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Investigation into the Formation and Adhesion of Cyclopentane Hydrates on Mechanically Robust Vapor-Deposited Polymeric Coatings

机译:机械强力气相沉积聚合物涂层中环戊烷水合物的形成和粘附性研究

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摘要

Blockage of pipelines by formation and accumulation of clathrate hydrates of natural gases (also called gas hydrates) can compromise project safety and economics in oil and gas operations, particularly at high pressures and low temperatures such as those found in subsea or arctic environments. Cyclopentane (CyC5) hydrate has attracted interest as a model system for studying natural gas hydrates, because CyC5, like typical natural gas hydrate formers, is almost fully immiscible in water; and thus CyC5 hydrate formation is governed not only by thermodynamic phase considerations but also kinetic factors such as the hydrocarbon/water interfacial area, as well as mass and heat transfer constraints, as for natural gas hydrates. We present a macroscale investigation of the formation and adhesion strength of CyC5 hydrate deposits on bilayer polymer coatings with a range of wettabilities. The polymeric bilayer coatings are developed using initiated chemical vapor deposition (iCVD) of a mechanically robust and densely cross-linked polymeric base layer (polydivinylbenzene or pDVB) that is capped with a covalently attached thin hydrate-phobic fluorine-rich top layer (poly(perfluorodecyl acrylate) or pPFDA). The CyC5 hydrates are formed from CyC5-in-water emulsions, and differential scanning calorimetry (DSC) is used to confirm the thermal dissociation properties of the solid hydrate deposits. We also investigate the adhesion of the CyC5 hydrate deposits on bare and bilayer polymer-coated silicon and steel substrates. Goniometric measurements with drops of CyC5-in-water emulsions on the coated steel substrates exhibit advancing contact angles of 148.3 ± 4.5° and receding contact angles of 142.5 ± 9.8°, indicating the strongly emulsion-repelling nature of the iCVD coatings. The adhesion strength of the CyC5 hydrate deposits is reduced from 220 ± 45 kPa on rough steel substrates to 20 ± 17 kPa on the polymer-coated steel substrates. The measured strength of CyC5 hydrate adhesion is found to correlate very well with the work of adhesion between the emulsion droplets used to form the CyC5 hydrate and the underlying substrates.
机译:天然气的笼形水合物(也称为天然气水合物)的形成和积累会堵塞管道,这会危及石油和天然气运营中的项目安全性和经济性,特别是在高温和低温(例如在海底或北极环境中发现的高温和低温)下。作为研究天然气水合物的模型系统,环戊烷(CyC5)水合物引起了人们的兴趣,因为CyC5与典型的天然气水合物形成剂一样,几乎与水完全不混溶。因此,与天然气水合物一样,CyC5水合物的形成不仅受热力学相因素的影响,还受动力学因素(例如烃/水界面面积以及质量和传热限制)的影响。我们提出了具有一定润湿性的双层聚合物涂层上CyC5水合物沉积物的形成和粘附强度的宏观研究。聚合物双层涂层是使用机械坚固且紧密交联的聚合物基础层(聚二乙烯基苯或pDVB)的引发化学气相沉积(iCVD)进行开发的,该基础层被共价键合的薄水合疏水性富氟顶层(聚(丙烯酸全氟癸酯)或pPFDA)。 CyC5水合物由水中的CyC5乳液形成,差示扫描量热法(DSC)用于确认固体水合物沉积物的热分解特性。我们还研究了CyC5水合物在裸露和双层聚合物涂覆的硅和钢基底上的附着力。在涂层的钢基材上滴水状CyC5乳状液进行的角速度测量显示出前进的接触角为148.3±4.5°,后退的接触角为142.5±9.8°,表明iCVD涂层具有很强的乳化排斥性。 CyC5水合物沉积物的附着强度从粗糙的钢基材上的220±45 kPa降低到涂有聚合物的钢基材上的20±17 kPa。发现CyC5水合物粘附力的测量强度与用于形成CyC5水合物的乳剂液滴与下面的底物之间的粘附功非常相关。

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