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Active tool vibration control and tool condition monitoring using a self-sensing actuator

Dissertation (PhD (Mechanical Engineering))--University of Pretoria, 2016.

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Other Authors: Theron, Nicolaas J.
Format: Thesis
Language:English
Published: University of Pretoria 2023
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access_status_str Open Access
author2 Theron, Nicolaas J.
author_browse Theron, Nicolaas J.
author_facet Theron, Nicolaas J.
collection Thesis
dc_rights_str_mv © 2021 University of Pretoria. All rights reserved. The copyright in this work vests in the University of Pretoria. No part of this work may be reproduced or transmitted in any form or by any means, without the prior written permission of the University of Pretoria.
description Dissertation (PhD (Mechanical Engineering))--University of Pretoria, 2016.
format Thesis
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institution University of Pretoria (South Africa)
language English
last_indexed 2026-06-10T12:39:11.828Z
license_str Other — see source repository
provenance_str_mv Harvested via OAI-PMH from UPSpace — University of Pretoria Institutional Repository
publishDate 2023
publishDateRange 2023
publishDateSort 2023
publisher University of Pretoria
publisherStr University of Pretoria
record_format dspace
source_str UPSpace — University of Pretoria Institutional Repository
spelling oai:repository.up.ac.za:2263/90642 Active tool vibration control and tool condition monitoring using a self-sensing actuator Theron, Nicolaas J. burkhard.freyer@gmail.com Heyns, P.S. (Philippus Stephanus) Freyer, Burkhard Heinrich UCTD Tool vibration Self-sensing actuator Tool wear-monitoring Wavelet packet analysis Adaptive feedback active noise control Structure dynamic modelling Dissertation (PhD (Mechanical Engineering))--University of Pretoria, 2016. The studies consist of two simulations of active tool vibration control and tool condition monitoring respectively and a hardware-in-the-loop laboratory demonstration of active tool vibration control typical to turning. Besides reducing the restricting effects of tool vibrations on productivity, work-piece surface finish and tool life, it is desirable to handle lack of space at the tool tip and the cost of control systems in turning processes in an effective way. These two aspects are here considered by means of the concept of a self-sensing actuator (SSA) in the simulation of tool vibration control. In the simulation an IIRfilter represents the structure of the passive tool holder. A known pre-filtering technique was applied to the error in a feedback filtered-x LMS algorithm to maintain the stability of the control system. The self-sensing path is modelled and illustrated. The IIR-filters and their inverses were used for modelling this path, with equations resulting from the nodal displacements associated with nodes that have forces acting on them. For the cantilever type structure a considerable reduction of 93% of the displacement r.m.s. values of the tool tip, was obtained when using this control system. Signal processing using orthogonal cutting force components for tool condition monitoring (TCM) has established itself in literature. Single axis strain sensors however limit TCM to linear combination of cutting force components. This situation may arise when a single axis piezoelectric actuator is simultaneously used as an actuator and a sensor, e.g. its vibration control feedback signal exploited for monitoring purposes. Processing of a linear combination of cutting force components to the reference case of processing orthogonal components is compared. The same time-delay neural network structure has been applied in each case. Reconstruction of the dynamic force acting at the tool tip in a turning process is described. By simulation this dynamic force signal was applied to a model of the tool holder equipped with a SSA. Using a wavelet packet analysis, wear-sensitive features were extracted. The probability of a difference less than 5 percentage points between the flank wear estimation errors of abovementioned two processing strategies is at least 95 %. This study proves the basic concept of adaptive feedback active vibration control in combination with a self-sensing actuator to control tool vibrations. The structure involved is representative of a tool post clamped tool holder. The advantages that adaptive control hold when applied to non-stationary vibrations motivate this investigation. Secondly the dual functionality of a piezoelectric element is utilized for system simplification. Actuator linearization measures are considered and a model for the system’s forward path identified. The tool vibrations signal for this work is of 100 Hz bandwidth around the representative tool holder bending mode. A downscaled force based on real cutting force characteristics was artificially applied to the representative tool holder. Limited form locking contact with the tool holder restricted the actuator’s reaction to compressive forces only. Results of up to 70% attenuation of vibration induced strain on the SSA were achieved. This method clearly shows concept viability. Mechanical and Aeronautical Engineering PhD (Mechanical Engineering) Unrestricted 2023-05-11T10:20:00Z 2023-05-11T10:20:00Z 2017 2016 Thesis * A2016 http://hdl.handle.net/2263/90642 en © 2021 University of Pretoria. All rights reserved. The copyright in this work vests in the University of Pretoria. No part of this work may be reproduced or transmitted in any form or by any means, without the prior written permission of the University of Pretoria. application/pdf University of Pretoria
spellingShingle UCTD
Tool vibration
Self-sensing actuator
Tool wear-monitoring
Wavelet packet analysis
Adaptive feedback active noise control
Structure dynamic modelling
Active tool vibration control and tool condition monitoring using a self-sensing actuator
title Active tool vibration control and tool condition monitoring using a self-sensing actuator
title_full Active tool vibration control and tool condition monitoring using a self-sensing actuator
title_fullStr Active tool vibration control and tool condition monitoring using a self-sensing actuator
title_full_unstemmed Active tool vibration control and tool condition monitoring using a self-sensing actuator
title_short Active tool vibration control and tool condition monitoring using a self-sensing actuator
title_sort active tool vibration control and tool condition monitoring using a self sensing actuator
topic UCTD
Tool vibration
Self-sensing actuator
Tool wear-monitoring
Wavelet packet analysis
Adaptive feedback active noise control
Structure dynamic modelling
url http://hdl.handle.net/2263/90642