的热取代水平AFR。该工厂正在申请允许的过程中'AFR-READY',这是最终阶段。

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