Theoretical investigation on nonlinear dynamic characteristic of spindle system

Radial gap will occur at the spindle–tool holder interface when the spindle rotates at high speed. Therefore, the radial gap will lead to the nonlinear stiffness at the spindle–tool holder connection, and it will have effects on dynamic characteristic of spindle system. In this research, classic ela...

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Main Authors: Xiangsheng Gao, Zeyun Qin, Min Wang, Yuming Hao, Ziyu Liu
Format: Article
Language:English
Published: SAGE Publishing 2020-06-01
Series:Advanced Composites Letters
Online Access:https://doi.org/10.1177/2633366X20911665
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spelling doaj-39125d73015942da91eaf5ca7ac581402020-11-25T04:11:10ZengSAGE PublishingAdvanced Composites Letters0963-69352020-06-012910.1177/2633366X20911665Theoretical investigation on nonlinear dynamic characteristic of spindle systemXiangsheng Gao0Zeyun Qin1Min Wang2Yuming Hao3Ziyu Liu4 Beijing Key Laboratory of Advanced Manufacturing Technology, College of Mechanical Engineering and Applied Electronics Technology, Beijing University of Technology, Beijing, China Beijing Key Laboratory of Advanced Manufacturing Technology, College of Mechanical Engineering and Applied Electronics Technology, Beijing University of Technology, Beijing, China Beijing Key Laboratory of Electro-machining Technology, Beijing, China Shenyang Blower Works Group Corporation, Shenyang, China Department of Materials and Tissue, University College London, London, UKRadial gap will occur at the spindle–tool holder interface when the spindle rotates at high speed. Therefore, the radial gap will lead to the nonlinear stiffness at the spindle–tool holder connection, and it will have effects on dynamic characteristic of spindle system. In this research, classic elastic theory is adopted to evaluate the nonlinear stiffness at spindle–tool holder interface. Dynamic model of spindle system is established considering the nonlinear stiffness at spindle–tool holder interface. The fourth-order Runge–Kutta method is applied to solve dynamic response of the spindle system. On that basis, effects of drawbar force on dynamic characteristic of the system are investigated. Considering the cutting force, effects of rotational speed on dynamic response of cutter tip are also discussed. The numerical results show that the drawbar force has effects on vibration mode of cutter tip. Chaotic motion will not occur within the range concerned in engineering practice. Considering the cutting force, the motion of cutter tip turns to be chaotic. The proper rotational speed and drawbar force should be chosen to ensure a stable cutting according to the response of cutter tip.https://doi.org/10.1177/2633366X20911665
collection DOAJ
language English
format Article
sources DOAJ
author Xiangsheng Gao
Zeyun Qin
Min Wang
Yuming Hao
Ziyu Liu
spellingShingle Xiangsheng Gao
Zeyun Qin
Min Wang
Yuming Hao
Ziyu Liu
Theoretical investigation on nonlinear dynamic characteristic of spindle system
Advanced Composites Letters
author_facet Xiangsheng Gao
Zeyun Qin
Min Wang
Yuming Hao
Ziyu Liu
author_sort Xiangsheng Gao
title Theoretical investigation on nonlinear dynamic characteristic of spindle system
title_short Theoretical investigation on nonlinear dynamic characteristic of spindle system
title_full Theoretical investigation on nonlinear dynamic characteristic of spindle system
title_fullStr Theoretical investigation on nonlinear dynamic characteristic of spindle system
title_full_unstemmed Theoretical investigation on nonlinear dynamic characteristic of spindle system
title_sort theoretical investigation on nonlinear dynamic characteristic of spindle system
publisher SAGE Publishing
series Advanced Composites Letters
issn 0963-6935
publishDate 2020-06-01
description Radial gap will occur at the spindle–tool holder interface when the spindle rotates at high speed. Therefore, the radial gap will lead to the nonlinear stiffness at the spindle–tool holder connection, and it will have effects on dynamic characteristic of spindle system. In this research, classic elastic theory is adopted to evaluate the nonlinear stiffness at spindle–tool holder interface. Dynamic model of spindle system is established considering the nonlinear stiffness at spindle–tool holder interface. The fourth-order Runge–Kutta method is applied to solve dynamic response of the spindle system. On that basis, effects of drawbar force on dynamic characteristic of the system are investigated. Considering the cutting force, effects of rotational speed on dynamic response of cutter tip are also discussed. The numerical results show that the drawbar force has effects on vibration mode of cutter tip. Chaotic motion will not occur within the range concerned in engineering practice. Considering the cutting force, the motion of cutter tip turns to be chaotic. The proper rotational speed and drawbar force should be chosen to ensure a stable cutting according to the response of cutter tip.
url https://doi.org/10.1177/2633366X20911665
work_keys_str_mv AT xiangshenggao theoreticalinvestigationonnonlineardynamiccharacteristicofspindlesystem
AT zeyunqin theoreticalinvestigationonnonlineardynamiccharacteristicofspindlesystem
AT minwang theoreticalinvestigationonnonlineardynamiccharacteristicofspindlesystem
AT yuminghao theoreticalinvestigationonnonlineardynamiccharacteristicofspindlesystem
AT ziyuliu theoreticalinvestigationonnonlineardynamiccharacteristicofspindlesystem
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