论文标题

20L球体中生物质粉尘爆炸的计算评估

Computational Assessment of Biomass Dust Explosions in the 20L Sphere

论文作者

Islas, A., Fernández, A. Rodríguez, Betegón, C., Martínez-Pañeda, E., Pandal, A.

论文摘要

确定生物质爆炸严重性参数对于生物质加工行业的安全管理和尘埃爆炸风险评估至关重要。这些通常是根据国际标准在20L球体进行实验测试后确定的。最近,CFD模拟已成为可靠的替代方法,可以良好的准确性,减少劳动力和资本来预测爆炸行为。在这项工作中,使用开源CFD代码OpenFOAM进行了生物质灰尘爆炸的数值模拟。使用双向耦合方案在欧拉 - 拉格朗日框架中处理多相(气体固体)流动,并考虑生物质转化率的反应(水分蒸发,去脱脂和CHAR氧化),挥发性气体的燃烧,以及有线和辐射性热传递。该模型通过两个生物量样品的压力时间和浓度依赖性实验测量验证。结果表明,冷流的特征(湍流水平,实际灰尘浓度,尘埃云的空间分布和涡轮上的效应)控制着爆炸过程的过程,并在很大程度上取决于粒径,灰尘浓度和点火延迟时间效应。这些发现可能与更好的灰尘爆炸测试设备的设计以及实验操作指南的重新审查有关。最后,提出了有关爆炸压力,生物量转化程度,火焰温度,火焰传播模式和尘埃团聚效应的详尽讨论。

Determination of the explosion severity parameters of biomass is crucial for the safety management and dust explosion risk assessment of biomass-processing industries. These are commonly determined following experimental tests in the 20L sphere according to the international standards. Recently, CFD simulations have emerged as a reliable alternative to predict the explosion behavior with good accuracy and reduced labor and capital. In this work, numerical simulations of biomass dust explosions are conducted with the open-source CFD code OpenFOAM. The multi-phase (gas-solid) flow is treated in an Eulerian-Lagrangian framework, using a two-way coupling regime and considering the reactions of biomass conversion (moisture evaporation, devolatilization, and char oxidation), the combustion of volatile gases, and convective and radiative heat transfer. The model is validated with pressure-time and concentration-dependent experimental measurements of two biomass samples. Results suggest that the characteristics of the cold-flow (ı.e. turbulence levels, actual dust concentration, spatial distribution of the dust cloud, and turbophoresis effect) govern the course of the explosion process, and depend strongly on particle size, dust concentration, and ignition delay time effects. These findings may be relevant in the design of better dust explosion testing devices and to the reexamination of the guidelines for the operation of the experiment. Finally, a thorough discussion on the explosion pressures, degree of biomass conversion, flame temperature, flame propagation patterns, and the dust agglomeration effect is presented.

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