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Effect of radiation absorption modes on ignition time of translucent polymers subjected to time-dependent heat flux

机译:辐射吸收模式对经过时间依赖性热通量的半透明聚合物点火时间的影响

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摘要

Majority of previous solid ignition models, including numerical and analytical ones, considered only surface absorption of incident heat flux for simplification. However, the influence of in-depth absorption on pyrolysis and subsequent ignition cannot be ignored for infrared translucent polymers. This work addresses this problem and focuses on time-dependent heat flux to establish an analytical model for ignition behaviors prediction by means of theoretical analysis. Ignition temperature was utilized as the ignition criterion, and both surface and in-depth absorption scenarios were considered. Thermally thick polymethyl methacrylate and polyamide 6 were selected as reference materials to verify the reliability and applicability of the proposed model by comparing the analysis results with experimental data as well as numerical simulations. A method for determining the approximation parameters of the theoretical analysis was presented to derive the relationship between ignition time and the coefficients in heat flux expressions. The results show that the higher surface temperature owing to surface absorption accelerates the pyrolysis rate and results in a shorter ignition time, while in-depth absorption affects the ignition time inversely. The effect of surface heat loss was also evaluated quantitatively through both analytical and numerical models. The uncertainty of the proposed model is mainly caused by the selection of the approximation parameters. Nevertheless, it provides an alternative approach to estimate the ignition time of translucent polymers besides numerical simulation.
机译:以前的大多数先前的固体点火模型,包括数值和分析,仅考虑了入射热通量的表面吸收以简化。然而,对于红外半透明聚合物,不能忽略深入吸收对热解和随后的点火的影响。这项工作解决了这个问题,并专注于时间依赖的热通量,以通过理论分析建立点火行为预测的分析模型。点火温度用作点火准则,并且考虑了表面和深度吸收场景。选择热厚的聚甲基丙烯酸甲酯和聚酰胺6作为参考材料,以验证所提出的模型的可靠性和适用性,通过将分析结果与实验数据以及数值模拟进行比较。提出了一种确定理论分析的近似参数的方法,以导出点火时间与热通量表达中的系数之间的关系。结果表明,由于表面吸收的表面温度越高,热解率加速了热解率并导致较短的点火时间,而深入的吸收反转影响点火时间。也通过分析和数值模型定量评估表面热量损失的影响。所提出的模型的不确定性主要是由近似参数的选择引起的。然而,除了数值模拟之外,它提供了替代方法来估计半透明聚合物的点火时间。

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