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Characterization and modelling of the rough turning process of large-scale parts: tribological behaviour and tool wear analyses

机译:大型部件粗糙转弯过程的特征及建模:摩擦学行为和工具磨损分析

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Machining large-scale parts in several industries (nuclear, naval, energy...) is a challenge for machine tools operators. Various problems are encountered, like respecting specified dimensions, deformation of the workpiece during machining, limit of the cutting speed, excessive tool wear, etc. All these difficulties are related to the large size of the machined part, which may have several meters and weigh several hundred kilograms. This study focuses on analysis of the rough turning process of a shell component, having few meters, as a part of steam generators of nuclear power plants. During the rough turning step, a high material removal rate (moderate cutting speed, but high depth-of-cut and feed rate) is necessary to achieve the workpiece in reasonable time. Experimental and theoretical analyses are conducted to highlight the intense thermomechanicai loading at the tool-workmaterial interface. Revealed physical phenomena at the tool rake face, like adhesion and abrasive wear types, using various characterization techniques, are reproduced by a numerical model developed to simulate the cutting process. As an interest result, contact discontinuities at the tool-chip interface as well as where the wear is highly localized are well predicted as observed on scanning electron microscope. These contact discontinuities are attributed to the grooved rake face of the insert, designed with a chip breaker to reduce the tool-chip contact area and to promote the chip fragmentation. This study can be helpful for the design of rough turning inserts, by analysing the effectiveness of the rake face geometry (contact area, chip breaker...).
机译:在多个行业(核,海军,能源......)中加工大型零件是机床运营商的挑战。遇到各种问题,如尊重指定尺寸,加工过程中工件的变形,切割速度限制,过度刀具磨损等。所有这些困难都与机加工部件的大尺寸有关,这可能有几米,称重几百千克。本研究侧重于分析壳体组件的粗糙转动过程,该壳体较少的壳体,作为核电站蒸汽发生器的一部分。在粗糙转动步骤中,需要高材料去除速率(适度的切削速度,但高截止和进料速率)是在合理的时间内实现工件。进行了实验和理论分析,以突出刀具工艺界面的强烈热脑机。通过开发的数值模型再现,揭示了刀具耙面上的物理现象,如粘附和磨料磨损类型,通过开发的数值模型来模拟切割过程。作为兴趣结果,如在扫描电子显微镜上观察到的,接触刀片界面的不连续性以及磨损高度定位的位置。这些接触不连续性归因于插入件的带槽耙面,设计有碎片断路器,以减少工具芯片接触面积并促进芯片碎片。本研究可以通过分析耙面几何形状的有效性(接触面积,碎片断路器......)的有效性,这项研究可以有助于设计粗糙转动插入件。

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