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Researching the Performance of Dual-Chamber Fire-Tube Boiler Furnace

机译:双室火管锅炉炉膛性能研究

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摘要

Autonomous heating systems equipped with fire-tube or shell boilers show high effectiveness, consistent performance and great technical parameters. But there is a significant limitation of its thermal productivity due to the complexity of durable large diameter fire-tube bottoms implementation. Optimization of combustion aerodynamics can be the way to expand the fire-tube boilers performance limit. In this case lots of problems connected with reducing emissions of toxic substances, providing of burning stability, local heat stresses and aerodynamic resistances should be solved. To resolve the indicated problems, a modified model of dual-chamber fire-tube boiler furnace is proposed. The performance of suggested flame-tube was simulated using the proven computer-aided engineering software ANSYS Multiphysics. Results display proposed flame tube completely filled with moving medium without stagnant zones. Turbulent vortical combustion is observed even with the straight-through fuel supply. Active flue gas recirculation in suggested dual-chamber furnace reduces emissions of pollutants. Diminution of wall heat fluxes allows boiler operation at lower water treatment costs.
机译:配备火管锅炉或空壳锅炉的自主加热系统显示出高效率,一致的性能和出色的技术参数。但是,由于耐用大直径火管底部实施的复杂性,其热生产率受到很大限制。优化燃烧空气动力学可以成为扩大火管锅炉性能极限的方法。在这种情况下,应解决许多与减少有毒物质的排放,提供燃烧稳定性,局部热应力和空气动力学阻力有关的问题。为了解决上述问题,提出了一种双室火管锅炉炉的改进模型。使用成熟的计算机辅助工程软件ANSYS Multiphysics模拟了建议的火焰管的性能。结果显示建议的火焰管完全充满运动介质而没有停滞区域。即使使用直通式燃油供应,也能观察到湍流涡流燃烧。建议的双室炉中的主动烟气再循环减少了污染物的排放。减小壁热通量可以使锅炉以较低的水处理成本运行。

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