TY - JOUR
T1 - Boundary conditions optimization of spindle thermal error analysis and thermal key points selection based on inverse heat conduction
AU - Li, Yang
AU - Zhao, Wanhua
AU - Wu, Wenwu
AU - Lu, Bingheng
N1 - Publisher Copyright:
© 2016, Springer-Verlag London.
PY - 2017/6/1
Y1 - 2017/6/1
N2 - Thermal error of the spindle is one of the primary contributors of the inaccuracy of the precision machine tools. In order to study the thermal characteristics of the spindle, finite element analysis has been widely used. However, the accuracy of numerical simulation is highly dependent on the boundary conditions especially the coefficients of convection heat transfer. In this paper, the inverse heat conduction theory is introduced and used for optimizing the coefficients of convection heat transfer. Then, the temperature field and thermal error of the spindle are simulated in ANSYS. Based on the simulation results, a new method called mean impact value is proposed to select the thermal key points in the spindle system. Finally, the verification experiments are conducted on a precision horizontal machining center. By comparing the simulation results with the experimental data, the correctness and effectiveness of the heat convection coefficient optimization are verified. In addition, the results of thermal error modeling based on multiple variables including the temperatures of the thermal key points show that the result of the thermal key point selection is satisfying.
AB - Thermal error of the spindle is one of the primary contributors of the inaccuracy of the precision machine tools. In order to study the thermal characteristics of the spindle, finite element analysis has been widely used. However, the accuracy of numerical simulation is highly dependent on the boundary conditions especially the coefficients of convection heat transfer. In this paper, the inverse heat conduction theory is introduced and used for optimizing the coefficients of convection heat transfer. Then, the temperature field and thermal error of the spindle are simulated in ANSYS. Based on the simulation results, a new method called mean impact value is proposed to select the thermal key points in the spindle system. Finally, the verification experiments are conducted on a precision horizontal machining center. By comparing the simulation results with the experimental data, the correctness and effectiveness of the heat convection coefficient optimization are verified. In addition, the results of thermal error modeling based on multiple variables including the temperatures of the thermal key points show that the result of the thermal key point selection is satisfying.
KW - Coefficients of convection heat transfer
KW - Inverse heat transfer
KW - Mean impact value
KW - Thermal error
KW - Thermal key point
UR - https://www.scopus.com/pages/publications/84992150988
U2 - 10.1007/s00170-016-9594-0
DO - 10.1007/s00170-016-9594-0
M3 - 文章
AN - SCOPUS:84992150988
SN - 0268-3768
VL - 90
SP - 2803
EP - 2812
JO - International Journal of Advanced Manufacturing Technology
JF - International Journal of Advanced Manufacturing Technology
IS - 9-12
ER -