Optimal in-Operation Redesign of Mechanical Systems Considering Vibrations—A New Methodology Based on Frequency-Band Constraint Formulation and Efficient Sensitivity Analysis

The vibrational behavior of components in mechanical systems like drives and robots can become critical under changes in the system properties or loading in operation. Such undesired vibration can lead to detrimental conditions including excess wear, fatigue, discomfort, and acoustic emissions. Syst...

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Main Authors: Erich Wehrle, Veit Gufler, Renato Vidoni
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Machines
Subjects:
Online Access:https://www.mdpi.com/2075-1702/8/1/11
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spelling doaj-6020460b75e14b2a9f457eedd19587642020-11-25T01:40:49ZengMDPI AGMachines2075-17022020-02-01811110.3390/machines8010011machines8010011Optimal in-Operation Redesign of Mechanical Systems Considering Vibrations—A New Methodology Based on Frequency-Band Constraint Formulation and Efficient Sensitivity AnalysisErich Wehrle0Veit Gufler1Renato Vidoni2Faculty of Science and Technology, Free University of Bozen-Bolzano, Universitätsplatz 5, 39100 Bozen, South Tyrol, ItalyFaculty of Science and Technology, Free University of Bozen-Bolzano, Universitätsplatz 5, 39100 Bozen, South Tyrol, ItalyFaculty of Science and Technology, Free University of Bozen-Bolzano, Universitätsplatz 5, 39100 Bozen, South Tyrol, ItalyThe vibrational behavior of components in mechanical systems like drives and robots can become critical under changes in the system properties or loading in operation. Such undesired vibration can lead to detrimental conditions including excess wear, fatigue, discomfort, and acoustic emissions. Systems are designed to avoid certain frequencies to avoid such problems, but system parameters can change during operation due damage, wear, or change in loading. An example is the change in system properties or operation state that then activates resonance frequencies in our system. Therefore, this work has the goal of modifying the modal behavior of a system to avoid vibrational problems. Methods of design optimization are applied to find a new optimum design for this altered condition. Here, this is limited to the addition of mass in order to move the resonance frequency out of critical ranges. This though requires a new formulation of the optimization problem. We propose a new constraint formulation to avoid frequency ranges. To increase efficiency, a reduced analytical sensitivity analysis is introduced. This methodology is demonstrated on two test cases: a two-mass oscillator followed by a test case of higher complexity which is a gear housing considering over 15,000 design variables. The results show that the optimization solution gives the position and amount of mass added, which is a discrete solution that is practically implementable.https://www.mdpi.com/2075-1702/8/1/11design optimizationstructural optimizationmechanical systemvibrationsmodal analysissensitivity analysisstructural modificationfrequency-band constraints
collection DOAJ
language English
format Article
sources DOAJ
author Erich Wehrle
Veit Gufler
Renato Vidoni
spellingShingle Erich Wehrle
Veit Gufler
Renato Vidoni
Optimal in-Operation Redesign of Mechanical Systems Considering Vibrations—A New Methodology Based on Frequency-Band Constraint Formulation and Efficient Sensitivity Analysis
Machines
design optimization
structural optimization
mechanical system
vibrations
modal analysis
sensitivity analysis
structural modification
frequency-band constraints
author_facet Erich Wehrle
Veit Gufler
Renato Vidoni
author_sort Erich Wehrle
title Optimal in-Operation Redesign of Mechanical Systems Considering Vibrations—A New Methodology Based on Frequency-Band Constraint Formulation and Efficient Sensitivity Analysis
title_short Optimal in-Operation Redesign of Mechanical Systems Considering Vibrations—A New Methodology Based on Frequency-Band Constraint Formulation and Efficient Sensitivity Analysis
title_full Optimal in-Operation Redesign of Mechanical Systems Considering Vibrations—A New Methodology Based on Frequency-Band Constraint Formulation and Efficient Sensitivity Analysis
title_fullStr Optimal in-Operation Redesign of Mechanical Systems Considering Vibrations—A New Methodology Based on Frequency-Band Constraint Formulation and Efficient Sensitivity Analysis
title_full_unstemmed Optimal in-Operation Redesign of Mechanical Systems Considering Vibrations—A New Methodology Based on Frequency-Band Constraint Formulation and Efficient Sensitivity Analysis
title_sort optimal in-operation redesign of mechanical systems considering vibrations—a new methodology based on frequency-band constraint formulation and efficient sensitivity analysis
publisher MDPI AG
series Machines
issn 2075-1702
publishDate 2020-02-01
description The vibrational behavior of components in mechanical systems like drives and robots can become critical under changes in the system properties or loading in operation. Such undesired vibration can lead to detrimental conditions including excess wear, fatigue, discomfort, and acoustic emissions. Systems are designed to avoid certain frequencies to avoid such problems, but system parameters can change during operation due damage, wear, or change in loading. An example is the change in system properties or operation state that then activates resonance frequencies in our system. Therefore, this work has the goal of modifying the modal behavior of a system to avoid vibrational problems. Methods of design optimization are applied to find a new optimum design for this altered condition. Here, this is limited to the addition of mass in order to move the resonance frequency out of critical ranges. This though requires a new formulation of the optimization problem. We propose a new constraint formulation to avoid frequency ranges. To increase efficiency, a reduced analytical sensitivity analysis is introduced. This methodology is demonstrated on two test cases: a two-mass oscillator followed by a test case of higher complexity which is a gear housing considering over 15,000 design variables. The results show that the optimization solution gives the position and amount of mass added, which is a discrete solution that is practically implementable.
topic design optimization
structural optimization
mechanical system
vibrations
modal analysis
sensitivity analysis
structural modification
frequency-band constraints
url https://www.mdpi.com/2075-1702/8/1/11
work_keys_str_mv AT erichwehrle optimalinoperationredesignofmechanicalsystemsconsideringvibrationsanewmethodologybasedonfrequencybandconstraintformulationandefficientsensitivityanalysis
AT veitgufler optimalinoperationredesignofmechanicalsystemsconsideringvibrationsanewmethodologybasedonfrequencybandconstraintformulationandefficientsensitivityanalysis
AT renatovidoni optimalinoperationredesignofmechanicalsystemsconsideringvibrationsanewmethodologybasedonfrequencybandconstraintformulationandefficientsensitivityanalysis
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