Primary Chatter and Limiting Chip Load in Turning Under Negative Process Damping

Ming-Jen Hsu, Jiunn-Jyh Wang
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Abstract

This paper presents an analysis of primary chatter under velocity-induced negative process damping in the peripheral outer diameter turning of medium carbon steel. A first-order approximation model of the instant specific cutting force with respect to dynamic cutting speed was established and the slope was defined as the specific process damping coefficient (SPDC) to investigate the negative process damping with respect to cutting speed, depth of cut, and chip thickness. The process damping coefficient was defined as the product of the specific process damping coefficient and chip load. The total system damping coefficient as the sum of the process damping coefficient and structural damping coefficient determines the system stability and predict primary chatter. The SPDCs were obtained through experiments under various speeds, feeds, and depths of cut by using a tool system with force sensors and accelerometers. The SPDCs were insensitive to cutting speeds of 2.5 to 5.5 m/sec and ranged from −1514 and −716 MPa·s/m for feeds per revolution of 0.058 to 0.118 mm, respectively. The higher negative SPDC at smaller chip thickness reduces the limiting stable chip load. Equations for the limiting chip load and limiting depth of cut were derived and validated by experiments. Stability diagrams of limiting chip load and limiting depth with respect to feed per revolution were created to provide guidance on preventing primary chatter.
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负工艺阻尼下车削的主要颤振和极限切屑负载
本文分析了中碳钢外径外径车削过程中速度负阻尼作用下的初级颤振。建立了瞬时比切削力与动态切削速度的一阶近似模型,并将斜率定义为比工艺阻尼系数(SPDC),研究了与切削速度、切削深度和切屑厚度相关的负工艺阻尼。将工艺阻尼系数定义为具体工艺阻尼系数与芯片载荷的乘积。系统总阻尼系数作为过程阻尼系数和结构阻尼系数的总和,决定了系统的稳定性并预测了系统的初始颤振。利用带有力传感器和加速度计的刀具系统,在不同的切削速度、进给量和切削深度下进行了实验,得到了spdc。spdc对2.5 ~ 5.5 m/s的切削速度不敏感,对于0.058 ~ 0.118 mm的转速,spdc的变化范围分别为- 1514 ~ - 716 MPa·s/m。在较小的芯片厚度下,较高的负SPDC降低了芯片的极限稳定负载。推导了极限切屑载荷和极限切削深度的计算公式,并通过实验进行了验证。创建了限制芯片负载和限制深度相对于每转进给的稳定性图,以提供防止初级颤振的指导。
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