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Grinding performance using variants of the MQL technique: MQL with cooled air and MQL simultaneous to the wheel cleaning jet

机译:使用MQL技术的变体进行研磨性能:MQL与冷却空气和MQL同时到车轮清洁喷射

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摘要

The hardening of legislation in favor of socio-environmental preservation and the sustainable focus of industry are changing the current manufacturing methods, among which is grinding. This abrasion machining technique aims to produce parts with excellent surface finish and high geometric precision. On the other hand, the multiple sharp edges of the abrasive grains that make up the grinding wheel simultaneously deform and shear the workpiece surface material, which releases a lot of energy in the form of heat. In this context, to soften the damage caused by the high temperatures, cutting fluids are applied to lubricate and refrigerate the tool/workpiece interface during the grinding process. However, the use of these fluids is damaging to people's health and carries a high cost for disposal, given their potential to impact the biosphere. In this sense, the society allied with the researchers seeks alternative methods of lubri-refrigeration, among them, the minimum quantity lubrication (MQL), which applies a small quantity of fluid to the cutting zone through a flow of compressed air. However, the excessive increase of machining temperatures and the intensification of the grinding wheel clogging are significant drawbacks of this technique. Thus, to mitigate these problems, this work seeks to evaluate the traditional MQL application, MQL with cooled air (MQL+CA), and assisted by a wheel cleaning jet (MQL+WCJ), comparing them with the conventional method with abundant fluid, in the external cylindrical plunge grinding of the AISI 4340 steel using an aluminum oxide grinding wheel. The output parameters used to assess the efficiency of the techniques were surface roughness, roundness error, diametrical wheel wear, grinding power, tangential cutting force, specific grinding energy, and microhardness. The machined surfaces were evaluated through optical and scanning electron microscopies to verify possible thermal damages and microstructural alterations, and optical microscopy images of the grinding wheel cutting surface were assessed to ascertain the occurrence of the wheel clogging phenomenon. The results of the tests showed that the conventional method produced the best results in all analyzed parameters. Besides, MQL+WCJ and MQL+CA outperformed all the results obtained with traditional MQL, which revealed the improvement obtained with these eco-friendly techniques and their applicability in the industry. Moreover, the application of the MQL+WCJ provided the closest results in comparison with the conventional method, proving to be superior to the MQL+CA.
机译:基于社会环境保护的立法和行业可持续重点的立法的硬化正在改变目前的制造方法,其中是磨削。这种磨损加工技术旨在生产具有优异表面光洁度和高几何精度的部件。另一方面,构成砂轮的磨粒的多个锋利边缘同时变形和剪切工件表面材料,其以热量的形式释放大量能量。在这种情况下,为了软化由高温引起的损坏,在研磨过程中施加切削液以润滑和冷却工具/工件界面。然而,鉴于它们对生物圈影响的可能性,使用这些流体对人们的健康造成了损害,并且携带高成本进行处理。从这个意义上讲,与研究人员盟章的社会寻求润滑脂的替代方法,其中包括最小数量润滑(MQL),其通过压缩空气的流动将少量流体施加到切割区域。然而,加工温度的过度增加和磨轮堵塞的强化是该技术的显着缺点。因此,为了减轻这些问题,这项工作寻求评估传统的MQL应用,MQL与冷却的空气(MQL + CA),并由车轮清洁射流(MQL + WCJ)辅助,将它们与具有丰富的方法进行比较,使用氧化铝砂轮的AISI 4340钢的外圆柱磨削。用于评估技术效率的输出参数是表面粗糙度,圆度误差,直径轮磨损,磨削功率,切向切削力,特异性研磨能量和微硬度。通过光学和扫描电子显微镜评估加工表面以验证可能的热损坏和微观结构改变,并评估研磨轮切割表面的光学显微镜图像以确定车轮堵塞现象的发生。测试结果表明,传统方法在所有分析的参数中产生了最佳结果。此外,MQL + WCJ和MQL + CA优于传统MQL获得的所有结果,这揭示了通过这些环保技术获得的改进及其在行业中的适用性。此外,与传统方法相比,MQL + WCJ的应用提供了最接近的结果,证明是优于MQL + CA。

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