Efficient Model Order Reduction for the Dynamics of Nonlinear Multilayer Sheet Structures with Trial Vector Derivatives

The mechanical response of multilayer sheet structures, such as leaf springs or car bodies, is largely determined by the nonlinear contact and friction forces between the sheets involved. Conventional computational approaches based on classical reduction techniques or the direct finite element appro...

Full description

Bibliographic Details
Main Authors: Wolfgang Witteveen, Florian Pichler
Format: Article
Language:English
Published: Hindawi Limited 2014-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2014/913136
id doaj-03fa1849fff948179a64b61339e4c834
record_format Article
spelling doaj-03fa1849fff948179a64b61339e4c8342020-11-25T00:55:12ZengHindawi LimitedShock and Vibration1070-96221875-92032014-01-01201410.1155/2014/913136913136Efficient Model Order Reduction for the Dynamics of Nonlinear Multilayer Sheet Structures with Trial Vector DerivativesWolfgang Witteveen0Florian Pichler1Department of Mechanical Engineering, Upper Austria University of Applied Sciences, 4600 Wels, AustriaDepartment of Mechanical Engineering, Upper Austria University of Applied Sciences, 4600 Wels, AustriaThe mechanical response of multilayer sheet structures, such as leaf springs or car bodies, is largely determined by the nonlinear contact and friction forces between the sheets involved. Conventional computational approaches based on classical reduction techniques or the direct finite element approach have an inefficient balance between computational time and accuracy. In the present contribution, the method of trial vector derivatives is applied and extended in order to obtain a-priori trial vectors for the model reduction which are suitable for determining the nonlinearities in the joints of the reduced system. Findings show that the result quality in terms of displacements and contact forces is comparable to the direct finite element method but the computational effort is extremely low due to the model order reduction. Two numerical studies are presented to underline the method’s accuracy and efficiency. In conclusion, this approach is discussed with respect to the existing body of literature.http://dx.doi.org/10.1155/2014/913136
collection DOAJ
language English
format Article
sources DOAJ
author Wolfgang Witteveen
Florian Pichler
spellingShingle Wolfgang Witteveen
Florian Pichler
Efficient Model Order Reduction for the Dynamics of Nonlinear Multilayer Sheet Structures with Trial Vector Derivatives
Shock and Vibration
author_facet Wolfgang Witteveen
Florian Pichler
author_sort Wolfgang Witteveen
title Efficient Model Order Reduction for the Dynamics of Nonlinear Multilayer Sheet Structures with Trial Vector Derivatives
title_short Efficient Model Order Reduction for the Dynamics of Nonlinear Multilayer Sheet Structures with Trial Vector Derivatives
title_full Efficient Model Order Reduction for the Dynamics of Nonlinear Multilayer Sheet Structures with Trial Vector Derivatives
title_fullStr Efficient Model Order Reduction for the Dynamics of Nonlinear Multilayer Sheet Structures with Trial Vector Derivatives
title_full_unstemmed Efficient Model Order Reduction for the Dynamics of Nonlinear Multilayer Sheet Structures with Trial Vector Derivatives
title_sort efficient model order reduction for the dynamics of nonlinear multilayer sheet structures with trial vector derivatives
publisher Hindawi Limited
series Shock and Vibration
issn 1070-9622
1875-9203
publishDate 2014-01-01
description The mechanical response of multilayer sheet structures, such as leaf springs or car bodies, is largely determined by the nonlinear contact and friction forces between the sheets involved. Conventional computational approaches based on classical reduction techniques or the direct finite element approach have an inefficient balance between computational time and accuracy. In the present contribution, the method of trial vector derivatives is applied and extended in order to obtain a-priori trial vectors for the model reduction which are suitable for determining the nonlinearities in the joints of the reduced system. Findings show that the result quality in terms of displacements and contact forces is comparable to the direct finite element method but the computational effort is extremely low due to the model order reduction. Two numerical studies are presented to underline the method’s accuracy and efficiency. In conclusion, this approach is discussed with respect to the existing body of literature.
url http://dx.doi.org/10.1155/2014/913136
work_keys_str_mv AT wolfgangwitteveen efficientmodelorderreductionforthedynamicsofnonlinearmultilayersheetstructureswithtrialvectorderivatives
AT florianpichler efficientmodelorderreductionforthedynamicsofnonlinearmultilayersheetstructureswithtrialvectorderivatives
_version_ 1725231463711899648