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NEW CONCEPTS FOR ENERGY EFFICIENT EMISSION FRIENDLY MELTING OF GLASS

机译:节能和排放友好熔化的新概念

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The paper starts with a short analysis of the performance of currently applied glass melting processes/furnaces concerning their energy consumption levels (benchmarking), as well as NOx emissions. The best practice situations will be presented for few glass products (e.g. container glass). Potential improvements in furnace designs to obtain more intensified melting or smaller glass furnace sizes and improved-controlled process steps (melting-in, complete raw material (e.g. sand) digestion of the melt, fining, homogenization & conditioning) will be discussed. Important aspects per process step are control of the applied temperature level, finding optimum glass melt flow regimes and residence times in each compartment of the melting tank, dedicated for a specific process step. Controlled & intensified heat transfer to the batch blanket area is decisive for the possibility to reduce glass furnace size, and consequently lowering structural energy losses. Mathematical modeling studies support the development of new furnace designs and heating methods in industrial glass furnaces with targeted high energy efficiency and moderate / low NOx emissions. New technological elements, such as application of CFD models, innovative oxygen-firing glass furnace designs, improved refractory materials, and advanced process control systems support the development of new glass melting concepts and furnace designs.
机译:本文首先分析了当前应用玻璃熔化工艺/炉的性能,涉及其能量消耗水平(基准测试),以及NOx排放。最佳实践情况将呈现少数玻璃制品(例如集装箱玻璃)。将讨论将讨论炉子设计中的熔炉设计,以获得更强化的熔化或更小的玻璃炉尺寸和改善控制的工艺步骤(熔化,完全原料(例如,砂)消化熔体,罚款,均质化和调节)。每个工艺步骤的重要方面是对施加的温度水平的控制,在熔化槽的每个隔室中找到最佳玻璃熔体流动和停留时间,专用于特定的工艺步骤。对批量橡皮布区域的控制和强化热传递是可以降低玻璃炉尺寸的可能性的决定性,从而降低结构能量损失。数学建模研究支持在工业玻璃炉中开发新的炉子设计和加热方法,具有目标高能量效率和中等/低NOx排放。新技术元素,如CFD型号的应用,创新的氧气燃烧玻璃炉设计,改进的耐火材料,先进的过程控制系统支持开发新的玻璃熔化概念和炉设计。

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