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Effect of PCBN tool grade and cutting type on hard turning of high-chromium white cast iron

机译:PCBN工具等级和切削方式对高铬白口铸铁硬车削的影响

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摘要

The turning of mechanical construction and bearing steels is widely carried out using PCBN and oxide ceramic tools, even when materials have high hardness (40 to 60 HRC), reached after quenching and tempering heat treatment. However, mechanical components submitted to severe abrasive loads show, in addition to matrix hardness, the presence of a high-volume fraction of hard particles in the microstructure. Turning materials with a high content of hard particles in the microstructure will result in high rates of abrasive wear or damage to the cutting edges of the tool. Information regarding the turning of materials characterized by a high-volume fraction of carbides in the microstructure is limited in literature. The objective of this study was to determine the performance of two grades of PCBN tools (high CBN and low CBN content with an added ceramic phase) in the turning of highchromium white cast iron applying continuous and interrupted cutting. Evaluations of tools' life, wear mechanisms at the tool cutting edges, roughness, and microstructure remaining on the turned surface were carried out. The results show that the grades with low CBN content and the addition of a ceramic phase, the tool life was three times longer than that of the grades with high CBN content. The most interesting result obtained concerns the microstructural modifications in a narrow subsurface layer of the turned material. Carbide fragmentation and alignment in the direction of the cutting shear plane were identified, which may potentiate the use of the material.
机译:即使在淬火和回火热处理后达到高硬度(40至60 HRC)的材料下,也广泛使用PCBN和氧化物陶瓷工具对机械结构和轴承钢进行车削。但是,除了基体硬度外,承受严重磨蚀载荷的机械部件还显示出微观结构中存在大量硬质颗粒。车削微观结构中硬质颗粒含量高的材料会导致较高的磨料磨损率或损坏工具的切削刃。在文献中,有关以微结构中碳化物含量高为特征的材料的车削的信息有限。这项研究的目的是确定使用连续和间断切削车削高铬白口铸铁时,两种等级的PCBN工具(高CBN和低CBN含量,并添加陶瓷相)的性能。评估了刀具的寿命,刀具切削刃的磨损机理,粗糙度和车削表面上残留的微观结构。结果表明,低CBN含量的等级和添加陶瓷相的刀具寿命是高CBN含量的等级的三倍。获得的最有趣的结果涉及车削材料的狭窄亚表层的微观结构变化。确定了在切割剪切平面方向上的碳化物碎裂和对齐,这可能会增强材料的使用。

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