Self-Tuning Algorithm for Tuneable Clamping Table for Chatter Suppression in Blade Recontouring

The production and repair of blades for aerospace engines and energy turbines is a complex process due their inherently low stiffness and damping properties. The final recontouring operation is usually performed by milling operations where regenerative chatter is one of the main productivity limitin...

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Main Authors: Markel Sanz-Calle, Zoltan Dombovari, Jokin Munoa, Alexander Iglesias, Luis Norberto López de Lacalle
Format: Article
Language:English
Published: MDPI AG 2021-03-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/11/6/2569
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spelling doaj-a08440f5505f4d7c924b41e1851002852021-03-14T00:00:46ZengMDPI AGApplied Sciences2076-34172021-03-01112569256910.3390/app11062569Self-Tuning Algorithm for Tuneable Clamping Table for Chatter Suppression in Blade RecontouringMarkel Sanz-Calle0Zoltan Dombovari1Jokin Munoa2Alexander Iglesias3Luis Norberto López de Lacalle4Dynamics & Control Department, Ideko, Elgoibar, 20870 Basque Country, SpainDynamics & Control Department, Ideko, Elgoibar, 20870 Basque Country, SpainDynamics & Control Department, Ideko, Elgoibar, 20870 Basque Country, SpainDynamics & Control Department, Ideko, Elgoibar, 20870 Basque Country, SpainMechanical Engineering Department, Faculty of Engineering of Bilbao, University of the Basque Country, 48013 Bilbao, SpainThe production and repair of blades for aerospace engines and energy turbines is a complex process due their inherently low stiffness and damping properties. The final recontouring operation is usually performed by milling operations where regenerative chatter is one of the main productivity limiting factors. With the objective of avoiding specific stiffening fixtures for each blade geometry, this paper proposes a semi-active tuneable clamping table (TCT) based on mode tuning for blade machining. The active mode of the device can be externally controlled by means of a rotary spring and eddy current damping modules. Its in-series architecture allows damping to be introduced to the critical mode of the thin-walled part without any direct contact in the machining area and enables a more universal clamping. Its chatter suppression capabilities are maximized by means of a novel self-tuning algorithm that iteratively optimizes the tuning for the measured chatter frequency. The benefits of the iterative algorithm are validated through semidiscretization and initial value time-domain simulations, showing a clear improvement in blade recontouring stability compared to regular broad-bandwidth tuning methods.https://www.mdpi.com/2076-3417/11/6/2569bladesmillingchatterdampingfixture
collection DOAJ
language English
format Article
sources DOAJ
author Markel Sanz-Calle
Zoltan Dombovari
Jokin Munoa
Alexander Iglesias
Luis Norberto López de Lacalle
spellingShingle Markel Sanz-Calle
Zoltan Dombovari
Jokin Munoa
Alexander Iglesias
Luis Norberto López de Lacalle
Self-Tuning Algorithm for Tuneable Clamping Table for Chatter Suppression in Blade Recontouring
Applied Sciences
blades
milling
chatter
damping
fixture
author_facet Markel Sanz-Calle
Zoltan Dombovari
Jokin Munoa
Alexander Iglesias
Luis Norberto López de Lacalle
author_sort Markel Sanz-Calle
title Self-Tuning Algorithm for Tuneable Clamping Table for Chatter Suppression in Blade Recontouring
title_short Self-Tuning Algorithm for Tuneable Clamping Table for Chatter Suppression in Blade Recontouring
title_full Self-Tuning Algorithm for Tuneable Clamping Table for Chatter Suppression in Blade Recontouring
title_fullStr Self-Tuning Algorithm for Tuneable Clamping Table for Chatter Suppression in Blade Recontouring
title_full_unstemmed Self-Tuning Algorithm for Tuneable Clamping Table for Chatter Suppression in Blade Recontouring
title_sort self-tuning algorithm for tuneable clamping table for chatter suppression in blade recontouring
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2021-03-01
description The production and repair of blades for aerospace engines and energy turbines is a complex process due their inherently low stiffness and damping properties. The final recontouring operation is usually performed by milling operations where regenerative chatter is one of the main productivity limiting factors. With the objective of avoiding specific stiffening fixtures for each blade geometry, this paper proposes a semi-active tuneable clamping table (TCT) based on mode tuning for blade machining. The active mode of the device can be externally controlled by means of a rotary spring and eddy current damping modules. Its in-series architecture allows damping to be introduced to the critical mode of the thin-walled part without any direct contact in the machining area and enables a more universal clamping. Its chatter suppression capabilities are maximized by means of a novel self-tuning algorithm that iteratively optimizes the tuning for the measured chatter frequency. The benefits of the iterative algorithm are validated through semidiscretization and initial value time-domain simulations, showing a clear improvement in blade recontouring stability compared to regular broad-bandwidth tuning methods.
topic blades
milling
chatter
damping
fixture
url https://www.mdpi.com/2076-3417/11/6/2569
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AT jokinmunoa selftuningalgorithmfortuneableclampingtableforchattersuppressioninbladerecontouring
AT alexanderiglesias selftuningalgorithmfortuneableclampingtableforchattersuppressioninbladerecontouring
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