Investigation of the effects of machining parameters on cutting conditions during orthogonal turning of austenite stainless steel

IF 1.9 Q3 ENGINEERING, INDUSTRIAL Production Engineering Archives Pub Date : 2024-02-22 DOI:10.30657/pea.2024.30.8
Gábor Kónya, János Takács, István Miskolczi, Zsolt F. Kovács
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引用次数: 1

Abstract

The 1.4306 austenite stainless steel has been prominently utilized as a material in the automotive and aerospace industry. Considerable interest has been garnered in the machinability of stainless steel owing to its high strength and poor thermal conductivity. The aim of this study is to ascertain the influential cutting parameters, specifically the cutting speed and feed rate, on cut-ting forces, cutting temperature, and chip evaluation. Thus, austenite stainless steel was subjected to free-cutting using a carbide recessing tool under dry conditions. The principle of measuring cutting temperature, a complex procedure due to varying thermal homogeneity, was elucidated. For the turning experiments in question, the standard Taguchi orthogonal array L9 (32), featuring two factors and three levels, was employed. The experimental results were analyzed using MiniTab 17 software. The findings reveal a substantial effect of feed rate on cutting force, cutting temperature, and chip evaluation. The highest cutting force and cutting temperature were observed at a feed rate of 0.15 mm/rev. Conversely, the cutting force was minimized at a cutting speed of 100 m/min, indicating potential for increasing the cutting speed. The augmentation of feed rate led to chip compression and discoloration, attributed to elevated cutting force and a larger chip cross-section that efficiently dissipates heat from the cutting zone.
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奥氏体不锈钢正交车削过程中加工参数对切削条件影响的研究
1.4306 奥氏体不锈钢作为一种材料,在汽车和航空航天工业中得到了广泛应用。由于不锈钢强度高、导热性能差,人们对其加工性能产生了浓厚的兴趣。本研究旨在确定切削参数,特别是切削速度和进给量,对切削力、切削温度和切屑评估的影响。因此,在干燥条件下使用硬质合金凹槽刀具对奥氏体不锈钢进行了自由切削。由于热均匀性的变化,测量切削温度是一个复杂的过程。在有关车削实验中,采用了标准田口正交阵列 L9 (32),具有两个因素和三个水平。实验结果使用 MiniTab 17 软件进行分析。结果表明,进给率对切削力、切削温度和切屑评估有很大影响。在进给量为 0.15 mm/rev 时,切削力和切削温度最高。相反,切削速度为 100 米/分钟时,切削力最小,这表明提高切削速度具有潜力。进给速度的提高导致切屑压缩和变色,这归因于切削力的提高和切屑横截面的增大,从而有效地从切削区散热。
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来源期刊
Production Engineering Archives
Production Engineering Archives Engineering-Industrial and Manufacturing Engineering
CiteScore
6.10
自引率
13.00%
发文量
50
审稿时长
6 weeks
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