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Improved corrosion protection of aluminum alloys by low-temperature plasma interface engineering.

机译:通过低温等离子体界面工程改善了铝合金的腐蚀防护。

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The System Approach Interface Engineering (SAIE) concept was employed to develop corrosion protection processes for aluminum (Al) alloys by application of a low temperature plasma interface engineering technique with a cathodic electrocoat (E-coat) as the primary layer coating. The SAIE concept emphasizes that the corrosion protection property of the coated system for Al alloys depends on the total system rather than any good corrosion protection component of the system.; The cathodic E-coated SAIE plasma pretreatments on Alclad 2024-T3, 2024-T3 bare and 7075-T6 bare alloys showed excellent corrosion resistance property when tested by SO2 and Prohesion salt spray tests. These systems out performed the conventional conversion coated controls, chromate conversion coated then Deft primer coated (CC Deft) and chromate conversion coated then cathodic E-coated (CC E-coat) in both the corrosion testes. The corrosion protection by SAIE systems depends on three major factors; (1) improved barrier characteristics of E-coat, (2) water insensitive adhesion of E-coat to plasma polymers deposited in a DC discharge and (3) creating a stable surface oxide layer by plasma treatment or chemical cleaning.; Different chemical pretreatments were employed to create a stable barrier type aluminum oxide layer on the surfaces of the substrates prior to plasma polymer deposition. The surface analysis showed that these pretreatments depend on the type of alloy and surface chemistry. As received surfaces with acetone wipe and plasma cleaning of the organic contaminants was found to be best for Alclad 2024-T3 alloy. Chemical alkaline cleaning for 2024-T3 bare and alkaline cleaning followed by deoxidization for 7075-T6 bare alloy were necessary.; The adhesion of the cathodic E-coat was improved by surface energy matching techniques by deposition of various plasma polymer films of trimethylsilane (TMS) and mixtures of TMS with O2, H2, and N2. The adhesion performance evaluated by the N-methylpyrrolidinone (NMP) test method showed that the low temperature plasma interface engineering technique could be used to create adhesion performance range for the organic paint on the metal surfaces from easily removable to coatings for life.; The barrier properties of the cathodic E-coat were improved by the plasma polymer deposition on which E-coat was applied.
机译:系统方法界面工程(SAIE)的概念被用于通过应用低温等离子界面工程技术开发铝(Al)合金的腐蚀防护工艺,该技术以阴极电涂层(E-coat)为主要涂层。 SAIE的概念强调,铝合金涂层系统的防腐蚀性能取决于整个系统,而不是系统的任何良好的防腐蚀成分。当通过SO2和Prohesion盐雾测试进行测试时,对Alclad 2024-T3、2024-T3裸合金和7075-T6裸合金进行的阴极E涂层SAIE等离子体预处理显示出优异的耐腐蚀性。这些系统在两个腐蚀试验中都执行了常规的转化涂层对照,铬酸盐转化涂层然后Deft底漆涂层(CC Deft)和铬酸盐转化涂层然后阴极E涂层(CC E涂层)。 SAIE系统的腐蚀防护取决于三个主要因素。 (1)改善了E-涂层的阻挡特性,(2)E-涂层对DC放电中沉积的等离子体聚合物的水不敏感性粘合,和(3)通过等离子体处理或化学清洁形成稳定的表面氧化物层。在等离子体聚合物沉积之前,采用不同的化学预处理在基底表面上形成稳定的阻挡层型氧化铝层。表面分析表明,这些预处理取决于合金的类型和表面化学性质。发现用丙酮擦拭和等离子清洁有机污染物的接收表面最适合Alclad 2024-T3合金。 2024-T3裸露的化学碱清洗和碱清洗,然后对7075-T6裸露的合金进行脱氧是必要的。通过表面能匹配技术,通过沉积三甲基硅烷(TMS)的各种等离子体聚合物膜以及TMS与O2,H2和N2的混合物,可提高阴极E涂层的附着力。通过N-甲基吡咯烷酮(NMP)测试方法评估的附着力性能表明,低温等离子体界面工程技术可用于为有机涂料在金属表面上的附着力性能范围(从易于去除到终身使用)建立范围。通过在其上施加电子涂层的等离子体聚合物沉积,可以改善阴极电子涂层的阻隔性能。

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