进行参数优化,为车削超耐热合金 Inconel 718 制定生态友好型纳米流体最小量润滑 (NMQL) 方案

IF 1.5 4区 工程技术 Q3 ENGINEERING, MECHANICAL
Talwinder Singh
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引用次数: 0

摘要

目的本文是一项实验研究,旨在探讨在环保型纳米流体最小量润滑(NMQL)环境下车削镍基超合金 Inconel 718 的最佳加工参数,以最大限度地减少切削刀具侧面磨损(Vb)和加工表面粗糙度(Ra)。结果发现输入车削参数:切削速度 (A)、进给速度 (B) 和切削深度 (C) 的最佳值分别为 79.88 m/min、0.1 mm/rev 和 0.2 mm,输出响应参数最佳:Vb = 138.633 微米和 Ra = 0.462 微米,理想度为 0.766。进给速度B 和切削速度A2 是影响 Vb 的主要模型变量,贡献率分别为 12.06% 和 43.69%:A和进给量而切削速度:A 和进给量:B 是影响 Ra 的重要因素,贡献率分别为 38.25% 和 18.03%。验证实验结果证实,Vb 和 Ra 的 RSM 预测值与实验观测值之间的误差分别为 3.28% 和 3.75%,小于 5%,从而验证了所建立的 RSM 模型与所获得的实验结果具有高度的一致性。独创性/价值迄今为止,还没有关于在 NMQL 条件下使用橄榄油混合多壁碳纳米管纳米流体车削 Inconel 718 的研究。同行评审本文的同行评审历史可在以下网站查阅:https://publons.com/publon/10.1108/ILT-10-2023-0317/。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Parametric optimization to establish eco-friendly nanofluid minimum quantity lubrication (NMQL) practice for turning superalloy Inconel 718

Purpose

The purpose of this paper, an experimental study, is to investigate the optimal machining parameters for turning of nickel-based superalloy Inconel 718 under eco-friendly nanofluid minimum quantity lubrication (NMQL) environment to minimize cutting tool flank wear (Vb) and machined surface roughness (Ra).

Design/methodology/approach

The central composite rotatable design approach under response surface methodology (RSM) is adopted to prepare a design of experiments plan for conducting turning experiments.

Findings

The optimum value of input turning parameters: cutting speed (A), feed rate (B) and depth of cut (C) is found as 79.88 m/min, 0.1 mm/rev and 0.2 mm, respectively, with optimal output response parameters: Vb = 138.633 µm and Ra = 0.462 µm at the desirability level of 0.766. Feed rate: B and cutting speed: A2 are the leading model variables affecting Vb, with a percentage contribution rate of 12.06% and 43.69%, respectively, while cutting speed: A and feed rate: B are the significant factors for Ra, having a percentage contribution of 38.25% and 18.03%, respectively. Results of validation experiments confirm that the error between RSM predicted and experimental observed values for Vb and Ra is 3.28% and 3.75%, respectively, which is less than 5%, thus validating that the formed RSM models have a high degree of conformity with the obtained experimental results.

Practical implications

The outcomes of this research can be used as a reference machining database for various metal cutting industries to establish eco-friendly NMQL practices during the turning of superalloy Inconel 718 to enhance cutting tool performance and machined surface integrity.

Originality/value

No study has been communicated till now on the turning of Inconel 718 under NMQL conditions using olive oil blended with multi-walled carbon nanotubes-based nanofluid.

Peer review

The peer review history for this article is available at: https://publons.com/publon/10.1108/ILT-10-2023-0317/

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来源期刊
Industrial Lubrication and Tribology
Industrial Lubrication and Tribology 工程技术-工程:机械
CiteScore
3.00
自引率
18.80%
发文量
129
审稿时长
1.9 months
期刊介绍: Industrial Lubrication and Tribology provides a broad coverage of the materials and techniques employed in tribology. It contains a firm technical news element which brings together and promotes best practice in the three disciplines of tribology, which comprise lubrication, wear and friction. ILT also follows the progress of research into advanced lubricants, bearings, seals, gears and related machinery parts, as well as materials selection. A double-blind peer review process involving the editor and other subject experts ensures the content''s validity and relevance.
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