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Experimental Investigations on a High-Efficiency Grinding Technology for HIPSN Ceramic Bearing Race

机译:HIPSN陶瓷轴承座高效磨削技术的实验研究

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Producing high-precision silicon nitride bearing races is a critical technology for the success of ceramic bearings. This paper deals with the experimental investigations of a high-efficiency grinding technology for producing ceramic bearing races. A new high-speed CNC grinding machine has been developed, which is equipped with a high-speed ceramic spindle with a built-in motor. The machine also has a high-speed feed unit with a linear motor capable of producing non-circular parts. Extensive experiments have been performed with this new machine to investigate the influence of various process parameters such as wheel speed, depth of cut, and wheel grit size on material removal rate, surface finish, grinding ratio, and grinding energy. It has been found that the effects of depth of cut and wheel speed in the machining of ceramic races are very significant on the quality and efficiency of the grinding process. The performances of the CNC grinding machine tool have been evaluated using the grinding of ceramic races. It has been shown that this grinding machine is very stable and capable of realizing the high-efficiency grinding of ceramic races with average surface roughness less than 100 nanometers.
机译:生产高精度氮化硅轴承座圈是陶瓷轴承成功的关键技术。本文涉及用于生产陶瓷轴承座圈的高效磨削技术的实验研究。已经开发出了一种新型的高速CNC磨床,它配备了带有内置电机的高速陶瓷主轴。该机器还具有带有线性马达的高速进纸单元,该马达能够生产非圆形零件。这台新机器已经进行了广泛的实验,以研究各种工艺参数(例如砂轮速度,切削深度和砂粒尺寸)对材料去除率,表面光洁度,磨削比和磨削能量的影响。已经发现,切削深度和砂轮速度在陶瓷座圈加工中的影响对磨削过程的质量和效率非常重要。 CNC磨床的性能已使用陶瓷座圈的磨削进行了评估。已经表明,该研磨机非常稳定,并且能够实现平均表面粗糙度小于100纳米的陶瓷环的高效研磨。

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