Performance assessment of mahogany oil-based cutting fluid in turning AISI 304 steel alloy

IF 2.9 3区 工程技术 Q2 AUTOMATION & CONTROL SYSTEMS International Journal of Advanced Manufacturing Technology Pub Date : 2024-03-20 DOI:10.1007/s00170-024-13374-5
Joseph Abutu, Paul Akene, Kabiru Musa, Emmanuel Chukwudi Onunze, Sunday Albert Lawal
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Abstract

In this study, mahogany seed oil was sourced and prepared, and the performances were compared with mineral oils. The extracted oil was characterized to recognize properties related to pyto-chemical, physio-chemical lubricity and thereafter used along with mineral oil for the formulation of cutting fluid using emulsifying agent, anti-corrosive agent, biocides, and anti-foam agent as additives. These additives were added to oil and water by using 24 full factorial design to achieve the optimal combination. In addition, central composite design (CCD) was adopted for the experimental design, and the performance of the mahogany oil-based cutting fluid (MBCF) was investigated in terms of surface finish, cutting temperature, material removal rate, machine sound level, and chips formation and, thereafter, compared with conventional mineral oil (CBCF) in turning of AISI 304 steel under flood cooling technique. Experimental data were analyzed using analysis of variance (ANOVA) and grey relational analysis (GRA). The experimental findings showed that optimal multi-response performance of the MBCF can be achieved using spindle speed, feed rate and depth of cut of 1100 rev/min, 0.27 mm/rev, and 0.23 mm, respectively, while optimal multi-response performance of CBCF can be achieved with spindle speed, feed rate, and depth of cut of 900 rev/min, 0.62 mm/rev, and 0.23 mm, respectively.

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红木油基切削液在车削 AISI 304 钢合金时的性能评估
在这项研究中,我们采集并制备了桃花心木种子油,并将其性能与矿物油进行了比较。对提取的油进行了表征,以识别与热化学和物理化学润滑性相关的特性,然后使用乳化剂、抗腐蚀剂、杀菌剂和消泡剂作为添加剂,与矿物油一起用于配制切削液。采用 24 全因子设计将这些添加剂添加到油和水中,以获得最佳组合。此外,实验设计还采用了中心复合设计(CCD),并从表面光洁度、切削温度、材料去除率、机器声级和切屑形成等方面考察了红木油基切削液(MBCF)的性能,随后将其与传统矿物油(CBCF)进行了比较,以在洪流冷却技术下车削 AISI 304 钢。实验数据采用方差分析(ANOVA)和灰色关系分析(GRA)进行分析。实验结果表明,主轴转速、进给速度和切削深度分别为 1100 转/分钟、0.27 毫米/转和 0.23 毫米时,MBCF 可达到最佳多响应性能;而主轴转速、进给速度和切削深度分别为 900 转/分钟、0.62 毫米/转和 0.23 毫米时,CBCF 可达到最佳多响应性能。
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来源期刊
CiteScore
5.70
自引率
17.60%
发文量
2008
审稿时长
62 days
期刊介绍: The International Journal of Advanced Manufacturing Technology bridges the gap between pure research journals and the more practical publications on advanced manufacturing and systems. It therefore provides an outstanding forum for papers covering applications-based research topics relevant to manufacturing processes, machines and process integration.
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