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首页> 外文期刊>Materials and Manufacturing Processes >Process parameter optimization and experimental evaluation for nanofluid MQL in grinding Ti-6AI-4V based on grey relational analysis
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Process parameter optimization and experimental evaluation for nanofluid MQL in grinding Ti-6AI-4V based on grey relational analysis

机译:基于灰色关系分析的研磨Ti-6ai-4V中纳米流体MQL的过程参数优化与实验评价

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摘要

Nanofluid minimum quantity lubrication is an environmental-friendly, resource-saving, and sustainable process compared with traditional flood lubrication. Especially, it is widely applied in difficult-to-cutting material, such as Ti-6AI-4V. However, optimized process parameters have not been obtained with considering grinding temperature, tangential grinding force, specific grinding energy, and surface roughness (R_a). And it is important for reaching the best surface quality and highest grinding efficiency. Henceforth, grinding parameters were set reasonably through an orthogonal experiment in this study and they were optimized preliminarily through a signal-to-noise analysis, getting four optimal groups of single grinding parameter. Next, a grey relational analysis was implemented based on the optimal signal-to-noise analysis of signal objective, getting two optimal combinations of multiple objectives. Finally, surface qualities in several groups of optimized experiments were characterized and analyzed by the profile supporting length ratio, surface morphology, and energy spectra. Furthermore, the grinding efficiency experiment was evaluated by material removal rate and specific grinding energy based on satisfying workpiece surface quality, and the optimal parameter combinations of surface quality and processing efficiency were gained. Research results provide theoretical basis for industrial production.
机译:与传统的洪水润滑相比,纳米流体最低数量润滑是一种环保,资源节约和可持续的过程。特别是,它广泛应用于难以切割的材料,例如Ti-6ai-4V。然而,考虑研磨温度,切向研磨力,特异性研磨能量和表面粗糙度(R_A),未获得优化的工艺参数。这对于达到最佳表面质量和最高磨削效率非常重要。此后,通过本研究中的正交实验合理地设定研磨参数,并通过信号 - 噪声分析预先优化它们,获得四个最佳的单磨口组。接下来,基于信号目标的最佳信号对噪声分析来实现灰色关系分析,获得多个目标的两个最佳组合。最后,通过支撑长度,表面形貌和能谱来表征和分析几组优化实验中的表面质量。此外,通过基于满足工件表面质量的材料去除速率和特定研磨能量来评估研磨效率实验,并获得了表面质量和处理效率的最佳参数组合。研究结果为工业生产提供了理论依据。

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