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Characterization of microfibril development on PTFE surface during hot imprinting process and its application for oil-water separation

机译:热压印过程中PTFE表面微纤维发育的特征及其对油水分离的应用

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摘要

The importance of oil-water separator has increased due to environmental pollution caused by marine accidents. Many studies related to fabrication method of superhydrophobic surface have been conducted because those functional surfaces are an important component used in oil and water separators. However, processes that can be applied to large area and mass production still exist as limitations. In this paper, superhydrophobic surfaces were fabricated on polytetrafluoroethylene (PTFE) surface by hot imprinting. To impart rough surface morphology to PTFE surface, hot imprinting process using an electrical discharge textured (EDT) mold was conducted. It was found that undercut of a discharge crater on the EDT surface induced tensile deformation of PTFE surface during the hot imprinting process resulting in microfibril development. As a result, PTFE surface had rough morphology consisting of replicated EDT surface and microfibril network. Imprinted PTFE sheets showed high water contact angles about 154.3 degrees with low contact angle hysteresis about 1.4 degrees. Additionally, the effects of process temperature and roughness of the EDT mold on microfibril formation were investigated. It was found that microfibril formation is activated when the process temperature reaches glass transition temperature (115 degrees C) of PTFE. The PTFE sheets for oil-water separation were prepared by hot imprinting and followed by additional drilling process. The optimal hole diameter with respect to efficiency of oil-water separation was determined through experiments and separation of oil and water was effectively conducted.
机译:由于海洋事故引起的环境污染,油水分离器的重要性增加。已经进行了与制造超疏水表面的制造方法的研究已经进行,因为这些功能表面是油和水分离器中使用的重要组成部分。然而,可以应用于大面积和大规模生产的过程仍然存在于限制。在本文中,通过热压印在聚四氟乙烯(PTFE)表面上制造超疏水表面。为了赋予PTFE表面的粗糙表面形态,进行了使用放电纹理(EDT)模具的热压印过程。发现在热压印过程中底切对EDT表面诱导的PTFE表面的拉伸变形,导致微纤维发育。结果,PTFE表面具有由复制的EDT表面和微纤维网络组成的粗糙形态。被印迹的PTFE纸张显示出高水平的角度约为154.3度,具有低接触角滞后约1.4度。另外,研究了EDT模具对微纤维形成的工艺温度和粗糙度的影响。发现当过程温度达到PTFE的玻璃化转变温度(115℃)时,激活微纤维形成。通过热压印制备用于油水分离的PTFE板材,然后进行额外的钻井过程。通过实验确定相对于油水分离效率的最佳孔直径,并有效地进行油和水的分离。

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