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Numerical analysis of the transient heating of steel billets and the combustion process under air-fired and oxygen enriched conditions

机译:空气燃烧和富氧条件下钢坯瞬态加热和燃烧过程的数值分析

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A three-dimensional analysis of the gas phase combustion and transient heating of steel billets in an industrial walking hearth furnace was done by CFD. An iterative solution procedure was used for the steady-state simulation of the reactive flow and the heat conduction in, the billets for air-fired and oxygen enriched combustion with 25 vol% O-2 and 75 vol% N-2 in the oxidizer. Information about the turbulent flow, species concentrations, temperatures and heat fluxes in the furnace was obtained with low computational demand due to the used solution procedure. Modelling of the gas phase combustion considered 17 species and 25 reversible reactions including radical formation. According to operating conditions of the furnace, a gas saving of 8% was determined due to the oxygen enrichment. Although the fuel input was reduced with increasing oxygen concentration, the calculated heat fluxes to the billets were similar due to the oxygen enrichment. Furthermore, a higher heating rate was achieved in the heating zone compared to air-fuel combustion, as a consequence of the increased radiative heat transfer. The overall efficiency of the reheating process was raised from 57.6% (air-fuel) to 61.4% (oxygen enriched). Surface temperature and temperature uniformity of the billets were calculated using transient simulations and investigated for the two combustion cases. In air-fuel combustion, a faster heating of the billets was detected due to the higher convective heat flux in the pre-heating zone. This effect in the air-fuel case was compensated in the following heating zone in oxygen enriched combustion by radiation. This study shows that higher efficiency of reheating processes can be achieved by means of oxygen enrichment with a similar heating characteristic of the furnace load. (C) 2016 Elsevier Ltd. All rights reserved.
机译:通过CFD对工业炉床炉中钢坯的气相燃烧和瞬态加热进行了三维分析。迭代求解程序用于反应器中的反应流和热传导的稳态模拟,该方法用于空气燃烧和富氧燃烧的坯料,其中氧化剂中含有25%(体积)的O-2和75%(体积)的N-2。由于使用了求解程序,因此以较低的计算需求获得了有关炉中湍流,物质浓度,温度和热通量的信息。气相燃烧的模型考虑了17种和25种可逆反应,包括自由基的形成。根据炉子的工作条件,由于富氧,节省了8%的气体。尽管燃料输入随氧气浓度的增加而减少,但由于氧气富集,计算得出的钢坯热通量相似。此外,由于增加的辐射热传递,与空气-燃料燃烧相比,在加热区域中实现了更高的加热速率。再加热过程的整体效率从57.6%(空气燃料)提高到61.4%(富氧)。使用瞬态模拟计算坯料的表面温度和温度均匀性,并针对两种燃烧情况进行研究。在空气燃料燃烧中,由于预热区内较高的对流热通量,因此检测到坯料的加热速度更快。在空气燃料情况下,这种影响在随后的加热区通过辐射富氧燃烧得到补偿。这项研究表明,通过与炉子负载具有相似加热特性的富氧,可以实现更高的再加热过程效率。 (C)2016 Elsevier Ltd.保留所有权利。

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