Simulation of Hydraulic Cylinder Cushioning

The internal cushioning systems of hydraulic linear actuators avoid mechanical shocks at the end of their stroke. The design where the piston with perimeter grooves regulates the flow by standing in front of the outlet port has been investigated. First, a bond graph dynamic model has been developed,...

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Bibliographic Details
Main Authors: Antonio Algar, Javier Freire, Robert Castilla, Esteban Codina
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Sustainability
Subjects:
CFD
Online Access:https://www.mdpi.com/2071-1050/13/2/494
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spelling doaj-b0c643d80a5b42b39f6e0da587f76ebe2021-01-07T00:06:29ZengMDPI AGSustainability2071-10502021-01-011349449410.3390/su13020494Simulation of Hydraulic Cylinder CushioningAntonio Algar0Javier Freire1Robert Castilla2Esteban Codina3CATMech—Division of Fluid Mechanics, Technical University of Catalonia, Colom 7, 08222 Terrassa, SpainCATMech—Division of Fluid Mechanics, Technical University of Catalonia, Colom 7, 08222 Terrassa, SpainCATMech—Division of Fluid Mechanics, Technical University of Catalonia, Colom 7, 08222 Terrassa, SpainCATMech—Division of Fluid Mechanics, Technical University of Catalonia, Colom 7, 08222 Terrassa, SpainThe internal cushioning systems of hydraulic linear actuators avoid mechanical shocks at the end of their stroke. The design where the piston with perimeter grooves regulates the flow by standing in front of the outlet port has been investigated. First, a bond graph dynamic model has been developed, including the flow throughout the internal cushion design, characterized in detail by computational fluid-dynamic simulation. Following this, the radial movement of the piston and the fluid-dynamic coefficients, experimentally validated, are integrated into the dynamic model. The registered radial movement is in coherence with the significant drag force estimated in the CFD simulation, generated by the flow through the grooves, where the laminar flow regime predominates. Ultimately, the model aims to predict the behavior of the cushioning during the movement of the arm of an excavator. The analytical model developed predicts the performance of the cushioning system, in coherence with empirical results. There is an optimal behavior, highly influenced by the mechanical stress conditions of the system, subject to a compromise between an increasing section of the grooves and an optimization of the radial gap.https://www.mdpi.com/2071-1050/13/2/494bond graph, cushioninghydrauliccylinderCFD
collection DOAJ
language English
format Article
sources DOAJ
author Antonio Algar
Javier Freire
Robert Castilla
Esteban Codina
spellingShingle Antonio Algar
Javier Freire
Robert Castilla
Esteban Codina
Simulation of Hydraulic Cylinder Cushioning
Sustainability
bond graph, cushioning
hydraulic
cylinder
CFD
author_facet Antonio Algar
Javier Freire
Robert Castilla
Esteban Codina
author_sort Antonio Algar
title Simulation of Hydraulic Cylinder Cushioning
title_short Simulation of Hydraulic Cylinder Cushioning
title_full Simulation of Hydraulic Cylinder Cushioning
title_fullStr Simulation of Hydraulic Cylinder Cushioning
title_full_unstemmed Simulation of Hydraulic Cylinder Cushioning
title_sort simulation of hydraulic cylinder cushioning
publisher MDPI AG
series Sustainability
issn 2071-1050
publishDate 2021-01-01
description The internal cushioning systems of hydraulic linear actuators avoid mechanical shocks at the end of their stroke. The design where the piston with perimeter grooves regulates the flow by standing in front of the outlet port has been investigated. First, a bond graph dynamic model has been developed, including the flow throughout the internal cushion design, characterized in detail by computational fluid-dynamic simulation. Following this, the radial movement of the piston and the fluid-dynamic coefficients, experimentally validated, are integrated into the dynamic model. The registered radial movement is in coherence with the significant drag force estimated in the CFD simulation, generated by the flow through the grooves, where the laminar flow regime predominates. Ultimately, the model aims to predict the behavior of the cushioning during the movement of the arm of an excavator. The analytical model developed predicts the performance of the cushioning system, in coherence with empirical results. There is an optimal behavior, highly influenced by the mechanical stress conditions of the system, subject to a compromise between an increasing section of the grooves and an optimization of the radial gap.
topic bond graph, cushioning
hydraulic
cylinder
CFD
url https://www.mdpi.com/2071-1050/13/2/494
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AT javierfreire simulationofhydrauliccylindercushioning
AT robertcastilla simulationofhydrauliccylindercushioning
AT estebancodina simulationofhydrauliccylindercushioning
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