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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >A new cutting force prediction method in ball-end milling based on material properties for difficult-to-machine materials
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A new cutting force prediction method in ball-end milling based on material properties for difficult-to-machine materials

机译:基于材料特性的球形铣削新切割预测方法

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摘要

As the machining process is remarkably influenced by the cutting force, its prediction is of great significance. For most of the commonly used cutting force prediction models, they are no longer applicable once the workpiece material is altered. Consequently, a new ball-end milling force prediction method with the consideration of the workpiece material properties is presented in this study for difficult-to-machine materials in high-speed milling. Based on differential and oblique cutting mechanisms, the metal cutting process in this method is taken as the linear superposition of a series of differential oblique cutting processes. With laboring the force-loading status of rake face, the yield strength, the heat conductivity, and the plasticity of the material which are the most important factors to influence cutting force are involved as the input elements. Furthermore, the interaction between material properties and machining conditions is also introduced to broadened the scope of applications of this method. In accordance with specific needs, an inverse method using the average cutting force of a single disk after cutting edge discretization is proposed to obtain the specific coefficients, and the cutter engagement is determined by Z-map method. Finally, the comparison between the simulated result and the experimental result confirms the effectiveness of the presented method for different difficult-to-machine materials in high-speed milling based on slot milling and curved surface milling.
机译:随着加工过程受到切割力显着影响,其预测具有重要意义。对于大多数常用的切割力预测模型,一旦工件材料改变,它们就不再适用。因此,在本研究中提出了具有考虑工件材料性质的新的球端研磨力预测方法,用于高速铣削中的难以磨削的材料。基于差动和倾斜切削机构,本方法中的金属切割过程被用作一系列差分倾斜工艺的线性叠加。随着耙面的力负载状态,屈服强度,导热率和材料的可塑性,它们是影响切割力的最重要因素作为输入元件。此外,还引入了材料性能和加工条件之间的相互作用以扩大该方法的应用范围。根据具体需求,提出了一种在切割边缘离散化之后使用单个盘的平均切割力的逆方法,以获得特定系数,并且通过Z-MAP方法确定切割器接合。最后,模拟结果与实验结果之间的比较证实了基于槽铣削和弯曲表面研磨的高速研磨中不同难以磨料材料的施加方法的有效性。

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