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A new approach for local cutting force modeling enabling the transfer between different milling conditions and tool geometries

机译:局部切削力建模的一种新方法,从而实现不同铣削条件与工程几何形状之间的转移

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The modeling of modern high performance machining with intermittent cut and varying effective cutting parameters requires a flexible local cutting force prediction. Due to complex tool geometries and varying cutting conditions without a rigid reference system new approaches for the local cutting force decomposition are applied, investigated and compared. The force decompositions are based on the separation of the effective cutting speed into normal and tangential components to adequately consider the locally acting mechanisms. Regression models based on the effective cutting parameters are defined to compare and validate the local force decomposition. A high feed peripheral milling experiment with specific cutting force measurement is presented to develop the regression models. An extensive cutting force database for AISI 5115 is created by tool geometry and process control variable variations. The effective cutting conditions are calculated through geometric penetration simulation. Considering the tool deflection in the simulation achieves a high regression accuracy even with low chip thicknesses. This is especially important for the cutting force prediction of finishing processes. The resulting regression cutting force models and force decompositions are rated based on the applicability to different tool geometries, like a ball end mill.
机译:具有间歇切割和变化有效切削参数的现代高性能加工的建模需要柔性局部切削力预测。由于复杂的工具几何形状和不同的切削条件而没有刚性参考系统的新方法,施加,研究和比较了局部切割力分解的新方法。力分解基于有效切削速度分离成正常和切向组分以充分考虑局部作用机构。基于有效切割参数的回归模型定义为比较和验证局部力分解。提出了具有特定切割力测量的高馈送外围铣削实验以开发回归模型。 AISI 5115的广泛切削力数据库由刀具几何和过程控制变量变化来创建。通过几何渗透模拟计算有效的切削条件。考虑到模拟中的刀具偏转,即使具有低芯片厚度,也可以实现高回归精度。这对于整理过程的切割力预测尤为重要。由此产生的回归切割力模型和力分解是基于对不同工具几何形状的适用性,如球形铣刀。

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