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Prediction of Lower Flammability Limits for Binary Hydrocarbon Gases by Quantitative Structure—Property Relationship Approach

机译:定量结构-性质关系法预测二元烃气的可燃性下限

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摘要

The lower flammability limit (LFL) is one of the most important parameters for evaluating the fire and explosion hazards of flammable gases or vapors. This study proposed quantitative structure−property relationship (QSPR) models to predict the LFL of binary hydrocarbon gases from their molecular structures. Twelve different mixing rules were employed to derive mixture descriptors for describing the structures characteristics of a series of 181 binary hydrocarbon mixtures. Genetic algorithm (GA)-based multiple linear regression (MLR) was used to select the most statistically effective mixture descriptors on the LFL of binary hydrocarbon gases. A total of 12 multilinear models were obtained based on the different mathematical formulas. The best model, issued from the norm of the molar contribution formula, was achieved as a six-parameter model. The best model was then rigorously validated using multiple strategies and further extensively compared to the previously published model. The results demonstrated the robustness, validity, and satisfactory predictivity of the proposed model. The applicability domain (AD) of the model was defined as well. The proposed best model would be expected to present an alternative to predict the LFL values of existing or new binary hydrocarbon gases, and provide some guidance for prioritizing the design of safer blended gases with desired properties.
机译:燃烧下限(LFL)是评估可燃气体或蒸气着火和爆炸危险的最重要参数之一。这项研究提出了定量结构-性质关系(QSPR)模型,以从其分子结构预测二元烃气体的LFL。采用了十二种不同的混合规则来得出混合物描述符,以描述一系列181种二元烃混合物的结构特征。基于遗传算法(GA)的多元线性回归(MLR)用于选择二元烃气LFL上统计上最有效的混合物描述符。根据不同的数学公式,总共获得了12个多线性模型。由摩尔贡献公式的范数得出的最佳模型是六参数模型。然后,使用多种策略对最佳模型进行了严格验证,并与先前发布的模型进行了进一步的广泛比较。结果证明了该模型的鲁棒性,有效性和令人满意的可预测性。还定义了模型的适用范围(AD)。预期所提出的最佳模型将为预测现有或新的二元碳氢化合物气体的LFL值提供替代方法,并为优先设计具有所需特性的安全混合气体提供一些指导。

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