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Modeling the motion of the cooling lubricant in drilling processes using the finite volume and the smoothed particle hydrodynamics methods

机译:使用有限体积和平滑粒子流体动力学方法对钻井过程中冷却润滑剂的运动进行建模

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AbstractThe process of single-lip deep hole drilling is used in various industrial applications for the production of small bores with a high length to diameter ratio. Especially the cooling and the lubrication of the machining zone have a great influence on the tool life, on the transport of chips, as well as on the quality of the resulting bore. In this paper, two approaches for the modeling and simulation of drilling processes are presented. On the one hand, the Finite Volume Method is used for the stationary simulation of the flow field. Assuming the entire bore to be filled with coolant, the focus is laid on a precise description of important fluid mechanical quantities along the cutting edges. The results show that the mass exchange of the cooling lubricant close to the cutting edge is far too low in order to guarantee the required cooling effect. On the other hand, a coupled meshless approach for the transient simulation is presented. The cooling lubricant is there modeled by the Smoothed Particle Hydrodynamics method and the Discrete Element Method is used for the description of chips. In contrast to the Finite Volume simulation, the main focus is laid on the evolution of the free surfaces and the transport of particles. The results show that the transport of chips by the cooling lubricant can be described well. Furthermore, also the transient Smoothed Particle Hydrodynamics simulations show an insufficient mass exchange behind the cutting edges matching the steady-state results from the Finite Volume simulation with a bore completely filled with coolant.
机译: 摘要 单唇深孔钻削工艺已用于各种工业应用中,以生产高长径比的小孔。尤其是加工区的冷却和润滑对刀具寿命,切屑的运输以及最终孔的质量有很大的影响。本文提出了两种用于钻井过程建模和仿真的方法。一方面,有限体积法用于流场的静态模拟。假设整个钻孔都充满冷却液,重点放在沿切削刃的重要流体机械量的精确描述上。结果表明,靠近切削刃的冷却润滑剂的质量交换太低,无法保证所需的冷却效果。另一方面,提出了一种用于瞬态仿真的耦合无网格方法。此处,通过“平滑粒子流体动力学”方法对冷却润滑剂进行建模,并使用“离散元”方法来描述切屑。与有限体积模拟相反,主要重点在于自由表面的演化和粒子的传输。结果表明,可以很好地描述冷却润滑剂对切屑的输送。此外,瞬态平滑粒子流体动力学模拟还显示出在切削刃后部的质量交换不足,无法匹配有限体积模拟的稳态结果,而钻孔完全充满了冷却剂。

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