Enhanced steel machining performance using texture-controlled CVD alpha-alumina coatings: Fundamental degradation mechanisms

IF 14 1区 工程技术 Q1 ENGINEERING, MANUFACTURING
S. Shoja , O. Bäcke , A. Fazi , S. Norgren , H.-O. Andrén , M. Halvarsson
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引用次数: 0

Abstract

Cemented carbide inserts coated with CVD α-alumina, particularly those exhibiting a (0001) texture, have proven highly effective in steel turning. Despite the established superior performance of (0001) textured alumina coatings, the underlying reasons remain unclear. This study explores the influence of the crystallographic texture of alumina on wear mechanisms in various chip-tool contact zones on the insert rake face. The objective is to establish a fundamental understanding of the active degradation mechanisms and machining performance by relating coating texture to the orientation and deformation of individual Al2O3 grains. Two multilayered coatings, Al2O3 on Ti(C,N), featuring (0001)- and (1120)-textured CVD α-alumina, were assessed in dry turning of a bearing steel. The wear rate of the (1120) coating was double that of the (0001) coating. Worn coatings exhibit nano-terrace formation at the insert edge, likely due to chemical etching. In the sticking zone, plastic deformation leads to larger facets for grains oriented with the chip flow direction, while rounded surfaces result if this condition is not met. In the transition zone, both (0001) and (1120) textured coatings undergo increased plastic deformation accompanied by sub-surface dislocations. (0001) texture deforms more by basal slip creating a wavy coating pattern with steps present at larger misalignments of the lattice planes in neighboring grains while (1120) texture deforms by several slip systems creating elongated ridges and ruptured-like areas resulting in rougher surface. This difference in surface morphology is then inherited by the abrasion of submicron coating fragments embedded in the chip (more in (1120) texture) in the sliding zone resulting in an even rougher surface. Chemical reaction with the hot chip may also contribute to wear acting as an additional mechanism. This fundamental understanding contributes to the potential enhancement of steel machining using texture-controlled CVD alumina coatings, ultimately improving coated cutting tool performance.

Abstract Image

利用纹理控制 CVD α-氧化铝涂层提高钢材加工性能:基本降解机制
事实证明,涂有 CVD α 氧化铝涂层的硬质合金刀片,尤其是具有 (0001) 纹理的刀片,在车削钢材时非常有效。尽管(0001)纹理氧化铝涂层的性能优越,但其根本原因仍不清楚。本研究探讨了氧化铝结晶纹理对刀片前刀面各切屑-刀具接触区磨损机制的影响。目的是通过将涂层纹理与单个氧化铝晶粒的取向和变形联系起来,从根本上了解活性降解机制和加工性能。在轴承钢的干车削过程中,对两种多层涂层(钛(C,N)上的氧化铝涂层、具有 (0001) 纹理和纹理的 CVD α 氧化铝涂层)进行了评估。涂层的磨损率是 (0001) 涂层的两倍。磨损的涂层在刀片边缘形成纳米痕迹,这可能是由于化学蚀刻造成的。在粘着区,塑性变形会导致与切屑流动方向一致的晶粒形成较大的切面,而如果不满足这一条件,则会形成圆形表面。在过渡区,(0001) 和纹理涂层的塑性变形都会增加,并伴有次表面位错。(0001)纹理更多地通过基底滑移产生变形,形成波浪形涂层图案,在相邻晶粒晶格平面错位较大的地方出现台阶,而纹理则通过多个滑移系统产生变形,形成拉长的脊和类似破裂的区域,导致表面更粗糙。这种表面形态上的差异又会因嵌入滑动区芯片中的亚微米涂层碎片(纹理更多)的磨损而继承下来,导致表面更加粗糙。与热芯片的化学反应也可能是造成磨损的另一种机制。这一基本认识有助于提高使用纹理控制 CVD 氧化铝涂层进行钢材加工的潜力,最终改善涂层切削工具的性能。
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来源期刊
CiteScore
25.70
自引率
10.00%
发文量
66
审稿时长
18 days
期刊介绍: The International Journal of Machine Tools and Manufacture is dedicated to advancing scientific comprehension of the fundamental mechanics involved in processes and machines utilized in the manufacturing of engineering components. While the primary focus is on metals, the journal also explores applications in composites, ceramics, and other structural or functional materials. The coverage includes a diverse range of topics: - Essential mechanics of processes involving material removal, accretion, and deformation, encompassing solid, semi-solid, or particulate forms. - Significant scientific advancements in existing or new processes and machines. - In-depth characterization of workpiece materials (structure/surfaces) through advanced techniques (e.g., SEM, EDS, TEM, EBSD, AES, Raman spectroscopy) to unveil new phenomenological aspects governing manufacturing processes. - Tool design, utilization, and comprehensive studies of failure mechanisms. - Innovative concepts of machine tools, fixtures, and tool holders supported by modeling and demonstrations relevant to manufacturing processes within the journal's scope. - Novel scientific contributions exploring interactions between the machine tool, control system, software design, and processes. - Studies elucidating specific mechanisms governing niche processes (e.g., ultra-high precision, nano/atomic level manufacturing with either mechanical or non-mechanical "tools"). - Innovative approaches, underpinned by thorough scientific analysis, addressing emerging or breakthrough processes (e.g., bio-inspired manufacturing) and/or applications (e.g., ultra-high precision optics).
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