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ENERGY EFFICIENCY SIMULATIONS USING FULLY COUPLED AND CONTROLLED REGENERATIVE FURNACE MODEL

机译:完全耦合和受控的再生炉模型的能源效率模拟

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Full 3D CFD modeling of glass furnaces is increasingly becoming a standard tool lor predictions of energy balance and glass quality. State of the art 3D furnace models usually include energy transfer inside the furnace and between the furnace and surroundings. Real regenerative furnaces are complex systems with complex interactions among regenerators, combustion chamber(s), glass melt and control systems. To achieve accuracy and realistic response of numerical models of glass furnaces, especially in optimization studies aimed at energy savings, the models should include all these interactions. GS Glass Furnace Model has been enhanced to have the 3D regenerator model integrated with the furnace model. Thus, changes inside the furnace influence behavior of regenerators and vice versa. Behavior of the control system is mimicked too - gas and air flow rates and other inputs are automatically adjusted to maintain specified temperatures at controlled thermocouple locations. An example case study, focused on energy savings, on an industrial size cross-fired regenerative float furnace, is presented. The study demonstrates how the model reacts on changes in furnace design and operating parameters. The cases are compared and differences in energy balance and glass quality are interpreted.
机译:玻璃熔炉的完整3D CFD建模正逐渐成为预测能量平衡和玻璃质量的标准工具。最先进的3D炉模型通常包括炉内部以及炉与周围环境之间的能量传递。真正的蓄热式炉是复杂的系统,在蓄热器,燃烧室,玻璃熔体和控制系统之间具有复杂的相互作用。为了获得玻璃熔炉数值模型的准确性和逼真的响应,尤其是在针对节能的优化研究中,模型应包括所有这些相互作用。 GS玻璃熔炉模型已得到增强,将3D蓄热器模型与熔炉模型集成在一起。因此,炉内的变化会影响蓄热室的性能,反之亦然。控制系统的行为也被模仿-气体和空气流速以及其他输入会自动调整,以在受控的热电偶位置保持指定的温度。提出了一个实例案例研究,该案例研究着重于工业规模的交叉燃烧蓄热式浮炉的节能。该研究证明了该模型如何对炉子设计和运行参数的变化做出反应。比较这些案例并解释能量平衡和玻璃质量的差异。

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