Optimizing the parameters for force, temperature, and metal removal rate: a multi-feature fusion model for titanium alloy milling

IF 0.8 4区 工程技术 Q4 ENGINEERING, MECHANICAL Transactions of The Canadian Society for Mechanical Engineering Pub Date : 2022-02-09 DOI:10.1139/tcsme-2021-0086
Songyuan Li, S. Li, Yuqing Li, E. Popov
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引用次数: 2

Abstract

In the processing of titanium alloy, the milling parameters determine the process temperature and force. Increasing the milling temperature and force can affect the quality of the titanium alloy produced. In this study, we developed a multi-feature fusion model for high-quality titanium alloy workpieces. In the milling experiments with different milling parameters, an infrared thermal imager and a three-dimensional dynamometer were used to collect the time-domain signals for temperature near the tip of the milling cutter and the milling force. Based on the experimental data, a multi-feature fusion model was established with the milling temperature, milling force, and metal removal rate as the targeted variables, and the milling parameters as the optimized parameters. Based on the particle swarm optimization algorithm, the optimal milling parameters within the test parameters were resolved using the multi-feature fusion model. The results show that: within the milling parameter range of the experimental design, the optimal solutions for the milling parameters are: milling speed of 22.14 m/min; feed speed of 8.25 mm/min; milling depth of 1.36 mm. The multi-feature fusion model resulted in lower milling temperature and force, and provides theoretical guidance for scientifically designing the parameters for the milling process.
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优化力、温度和金属去除率参数:钛合金铣削的多特征融合模型
在钛合金的加工过程中,铣削参数决定了加工温度和力。提高铣削温度和铣削力会影响所生产的钛合金的质量。在本研究中,我们开发了一个用于高质量钛合金工件的多特征融合模型。在不同铣削参数的铣削实验中,使用红外热像仪和三维测功机采集铣刀尖端附近温度和铣削力的时域信号。基于实验数据,建立了以铣削温度、铣削力和金属去除率为目标变量,以铣削参数为优化参数的多特征融合模型。基于粒子群优化算法,利用多特征融合模型求解了测试参数范围内的最优铣削参数。结果表明:在实验设计的铣削参数范围内,铣削参数的最优解为:铣削速度为22.14m/min;进给速度为8.25毫米/分钟;铣削深度为1.36mm。多特征融合模型降低了铣削温度和铣削力,为科学设计铣削工艺参数提供了理论指导。
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来源期刊
CiteScore
2.30
自引率
0.00%
发文量
53
审稿时长
5 months
期刊介绍: Published since 1972, Transactions of the Canadian Society for Mechanical Engineering is a quarterly journal that publishes comprehensive research articles and notes in the broad field of mechanical engineering. New advances in energy systems, biomechanics, engineering analysis and design, environmental engineering, materials technology, advanced manufacturing, mechatronics, MEMS, nanotechnology, thermo-fluids engineering, and transportation systems are featured.
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