深孔变刚度/阻尼钻削系统的建模与稳定性研究

孔令飞,陈博,王杰,崔博

振动与冲击 ›› 2018, Vol. 37 ›› Issue (16) : 190-197.

PDF(2085 KB)
PDF(2085 KB)
振动与冲击 ›› 2018, Vol. 37 ›› Issue (16) : 190-197.
论文

深孔变刚度/阻尼钻削系统的建模与稳定性研究

  • 孔令飞,陈博,王杰,崔博
作者信息 +

A dynamic model and stability of cutting tools with varying stiffness and damping in the deep-hole drilling process

  • KONG Lingfei,CHEN Bo,WANG Jie,CUI Bo
Author information +
文章历史 +

摘要

依据深孔钻削刀具系统的实际布局形式,构建了包含有变刚度/阻尼辅助支撑的深孔加工刀具系统模型,模型中考虑了引发陀螺效应及切厚再生效应的因素。以Euler-Bernoulli梁单元模型为基础,运用矩阵传递函数方法,使得更多至关重要的局部设计信息融入进深孔刀具系统动力学方程,例如变刚度/阻尼辅助支撑、授油器及刀具结构形式等。通过理论计算与实验结果的对比,证实了该模型的准确性与可行性。以此为基础,结合频域特征向量的稳定性判据,研究了综合陀螺效应及切厚再生效应影响因素条件下深孔钻削刀具系统的稳定性与加工转速、钻削深度及施加的励磁电流之间的关联关系,验证了新型变刚度/阻尼钻削系统对提升刀具系统稳定性的有效性,这些将为实现深孔切削刀具振动行为带有目标性地主动式调控奠定基础。

Abstract

Considering the practical layout of tool systems in deep-hole drilling, a drilling system model with varying stiffness and damping support was proposed, which includes a gyroscopic effect and regenerative chatter.Relying on the Euler-Bernoulli beam theory and the transfer matrix method, some important locally-designing information in detail could be considering, such as the intermediate support, oil supply device and cutting tool parameters.A series of experimental investigations was carried out to confirm the accuracy and effectiveness of the dynamic model proposed in this paper.Based on the aforementioned content, the dynamic stability features based on conditions of various drilling depths, tool rotation speeds and electric currents applied were obtained, and the effect of intermediate support with varying stiffness and damping was validated in the phenomenon of lobe suppression.These relevant results built a solid foundation for predicting and targeting active control of vibration behaviors in the deep-hole machining process.

关键词

深孔钻削 / 振动抑制 / 变刚度/阻尼 / 系统建模 / 稳定性

Key words

Deep hole drilling / Vibration suppression / Varying stiffness and damping / System modeling / Stability

引用本文

导出引用
孔令飞,陈博,王杰,崔博. 深孔变刚度/阻尼钻削系统的建模与稳定性研究[J]. 振动与冲击, 2018, 37(16): 190-197
KONG Lingfei,CHEN Bo,WANG Jie,CUI Bo . A dynamic model and stability of cutting tools with varying stiffness and damping in the deep-hole drilling process[J]. Journal of Vibration and Shock, 2018, 37(16): 190-197

参考文献

[1]  Ahmadi K, Altintas Y. Stability of lateral, torsional and axial vibrations in drilling [J]. International Journal of Machine Tools and Manufacture, 2013, 68: 63-74.
[2]  Kong L F, Chin J H, Li Y, et al. Targeted suppression of vibration in deep hole drilling using magneto-rheological fluid damper[J]. Journal of Materials Processing Technology, 2014, 214(11):2617-2626.
[3]  Deng C S, Chin J H. Roundness errors in BTA drilling and a model of waviness and lobing caused by resonant forced vibrations of its long drill shaft [J]. Journal of Manufacturing Science and Engineering, 2004, 126(3):524-534.
[4]  Mehrabadi I M, Nouri M, Madoliat R. Investigating chatter vibration in deep drilling, including process damping and the gyroscopic effect [J]. International Journal of Machine Tools and Manufacture, 2009, 49(12–13):939-946.
[5]  Roukema J C, Altintas Y. Generalized modeling of drilling vibrations. Part I: Time domain model of drilling kinematics, dynamics and hole formation [J]. International Journal of Machine Tools and Manufacture, 2007, 47(9):1455-1473.
[6]  Matsuzaki K, Ryu T, Sueoka A et al. Theoretical and experimental study on rifling mark generating phenomena in BTA deep hole drilling process (generating mechanism and countermeasure)[J]. International Journal of Machine Tools & Manufacture, 2014, 88:194-205.
[7] 孔令飞, 孟维昌, 侯晓丽等. 深孔钻削刀具系统磁流变制振器设计及其动态性能研究[J]. 振动与冲击, 2016, 35(12):117-124.
Kong L F, Meng W C, Hou X L et al. Design and dynamic characteristics of magnetorheological vibration suppression device in deep-hole drilling process [J]. Journal of Vibration and Shock, 2016, 35(12):117-124.
[8]  Hussien M A W, Rama B B, Kudret D. Whirling vibration in boring trepanning association deep hole boring process: Analytical and experimental investigations [J]. ASME, Journal of Manufacturing Science and Engineering, 2007, 129(1): 48−62.
[9]  Gao C H, Cheng K, Kirkwood D. The investigation on the machining process of BTA deep hole drilling [J]. Journal of Materials Processing Technology, 2000, 107(1):222-227.
[10]  Bayly P V, Young K A, Calvert S G et al. Analysis of tool oscillation and hole roundness error in a quasi-static model of reaming[J]. Journal of Manufacturing Science and Engineering, 2001, 123(3):387-396.
[11]  Bayly P V, Lamar M T, Calvert S G. Low-frequency regenerative vibration and the formation of lobed holes in drilling[J]. Journal of Manufacturing Science and Engineering, 2002, 124(2):163-171.
[12]  Bellan C, Bossis G. Field dependence of viscoelastic properties of MR elastomers [J]. International Journal of Modern Physics B, 2012, 16(17-18):2447-2453.
[13]  Gessesse Y B, Latinovic V N, Osman M O M. On the problem of spiralling in BTA deep-hole machining [J]. ASME, Journal of Engineering for Industry, 1994, 116: 161-165.
[14]  Weihs C, Raabe N, Webber O. Deriving a statistical model for the prediction of spiralling in BTA Deep-Hole-Drilling from a Physical Model [C]. Cooperation in Classification and Data Analysis, Springer Berlin Heidelberg, 2006, 107-114.
[15]  Brecher C, Manoharan D, Ladra U et al. Chatter suppression with an active workpiece holder[J]. Production Engineering, 2010, 4(2):239-245.

PDF(2085 KB)

Accesses

Citation

Detail

段落导航
相关文章

/