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Stacked-Air System Improves Recovery Boiler Operation

机译:堆积空气系统可提高恢复锅炉操作

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Interstate Paper, Riceboro, Georgia, installed a Stacked-Air~(TM) combustion air system on their recovery boiler in May 2003. The new combustion air system improved run time, through put, emissions, reduction efficiency, auxiliary fuel usage, and char bed control. Instrumental to the success of the system was the use of computational fluid dynamic (CFD) modeling of the recovery boiler. Five potential solutions were examined and compared to the base case condition. Extensive data was collected of the before and after conditions including interior gas temperatures, physical carryover and operational data. The historical operation of the boiler is described and the benefits of the new combustion air system are reviewed. The before and after conditions predicted by the CFD modeling are compared. The boiler performance data is compared to the modeling predictions to illustrate the accuracy of "best practice" CFD modeling. The boiler performance data is also used to document the improved operation of the boiler. This case study illustrates the benefits of innovative combustion air systems and CFD modeling for improving the operation of recovery boilers.
机译:2003年5月,在其恢复锅炉上安装了楼梯族丛林丛书,在其恢复锅炉上安装了堆叠空气〜(TM)燃烧空气系统。新的燃烧空气系统通过放置,排放,减少效率,辅助燃料使用和炭化改善了运行时间。床控制。仪器对系统的成功是使用恢复锅炉的计算流体动态(CFD)建模。检查五种潜在的溶液,并与基本情况下的情况进行比较。在包括内部气体温度,物理核算和操作数据的情况下收集广泛的数据。描述了锅炉的历史操作,并回顾了新的燃烧空气系统的益处。比较了CFD建模预测的前后条件。将锅炉性能数据与建模预测进行比较,以说明“最佳实践”CFD建模的准确性。锅炉性能数据还用于记录锅炉的改进操作。本案例研究说明了创新燃烧空气系统和CFD建模的益处,用于改善回收锅炉的运行。

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