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Multiscaled analysis of wear mechanism of titanium and carbon basis multilayer coatings

机译:钛和碳基多层涂层磨损机理的多尺度分析

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Purpose: The wear mechanisms of Ti/TiN and (TiN/Ti/a-C:H) multilayer coatings were investigated. Coatings were deposited using the hybrid Pulsed Laser Deposition technique (PLD) on austenitic stainless steel. The microstructure investigations were performed with the TECNAI G2 SuperTWIN FEG (200kV) transmission electron microscope. Ceramic TiN and a-C:H layers showed brittle cracking, while very thin metallic Ti layers were deformed plastically. The presence of metallic phase led to the cracking resistance and increased an energetic cost of propagating cracks.Design/methodology/approach: Ti/TiN and (TiN/Ti/a-C:H) multilayer coatings were deposited on austenitic stainless steel (316L) using the hybrid PLD (Pulsed Laser Deposition + magnetron sputtering) equipped with high purity titanium target (99.9% at. Ti) and carbon target. Microstructure was analyzed on thin foils prepared using the FEI Dual BeamTM FIB system equipped with an Omniprobe lift-out technique. Foils were cut perpendicularly both to coating surface and wear path. The microstructure observations were performed using TECNAI F20 SuperTWIN (200kV) transmission electron microscope.Findings: The wear mechanism of the multilayer coating was realized through brittle cracking of ceramic layers and plastic deformation of metallic ones.Research limitations/implications: Optimization of layer thickness and modulation; application of advanced deposition and diagnostic methods.Practical implications: Switching from mono- to multi-layered coatings allows changing the mechanism of wear from through-coating cracking leading to catastrophic delamination to more gradual layer-by-layer coating removal. The farther wear decrease should be sought at lower multilayer period.Originality/value: Design and fabrication of Ti/TiN and (TiN/Ti/a-C:H) multilayer coatings revealing an improved behavior in service systems subjected to wearing. Multiscale microstructure diagnostics of multilayer coatings
机译:目的:研究了Ti / TiN和(TiN / Ti / a-C:H)多层涂层的磨损机理。使用混合脉冲激光沉积技术(PLD)在奥氏体不锈钢上沉积涂层。用TECNAI G2 SuperTWIN FEG(200kV)透射电子显微镜进行显微结构研究。陶瓷TiN和a-C:H层显示脆性开裂,而非常薄的金属Ti层发生塑性变形。金属相的存在导致了抗裂性并增加了裂纹扩展的能源成本。设计/方法/方法:Ti / TiN和(TiN / Ti / aC:H)多层涂层通过以下方法沉积在奥氏体不锈钢(316L)上:配备高纯度钛靶(Ti含量为99.9%)和碳靶的混合PLD(脉冲激光沉积+磁控溅射)。使用配备了Omniprobe剥离技术的FEI Dual BeamTM FIB系统在薄箔上分析了微结构。垂直于涂层表面和磨损路径切割箔。使用TECNAI F20 SuperTWIN(200kV)透射电子显微镜进行显微观察。发现:多层涂层的磨损机理是通过陶瓷层的脆性开裂和金属层的塑性变形来实现的。研究局限/意义:优化层厚度和厚度调制;实际应用:从单层涂层过渡到多层涂层可以改变磨损机理,从贯穿涂层的开裂到导致严重的分层,再到逐步的逐层去除涂层。应当在较低的多层周期内寻求进一步的磨损降低。来源/价值:Ti / TiN和(TiN / Ti / a-C:H)多层涂层的设计和制造显示出在磨损的服务系统中具有改善的性能。多层涂层的多尺度微结构诊断

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