Modeling of Heat Source on Machined Surface and Numerical Simulation for Grinding Temperature Field[J]. 2018, 52(4): 84-89.
DOI:
Modeling of Heat Source on Machined Surface and Numerical Simulation for Grinding Temperature Field[J]. 2018, 52(4): 84-89.DOI: 10.7652/xjtuxb201804012.
Modeling of Heat Source on Machined Surface and Numerical Simulation for Grinding Temperature Field
The distributing shape of the heat source on machined surface is constructed to numerically simulate grinding temperature field with the shallow grinding model. Adopting the circular arc heat source model and the right triangular heat source on wheel/workpiece contact surface
the inverse heat transfer analysis is completed by the temperature matching method. The shape of the heat source on a machined surface is usually supposed as right triangle
triangle
parabola or ellipse. However
the above suppositions are based on specified grinding conditions
and are not generally applicable to all grinding conditions. Neglecting the above suppositions
the shape of the heat source on machined surface can be obtained with the proposed scheme according to specific grinding conditions. A shallow grinding model is established by finite element method to analyze the grinding temperature field of the workpiece
and a thermography camera is used to measure the real grinding temperature field. It is found that the shape of the heat source on machined surface varies with the change of grinding conditions. A comparison between the measured and simulated results indicates that the relative error of the maximum temperature on the machined surface in grinding zone ranges from 0.8% to 9.5%
and the shallow grinding model can accurately simulate the grinding temperature field.
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references
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