Thermal Characteristics Analysis for a Motorized Spindle with Shaft Core Cooling Based on Numerical Simulation and Experimental Research[J]. 2018, 52(4): 40-47.
DOI:
Thermal Characteristics Analysis for a Motorized Spindle with Shaft Core Cooling Based on Numerical Simulation and Experimental Research[J]. 2018, 52(4): 40-47.DOI: 10.7652/xjtuxb201804006.
Thermal Characteristics Analysis for a Motorized Spindle with Shaft Core Cooling Based on Numerical Simulation and Experimental Research
To improve the existing situation of “cool exterior and hot interior” of a motorized spindle for high speed and precision machine tools
a shaft cooling structure and system for motorized spindle was designed based on thermal weak point analysis. A thermal characteristic experiment for a motorized spindle with shaft cooling was carried out
and the effects of rotating speed
load and oil flow rate on the thermal characteristics of the motorized spindle were investigated experimentally combined with the finite element numerical calculation model. The experimental results show that the cooling structure and system can effectively reduce the temperature rise of the motorized spindle internal components under different speed and load conditions. Compared with the conventional spindle without shaft core cooling
when the oil flow rate for shaft core cooling is 2.5 L/min
the temperature rise of the shaft core and the bearing decreases by about 50%
the axial thermal deformation of the shaft decreases by 50.8%
the thermal balance time is shortened by 66.7%. Therefore
this shaft cooling structure can improve the machining accuracy and efficiency of the motorized spindle. When the axial cooling oil flow rate increases from 1.5 L/min to 2.5 L/min
the thermal balance time is reduced.
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references
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