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A novel ultrasonic surface machining tool utilizing elastic traveling waves

机译:一种新型超声波表面加工工具,利用弹性行进波

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摘要

With the rapid development of modern industrial technology and high performance technology products, ultra-precision machining technology becomes increasingly important. However, joint clearance of kinematic pairs, lack of feeding accuracy and overlarge contact stress still limit the further improvement of ultra-precision machining technology. In this study, a novel surface machining method utilizing structural elastic waves was proposed, and a machining tool using the piezoelectric actuating principle was presented for verifying the proposed method. Two vibration modes with a phase shift of pi/2 in both space and time domains are exited simultaneously in the elliptical motion of points on the structural surface. By means of adjusting driving signal parameters, such as frequency, voltage amplitude and phase shift, different machining performances could be achieved. The configuration and working vibration modes of the proposed machining tool were firstly calculated by the finite element method, and then the optimal working frequency of the machining tool prototype was determined by vibration characteristic experiments. At last, machining characteristic experiments were conducted to validate the proposed machining method. Experimental results showed that the minimum working contact force between the machining tool and workpiece was 1 N, and the chipped depth of 1.93 mu m was achieved at the same contact force after machining for 5 min. And at the conditions of the contact force of 6 N, two driving voltages of 400 V-pp with a phase shift of pi/2, and machining time of 5 min, the prototype could achieve to machine the workpiece most efficiently and the roughness of the machined workpiece surface could be reached approximating 0.20 mu m. In conclusion, this proposed machining method could achieve a good quality machined surface with low residual stress and little damage by applying low contact force. Furthermore, it also had the advantage of no joint clearance error due to no kinematic pair in the structure, which improves the machining precision. (C) 2017 Elsevier B.V. All rights reserved.
机译:随着现代工业技术和高性能技术产品的快速发展,超精密加工技术变得越来越重要。然而,运动成对的关节间隙,缺乏喂养精度和过度接触应力仍然限制了超精密加工技术的进一步改进。在该研究中,提出了一种新的表面加工方法,利用结构弹性波,并提出了一种使用压电致动原理的加工工具,用于验证所提出的方法。两个空间和时畴中具有PI / 2相移相移的两个振动模式,同时在结构表面上的点的椭圆运动中同时退出。通过调整驱动信号参数,例如频率,电压幅度和相移,可以实现不同的加工性能。通过有限元法首先计算所提出的加工工具的配置和工作振动模式,然后通过振动特性实验确定加工工具原型的最佳工作频率。最后,进行加工特性实验以验证所提出的加工方法。实验结果表明,加工工具和工件之间的最小工作接触力为1N,在加工5分钟后,在相同的接触力下实现1.93μm的切屑深度。在6 n的接触力的条件下,两个驱动电压为400 V-PP,相移PI / 2的相移,以及5分钟的加工时间,原型可以最有效地为工件加工而且粗糙度可以达到加工的工件表面近似0.20μm。总之,这种提出的加工方法可以通过施加低接触力来实现具有低残余应力的优质加工表面,损坏很小。此外,由于结构中没有运动对,它还具有联合间隙误差的优点,这提高了加工精度。 (c)2017 Elsevier B.v.保留所有权利。

著录项

  • 来源
    《Ultrasonics》 |2017年第2017期|共9页
  • 作者单位

    Nanjing Univ Aeronaut &

    Astronaut State Key Lab Mech &

    Control Mech Struct 29 Yudao St Nanjing 210016 Peoples R China;

    Nanjing Univ Aeronaut &

    Astronaut State Key Lab Mech &

    Control Mech Struct 29 Yudao St Nanjing 210016 Peoples R China;

    Nanjing Univ Aeronaut &

    Astronaut State Key Lab Mech &

    Control Mech Struct 29 Yudao St Nanjing 210016 Peoples R China;

    Nanjing Univ Aeronaut &

    Astronaut State Key Lab Mech &

    Control Mech Struct 29 Yudao St Nanjing 210016 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 超声学;
  • 关键词

    Ultrasonic; Surface machining method; Elliptical motion; Ultra-procision; Elastic traveling waves;

    机译:超声波;表面加工方法;椭圆运动;超出;弹性行驶波;

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