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Theoretical and experimental study on ultrasonic-vibration-assisted grinding.

机译:超声振动辅助磨削的理论和实验研究。

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摘要

Poor machinability of hard-to-machine materials (such as advanced ceramics and titanium) limits their applications in industries. Ultrasonic-vibration-assisted grinding (UVAG), a hybrid machining process combining material-removal mechanisms of diamond grinding and ultrasonic machining, is one cost-effective machining method for these materials. Compared to ultrasonic machining, UVAG has much higher material removal rate while maintaining lower cutting pressure and torque, reduced edge chipping and surface damage, improved accuracy, and lower tool wear rate. However, physics-based models to predict cutting force in UVAG have not been reported to date. Furthermore, edge chipping is one of the technical challenges in UVAG of brittle materials. There is no report related to effects of cutting tool design on edge chipping in UVAG of brittle materials.;The goal of this research is to provide new knowledge of machining these hard-tomachine materials with UVAG for further improvements in machining cost and surface quality. First, a thorough literature review is given to show what has been done in this field. Then, a physics-based predictive cutting force model and a mechanistic cutting force model are developed for UVAG of ductile and brittle materials, respectively. Effects of input variables (diamond grain number, diamond grain diameter, vibration amplitude, vibration frequency, spindle speed, and federate) on cutting force are studied based on the developed models. Interaction effects of input variables on cutting force are also studied. In addition, an FEA model is developed to study effects of cutting tool design and input variables on edge chipping. Furthermore, some trends predicted from the developed models are verified through experiments. The results in this dissertation could provide guidance for choosing reasonable process variables and designing diamond tools for UVAG.
机译:难加工材料(例如高级陶瓷和钛)的可加工性差,限制了它们在工业中的应用。超声振动辅助磨削(UVAG)是一种将金刚石磨削的材料去除机制与超声加工相结合的混合加工工艺,是一种经济高效的加工方法。与超声波加工相比,UVAG具有更高的材料去除率,同时保持了较低的切削压力和扭矩,减少了边缘碎裂和表面损伤,提高了精度,并降低了刀具磨损率。但是,迄今为止尚未报道基于物理的模型来预测UVAG中的切削力。此外,边缘碎裂是脆性材料UVAG中的技术挑战之一。没有关于切削工具设计对脆性材料UVAG中的边缘崩刃的影响的报道。;本研究的目的是提供利用UVAG加工这些难加工材料的新知识,以进一步改善加工成本和表面质量。首先,进行了详尽的文献综述,以显示在该领域已经做了什么。然后,针对韧性和脆性材料的UVAG分别建立了基于物理的预测切削力模型和机械切削力模型。基于已开发的模型,研究了输入变量(金刚石晶粒数,金刚石晶粒直径,振动幅度,振动频率,主轴转速和联邦刀具)对切削力的影响。还研究了输入变量对切削力的相互作用影响。此外,还开发了一个FEA模型来研究切削刀具设计和输入变量对切边的影响。此外,通过实验验证了从已开发模型预测的一些趋势。本文的研究结果可为选择合理的工艺变量和设计UVAG金刚石工具提供指导。

著录项

  • 作者

    Qin, Na.;

  • 作者单位

    Kansas State University.;

  • 授予单位 Kansas State University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 203 p.
  • 总页数 203
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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