试样宽度和气流速度对稳定火焰蔓延阶段传热和传质行为的影响

Nan Zhu , Yuxuan Ma , Yajun Huang , Shixiang Liu , Margaret Mcnamee , Patrick van Hees , Longhua Hu
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引用次数: 0

摘要

本文通过实验研究了同时气流和样品宽度对稳定火焰传播行为的共同影响。对火焰高度、预热长度、热通量分布、火焰蔓延率(FSR)和热解长度等火焰蔓延参数进行了测量和综合分析。结果表明,FSR 和热解长度随样品宽度和气流速度的增加而增加。对于较宽的样品,FSR 和热解长度对气流速度的变化更为敏感。火焰高度和预热长度随样品宽度的增加而增加,这是由于燃料燃烧速度的提高和空气夹带的限制。预热区的平均热通量与气流速度和样品宽度无关。在热解区,对流热通量是同时气流条件下的主要传热项。理论分析表明,在稳定扩散阶段,FSR 和热解长度与并流气流速度成正比。此外,FSR 随样品宽度的 1/3 倍而增加,而热解长度则随样品宽度的 2/3 倍而增加。根据热解前沿的能量平衡,可以很好地预测热解长度。
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Effect of the sample width and concurrent airflow velocity on heat and mass transfer behaviors in steady flame spread stage

This paper presents an experimental study on the joint effects of concurrent airflow and sample width on the steady flame spread behaviors. Flame spread parameters, including flame height, preheating length, heat flux distribution, flame spread rate (FSR) and pyrolysis length, were measured and analyzed comprehensively. Results show that the FSR and pyrolysis length increase with sample width and concurrent airflow velocity. For wider samples, FSR and pyrolysis length are more sensitive to the changes in airflow velocity. The flame height and preheating length increase with sample width, due to the enhanced fuel burning rate and limited air entrainment. The average heat flux in preheating zone is independent to the airflow velocity and sample width. In pyrolysis zone, the convective heat flux is the dominant heat transfer term under concurrent airflow. Theoretical analysis indicates that in steady spread stage, FSR and the pyrolysis length are proportional to the concurrent airflow velocity. Additionally, FSR increase with the 1/3rd power of sample width, whereas the pyrolysis length increases with the 2/3rd power of sample width. Pyrolysis length can be well predicted based on the energy balance at the pyrolysis front.

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来源期刊
CiteScore
11.00
自引率
10.00%
发文量
648
审稿时长
32 days
期刊介绍: International Communications in Heat and Mass Transfer serves as a world forum for the rapid dissemination of new ideas, new measurement techniques, preliminary findings of ongoing investigations, discussions, and criticisms in the field of heat and mass transfer. Two types of manuscript will be considered for publication: communications (short reports of new work or discussions of work which has already been published) and summaries (abstracts of reports, theses or manuscripts which are too long for publication in full). Together with its companion publication, International Journal of Heat and Mass Transfer, with which it shares the same Board of Editors, this journal is read by research workers and engineers throughout the world.
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