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Transport phenomena within the liquid phase of a laboratory-scale circular methanol pool fire

机译:实验室规模的圆形甲醇池火在液相内的传输现象

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摘要

The effects of altering the lower thermal boundary condition of a methanol pool from -5 ℃ to 50 ℃ was investigated within a 90 mm diameter and 12 mm deep quartz burner under steady state burning condition in a quiescent air environment. Both the burning rate and the flame height were observed to increase by 15% with increasing bottom temperature over this range of bottom boundary conditions. The temperature and velocity within the liquid were measured by a single thermocouple traversed through the pool and PIV, respectively, in order to better understand the transport of mass and energy in the liquid. Temperature measurements revealed a distinct two-layer vertical thermal structure with the upper layer of the pool being almost uniform and near the boiling temperature of the fuel, while the lower layer experienced an increasing temperature gradient as the bottom boundary temperature was lowered. The thickness of the thermally uniform layer increased as the bottom temperature was increased. The measured fluid velocity showed a complementary two-layer structure with the upper layer being dominated by a pair of counter-rotating vortices that kept this portion of the liquid well mixed and transferred heat from the hot pool wall to the pool center, while the flow in the lower layer was uniformly low in value and vertical. A model was presented to aid in understanding the energy transfer within the liquid phase. In the lower layer, the Peclet Number was in the order of unity and required that the energy transfer throughout the liquid phase to be modeled as a combination of conduction and convection. Using this physical model, the change in burning rate over the full 55 ℃ change in bottom temperature was predicted within 2%, thereby supporting the proposed mechanism for energy transfer into the pool's depth.
机译:在静态空气条件下,在稳态燃烧条件下,研究了直径为90 mm且深度为12 mm的石英燃烧器中,甲醇池的下热边界条件从-5℃变为50℃的影响。在该底部边界条件范围内,随着底部温度的升高,燃烧速率和火焰高度均增加了15%。为了更好地了解液体中质量和能量的传输,分别通过一个热电偶穿过池和PIV来测量液体中的温度和速度。温度测量显示出明显的两层垂直热结构,池的上层几乎均匀且接近燃料的沸腾温度,而下层随着底部边界温度降低而经历逐渐增加的温度梯度。随着底部温度的增加,热均匀层的厚度增加。测得的流速显示出互补的两层结构,其中上层由一对反向旋转的涡流所控制,这些涡流使液体的这一部分保持充分混合并将热量从热池壁传递到池中心,而流动在较低层中,其值和垂直方向一致较低。提出了一个模型来帮助理解液相中的能量转移。在较低的层中,Peclet数约为1,需要将整个液相中的能量传递建模为传导和对流的组合。使用该物理模型,在整个底部温度55℃的变化中,燃烧速率的变化预计在2%以内,从而支持所提出的将能量转移到池深的机制。

著录项

  • 来源
    《Combustion and Flame》 |2014年第4期|1076-1084|共9页
  • 作者单位

    Department of Mechanical Engineering, 4-9 Mechanical Engineering Building, University of Alberta, Edmonton, AB T6G 2G8, Canada;

    Department of Mechanical Engineering, 4-9 Mechanical Engineering Building, University of Alberta, Edmonton, AB T6G 2G8, Canada;

    Department of Mechanical Engineering, 4-9 Mechanical Engineering Building, University of Alberta, Edmonton, AB T6G 2G8, Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Pool fire; Burning rate; Flame height; Temperature; Velocity; Convection;

    机译:池火;燃烧率火焰高度;温度;速度;对流;
  • 入库时间 2022-08-18 00:11:33

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