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The design of gas mixing devices with cfd

机译:cfd气体混合装置的设计

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The mixing of gases at different temperature levels is a common task in industrial processes. In this paper the design of a mixing arrangement in the offgas treatment system of an electric steelmaking plant is discussed with the help of computational fluid dynamics (CFD). Dust-laden offgases originating from three sources in the plant (electric arc furnace primary suction system, ladle furnace suction system and canopy suction system) are mixed in a mixing chamber. The gas is then directed to a bag house where it is filtered through bag filters in order to prevent environmental pollution. Gas temperatures in the bag house must not exceed a certain temperature during any mode of operation and in any place of the filter in order to prevent damage to filter bags (consisting of polyester felt). For this reason high mixing efficiencies at low pressure drops are requested to minimize blower power consumption (typically in the range of 1-2 MW). The first section deals with the description of the mathematical models applied in the simulations. Then the mixing performance of two different mixing devices is compared: a swirl vane and a 'static mixer' located in the pipe connecting the mixing chamber to the bag house. The mixing performance of the swirl vane is found to be superior at equal pressure drop. Appropriate simulation models (RNG k-epsilon model, Reynolds stress model) must be used to resolve the main features of the flows and to obtain reliable results. The subsequent discussion of simulation results from the industrial process arrangement and experimental validations (online temperature measurements) shows excellent agreement. The last section of the paper discusses a recently developed and built design optimization of the industrial arrangement which leads to highly improved mixing performance for all modes of operation.
机译:在不同温度水平下混合气体是工业过程中的常见任务。在本文中,借助计算流体动力学(CFD),讨论了炼钢厂废气处理系统中混合装置的设计。来自工厂三个来源(电弧炉一次抽吸系统,钢包炉抽吸系统和机盖抽吸系统)的粉尘废气在混合室内混合。然后将气体引导至袋滤室,在此处通过袋滤器进行过滤,以防止环境污染。在任何操作模式下以及在过滤器的任何位置,袋滤室中的气体温度均不得超过特定温度,以防止损坏滤袋(由聚酯毡组成)。因此,要求在低压降下具有较高的混合效率,以最大程度地降低鼓风机的功率消耗(通常在1-2 MW范围内)。第一部分介绍了模拟中应用的数学模型。然后比较了两种不同混合设备的混合性能:旋流叶片和位于将混合腔与袋室连接的管道中的“静态混合器”。发现在相同的压降下旋流叶片的混合性能优异。必须使用适当的模拟模型(RNGk-ε模型,雷诺应力模型)来解析流动的主要特征并获得可靠的结果。随后对工业过程安排和实验验证(在线温度测量)的模拟结果的讨论显示出了极好的一致性。本文的最后一部分讨论了工业装置的最近开发和建造的设计优化,该优化可导致所有操作模式的混合性能大大提高。

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