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Optimisation of Ceramic Self-Recuperative Burners by Mathematical Modelling

机译:数学建模优化陶瓷自蓄热式燃烧器

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A significant reduction of CO_2 emissions from high temeprature processes can be accomplished by means of heat recovery from the flue gases. For several years now, self-recuperative burners consisting of reaction-bonded silicon carbide have been avialiable onthe market for temperatures above 1100degC and for usage with corrosive flue gases, where chromium-nicle steels cannot be used. Ceramic self-recuperative burners for highe output and efficencies with the CFD-program FLUENT have been carried ot to determine the heat transfer processes. THis was done to reduce the development and optimisation expenditure. The results of the calcualtions with the stress analysis program COSMOS/M indicate that also complex self-recuperator geometries cause no problems in the flield of thermal stresses. Dur to the development of the production technical possibilities for RbSiC-components, it has been proven possible to produce ceramic self-recuperators which on the one hadn can be manufactured at a rational price level and, on the other, achieve a relative air prehaeting of up to dpsilon-0.8 With the new burner concepts the NOx emission could be lowered below the limit of the Clean Air code even at highest air preheat temperatures.
机译:可以通过从烟道气中回收热量来显着降低高温度工艺产生的CO_2排放量。几年来,市场上已经出现了由反应结合的碳化硅构成的自循环式燃烧器,其温度超过1100℃,并且与腐蚀性烟道气一起使用,在这种情况下,不能使用铬钢。带有CFD程序FLUENT的陶瓷自蓄热式燃烧器具有较高的输出功率和效率,可用于确定传热过程。这样做是为了减少开发和优化支出。应力分析程序COSMOS / M的计算结果表明,复杂的自蓄电槽几何形状也不会对热应力产生任何影响。在开发RbSiC组件的生产技术可能性之前,已证明可以生产陶瓷自蓄热器,该蓄热器一方面可以以合理的价格制造,另一方面可以相对地进行空气预处理。最高dpsilon-0.8使用新的燃烧器概念,即使在最高的空气预热温度下,也可以将NOx排放降低到清洁空气法规的限制以下。

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