Effects of Thermal Thickness and Charring Properties of Solid Combustibles on Heat Release and CO Emission Characteristics

Myung-Kyu Lee, S. Park
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Abstract

In this study, a series of ISO 5660-1 cone calorimetry experiments were performed to understand how the heat release rate (HRR) and CO emission are affected by the thermal thickness and charring properties of solid combustibles. To this end, HRRs and CO emissions measured from burning Douglas-fir wood (which produces a charring layer during combustion) and poly methyl methacrylate (PMMA) (which does not produce a charring layer) in the ISO 5660-1 cone calorimetry experiments were compared. Relative to PMMA, Douglas-fir wood produced a lower rate of heat release and CO emission, helping lessen human damage in fires. Results obtained from the ISO 5660-1 cone calorimetry experiments clearly demonstrate that the heat release rate varies depending on the thermal thickness and the presence of charring layer within solid combustibles. Unlike PMMA, the charring layer developed for Douglas-fir wood during combustion further increases the thermal thickness, reducing the amount of thermal decomposition and the heat released from fire. The cone calorimetry experiment results also indicate that increases in charring properties of solid combustibles were directly correlated with reductions in the HRR and increases in the CO emission.
固体可燃物的热厚度和炭化特性对其放热和CO排放特性的影响
本研究采用ISO 5660-1锥体量热法进行了一系列实验,以了解固体可燃物的热厚度和炭化特性对热释放率(HRR)和CO排放的影响。为此,比较了ISO 5660-1锥形量热实验中燃烧道格拉斯杉木(在燃烧过程中产生炭化层)和聚甲基丙烯酸甲酯(PMMA)(不产生炭化层)的hrr和CO排放量。相对于PMMA,道格拉斯冷杉木材产生较低的热量释放率和CO排放,有助于减少火灾中的人为伤害。从ISO 5660-1锥形量热实验中得到的结果清楚地表明,热释放率取决于固体可燃物的热厚度和炭化层的存在。与PMMA不同的是,在燃烧过程中为道格拉斯杉木开发的炭化层进一步增加了热厚度,减少了热分解的量和火灾释放的热量。锥量热实验结果还表明,固体可燃物的炭化性能的提高与HRR的降低和CO排放量的增加直接相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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