Nonlinear dynamic model and simulation of a high pressure monotube shock absorber using the bond graph method
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 1997. === Includes bibliographical references (p. 179-182). === A physics-based model for a high pressure monotube shock absorber is proposed by which the nonlinear dynamic behavior of these dampers can be analyze...
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ndltd-MIT-oai-dspace.mit.edu-1721.1-98072020-04-08T03:11:50Z Nonlinear dynamic model and simulation of a high pressure monotube shock absorber using the bond graph method Mollica, Rosario Kamal Youcef-Toumi. Massachusetts Institute of Technology. Department of Mechanical Engineering Mechanical Engineering Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 1997. Includes bibliographical references (p. 179-182). A physics-based model for a high pressure monotube shock absorber is proposed by which the nonlinear dynamic behavior of these dampers can be analyzed. The bond graph technique is used to model these shock absorbers accurately over a wide range of stroking frequencies and to identify the interaction between mechanical, fluid, and thermodynamic elements. Various phenomena are modelled such as fluid inertia effects, laminar orifice flow, air entrained in the hydraulic fluid, and cavitation. Simulation results demonstrate good model accuracy when compared t.o test data for similar hydraulic dampers. Parametric studies involving various elements of the system including gas pressurization, the amount of entrained air, and stiction are conducted in order to demonstrate the affects of these parameters on system performance. Results indicate the fundamental characteristics of shock absorbers are produced by the interaction of resistive and capacitive elements inherent in these systems. Capacitive elements combine with resistive elements resulting in hysteresis in the force-velocity characteristic and less energy dissipation at higher frequencies for constant maximum stroking velocities. The effects of fluid inertia and laminar flow are found to be negligible for the range of frequencies investigated ( 1 to 20Hz) in the monotube design of this study. Modifications to the model are proposed to reduce the state order for use in automotive suspension system models. by Rosario Mollica. S.M. 2005-08-19T20:18:54Z 2005-08-19T20:18:54Z 1997 1997 Thesis http://hdl.handle.net/1721.1/9807 42997185 eng M.I.T. theses are protected by copyright. They may be viewed from this source for any purpose, but reproduction or distribution in any format is prohibited without written permission. See provided URL for inquiries about permission. http://dspace.mit.edu/handle/1721.1/7582 182 p. 10076749 bytes 10076508 bytes application/pdf application/pdf application/pdf Massachusetts Institute of Technology |
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Mechanical Engineering Mollica, Rosario Nonlinear dynamic model and simulation of a high pressure monotube shock absorber using the bond graph method |
description |
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 1997. === Includes bibliographical references (p. 179-182). === A physics-based model for a high pressure monotube shock absorber is proposed by which the nonlinear dynamic behavior of these dampers can be analyzed. The bond graph technique is used to model these shock absorbers accurately over a wide range of stroking frequencies and to identify the interaction between mechanical, fluid, and thermodynamic elements. Various phenomena are modelled such as fluid inertia effects, laminar orifice flow, air entrained in the hydraulic fluid, and cavitation. Simulation results demonstrate good model accuracy when compared t.o test data for similar hydraulic dampers. Parametric studies involving various elements of the system including gas pressurization, the amount of entrained air, and stiction are conducted in order to demonstrate the affects of these parameters on system performance. Results indicate the fundamental characteristics of shock absorbers are produced by the interaction of resistive and capacitive elements inherent in these systems. Capacitive elements combine with resistive elements resulting in hysteresis in the force-velocity characteristic and less energy dissipation at higher frequencies for constant maximum stroking velocities. The effects of fluid inertia and laminar flow are found to be negligible for the range of frequencies investigated ( 1 to 20Hz) in the monotube design of this study. Modifications to the model are proposed to reduce the state order for use in automotive suspension system models. === by Rosario Mollica. === S.M. |
author2 |
Kamal Youcef-Toumi. |
author_facet |
Kamal Youcef-Toumi. Mollica, Rosario |
author |
Mollica, Rosario |
author_sort |
Mollica, Rosario |
title |
Nonlinear dynamic model and simulation of a high pressure monotube shock absorber using the bond graph method |
title_short |
Nonlinear dynamic model and simulation of a high pressure monotube shock absorber using the bond graph method |
title_full |
Nonlinear dynamic model and simulation of a high pressure monotube shock absorber using the bond graph method |
title_fullStr |
Nonlinear dynamic model and simulation of a high pressure monotube shock absorber using the bond graph method |
title_full_unstemmed |
Nonlinear dynamic model and simulation of a high pressure monotube shock absorber using the bond graph method |
title_sort |
nonlinear dynamic model and simulation of a high pressure monotube shock absorber using the bond graph method |
publisher |
Massachusetts Institute of Technology |
publishDate |
2005 |
url |
http://hdl.handle.net/1721.1/9807 |
work_keys_str_mv |
AT mollicarosario nonlineardynamicmodelandsimulationofahighpressuremonotubeshockabsorberusingthebondgraphmethod |
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1719312723568754688 |