An Intelligent Non-Collocated Control Strategy for Ball-Screw Feed Drives with Dynamic Variations

The ball-screw feed drive has varying high-order dynamic characteristics due to flexibilities of the slender screw spindle and joints between components, and an obvious feature of non-collocated control when a direct position measurement using a linear scale is employed. The dynamic characteristics...

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Main Authors: Hui Liu, Jun Zhang, Wanhua Zhao
Format: Article
Language:English
Published: Elsevier 2017-10-01
Series:Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2095809917307154
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spelling doaj-ebd7686f03b144d5be515830571588ed2020-11-25T01:56:41ZengElsevierEngineering2095-80992017-10-013564164710.1016/J.ENG.2017.04.007An Intelligent Non-Collocated Control Strategy for Ball-Screw Feed Drives with Dynamic VariationsHui Liu0Jun Zhang1Wanhua Zhao2State Key Laboratory for Manufacturing Systems Engineering, Xi’an Jiaotong University, Xi’an 710054, ChinaState Key Laboratory for Manufacturing Systems Engineering, Xi’an Jiaotong University, Xi’an 710054, ChinaState Key Laboratory for Manufacturing Systems Engineering, Xi’an Jiaotong University, Xi’an 710054, ChinaThe ball-screw feed drive has varying high-order dynamic characteristics due to flexibilities of the slender screw spindle and joints between components, and an obvious feature of non-collocated control when a direct position measurement using a linear scale is employed. The dynamic characteristics and non-collocated situation have long been the source of difficulties in motion and vibration control, and deteriorate the achieved accuracy of the axis motion. In this study, a dynamic model using a frequency-based substructure approach is established, considering the flexibilities and their variation. The position-dependent variation of the dynamic characteristics is then fully investigated. A corresponding control strategy, which is composed of a modal characteristic modifier (MCM) and an intelligent adaptive tuning algorithm (ATA), is then developed. The MCM utilizes a combination of peak filters and notch filters, thereby shaping the plant dynamics into a virtual collocated system and avoiding control spillover. An ATA using an artificial neural network (ANN) as a smooth parameter interpolator updates the parameters of the filters in real time in order to cope with the feed drive’s dynamic variation. Numerical verification of the effectiveness and robustness of the proposed strategy is shown for a real feed drive.http://www.sciencedirect.com/science/article/pii/S2095809917307154Ball-screw feed drivesVarying high-order dynamicsNon-collocated controlModal characteristic modifierIntelligent adaptive tuning algorithm
collection DOAJ
language English
format Article
sources DOAJ
author Hui Liu
Jun Zhang
Wanhua Zhao
spellingShingle Hui Liu
Jun Zhang
Wanhua Zhao
An Intelligent Non-Collocated Control Strategy for Ball-Screw Feed Drives with Dynamic Variations
Engineering
Ball-screw feed drives
Varying high-order dynamics
Non-collocated control
Modal characteristic modifier
Intelligent adaptive tuning algorithm
author_facet Hui Liu
Jun Zhang
Wanhua Zhao
author_sort Hui Liu
title An Intelligent Non-Collocated Control Strategy for Ball-Screw Feed Drives with Dynamic Variations
title_short An Intelligent Non-Collocated Control Strategy for Ball-Screw Feed Drives with Dynamic Variations
title_full An Intelligent Non-Collocated Control Strategy for Ball-Screw Feed Drives with Dynamic Variations
title_fullStr An Intelligent Non-Collocated Control Strategy for Ball-Screw Feed Drives with Dynamic Variations
title_full_unstemmed An Intelligent Non-Collocated Control Strategy for Ball-Screw Feed Drives with Dynamic Variations
title_sort intelligent non-collocated control strategy for ball-screw feed drives with dynamic variations
publisher Elsevier
series Engineering
issn 2095-8099
publishDate 2017-10-01
description The ball-screw feed drive has varying high-order dynamic characteristics due to flexibilities of the slender screw spindle and joints between components, and an obvious feature of non-collocated control when a direct position measurement using a linear scale is employed. The dynamic characteristics and non-collocated situation have long been the source of difficulties in motion and vibration control, and deteriorate the achieved accuracy of the axis motion. In this study, a dynamic model using a frequency-based substructure approach is established, considering the flexibilities and their variation. The position-dependent variation of the dynamic characteristics is then fully investigated. A corresponding control strategy, which is composed of a modal characteristic modifier (MCM) and an intelligent adaptive tuning algorithm (ATA), is then developed. The MCM utilizes a combination of peak filters and notch filters, thereby shaping the plant dynamics into a virtual collocated system and avoiding control spillover. An ATA using an artificial neural network (ANN) as a smooth parameter interpolator updates the parameters of the filters in real time in order to cope with the feed drive’s dynamic variation. Numerical verification of the effectiveness and robustness of the proposed strategy is shown for a real feed drive.
topic Ball-screw feed drives
Varying high-order dynamics
Non-collocated control
Modal characteristic modifier
Intelligent adaptive tuning algorithm
url http://www.sciencedirect.com/science/article/pii/S2095809917307154
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