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Fast gas chromatography-mass spectrometry method for the detection of gas phase composition of polyurethane foam and its role in foam thermal conductivity

机译:快速气相色谱 - 质谱法检测聚氨酯泡沫气相组成及其在泡沫导热系中的作用

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This paper presents an enhanced gas chromatography-mass spectrometry method for the separation of cell gases in polyurethane foam. The novel method was then tested on several polyurethane foams produced at different mixing times, showing successful results. The measurement of gas content in polyurethane foams has been rarely considered in published literature. This parameter, indeed, plays a critical role in the deterioration of polyurethane foam thermal conductivity. This is because of the diffusion of gases which is the main mechanism of foam aging. Hence, an improved gas chromatography-mass spectrometry method was developed to offer simultaneous separation of several types of gas in only one column, using gas chromatography as its main concept. The composition of a sample gas consisting of N-2, O-2, CO2, and C5H10 was accurately calculated by measuring the ratio of each peak area on the chromatograms, with argon being used for sampling. This fast and simple method was found to be useful, on one hand for the accurate determination of C5H10 and CO2 cell gases used as blowing agents, and on the other hand for N-2 and O-2 air gases that diffuse rapidly from the surrounding environment into foam cells. The effect of mixing time on foam kinetics, cellular structure, foam thermal conductivity, and the overall thermal conductivity of cell gas mixture was also investigated. By complex analysis of foam density, the presence of open cells, cell size, and thermal conductivity of cell gas mixture, the lowest measured value of foam thermal conductivity was explained. The major goal of these experiments was to show the importance of foam cell gas analysis, together with foam structure, which is uniquely done to contribute to the understanding of polyurethane foam thermal conductivity. The thermal conductivity of cell gas mixture is considered as an example of the potential applications of this novel gas chromatography-mass spectrometry method.
机译:本文介绍了一种增强的气相色谱 - 质谱法,用于在聚氨酯泡沫中分离细胞气体。然后在不同混合时间产生的几种聚氨酯泡沫上测试新方法,显示成功的结果。在公开的文献中很少考虑聚氨酯泡沫中的气体含量的测量。实际上,该参数在聚氨酯泡沫导热率的劣化中起着关键作用。这是因为气体的扩散,这是泡沫老化的主要机理。因此,利用气相色谱作为其主要概念,开发了一种改进的气相色谱 - 质谱法,以便在一列中同时分离几种柱中的几种气体。通过测量色谱图上的每个峰面积的比例,用氩气用于取样来精确计算由N-2,O-2,CO 2和C5H10组成的样品气体的组成精确地计算。一方面发现这种快速简单的方法是有用的,用于准确测定用作发泡剂的C5H10和CO2细胞气体,另一方面,对于从周围迅速扩散的N-2和O-2气体的空气进入泡沫细胞的环境。还研究了混合时间对泡沫动力学,细胞结构,泡沫导热率和细胞气体混合物总体导热率的影响。通过复杂分析泡沫密度,解释了细胞,细胞尺寸和电池气体混合物的导热率的存在,解释了泡沫导热率的最低测量值。这些实验的主要目的是展示泡沫细胞气体分析的重要性,以及泡沫结构,这是唯一的完成,以有助于了解聚氨酯泡沫导热率。细胞气体混合物的导热率被认为是这种新型气相色谱 - 质谱法的潜在应用的实例。

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