Ultrasonic vibration-assisted hard turning of AISI 52100 steel: comparative evaluation and modeling using dimensional analysis

Govind Ghule, S. Sanap, S. Chinchanikar
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引用次数: 0

Abstract

Introduction. Precision machining of hard and brittle materials is difficult, which has led to the development of novel and sustainable techniques such as ultrasonic vibration-assisted turning (UVAT) for enhanced removal rates, surface quality, and tool life. The purpose of the work. Hard turning using cost-effective coated carbide tools instead of costly to operate ceramic and CBN inserts is still not widely accepted due to tool wear and machining limitations. A group of researchers attempted hard turning using carbide tools with different coatings, different cooling techniques, etc., to achieve better machinability. However, very few attempts were made by the researchers on ultrasonic vibration-assisted hard turning (UVAHT). Moreover, comparative evaluation of UVAHT using dimensional analysis is rarely reported in the open literature. The methods of investigation. With this view, this study comparatively evaluates the tool wear and power consumption during conventional turning (CT) and ultrasonic vibration-assisted hard turning (UVAHT) of AISI 52100 steel (62 HRC) using a PVD-coated TiAlSiN carbide tool. Experiments were performed with varying cutting speed, feed, and depth of cut while keeping vibration frequency and amplitude constant at 20 kHz and 20 µm, respectively. Further, a theoretical model was developed to predict the tool wear and power consumption using the concept of Dimensional analysis, i.e., the Buckingham Pi theorem considering the effect of cutting speed, frequency, and amplitude of vibrations at constant feed and depth of cut of 0.085 mm/rev and 0.4 mm, respectively. Dimensionless groups were created to reveal complex linkages and optimize machining conditions. Tool wear and power consumption were measured experimentally and statistically analyzed using the Buckingham Pi theorem. Results and Discussion. Using dimensional analysis, the research uncovers substantial insights into the UVAHT process. The results show that ultrasonic vibration parameters have a significant impact on tool wear and power consumption. Dimensionless groups provide a methodical foundation for refining machining conditions. The tool wear and the power consumption increase with the cutting speed, depth of cut, and feed. However, this effect is more significant in CT than UVAHT. The power consumption increases with the cutting speed, vibration frequency, and amplitude. However, the increase in the power consumption is more prominent when the cutting speed changes, followed by vibration frequency and amplitude. The flank wear increases with the cutting speed and vibration amplitude and decreases with the vibration frequency. This study contributes to a better understanding of the underlying dynamics of UVAHT, which will help to improve precision machining procedures for hard materials. The paper explores the practical significance of these discoveries for hard material precision machining.
AISI 52100 钢的超声波振动辅助硬车削:比较评估和利用尺寸分析建模
导言。硬脆材料的精密加工十分困难,这促使人们开发出新型和可持续的技术,如超声波振动辅助车削(UVAT),以提高去除率、表面质量和刀具寿命。工作目的由于刀具磨损和加工限制,使用性价比高的涂层硬质合金刀具代替操作成本高的陶瓷和 CBN 刀片进行硬车削仍未被广泛接受。一些研究人员尝试使用不同涂层、不同冷却技术等的硬质合金刀具进行硬车削,以获得更好的加工性能。然而,很少有研究人员尝试超声波振动辅助硬车削(UVAHT)。此外,公开文献中也很少报道利用尺寸分析对 UVAHT 进行比较评估的情况。调查方法有鉴于此,本研究使用 PVD 涂层 TiAlSiN 硬质合金刀具对 AISI 52100 钢(62 HRC)进行传统车削 (CT) 和超声波振动辅助硬车削 (UVAHT) 时的刀具磨损和功率消耗进行了比较评估。在保持振动频率和振幅分别为 20 kHz 和 20 µm 不变的情况下,进行了改变切削速度、进给量和切削深度的实验。此外,在进给量和切削深度分别为 0.085 mm/rev 和 0.4 mm 的恒定条件下,考虑到切削速度、振动频率和振幅的影响,利用尺寸分析概念(即 Buckingham Pi 定理)建立了一个理论模型来预测刀具磨损和功率消耗。创建了无量纲组,以揭示复杂的联系并优化加工条件。实验测量了刀具磨损和功率消耗,并使用白金汉皮氏定理进行了统计分析。结果与讨论。通过尺寸分析,研究揭示了 UVAHT 加工过程中的实质性问题。结果表明,超声波振动参数对刀具磨损和功率消耗有重大影响。无量纲组为完善加工条件提供了方法基础。刀具磨损和功率消耗随着切削速度、切削深度和进给量的增加而增加。不过,这种影响在 CT 中比在 UVAHT 中更为明显。功耗随切削速度、振动频率和振幅的增加而增加。但是,切削速度变化时,功耗的增加更为明显,其次是振动频率和振幅。齿面磨损随切削速度和振动振幅的变化而增加,随振动频率的变化而减少。这项研究有助于更好地理解 UVAHT 的基本动态,从而有助于改进硬质材料的精密加工程序。本文探讨了这些发现对硬质材料精密加工的实际意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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