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Numerical Study of Biomass Grate Boiler with Coupled Time-Dependent Fuel Bed Model and Computational Fluid Dynamics Based Freeboard Model

机译:时变燃料床模型与基于计算流体力学的干舷模型耦合的生物质炉排锅炉的数值研究

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In this paper, a coupled numerical model is developed to provide an advanced simulation for industrial scale grate boilers. The detailed process of biomass conversion in the grate bed is captured using the developed one-dimensional fuel bed model, taking into consideration the separately controlled residence time and primary air supply in different zones. The distributions of gas concentrations, temperature, and bed height along the grate bed are described by the transient simulation results, which are then coupled to the three-dimensional freeboard simulation model as boundary conditions. The results from the coupled model are compared with the on-site measurement data from a wood-chip grate boiler for steam generation, and good agreements are achieved. The in-furnace combustion processes for different quality fuels are evaluated using the model. The results show that higher quality fuel has a larger high temperature combustion zone together with a lower bottom ash temperature, which suggests a higher efficiency. Moreover, a comparison between the standard grate speed control scheme and the modified one shows that increasing the fuel residence time in the first zone has the potential for improving the boiler's combustion efficiency.
机译:在本文中,开发了一个耦合数值模型,以为工业规模炉排锅炉提供高级仿真。考虑到分别控制的停留时间和不同区域的一次空气供应,使用开发的一维燃料床模型捕获了炉排床中生物质转化的详细过程。瞬态模拟结果描述了沿炉排沿床的气体浓度,温度和床高的分布,然后将其耦合到三维干舷模拟模型作为边界条件。将耦合模型的结果与木屑炉排锅炉产生蒸汽的现场测量数据进行比较,并达成了良好的协议。使用该模型评估了不同质量燃料的炉内燃烧过程。结果表明,较高质量的燃料具有较大的高温燃烧区以及较低的底灰温度,这表明效率更高。此外,标准炉排速度控制方案与修改的方案之间的比较表明,增加燃料在第一区域的停留时间有可能改善锅炉的燃烧效率。

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