Active vibration control using an adaptronic smart platform for high precision cutting machines

被引:0
|
作者
El-said, M. [1 ]
机构
[1] Katholieke Univ Leuven, Dept Mech Engn, B-3001 Heverlee, Belgium
来源
PROCEEDINGS OF INTERNATIONAL CONFERENCE ON NOISE AND VIBRATION ENGINEERING (ISMA2012) / INTERNATIONAL CONFERENCE ON UNCERTAINTY IN STRUCTURAL DYNAMICS (USD2012) | 2012年
关键词
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Vibration control is gaining an increasing competitive advantage in machine tool design. In particular for Ultra High Precision Machining, the goal of machine tool design is to guarantee high accuracy, specified performances, and to maintain them over life cycle time. Micromilling operations have to generate outputs characterized by very close tolerances, high precision and surface finishing. During the machining process (e. g. milling), the contact between the cutting tool and the work-piece surface at the tool tip point generates chattering vibrations. Any vibration is recorded on the workpiece surface, directly affecting its roughness, which leads to poor surface finishing, unacceptable in high precision milling. In this paper the active vibration control of an innovative mechatronic subsystem (Smart Platform), which can be installed, in a modular way within ultra high precision micromilling machines is presented. The smart platform includes two main parts: the fixed platform, which is directly constrained to the machine tool ram, and the mobile platform, which is constrained to the housing of the spindle. Three piezoelectric actuators-sensors units are connected the two platforms in axisymmetrical configuration, with 120 degrees difference angle. The design idea is based on the incorporation of three high performance piezoelectric displacement actuators, each equipped with a collocated, piezoelectric force sensor, in an axisymmetrical configuration within a mechanical holding structure, using suitable mechanical and electronic interfaces. Every piezo actuator is connected to an innovative flexural joint, designed to avoid torsional and shear stresses to the piezo elements. Furthermore, two flexural springs are positioned close to every actuator, which have been designed to connect the two platforms (fixed and mobile). Every spring is characterized by high torsional and radial stiffness, but free to move in axial direction. The proposed active control techniques of the smart platform aims to improve the high precession machining operation by using a broadband AVC strategy, which could dynamically compensate for the vibrations of the tool tip, by actuating in three degrees of freedom: one axial and two bending. Firstly, a dynamic identification and modelling of the Smart Platform is presented. Secondly, an integrated mechatronic model able to predict in closed-loop the active damping and vibration-suppression capability of the integrated system is presented and simulation results are discussed. Finally, the effectiveness of the Smart Platform for active vibration control is experimentally illustrated on a dedicated experimental setup. According to the experimental results, the used active vibration control techniques is able to effectively damping the vibration of the tool tip especially around the resonance frequency, successfully damping all of the three resonance modes, between 100 and 170 Hz, with a reduction factor up to 75%, also it is able to improve the dynamic stiffness of the tool tip for a wide range of operating frequencies.
引用
收藏
页码:251 / 251
页数:1
相关论文
共 50 条
  • [41] Nonlinear Robust Control Method for Active Vibration Isolation Using a Stewart Platform
    Yang, Tao
    Ma, Jia
    Hou, Zeng-Guang
    Jing, Fengshui
    Tan, Min
    2008 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND BIOMIMETICS, VOLS 1-4, 2009, : 1059 - 1064
  • [42] Active vibration control of smart hull structure using piezoelectric composite actuators
    Sohn, Jung Woo
    Choi, Seung-Bok
    MULTI-FUNCTIONAL MATERIALS AND STRUCTURES, PTS 1 AND 2, 2008, 47-50 : 137 - 140
  • [43] Active vibration control of smart hull structure using piezoelectric composite actuators
    Sohn, Jung Woo
    Choi, Seung-Bok
    Lee, Chul-Hee
    SMART MATERIALS AND STRUCTURES, 2009, 18 (07)
  • [44] Active vibration isolation in a "smart spring" mount using a repetitive control approach
    Daley, S.
    Hatonen, J.
    Owens, D. H.
    CONTROL ENGINEERING PRACTICE, 2006, 14 (09) : 991 - 997
  • [45] Active vibration control of smart structure using poling tuned piezoelectric material
    Sharma, Saurav
    Kumar, Anuruddh
    Kumar, Rajeev
    Talha, Mohammad
    Vaish, Rahul
    JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2020, 31 (10) : 1298 - 1313
  • [46] Smart Active Vibration Control System of a Rotary Structure Using Piezoelectric Materials
    Hashemi, Ali
    Jang, Jinwoo
    Hosseini-Hashemi, Shahrokh
    SENSORS, 2022, 22 (15)
  • [47] Active vibration control of piezoelectric bonded smart structures using PID algorithm
    Zhang Shunqi
    Schmidt, Ruediger
    Qin Xiansheng
    CHINESE JOURNAL OF AERONAUTICS, 2015, 28 (01) : 305 - 313
  • [48] Active vibration control of frame structures with smart structure using magnetostrictive actuators
    Fujita, T
    Nonaka, H
    Yang, CS
    Kondo, H
    Mori, Y
    Amasaka, Y
    SMART STRUCTURES AND MATERIALS 1998: SMART STRUCTURES AND INTEGRATED SYSTEMS, PTS 1 AND 2, 1998, 3329 : 584 - 595
  • [49] Active vibration control of piezoelectric bonded smart structures using PID algorithm
    Zhang Shunqi
    Rdiger Schmidt
    Qin Xiansheng
    Chinese Journal of Aeronautics, 2015, (01) : 305 - 313
  • [50] Active vibration control of piezoelectric bonded smart structures using PID algorithm
    Zhang Shunqi
    Rdiger Schmidt
    Qin Xiansheng
    Chinese Journal of Aeronautics, 2015, 28 (01) : 305 - 313