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首页> 外文期刊>International Journal of Machine Tools & Manufacture: Design, research and application >State-of-the-art in surface integrity in machining of nickel-based super alloys
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State-of-the-art in surface integrity in machining of nickel-based super alloys

机译:镍基超级合金加工中的表面完整性的最新技术

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Nickel-based super alloys are gaining more significance, now-a-days, with extensive applications in aerospace, marine, nuclear reactor and chemical industries. Several characteristics including superior mechanical and chemical properties at elevated temperature, high toughness and ductility, high melting point, excellent resistance to corrosion, thermal shocks, thermal fatigue and erosion are primarily responsible for wide domain of application. Nevertheless, machined surface integrity of nickel-based super alloys is a critical aspect which influences functional performance including fatigue life of the component. This review paper presents state-of-the-art on various surface integrity characteristics during machining of nickel-based super alloys. Influence of various cutting parameters, cutting environment, coating, wear and edge geometry of cutting tools on different features of surface integrity has been critically explained. These characteristics encompass surface roughness, defects (surface cavities, metal debris, plucking, smeared material, redeposited material, cracked carbide particles, feed marks, grooves and laps), metallurgical aspects in the form of surface and sub-surface microstructure phase transformation, dynamic recrystallisation and grain refinement and mechanical characteristics such as work hardening and residual stress. Microstructural modification of deformed layer, profile of residual stresses and their influence on fatigue durability have been given significant emphasis. Future research endeavour might focus on development of new grades, advanced processing techniques of the same to ensure their superior stability of microstructure and thermo-mechanical properties along with advanced manufacturing processes like additive manufacturing to achieve highest level of fatigue durability of safety critical components while maintaining acceptable surface integrity and productivity. (C) 2015 Elsevier Ltd. All rights reserved.
机译:如今,镍基超级合金在航空航天,船舶,核反应堆和化学工业中得到了广泛的应用,其重要性日益凸显。包括在高温下具有优异的机械和化学性能,高韧性和延展性,高熔点,优异的耐腐蚀性,热冲击性,热疲劳性和耐蚀性等多种特性是广泛应用的主要原因。然而,镍基超级合金的机械加工表面完整性是影响功能性能(包括部件疲劳寿命)的关键方面。这篇评论文章介绍了镍基超级合金加工过程中各种表面完整性特征的最新技术。关键地解释了各种切削参数,切削环境,涂层,磨损和切削刃的边缘几何形状对表面完整性不同特征的影响。这些特征包括表面粗糙度,缺陷(表面空洞,金属碎屑,拔毛,污损的材料,再沉积的材料,破裂的碳化物颗粒,进给痕迹,沟槽和搭接),表面和亚表面微观结构相变形式的冶金方面,动态再结晶和晶粒细化以及机械特性,例如加工硬化和残余应力。变形层的微观结构改性,残余应力分布及其对疲劳耐久性的影响已得到极大重视。未来的研究工作可能会集中于开发新等级,相同等级的先进加工技术,以确保其优异的微观结构稳定性和热机械性能,以及先进的制造工艺(如增材制造),从而在保持安全性的同时实现最高水平的疲劳耐久性可接受的表面完整性和生产率。 (C)2015 Elsevier Ltd.保留所有权利。

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