Numerical and Experimental Dynamic Analysis of IC Engine Test Beds Equipped with Highly Flexible Couplings

Driveline components connected to internal combustion engines can be critically loaded by dynamic forces due to motion irregularity. In particular, flexible couplings used in engine test rig are usually subjected to high levels of torsional oscillations and time-varying torque. This could lead to pr...

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Main Authors: M. Cocconcelli, M. Troncossi, E. Mucchi, A. Agazzi, A. Rivola, R. Rubini, G. Dalpiaz
Format: Article
Language:English
Published: Hindawi Limited 2017-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2017/5802702
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spelling doaj-d338c04306a24cd7a33b51c570fd85bb2020-11-25T00:19:21ZengHindawi LimitedShock and Vibration1070-96221875-92032017-01-01201710.1155/2017/58027025802702Numerical and Experimental Dynamic Analysis of IC Engine Test Beds Equipped with Highly Flexible CouplingsM. Cocconcelli0M. Troncossi1E. Mucchi2A. Agazzi3A. Rivola4R. Rubini5G. Dalpiaz6Department of Science and Engineering Methods, University of Modena and Reggio Emilia, Via G. Amendola 2 Pad. Morselli, 42122 Reggio Emilia, ItalyDepartment of Industrial Engineering, University of Bologna, Via Fontanelle 40, 47121 Forlì, ItalyDepartment of Engineering, University of Ferrara, Via Saragat 1, 42122 Ferrara, ItalyDepartment of Engineering, University of Ferrara, Via Saragat 1, 42122 Ferrara, ItalyDepartment of Industrial Engineering, University of Bologna, Via Fontanelle 40, 47121 Forlì, ItalyDepartment of Science and Engineering Methods, University of Modena and Reggio Emilia, Via G. Amendola 2 Pad. Morselli, 42122 Reggio Emilia, ItalyDepartment of Engineering, University of Ferrara, Via Saragat 1, 42122 Ferrara, ItalyDriveline components connected to internal combustion engines can be critically loaded by dynamic forces due to motion irregularity. In particular, flexible couplings used in engine test rig are usually subjected to high levels of torsional oscillations and time-varying torque. This could lead to premature failure of the test rig. In this work an effective methodology for the estimation of the dynamic behavior of highly flexible couplings in real operational conditions is presented in order to prevent unwanted halts. The methodology addresses a combination of numerical models and experimental measurements. In particular, two mathematical models of the engine test rig were developed: a torsional lumped-parameter model for the estimation of the torsional dynamic behavior in operative conditions and a finite element model for the estimation of the natural frequencies of the coupling. The experimental campaign addressed torsional vibration measurements in order to characterize the driveline dynamic behavior as well as validate the models. The measurements were achieved by a coder-based technique using optical sensors and zebra tapes. Eventually, the validated models were used to evaluate the effect of design modifications of the coupling elements in terms of natural frequencies (torsional and bending), torsional vibration amplitude, and power loss in the couplings.http://dx.doi.org/10.1155/2017/5802702
collection DOAJ
language English
format Article
sources DOAJ
author M. Cocconcelli
M. Troncossi
E. Mucchi
A. Agazzi
A. Rivola
R. Rubini
G. Dalpiaz
spellingShingle M. Cocconcelli
M. Troncossi
E. Mucchi
A. Agazzi
A. Rivola
R. Rubini
G. Dalpiaz
Numerical and Experimental Dynamic Analysis of IC Engine Test Beds Equipped with Highly Flexible Couplings
Shock and Vibration
author_facet M. Cocconcelli
M. Troncossi
E. Mucchi
A. Agazzi
A. Rivola
R. Rubini
G. Dalpiaz
author_sort M. Cocconcelli
title Numerical and Experimental Dynamic Analysis of IC Engine Test Beds Equipped with Highly Flexible Couplings
title_short Numerical and Experimental Dynamic Analysis of IC Engine Test Beds Equipped with Highly Flexible Couplings
title_full Numerical and Experimental Dynamic Analysis of IC Engine Test Beds Equipped with Highly Flexible Couplings
title_fullStr Numerical and Experimental Dynamic Analysis of IC Engine Test Beds Equipped with Highly Flexible Couplings
title_full_unstemmed Numerical and Experimental Dynamic Analysis of IC Engine Test Beds Equipped with Highly Flexible Couplings
title_sort numerical and experimental dynamic analysis of ic engine test beds equipped with highly flexible couplings
publisher Hindawi Limited
series Shock and Vibration
issn 1070-9622
1875-9203
publishDate 2017-01-01
description Driveline components connected to internal combustion engines can be critically loaded by dynamic forces due to motion irregularity. In particular, flexible couplings used in engine test rig are usually subjected to high levels of torsional oscillations and time-varying torque. This could lead to premature failure of the test rig. In this work an effective methodology for the estimation of the dynamic behavior of highly flexible couplings in real operational conditions is presented in order to prevent unwanted halts. The methodology addresses a combination of numerical models and experimental measurements. In particular, two mathematical models of the engine test rig were developed: a torsional lumped-parameter model for the estimation of the torsional dynamic behavior in operative conditions and a finite element model for the estimation of the natural frequencies of the coupling. The experimental campaign addressed torsional vibration measurements in order to characterize the driveline dynamic behavior as well as validate the models. The measurements were achieved by a coder-based technique using optical sensors and zebra tapes. Eventually, the validated models were used to evaluate the effect of design modifications of the coupling elements in terms of natural frequencies (torsional and bending), torsional vibration amplitude, and power loss in the couplings.
url http://dx.doi.org/10.1155/2017/5802702
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