Department of Environment & Energy, Sejong University, 98 Goon Ja Dong, Seoul 143-747, South Korea.
J Chromatogr A. 2012 Feb 17;1225:8-16. doi: 10.1016/j.chroma.2011.12.066. Epub 2011 Dec 26.
In this study, the performance of permeation tube (PT) devices for the generation of VOC calibration gas was examined by successively generating BTX gas at five temperatures (30, 50, 70, 80, and 100 °C) and two flow rates (400 and 800 mL min⁻¹). A distinct relationship was observed between temperatures and permeation rates (PR) (or generated BTX concentrations). We examined the reliability of the manufacturer's PR formula when operating at chamber temperatures different from the manufacturer reference temperatures for each PT device. Bias of the actual PR from the theoretical PR values became significant as PT devices were operated at temperatures beyond their optimum operating range (e.g., maximum bias of BTX as 141%, 87.2%, and 85%, respectively). Through a derivation of empirical formula, we were able to predict PR values of the target compounds more accurately as evidenced by significant bias reduction at all temperature points (e.g., maximum bias of BTX as 10.9%, 21.1% and 20.6%, respectively).
在这项研究中,通过在五个温度(30、50、70、80 和 100°C)和两个流速(400 和 800 mL min⁻¹)下连续生成 BTX 气体,检查了渗透管(PT)装置在生成 VOC 校准气体方面的性能。温度和渗透率(PR)(或生成的 BTX 浓度)之间存在明显的关系。我们检查了在与每个 PT 设备制造商参考温度不同的腔室温度下运行时,制造商的 PR 公式的可靠性。当 PT 设备在超出其最佳工作范围的温度下运行时,实际 PR 与理论 PR 值的偏差变得显著(例如,BTX 的最大偏差分别为 141%、87.2%和 85%)。通过推导经验公式,我们能够更准确地预测目标化合物的 PR 值,所有温度点的偏差都显著降低(例如,BTX 的最大偏差分别为 10.9%、21.1%和 20.6%)。