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Experimental investigation of confinement effect on phase behavior of hexane, heptane and octane using lab-on-a-chip technology

机译:芯片实验室技术对正己烷,庚烷和辛烷的相行为的限制作用的实验研究

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The study of phase behavior of hydrocarbons inside shale rock has garnered significant attention in contemporary literature. The present work focused on experimental techniques for addressing this challenge. To this end, lab-on-a-chip technology was integrated with high-resolution imaging techniques (inverse confocal microscopy equipment) for investigating the phase behavior of hydrocarbons inside nanoscale capillaries (nanochannels). Experiments were performed to measure the bubble point temperature of pure Hexane, Heptane, and Octane inside nanochannels to study the confinement effect. The novel method of employing a nanofluidic chip enabled the visualization of fluid behavior inside nano scale channels. The method was found to be highly promising for experimental investigation of the phase behavior in nano-scale pores, which has always been one of the biggest research challenges. The experimental results revealed that for nanochannel depth of 50 nm, the confinement effect in the form of wall molecule interactions is almost negligible. Additionally, the Peng Robinson equation of state (PR-EOS) with and without capillary pressure was used for modeling the hydrocarbon phase behavior. Experimental validation of numerical predictions obtained from these thermo-physical models describing the effect of phase behavior for confined fluids were performed in this study. (C) 2016 Elsevier B.V. All rights reserved.
机译:页岩内部碳氢化合物的相行为研究在当代文学中引起了极大的关注。目前的工作集中在应对这一挑战的实验技术上。为此,将芯片实验室技术与高分辨率成像技术(逆共聚焦显微镜设备)集成在一起,以研究纳米级毛细管(纳米通道)中碳氢化合物的相行为。进行实验以测量纯正己烷,庚烷和辛烷在纳米通道内部的起泡点温度,以研究限制作用。采用纳米流体芯片的新颖方法能够可视化纳米级通道内的流体行为。发现该方法对于纳米级孔中相行为的实验研究非常有前途,这一直是最大的研究挑战之一。实验结果表明,对于50 nm的纳米通道深度,壁分子相互作用形式的限制作用几乎可以忽略不计。另外,在有和没有毛细管压力的情况下,彭·鲁宾逊状态方程(PR-EOS)用于模拟烃相行为。在这项研究中,进行了从这些热物理模型获得的数值预测的实验验证,这些数值描述描述了相态对受限流体的影响。 (C)2016 Elsevier B.V.保留所有权利。

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