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Laser surface texturing to enhance adhesion bond strength of spray coatings - Cold spraying, wire-arc spraying, and atmospheric plasma spraying

机译:激光表面纹理,提高喷涂粘合强度 - 冷喷涂,线弧喷涂和大气等离子喷涂

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The aim of this study is to promote significant bond strength with laser surface texturing tools for different coating deposited by spray processes. Pulsed nanosecond laser has been used to improve the ultimate adhesion strength of thermal spray coating designed for specific applications, and the full potential of this technology must be further explored. This technology proposes several benefits such as free of grit-particle inclusions, limited affected zone and the interface contact quality. The most important improvement is the coating anchoring in the substrate by laser patterned surface. Adhesion bond strength has been improved and evaluated with the contact area. Fracture mechanic analysis has been studied and it showed that the pattern morphology has an impact on crack propagation. A mixed-mode failure has been defined and chosen to explain adhesion strength improvements for the different applications. Laser surface texturing was performed on light metal alloys substrates before cold spraying of light metal alloys powder, wire-arc metallization and atmospheric plasma spraying of thermal barrier coating without bond coat. This study has highlighted laser potential to enhance adhesion bond strength in the dry deposition field. (C) 2017 Elsevier B.V. All rights reserved.
机译:本研究的目的是促进具有激光表面纹理化工具的显着粘合强度,用于喷射过程沉积的不同涂层。脉冲纳秒激光器已被用于提高为特定应用设计的热喷涂涂层的最终粘附强度,并且必须进一步探索该技术的全部潜力。该技术提出了几种益处,例如没有砂砾颗粒夹杂物,受限影响区和界面接触质量。最重要的改进是通过激光图案化表面锚固在基板中的涂层。粘合粘合强度已改善并用接触面积评价。研究了骨折技工分析,并显示了模式形态对裂缝繁殖产生影响。已经定义了混合模式故障并选择用于解释不同应用的粘合强度改进。在轻金属合金基板上进行激光表面纹理,在冷喷涂光喷涂粉末,导线弧金属化和大气等离子喷涂,无粘结涂层。该研究突出了激光电位,以提高干沉积场中的粘附粘合强度。 (c)2017年Elsevier B.V.保留所有权利。

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