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The heat flow coupling effect of laser-assisted magnetorheological polishing

机译:激光辅助磁流变抛光的热流耦合效应

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摘要

During the magnetorheological polishing process of concave workpieces, the magnetorheological fluid tends to accumulate at the entrance of the polishing zone, resulting in a decrease in the polishing efficiency and quality. To solve this problem, in this paper, laser-assisted magnetorheological polishing technology was proposed. Based on the theory of fluid mechanics and heat transfer, a three-dimensional temperature field distribution model of the spherical polishing film was established to achieve local temperature control at the entrance of the polishing zone. Then, the functional relationship between the viscosity of the magnetorheological fluid and the temperature was obtained experimentally. On this basis, the shear force and hydrodynamic pressure models of the polishing zone were established, which reveal that the heat flow coupling effect can increase temperature at the inlet of the polishing zone and reduce the viscosity of the local magnetorheological fluid, thereby reducing the shear stress in the polishing zone. The results show that when the laser power is 3 W and the magnetorheological fluid flow rate is 6 ml/s, the viscosity of the magnetorheological fluid at the entrance can be effectively reduced, and the shear force in the polishing zone decreases slightly.
机译:在凹面工件的磁流变抛光过程中,磁流变液往往会在抛光区的入口处聚集,导致抛光效率和质量降低。为了解决这一问题,本文提出了激光辅助磁流变抛光技术。基于流体力学和传热学理论,建立了球形抛光膜的三维温度场分布模型,实现了抛光区入口的局部温度控制。实验得到了磁流变液粘度与温度之间的函数关系。在此基础上,建立了抛光区的剪切力和动水压力模型,揭示了热流耦合效应可以提高抛光区入口的温度,降低局部磁流变液的粘度,从而降低抛光区的剪切应力。结果表明,当激光功率为3w,磁流变液流速为6ml/s时,可以有效地降低磁流变液入口的粘度,抛光区的剪切力略有降低。

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