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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Multi-objective optimization of turning titanium-based alloy Ti-6Al-4V under dry, wet, and cryogenic conditions using gray relational analysis (GRA)
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Multi-objective optimization of turning titanium-based alloy Ti-6Al-4V under dry, wet, and cryogenic conditions using gray relational analysis (GRA)

机译:使用灰色关系分析(GRA)在干燥,湿,低温条件下转动钛基合金Ti-6Al-4V的多目标优化

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摘要

In modern manufacturing industries, the importance of multi-objective optimization cannot be overemphasized particularly when the desired responses are differing in nature towards each other. With the emergence of new technologies, the need to achieve overall efficiency in terms of energy, output, and tooling is on the rise. Resultantly, endeavor is to make the machining process sustainable, productive, and efficient simultaneously. In this research, the effects of machining parameters (feed, cutting speed, depth of cut, and cutting condition including dry, wet, and cryogenic) were analyzed. Since sustainable production demands a balance between production quality and energy consumption, therefore, response parameters including specific cutting energy, tool wear, surface roughness, and material removal rate were considered. Taguchi-gray integrated approach was adopted in this study. Multi-objective function was developed using gray relational methodology, and its regression analysis was conducted. Response surface optimization was carried out to optimize the formulated multi-objective function and derive the optimum machining parameters. Concurrent responses were optimized with best-suited values of input parameters to make the most out of the machining process. Analysis of variance results showed that feed is the most effective parameter followed by cutting condition in terms of overall contribution in multi-objective function. The proposed optimum parameters resulted in improvement of tool wear and surface roughness by 30% and 22%, respectively, whereas specific cutting energy was reduced by 4%.
机译:在现代制造业,特别是当所需的响应在彼此自然不同时,不可能透明多目标优化的重要性。随着新技术的出现,在能源,产出和工具方面需要实现整体效率的需求正在上升。结果,努力是使加工过程同时可持续,生产和高效。在本研究中,分析了加工参数(饲料,切割速度,切割深度和切割条件包括干燥,湿,低温)的影响。由于可持续生产要求生产质量和能耗之间的平衡,因此,考虑了包括特定切削能量,工具磨损,表面粗糙度和材料去除率的响应参数。本研究采用Taguchi-Grey综合方法。使用灰色关系方法开发了多目标函数,并进行了回归分析。进行响应表面优化以优化配方的多目标函数并导出最佳加工参数。通过最适合的输入参数值优化并发响应,以充分利用加工过程。方差结果分析表明,饲料是最有效的参数,然后在多目标函数的总贡献方面进行切割条件。所提出的最佳参数使工具磨损和表面粗糙度分别提高30%和22%,而特定的切削能量降低了4%。

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