Integrated multibody dynamics and fatigue models for predicting the fatigue life of poly-V ribbed belts

dc.contributor.advisorWasfy, Tamer
dc.contributor.authorElmaraghi, Omar A.
dc.contributor.otherEl-Mounayri, Hazim
dc.contributor.otherAnwar, Sohel
dc.date.accessioned2013-11-20T14:47:18Z
dc.date.available2013-11-20T14:47:18Z
dc.date.issued2013-05
dc.degree.date2013en_US
dc.degree.disciplineMechanical Engineeringen
dc.degree.grantorPurdue Universityen_US
dc.degree.levelM.S.M.E.en_US
dc.descriptionIndiana University-Purdue University Indianapolis (IUPUI)en_US
dc.description.abstractBelt-drives are used in many applications such as industrial machines, washing ‎machines, and accessory drives for automobiles and other vehicles. Multibody dynamics/finite ‎element numerical models have become an effective way to predict the dynamic response of ‎belt-drives. In this thesis, a high fidelity numerical model was built using a multibody ‎dynamics/finite element code to simulate a belt-drive. The belt-drive transmits power from a ‎turbine of a Rankin cycle (that uses the exhaust waste heat of the internal combustion engine as ‎heat source) to the crank shaft of the engine. The code uses a time-accurate explicit numerical ‎integration technique to solve the multibody dynamics differential equations. The belt was ‎modeled using three-node beam elements to account for the belt axial and bending ‎stiffness/damping, while the pulleys, shafts and tensioner body were modeled as rigid bodies. ‎The penalty technique was used to model normal contact between the belt and the pulleys. An ‎asperity-based friction model was used to approximate Coulomb friction between the belt and ‎the pulleys. The dynamic response predicted using the model was validated by comparing it to ‎experimental results supplied by Cummins Inc. A parameter sensitivity study was performed to ‎evaluate the change in response due to change in various belt-drive parameters. A fatigue ‎model was developed to predict the belt fatigue life using output from the explicit finite ‎element code including normal and tangential forces between the belt and the pulleys and belt ‎tension. The belt fatigue life was evaluated for alternative belt-drive configurations in order to ‎find the configuration with the longest life.‎en_US
dc.identifier.urihttps://hdl.handle.net/1805/3691
dc.identifier.urihttp://dx.doi.org/10.7912/C2/2730
dc.language.isoen_USen_US
dc.subjectFatigueen_US
dc.subjectBelt-Drive Life timeen_US
dc.subjectMultibody Dynamicsen_US
dc.subject.lcshBelt drivesen_US
dc.subject.lcshBelt drives -- Fatigue -- Researchen_US
dc.subject.lcshDynamics -- Researchen_US
dc.subject.lcshMotor vehicles -- Dynamics -- Researchen_US
dc.subject.lcshFinite element methoden_US
dc.subject.lcshFatigue testing machinesen_US
dc.subject.lcshPower transmissionen_US
dc.subject.lcshStrength of materialsen_US
dc.titleIntegrated multibody dynamics and fatigue models for predicting the fatigue life of poly-V ribbed beltsen_US
dc.typeThesisen
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