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PVD Coating of Mg-AZ31 by Thin Layer of Al and Al-Si

机译:Al和Al-Si薄层的Mg-AZ31的PVD涂层

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摘要

Although magnesium alloys have the advantage of high specific strength, they have poor atmospheric corrosion resistance. An important method of improving the corrosion resistance is by applying a coating layer. In this work, the physical vapor deposition (PVD) technique is used for coating a magnesium (Mg) AZ31 sheet substrate with a thin layer of high purity aluminum (Al) and Al-12.6% Si. Aluminum is expected to be suitable as a coating layer on Mg sheets, due to its corrosion resistance and its formability. Before coating, the substrate was subjected to several consecutive surface preparations, including sand-blasting, mechanical grinding, mirror-like polishing, ultrasonic etching, and finally ion etching by magnetron sputtering (MS). PVD coating was conducted using a PVD machine with max electron beam power and voltage of 100 kW and 40 kV, respectively. This was either with or without plasma activation, and with variable substrate speeds ranging between 10 and 70 mm/s. During MS ion etching and coating, the substrate temperature increased. The substrate temperature increased with the application of plasma activation and with lower substrate speeds. The coating-layer thickness varied inversely with substrate speed. A thinner coat with finer morphology was obtained in the case of plasma activation. Other results included coating layer characteristics, diffusion between the AZ 31 substrate and the Al coating layer, adhesion of the coating layer to the substrate, and corrosion resistance by a humidity test.
机译:尽管镁合金具有高比强度的优点,但是它们具有差的耐大气腐蚀性。改善耐腐蚀性的重要方法是涂覆涂层。在这项工作中,物理气相沉积(PVD)技术用于用高纯度铝(Al)和Al-12.6%Si薄层涂覆镁(Mg)AZ31薄板基板。铝由于其耐腐蚀性和可成形性而有望用作镁片的涂层。在涂覆之前,对基材进行几次连续的表面处理,包括喷砂,机械研磨,镜面抛光,超声蚀刻,最后通过磁控溅射(MS)进行离子蚀刻。使用最大电子束功率和电压分别为100 kW和40 kV的PVD机器进行PVD涂层。这是在有或没有等离子体激活的情况下进行的,并且基板速度在10到70 mm / s之间变化。在MS离子蚀刻和涂覆过程中,基板温度升高。随着等离子体活化的应用和较低的基板速度,基板温度升高。涂层厚度与基材速度成反比。在等离子体活化的情况下,获得了具有较细形态的较薄涂层。其他结果包括涂层特性,AZ 31基材和Al涂层之间的扩散,涂层对基材的粘附性以及通过湿度测试的耐腐蚀性。

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