Influence of structural flexibility on the nonlinear stiffness of hydraulic system

Hydraulic system has been widely used in many mechatronic systems. Accurate identification of the hydraulic stiffness is critical to the design and control of such kind of system. It is widely recognized that the nonlinear hydraulic stiffness is influenced by many factors such as the compressibility...

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Main Authors: Wei Jiang, Xin Luo, Xuedong Chen
Format: Article
Language:English
Published: SAGE Publishing 2016-08-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814016663806
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spelling doaj-4b33f765645b48e8991ac146455754a12020-11-25T01:25:46ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402016-08-01810.1177/168781401666380610.1177_1687814016663806Influence of structural flexibility on the nonlinear stiffness of hydraulic systemWei JiangXin LuoXuedong ChenHydraulic system has been widely used in many mechatronic systems. Accurate identification of the hydraulic stiffness is critical to the design and control of such kind of system. It is widely recognized that the nonlinear hydraulic stiffness is influenced by many factors such as the compressibility of the fluid, the flexibility of the fluid supply circular tube, and the working status of the system. It is very difficult to accurately formulate the hydraulic stiffness due to the complex coupling effects. In this article, the concept of the volume modulus is first introduced to characterize the flexibility of the structure as a container. A hydraulic cylinder consisting of flexible circular tubes is used as an example to illustrate the relationship between the volume modulus and Young’s modulus of the circular tube. A novel formulation of the hydraulic stiffness is then proposed by taking into account the structural flexibility via the volume modulus of the circular tube. Finally, the influences of the circular tube parameters on the hydraulic stiffness are analyzed. Experiments are also carried out to verify the presented formulation. The proposed method can be used to design hydraulic system for achieving desired static and dynamic performances.https://doi.org/10.1177/1687814016663806
collection DOAJ
language English
format Article
sources DOAJ
author Wei Jiang
Xin Luo
Xuedong Chen
spellingShingle Wei Jiang
Xin Luo
Xuedong Chen
Influence of structural flexibility on the nonlinear stiffness of hydraulic system
Advances in Mechanical Engineering
author_facet Wei Jiang
Xin Luo
Xuedong Chen
author_sort Wei Jiang
title Influence of structural flexibility on the nonlinear stiffness of hydraulic system
title_short Influence of structural flexibility on the nonlinear stiffness of hydraulic system
title_full Influence of structural flexibility on the nonlinear stiffness of hydraulic system
title_fullStr Influence of structural flexibility on the nonlinear stiffness of hydraulic system
title_full_unstemmed Influence of structural flexibility on the nonlinear stiffness of hydraulic system
title_sort influence of structural flexibility on the nonlinear stiffness of hydraulic system
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2016-08-01
description Hydraulic system has been widely used in many mechatronic systems. Accurate identification of the hydraulic stiffness is critical to the design and control of such kind of system. It is widely recognized that the nonlinear hydraulic stiffness is influenced by many factors such as the compressibility of the fluid, the flexibility of the fluid supply circular tube, and the working status of the system. It is very difficult to accurately formulate the hydraulic stiffness due to the complex coupling effects. In this article, the concept of the volume modulus is first introduced to characterize the flexibility of the structure as a container. A hydraulic cylinder consisting of flexible circular tubes is used as an example to illustrate the relationship between the volume modulus and Young’s modulus of the circular tube. A novel formulation of the hydraulic stiffness is then proposed by taking into account the structural flexibility via the volume modulus of the circular tube. Finally, the influences of the circular tube parameters on the hydraulic stiffness are analyzed. Experiments are also carried out to verify the presented formulation. The proposed method can be used to design hydraulic system for achieving desired static and dynamic performances.
url https://doi.org/10.1177/1687814016663806
work_keys_str_mv AT weijiang influenceofstructuralflexibilityonthenonlinearstiffnessofhydraulicsystem
AT xinluo influenceofstructuralflexibilityonthenonlinearstiffnessofhydraulicsystem
AT xuedongchen influenceofstructuralflexibilityonthenonlinearstiffnessofhydraulicsystem
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