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Enhancement of extraction efficiency and reduction of boundary layer effects in pulse introduction membrane extraction

机译:脉冲导入膜萃取中萃取效率的提高和边界层效应的减少

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Membrane separation has emerged as an attractive alternative for interfacing an extraction step directly to a gas chromatograph or to a mass spectrometer. In pulse introduction (or now injection type) membrane extraction, a sample pulse is introduced onto an eluent stream that transports it onto the membrane. Since a fixed sample volume is injected, the detector response is directly proportional to the extraction efficiency. This in turn depends on membrane module design, flow conditions, etc. Also, when water contacts a membrane, a static boundary layer is formed at the membrane surface that serves as an additional diffusional barrier to the permeation process. Consequently, permeation slows down, which lowers the speed of analysis, In this paper, methods of increasing the extraction efficiency and decreasing boundary layer effects are presented. The goal is to have higher sensitivity at a shorter analysis time. A stream of nitrogen is introduced into the membrane after sample elution to eliminate the aqueous boundary layer. This technique is found to be effective not only for faster analysis, but also for increasing extraction efficiency. [References: 19]
机译:膜分离已成为将萃取步骤直接连接到气相色谱仪或质谱仪的一种有吸引力的选择。在脉冲引入(或现在的注入式)膜萃取中,将样品脉冲引入洗脱液流中,然后将其传输到膜上。由于进样量是固定的,因此检测器的响应与提取效率成正比。这又取决于膜组件的设计,流动条件等。而且,当水接触膜时,在膜表面上会形成一个静态边界层,该边界层是渗透过程的附加扩散屏障。因此,渗透速度变慢,降低了分析的速度。本文提出了提高萃取效率和降低边界层效应的方法。目的是在较短的分析时间内获得更高的灵敏度。样品洗脱后,将氮气流引入膜中,以消除水界面层。发现该技术不仅对更快的分析有效,而且对提高提取效率也有效。 [参考:19]

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