首页> 外文会议>International Conference on Fluidized Bed Combustion; 20050522-25; Toronto(CA) >Numerical Simulation of the Combustion Behavior of Different Biomasses in a Bubbling Fluidized Bed Boiler
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Numerical Simulation of the Combustion Behavior of Different Biomasses in a Bubbling Fluidized Bed Boiler

机译:鼓泡流化床锅炉中不同生物质燃烧行为的数值模拟

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Solid fuels currently used for energy production in thermal power plants are characterized by a large variety ranging from different coals to biomasses and wastes. This manifold of fuels offers opportunities to the energy producers and nowadays many power plants do not fire single fuels but fuel mixtures. While this procedure may lead to overall economic and environmental advantages it is very demanding for the boiler operators to maintain boiler performance and availability and to meet emission limits. The development of mathematical models that are capable of predicting the combustion behavior of fuel mixtures and provide guidelines for operators and manufacturers has been a challenge over the last years. Since bubbling fluidized beds are frequently used for firing fuel mixtures and especially biomass mixtures, current CFD based BFB models, such as the Abo Akademi Furnace Model, have been used widely over the last years to predict emission tendencies and ash deposition behavior. However, due to the complexity of the processes during combustion of fuel mixtures and the combustion process in the bubbling fluidised bed itself, the models are characterized by strong simplifications. This is especially true for the description of the lower part of the furnace, the region of fuel intake and bubbling bed. Recently, the Abo Akademi Furnace Model has been extended by a more detailed description of the fuel conversion by considering the combustion of individual biomass particles and a first simplified approach describing heat and mass transfer processes between the bubbling bed and the freeboard. Both submodels guarantee a closed mass and energy balance over the bed-freeboard region. In the current study the new submodels have been used to investigate the combustion conditions in a 290 MW bubbling fluidized bed boiler firing peat and forest residue. Clear differences in the simulation results for the both fuels can be found with regard to the specific combustion characteristics, the location of the main combustion zone and the total heat generated during combustion.
机译:当前用于火力发电厂能源生产的固体燃料的特点是种类繁多,从不同的煤炭到生物质和废物。这种燃料的多样性为能源生产商提供了机会,如今,许多发电厂不再使用单一燃料而是使用混合燃料。尽管此程序可能会带来整体经济和环境优势,但对于锅炉操作员来说,保持锅炉性能和可用性以及满足排放限值非常有必要。在过去几年中,开发能够预测燃料混合物燃烧行为并为操作员和制造商提供指导的数学模型一直是一个挑战。由于鼓泡流化床通常用于燃烧燃料混合物,尤其是生物质混合物,因此,基于CFD的BFB当前模型(例如Abo Akademi炉模型)在过去几年中已广泛用于预测排放趋势和灰分沉积行为。但是,由于燃料混合物燃烧过程的复杂性和鼓泡流化床本身的燃烧过程,模型的特点是简化性强。对于炉子的下部,燃料入口和鼓泡床的区域的描述尤其如此。最近,通过考虑单个生物质颗粒的燃烧和描述沸腾床与干舷之间传热和传质过程的第一种简化方法,对Abo Akademi炉模型进行了更详细的描述,从而扩展了Abo Akademi炉模型。这两个子模型都保证了床高空区域的封闭质量和能量平衡。在当前的研究中,新的子模型已用于研究290 MW鼓泡流化床锅炉燃烧泥炭和森林残渣的燃烧条件。在特定的燃烧特性,主燃烧区的位置以及燃烧过程中产生的总热量方面,可以找到两种燃料的模拟结果的明显差异。

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