Cai Yaojie, Qian Panyu, Wen Donghui, Jin Guixiang, Jin Mingsheng, Yuan Qiaoling, Zhang Li
Key Laboratory of Special Purpose Equipment and Advanced Processing Technology, Ministry of Education and Zhejiang Province, Zhejiang University of Technology, Hangzhou 310023, China.
College of Mechanical Engineering, Zhejiang University of Technology, Hangzhou 310023, China.
Materials (Basel). 2024 Dec 14;17(24):6123. doi: 10.3390/ma17246123.
To address the issue of uneven pressure distribution in the abrasive flow field within the inner hole of components with a large depth/diameter ratio, an adaptive control strategy for regulating flow field pressure difference is proposed in this paper. The strategy was based on the effects of pressure fluctuations at the abrasive flow inlet and outlet on pressure distribution patterns and pressure changes within the inner hole flow field, as derived from numerical simulations. An adaptive control fixture was also designed, enabling dynamic adjustments to the fixture gap, which significantly reduced the pressure difference in the flow field. Experimental results demonstrated that the surface texture uniformity of the inner hole was greatly improved after adaptive control. The non-uniformity in surface roughness after control was 59.1% lower compared to pre-control conditions, indicating improved machining consistency. Furthermore, the maximum reduction in surface roughness increased from 1.146 μm to 1.844 μm, and processing efficiency was notably enhanced.
针对大深径比零件内孔磨料流场压力分布不均的问题,本文提出一种调节流场压差的自适应控制策略。该策略基于数值模拟得出的磨料流进出口压力波动对内孔流场压力分布模式和压力变化的影响。还设计了一种自适应控制夹具,可对夹具间隙进行动态调整,显著降低了流场中的压差。实验结果表明,自适应控制后内孔表面纹理均匀性得到极大改善。控制后表面粗糙度的不均匀性比控制前降低了59.1%,表明加工一致性得到提高。此外,表面粗糙度的最大降幅从1.146μm增加到1.844μm,加工效率显著提高。