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Study on coolant-induced hydrodynamic pressure in contact zone while deep grinding with CBN wheels

机译:CBN砂轮深磨时冷却液在接触区产生的动压的研究

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摘要

The use of coolant has been considered an effective way to avoid workpiece burn in the grinding process. Hydrodynamic pressure induced by coolant in the contact zone is always measured to characterize the coolant condition in the contact zone. In this study, grinding experiments with a cubic boron nitride wheel were first performed to determine the evolution of hydrodynamic pressure during the grinding process. The experimental results showed that when burn happened, hydrodynamic pressure was at a low level and decreased gradually while the temperature and power signals fluctuated sharply. A theoretical calculation model and a 3D air-liquid two-phase numerical simulation model were subsequently constructed to predict the hydrodynamic pressure. Both theoretical calculation and numerical simulation results showed that the hydrodynamic pressure in such a case is in inverse proportion to the gap distance between the wheel and the workpiece. The theoretical calculation results are higher than the numerical simulation results. Furthermore, the experimental results correspond to the results of the 3D air-liquid two-phase simulation, which confirms the validity of this simulation. This article presents an accurate approach to predict hydrodynamic pressure, which provides an effective analytical method of studying and avoiding workpiece burn.
机译:使用冷却液被认为是避免工件在磨削过程中燃烧的有效方法。始终测量接触区中冷却剂引起的流体动力压力,以表征接触区中的冷却剂状况。在这项研究中,首先进行了立方氮化硼砂轮的磨削实验,以确定磨削过程中流体动力压力的变化。实验结果表明,发生燃烧时,动压处于较低水平,并逐渐降低,而温度和功率信号急剧波动。随后构建了理论计算模型和3D气液两相数值模拟模型来预测流体动力压力。理论计算和数值模拟结果均表明,在这种情况下,流体动压与车轮与工件之间的间隙距离成反比。理论计算结果高于数值模拟结果。此外,实验结果与3D气液两相模拟的结果相对应,这证实了该模拟的有效性。本文提出了一种预测流体动力压力的准确方法,为研究和避免工件烧伤提供了一种有效的分析方法。

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