Experimental and computational study on the effect of ash deposition on fluid dynamic behavior in a bubbling fluidized bed gasifier

R. Thapa, S. Thapa, Rajan Jaiswal, N. C. Furuvik, Britt M. E. Moldestad
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Abstract

The effect of ash deposition on fluid dynamic behavior in a fluidized bed gasification reactor has been studied using experimental and computational methods. The experiments were carried out using sand particles as bed material and air as a fluidizing agent. A 3D computational model has been developed for a bubbling fluidized bed gasification reactor. First, the model was simulated using only sand particles and air. The results are compared with the experimental results. The comparison shows good agreement between the two sets of the results. The model was further used to study the effect of ash accumulation on the fluid dynamic properties of a biomass gasification reactor. The bed material was mixed with 2 and 4vol% of ash and simulated in cold conditions. Pressure drop increases and minimum fluidization velocity decreases with increasing the ash deposition in the bed. The model was also simulated for 2, 4, and 6 vol% of ash at a temperature of 800ºC. The minimum fluidization velocity was decreased in all the cases. The particle species concentration shows the ash particles start to segregate at the minimum fluidization condition and are totally separated at higher velocities. The bubble behavior of the bed is not effected by ash deposition.
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灰沉降对鼓泡流化床气化炉流体动力学特性影响的实验与计算研究
采用实验和计算相结合的方法研究了灰沉降对流化床气化反应器内流体动力学行为的影响。实验以沙粒为床料,空气为流化剂。建立了鼓泡流化床气化反应器的三维计算模型。首先,模型只使用沙粒和空气进行模拟。计算结果与实验结果进行了比较。比较表明两组结果吻合较好。利用该模型进一步研究了积灰对生物质气化反应器流体动力学特性的影响。床料与2和4vol%的灰混合,并在冷条件下进行模拟。随着床层灰分沉积量的增加,压降增大,最小流化速度减小。该模型还模拟了2,4,6 vol%灰分在800ºC温度下的情况。在所有情况下,最小流化速度都有所降低。颗粒种类浓度表明,灰颗粒在最小流化条件下开始分离,在较高流化速度下完全分离。床层的气泡行为不受灰沉降的影响。
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