Effect of metallic substrate and rubber elastic materials over passive constrained layer damping on tool vibration during boring process

G. Lawrance, P. Paul, DS Shylu, DS Ebenezer Jacob Dhas, C. Dineshkumar, PD Jeyakumar, S. Muthiya, Netsanet Ayele Getachew
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Abstract

Tool vibration is a key factor that affects surface finish, generates noise, and reduces the tool life during conventional boring because of the excessive overhanging length of the tool holder. The interaction between the dynamics of the machine tool and the boring process led to progressive vibration. The creation of appropriate mechanisms in reducing tool vibration will help manufacturing industries to become more productive. In this research, in order to control vibration in the overhanging boring bar, a passive vibration control method was employed. Constrained layer dampers consist of boring bar, substrate, and elastic materials and it is used to minimize tool vibration produced during boring operation. The investigation utilized computational analysis through the ANSYS Workbench platform, employing key parameters such as the overhanging length of the tool holder (100, 150, and 200 mm), substrate material (aluminum, brass, and copper), and elastic material (Nitrile rubber, Natural rubber, and polyurethane). A comprehensive series of 27-run boring experiments were conducted to assess the impact of the constrained layer damper on tool vibration and cutting properties. The results of the study revealed remarkable improvements in various performance metrics. The constrained layer damper demonstrated an impressive 98% reduction in tool vibration, signifying its efficacy in dampening vibrational forces during the boring operation. Furthermore, a substantial 83% decrease in surface roughness was observed, indicating enhanced machining precision and surface finish. The constrained layer damper also exhibited a noteworthy 97.5% reduction in tool wear, highlighting its ability to significantly prolong tool life under challenging machining conditions.
金属基体和橡胶弹性材料被动约束层阻尼对镗削过程中刀具振动的影响
在传统的镗孔加工中,刀具振动是影响表面光洁度、产生噪音和缩短刀具寿命的一个关键因素,因为刀架悬伸长度过长。机床动态和镗孔过程之间的相互作用导致了渐进式振动。建立减少刀具振动的适当机制将有助于提高制造业的生产率。在这项研究中,为了控制悬伸镗杆的振动,采用了一种被动振动控制方法。约束层阻尼器由镗杆、基体和弹性材料组成,用于将镗孔操作过程中产生的工具振动降至最低。研究利用 ANSYS Workbench 平台进行计算分析,采用的关键参数包括刀架悬垂长度(100、150 和 200 毫米)、基体材料(铝、黄铜和铜)和弹性材料(丁腈橡胶、天然橡胶和聚氨酯)。为了评估约束层阻尼器对刀具振动和切削性能的影响,我们进行了一系列共 27 次的镗孔实验。研究结果表明,各种性能指标均有显著改善。约束层阻尼器显著降低了 98% 的刀具振动,表明其在镗孔操作过程中有效抑制了振动力。此外,表面粗糙度大幅降低了 83%,表明加工精度和表面光洁度得到了提高。约束层阻尼器还显著减少了 97.5% 的刀具磨损,突出表明它能够在具有挑战性的加工条件下显著延长刀具寿命。
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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