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Numerical analysis of an entire ceramic kiln under actual operating conditions for the energy efficiency improvement

机译:实际操作条件下整个陶瓷窑的数值分析

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摘要

The paper focuses on the analysis of an industrial ceramic kiln in order to improve the energy efficiency and thus the fuel consumption and the corresponding carbon dioxide emissions. A lumped and distributed parameter model of the entire system is constructed to simulate the performance of the kiln under actual operating conditions. The model is able to predict accurately the temperature distribution along the different modules of the kiln and the operation of the many natural gas burners employed to provide the required thermal power. Furthermore, the temperature of the tiles is also simulated so that the quality of the final product can be addressed by the modelling. Numerical results are validated against experimental measurements carried out on a real ceramic kiln during regular production operations. The developed numerical model demonstrates to be an efficient tool for the investigation of different design solutions for the kiln's components. In addition, a number of control strategies for the system working conditions can be simulated and compared in order to define the best trade off in terms of fuel consumption and product quality. In particular, the paper analyzes the effect of a new burner type characterized by internal heat recovery capability aimed at improving the energy efficiency of the ceramic kiln. The fuel saving and the relating reduction of carbon dioxide emissions resulted in the order of 10% when compared to the standard burner.
机译:本文侧重于对工业陶瓷窑的分析,以提高能源效率,从而省略燃料消耗和相应的二氧化碳排放。构造了整个系统的集总和分布式参数模型,以模拟实际操作条件下窑的性能。该模型能够精确地预测沿窑的不同模块的温度分布以及所用的许多天然气燃烧器的操作来提供所需的热功率。此外,还模拟瓦片的温度,使得最终产品的质量可以通过建模来解决。在常规生产操作期间在真正陶瓷窑上进行的实验测量验证了数值结果。开发的数字模型表明是对窑组件的不同设计解决方案进行有效工具。此外,可以模拟系统工作条件的许多控制策略,以便在燃料消耗和产品质量方面定义最佳折衷。特别是,本文分析了一种以内部热回收能力为特征的新燃烧器类型的效果,旨在提高陶瓷窑的能量效率。与标准燃烧器相比,燃料节约和二氧化碳排放的减少量为10%。

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