Among models describing the machining process and taking into account a rounded-edge tool, the slip-line field model developed by Waldorf [5-6] for the macroscale allows to separately evaluate shearing and ploughing force components in orthogonal cutting conditions. For this reason, the model is suitable to predict cutting forces when a large ploughing action occurs, as in micromachining. The present work aims at objectively verifying, within typical microscale cutting conditions, the cutting and feed force prediction performance of the Waldorf model in its original version and in a modified version considering the effective rake angle. In order to do that, the present work relies on a clear and repeatable procedure for the model calibration and application which has been developed and presented in a past work of the same authors [28]. The models performance comparison has been carried out on C38500 brass (CuZn39Pb3) at different cutting speeds and different ratios between uncut chip thickness and cutting edge radius.
Cutting force prediction performance of a microcutting slip-line field model in brass machining
Lara Rebaioli;
2013
Abstract
Among models describing the machining process and taking into account a rounded-edge tool, the slip-line field model developed by Waldorf [5-6] for the macroscale allows to separately evaluate shearing and ploughing force components in orthogonal cutting conditions. For this reason, the model is suitable to predict cutting forces when a large ploughing action occurs, as in micromachining. The present work aims at objectively verifying, within typical microscale cutting conditions, the cutting and feed force prediction performance of the Waldorf model in its original version and in a modified version considering the effective rake angle. In order to do that, the present work relies on a clear and repeatable procedure for the model calibration and application which has been developed and presented in a past work of the same authors [28]. The models performance comparison has been carried out on C38500 brass (CuZn39Pb3) at different cutting speeds and different ratios between uncut chip thickness and cutting edge radius.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.