利用膨胀床模型对粉碎生物质的流动性进行数值研究

M. Przywara, Regina Przywara, Wojciech Zapała
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引用次数: 0

摘要

对粉碎生物质流动性的数值研究对农业至关重要,有助于优化生物质利用、作物残留物管理、改善土壤健康和减轻环境影响。人们对生物质和转化过程的兴趣日益浓厚,这就要求对其特性有更深入的了解,并对技术过程进行优化。水分含量是影响生物质质量的一个关键参数。本文采用离散元法对不同含水量的剪切试验进行了计算机模拟,并与实验结果进行了比较。对 Jenike 的直接剪切设备进行了实验研究和建模。为考虑湿度的影响,提出了膨胀床模型。膨胀床模型假定生物质颗粒涡度的增加与水分含量成正比。该模型采用离散元素法(DEM)求解。该模型考虑了水分对生物质颗粒杨氏模量和基尔霍夫模量值的影响。模型假定水分不以表面形式存在,水分总量被吸收到材料颗粒的内部,单个颗粒的体积随吸收水分体积的增加而线性增加。测试材料为粉碎的葵花籽壳、苹果渣、蒸馏酒糟(DDGS)、肉骨粉(MBM)和锯末。测试的样品含水量分别为 0%、10%、20% 和 30%。在苹果渣、DDGS 和锯末等表面不含水分的吸水性最强的材料中,模型与实验数据的一致性最好。研究数据对于正确设计生物质储存、运输设备,以及用作生物能源生产或土壤增肥的原料非常重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Investigation on Flowability of Pulverized Biomass Using the Swelling Bed Model
Numerical investigations on the flowability of pulverized biomass are crucial for agriculture, aiding in optimizing biomass use, crop residue management, soil health improvement, and environmental impact mitigation. Rising interest in biomass and conversion processes necessitates deeper property understanding and technological process optimization. Moisture content is a key parameter influencing biomass quality. In this paper, computer simulations of shear tests depending on the moisture content using the discrete element method were carried out and compared with experimental results. An experimental study and modeling for Jenike’s direct shearing apparatus was carried out. A swelling bed model was proposed to account for the effect of moisture. The swelling bed model assumed an increase in biomass grain vorticity proportional to the moisture content. The model was solved using the discrete element method (DEM). The model considers the effect of moisture on the values of Young’s and Kirchoff’s moduli for biomass grains. The model assumed that moisture is not present in surface form, the total amount of moisture is absorbed into the interior of the material grains, and the volume of a single grain increases linearly with an increase in the volume of the absorbed moisture. The tested materials were pulverized sunflower husks, apple pomace, distiller’s dried grains with solubles (DDGS), meat and bone meal (MBM), and sawdust. Samples with moisture contents of 0%, 10%, 20%, and 30% were tested. The best agreement of the model with the experimental data was observed for the most absorbent materials in which moisture was not present in surface form, such as apple pomace, DDGS, and sawdust. Research data are important for the proper design of biomass storage, transportation equipment, and utilization as feedstock for bioenergy production or soil enrichment.
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