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ASSESSMENT OF ENGINEERING SOLUTIONS FOR AN OIL-FIRED AIR PREHEATER USING NUMERICAL SIMULATIONS

机译:使用数值模拟评估燃油空气预热器的工程解决方案

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This paper describes the CFD (Computational Fluid Dynamics) analysis of the combustion chamber of a horizontal oil-fired air preheater. The combustion chamber was originally designed to operate with low excess air at 15%. Upon start-up, it experienced refractory overheating issues on its roof. Following the initial failure, there were questions about the apparent non-uniformity of the shell temperatures with the roof being at higher temperatures. The unknown was whether the "hot-spot" was a combustion related issue or due to refractory failure. The purpose of this project was to determine the root causes of the refractory overheating and develop solutions for the customer. Several cases with different excess air levels were investigated using CFD simulation. The simulations showed that although no flame impingement on the refractory wall was found, the flame shape was short and wide. Since the combustion chamber was operated close to adiabatic condition, the shape of the flame and high overall flue gas temperatures are believed to have contributed to the verheating of the roof refractory. The installations of 8, 12, and 16 bussle pipes around the burner in the firing end were simulated and evaluated based on combustion performance, flame shape, and wall temperature distribution in order to provide a practical solution for the customer. Air supply to the combustion chamber was increased by transferring additional air from a portion of the downstream process. The total air supply was distributed between the main burner and bussle pipes. Several conditions of different air split ratios were also evaluated. Finally, a solution was found that was both satisfactory to the air preheater operation and economical in implementation.
机译:本文介绍了水平燃油空气预热器的燃烧室的CFD(计算流体动力学)分析。燃烧室最初设计用于在15%以低过量空气运行。在启动时,它在其屋顶上经历了难治性过热的问题。在初始失败之后,有关于壳体温度的明显不均匀性与屋顶处于较高温度的问题。未知是“热点”是否是燃烧相关问题或由于难治性故障。该项目的目的是确定难敏过热和为客户开发解决方案的根本原因。使用CFD仿真研究了几种具有不同空气水平的病例。模拟表明,尽管发现了耐火墙上的火焰冲击,但火焰形状短而宽。由于燃烧室靠近绝热条件操作,因此据信,火焰和高总烟气温度的形状有助于屋顶耐火材料的脉动。在燃烧端的燃烧器周围的8,12和16和16个Bussle管道的安装,并基于燃烧性能,火焰形状和壁温分布来进行评估,以便为客户提供实用的解决方案。通过从下游工艺的一部分转移额外的空气来增加对燃烧室的空气供应。总供气是在主燃烧器和Bussle管道之间分配的。还评估了几种不同空气分裂比的条件。最后,发现一种解决方案,其既令人满意,对空气预热器运行和在实施中经济。

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