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CFD AIR FLOW CHANNEL OPTIMIZATION FOR A LOW NOX OPERATION OF A BIG STEAM BOILER

机译:大蒸汽锅炉低NOx运行的CFD气流通道优化

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One of the Romanian big power plant (Turceni) of 2400 MWe installed power has seven Benson boilers of 1035 t/h each, using Romanian pulverized lignite. Until 2008, every one of them has to be revamped in order to emit less than 500 mg/Nm~3 of NOx at full load and 6% oxygen content in the flue gas. The problem has been very complex due to the fact that all these steam boilers have been commissioned since 1968, without any design preparation concerning low NOx emissions. Step by step, all the technological measures have been performed, so the burning process of the Romanian low heat power lignite, has been able to produce low NOx emissions by the help of supplementary stages of air injections. The last problem and the subject of the presented paper, occurred regarding the possibility to inject enough and equal airflow rate through sixteen nozzles before the end of the boiler's furnace. The complexity of this problem consisted not only in a lot of technical constraints concerning to the starting place of the air pipes, but also to the path of the pipes (with very big dimensions) and to a very low influence in pressure drop losses towards the existent air ducts. A special supplementary problem has been that one to create the simplest shape of the air inlet elbow from the main existent air ducts, in order to suck the strictly necessary airflow rate at the lowest possible pressure drop loss. Due to the fact that the boiler's dimensions are too big to use only one air pipe toward the nozzles, two air manifolds are considered starting from two main different air ducts and feeding eight nozzles each; this fact has complicated the task further, in order to balance the airflow rate inside the two manifolds. This complex problem has been solved by the help of CFD Fluent code and has been considered also the subject of one of the team member's PhD dissertation. Special meshing techniques have been used in order to optimize the cells' number. For CFD results validation a special 1:50 transparent scaled model of the furnace has been constructed and performed using a laser - Doppler anemometer to determine the airflow rate and velocity, inside the air channels and at the nozzles' exits to the furnace.
机译:罗马尼亚装机容量为2400 MWe的大型发电厂(Turceni)之一,有7台Benson锅炉,每台1035 t / h,均使用罗马尼亚粉煤褐煤。直到2008年,它们中的每一个都必须进行改造,以在满负荷下排放低于500 mg / Nm〜3的NOx和烟气中的6%氧气。由于所有这些蒸汽锅炉自1968年以来就已经投入运行,而没有任何有关低NOx排放的设计准备工作,因此问题变得非常复杂。逐步执行了所有技术措施,因此罗马尼亚低热力褐煤的燃烧过程在补充空气注入阶段的帮助下已能够产生低NOx排放。本论文的最后一个问题和主题是,在锅炉窑炉末端之前通过十六个喷嘴注入足够相等的气流速率的可能性。这个问题的复杂性不仅在于与空气管的起始位置有关的许多技术约束,而且还与管道(具有很大尺寸)的路径有关,并且对压降损失的影响很小。存在的风管。一个特殊的补充问题是,要从现有的主要风管中制造出最简单的进气弯管形状,以便以尽可能低的压降损失吸入严格必要的气流速率。由于锅炉的尺寸太大,以至于仅可使用一根空气管朝向喷嘴,因此考虑了两个空气歧管,该空气歧管从两个主要不同的空气导管开始,分别向八个进气管供气;为了平衡两个歧管内部的气流速率,这一事实进一步使任务复杂化。这个复杂的问题已经通过CFD Fluent代码的帮助得以解决,并且也被认为是团队成员博士学位论文之一的主题。为了优化单元格的数量,已使用特殊的网格划分技术。为了进行CFD结果验证,已经构造并使用激光-多普勒风速计执行了特殊的1:50透明比例缩放炉模型,以确定气流速率和内部,空气通道内部以及喷嘴到炉出口的流速和速度。

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