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Towards Optimization of Machining Performance and Sustainability Aspects when Turning AISI 1045 Steel under Different Cooling and Lubrication Strategies

机译:在不同的冷却和润滑策略下转向AISI 1045钢时旨在优化加工性能和可持续性方面

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摘要

In this work, an extensive analysis has been presented and discussed to study the effectiveness of using different cooling and lubrication techniques when turning AISI 1045 steel. Three different approaches have been employed, namely dry, flood, and minimum quantity lubrication based nanofluid (MQL-nanofluid). In addition, three multi-objective optimization models have been employed to select the optimal cutting conditions. These cases include machining performance, sustainability effectiveness, and an integrated model which covers both machining outputs (i.e., surface roughness and power consumption) and sustainability aspects (carbon dioxide emissions and total machining cost). The results provided in this work offer a clear guideline to select the optimal cutting conditions based on different scenarios. It should be stated that MQL-nanofluid offered promising results through the three studied cases compared to dry and flood approaches. When considering both sustainability aspects and machining outputs, it is found that the optimal cutting conditions are cutting speed of 147 m/min, depth of cut of 0.28 mm and feed rate of 0.06 mm/rev using MQL-nanofluid. The three studied multi-objective optimization models obtained in this work provide flexibility to the decision maker(s) to select the appropriate cooling/lubrication strategy based on the desired objectives and targets, whether these targets are focused on machining performance, sustainability effectiveness, or both. Thus, this work offers a promising attempt in the open literature to optimize the machining process from the performance–sustainability point of view.
机译:在这项工作中,已经提出并进行了广泛的分析,以研究在转向AISI 1045钢时使用不同的冷却和润滑技术的有效性。已经采用了三种不同的方法,即干式,溢流式和基于最小量润滑的纳米流体(MQL-nanofluid)。此外,已采用三个多目标优化模型来选择最佳切削条件。这些情况包括加工性能,可持续性有效性以及涵盖了加工输出(即表面粗糙度和功耗)和可持续性方面(二氧化碳排放量和总加工成本)的集成模型。这项工作中提供的结果为根据不同情况选择最佳切削条件提供了明确的指南。应该指出的是,与干式和溢流方法相比,通过三个研究案例,MQL-纳米流体提供了令人鼓舞的结果。当同时考虑可持续性方面和加工产量时,发现最佳切削条件是使用MQL-nanofluid的切削速度为147 m / min,切削深度为0.28 mm,进给速度为0.06 mm / rev。在这项工作中获得的三个研究的多目标优化模型为决策者提供了灵活性,使他们可以根据期望的目标和指标来选择合适的冷却/润滑策略,而这些目标是否侧重于加工性能,可持续性有效性或都。因此,这项工作在公开文献中提供了从性能-可持续性角度优化加工过程的有希望的尝试。

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