AZ31B镁合金表面聚二甲基硅氧烷疏水改性双工微弧氧化/类金刚石碳涂层的性能

ty10086 提交于 周三, 08/25/2021 - 15:36
文章英文标题
Properties of polydimethylsiloxane hydrophobic modified duplex microarc oxidation/diamond-like carbon coatings on AZ31B Mg alloy
正文
利用PDMS对AZ31B镁合金表面的MAO / DLC复合涂层进行改性,开发了一种可靠、高性能的涂层工艺。首先,采用MAO和非平衡磁控溅射相结合的工艺制备了MAO / DLC双层膜。随后,采用PDMS溶液对MAO / DLC涂层进行了常规浸涂改性。通过SEM、CA、Raman光谱、摩擦磨损性能、极化曲线和NSS试验,评价了涂层试样的表面特性、结合强度、硬度、摩擦学性能和耐腐蚀性能。PDMS改性使MAO / DLC涂层的H IT从15.96降至8.34   GPa;这是由于PDMS的渗透作用,使其具有良好的流变性能,在MAO / DLC涂层上形成了粘弹性的Si基有机聚合物层。但PDMS改性的MAO / DLC涂层更致密、疏水,与MAO-和MAO / DLC涂层样品相比具有更高的结合强度。而且PDMS改性降低了MAO / DLC复合涂层的COF和磨损率。这表明PDMS改善了摩擦学性能,其原因是由于PDMS的Si-O网络转移了氧化硅,以及滑动过程中DLC层的低石墨化。此外,PDMS改性10   min的MAO / DLC涂层试样的腐蚀电流密度比MAO / DLC涂层试样降低了2个数量级,比裸基体降低了5个数量级。NSS试验证明PDMS层减缓了镁合金在长期服役下的腐蚀,增强了腐蚀防护效率。结果归因于MAO / DLC膜具有较高的结合强度和润滑剂,以及PDMS的封闭性和疏水性的双重作用。因此,PDMS改性有望用于制备需要腐蚀和耐磨损的镁合金防护材料。
文章内容(英文)
A reliable, high-performance coating procedure was developed using PDMS to modify a duplex MAO/DLC coating on an AZ31B Mg alloy. First, the duplex MAO/DLC coating was fabricated via a combined MAO and unbalanced magnetron sputter process. Subsequently, a PDMS solution was used to modify the MAO/DLC coating via a conventional dip-coating method. The surface characteristics, bond strength, hardness, tribological behaviour, and corrosion resistance of the coated samples were evaluated via SEM, CA, Raman spectroscopy, friction and wear behaviour, polarisation curve, and NSS tests. The PDMS modification reduced the H IT of MAO/DLC coating from 15.96 to 8.34 GPa; this is ascribed to the penetration of PDMS, which has good rheological properties to form a viscoelastic Si-based organic polymer layer on the MAO/DLC coating. However, the PDMS-modified MAO/DLC coating was denser, hydrophobic, and had higher bond strength compared with MAO- and MAO/DLC-coated samples. Moreover, the PDMS modification reduced the COF and wear rate of the duplex MAO/DLC coating. This indicates that the PDMS improved the tribological behaviour owing to the transferred Si oxide that originated from the Si-O network of the PDMS, as well as the low graphitisation of the DLC layer during sliding. Furthermore, the corrosion current density of the MAO/DLC-coated sample modified by PDMS for 10 min decreased by two order of magnitude compared with that of the MAO/DLC-coated sample but by five orders of magnitude compared with that of the bare substrate. The NSS tests proved that the PDMS layer slowed the corrosion of the Mg alloy under long-term service, enhancing the corrosion protection efficiency. The results are attributed to the high bond strength and lubricant MAO/DLC layer, and the dual role of sealing and hydrophobicity of PDMS. Therefore, PDMS modification is promising for the fabrication of protective materials for Mg alloys that require corrosion and wear resistance.
来源出处
Journal|[J]Journal of Magnesium and AlloysVolume 9, Issue 4. 2021. PP 1285-1296
谷歌学术影响力
[db:学术影响力]
DOI
https://doi.org/10.1016/J.JMA.2020.04.009

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