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Fabrication of durable superhydrophobic surfaces using PDMS and beeswax for drag reduction of internal turbulent flow

机译:使用PDMS和Beeswax制备耐用的超疏水表面,减少内部湍流

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Nowadays, one of the biggest concerns in the world is increasing the CO2 emissions and global warming due to the over-consumption of fossil fuels. In addition, under the intense market competition, the demand for more efficient systems with higher performance and lower energy consumption has escalated. Since the drag force contributes to a considerable percentage of the energy loss and reducing the performance, a large number of studies have been conducted to improve the surface characteristics and, subsequently, declining the drag force. Making the surface superhydrophobic is one of the most effective ways for this purpose. In this work, two different superhydrophobic surfaces using SiO2 nanoparticles modified by PDMS and beeswax were prepared, which were named PS and BWS, respectively. The results indicate that the coated substrates display excellent water repellency with contact angles of 154.6 degrees and 153.3 degrees for PS and BWS coatings, respectively. Also, the drag reduction tests reveal that the obtained surfaces can result in up to 24% reduction in drag force for internal turbulent flow at Re = 20,000. Furthermore, it is shown that the resultant surfaces possess high durability against various destructive conditions such as immersing in distilled water, seawater, acidic and alkaline solutions.
机译:如今,由于化石燃料的过度消耗,世界上最大的疑虑之一正在增加二氧化碳排放和全球变暖。此外,在激烈的市场竞争下,对具有更高性能和更低能耗的更高效系统的需求升级。由于拖曳力有助于相当大的能量损失和降低性能,因此已经进行了大量研究以改善表面特征,随后,拖累拖曳力。制作表面超疏水是此目的最有效的方法之一。在这项工作中,制备了使用PDMS和Beeswax改性的SiO2纳米颗粒的两种不同的超疏水表面,分别被命名为PS和BWS。结果表明,涂​​覆的基材分别显示出具有154.6度的接触角和353.3度的PS和BWS涂层的优异防水性。此外,减阻试验表明,所获得的表面可导致RE = 20,000的内部湍流的阻力减少至多24%。此外,示出所得到的表面对各种破坏性条件具有高耐久性,例如浸入蒸馏水,海水,酸性和碱性溶液中。

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