木材无焰燃烧:炭化和放热特性

E. Kruglov, R. Aseeva
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摘要

介绍。本文介绍了木材热分解的两个阶段的研究结果。热分解的第一阶段是火焰燃烧,随后由于木材表面形成炭层而过渡到无焰燃烧。无焰过程不仅伴随着非均相燃烧,而且至少伴随着三个反应:热解、木材的热氧化破坏和生成焦炭的氧化。目标和目的。目的是确定在外部辐射热通量影响下对针叶树和落叶类木材样品炭化和放热的标准,使用标准的流量量热计,重点是无焰燃烧。方法。使用Atlas(美国)生产的标准OSU流过量热计来确定密度分别为20、35和52 kW/m2的外部辐射热通量影响下的热释放特性。用c -5000炸弹量热计测定了含有炭层的样品完全燃烧时释放的热量下限。共同作者分析了炭化过程和热量释放的特征,使用了10和25厘米厚的木材样品。在使用俄勒冈州立大学量热计进行的测试结果之后,木材样品在密度为20、35和52 kW/m2的外部辐射热通量的影响下暴露于燃烧中。对有焰燃烧和无焰燃烧两种情况下的炭化速度和焦炭层厚度进行了评价;燃烧的有效放热和燃烧的完整系数,以及试样的收缩率。共同作者证明,从火焰燃烧到非均相燃烧的转变发生在木材样品的准中性燃烧完成后,这对应于热释放速度曲线的最终点,标志着从热厚材料的行为转变为热薄材料的行为。所获得的实验数据可以预测不同木材的物理和热工程性质的变化,以及在火焰和无焰燃烧过程中释放热量的特性,考虑到在不同热流的影响下在其表面形成的炭层。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Flameless combustion of wood: charring and heat release characteristics
Introduction. The article presents the results of a research on the two stages of thermal decomposition of timber. The first stage of thermal decomposition is flame combustion, which is followed by a transition to flameless combustion due to the formation of a char layer on the surface of wood. The flameless process is accompanied not only by heterogeneous combustion, but, at least, three reactions: pyrolysis, thermal oxidative destruction of wood and oxidation of resulting coke.Goals and objectives. The goal is to identify the criteria of charring and heat release under the influence of an external radiative heat flux on samples of coniferous and deciduous species of wood using a standard flowthrough calorimeter with a focus on flameless combustion. Methods. A standard OSU flow-through calorimeter, produced by Atlas (USA), was used to identify heat release characteristics under the influence of external radiative heat fluxes that had the density of 20, 35 and 52 kW/m2. The lower limit of heat, released in the complete combustion of samples, that had a char layer, was identified using bomb calorimeter C-5000.Results. The co-authors analyzed the charring process and characteristics of heat release using samples of wood species that were 10 and 25 cm thick. Wood samples were exposed to combustion under the influence of an external radiative heat flux that had the density of 20, 35 and 52 kW/m2 subsequent to the results of tests, conducted using the OSU calorimeter. The co-authors evaluated the charring velocity and the coke layer thickness for the cases of flame and flameless combustion; efficient combustion heat release and the combustion completeness coefficient, as well as the sample shrinkage. The co-authors demonstrated that a transition from flame combustion to heterogeneous combustion occurs upon completion of the quasi-neutral burning of wood samples, which corresponds to the final point of heat release velocity curves and marks a transition from the behaviour of a thermally thick material to that of a thermally thin material.Conclusion. The obtained experimental data allow to forecast a change in the physical and heat engineering properties, characteristics of heat release in the processes of flame and flameless combustion of different wood species with account taken of the char layer formed on its surface under the influence of various heat fluxes.
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