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dc.contributor.authorSecall Wimmel, Thomas-
dc.contributor.authorMüller, Dominic-
dc.contributor.authorMeier, Jürg-
dc.date.accessioned2019-03-21T15:21:50Z-
dc.date.available2019-03-21T15:21:50Z-
dc.date.issued2015-
dc.identifier.urihttps://digitalcollection.zhaw.ch/handle/11475/16298-
dc.description.abstractWhen simulating the vibration behaviour of large 2-stroke marine diesel engines the damping properties are an important parameter to be considered. Simulations only allow determining realistic vibration amplitudes if the engine’s damping characteristic is known. Modal damping ratios of reciprocating engines vary depending on which parts of the engine interact during oscillation and on how energy is dissipated while vibrating. Therefore different damping ratios can be expected for different engine mode shapes. For determining typical modal damping ratios of a diesel engine a methodology for an automated analysis of vibration measurement data was developed: After identifying N resonance peaks in a measured vibration spectrum a spectral curve corresponding to a simple mass-spring-damper system with N degrees of freedom is automatically fitted onto the measured curve by parameter optimization. At the end of this iterative process the damping properties of the substituting mass-spring-damper-system, whose curve adjusts most precisely to the measured spectrum, are attributed to the measured resonances. In addition to determining modal damping ratios and eigenfrequencies the procedure allows separating overlapping resonance peaks. The analysis process was applied on vibration measurement results of a series of different marine diesel engines and characteristic modal damping ratios could be determined for the engine’s principal mode shapes. Considering the determined modal damping properties when performing forced response simulations of the engine by modal superposition in the frequency domain allowed to achieve a higher accuracy in the calculated vibration amplitudes.de_CH
dc.language.isoende_CH
dc.rightsLicence according to publishing contractde_CH
dc.subjectVibration Simulationde_CH
dc.subjectModal Damping Ratiode_CH
dc.subjectEigenfrequencyde_CH
dc.subjectMode Shapede_CH
dc.subject.ddc620: Ingenieurwesende_CH
dc.titleAssessment of damping properties of large 2-stroke marine diesel enginesde_CH
dc.typeKonferenz: Paperde_CH
dcterms.typeTextde_CH
zhaw.departementSchool of Engineeringde_CH
zhaw.organisationalunitInstitut für Mechanische Systeme (IMES)de_CH
zhaw.conference.detailsInternational Conference on Engineering Vibration, Ljubljana, Slovenia, 07-10 September 2015de_CH
zhaw.funding.euNode_CH
zhaw.originated.zhawYesde_CH
zhaw.publication.statuspublishedVersionde_CH
zhaw.publication.reviewNot specifiedde_CH
Appears in collections:Publikationen School of Engineering

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Secall Wimmel, T., Müller, D., & Meier, J. (2015). Assessment of damping properties of large 2-stroke marine diesel engines. International Conference on Engineering Vibration, Ljubljana, Slovenia, 07-10 September 2015.
Secall Wimmel, T., Müller, D. and Meier, J. (2015) ‘Assessment of damping properties of large 2-stroke marine diesel engines’, in International Conference on Engineering Vibration, Ljubljana, Slovenia, 07-10 September 2015.
T. Secall Wimmel, D. Müller, and J. Meier, “Assessment of damping properties of large 2-stroke marine diesel engines,” in International Conference on Engineering Vibration, Ljubljana, Slovenia, 07-10 September 2015, 2015.
SECALL WIMMEL, Thomas, Dominic MÜLLER und Jürg MEIER, 2015. Assessment of damping properties of large 2-stroke marine diesel engines. In: International Conference on Engineering Vibration, Ljubljana, Slovenia, 07-10 September 2015. Conference paper. 2015
Secall Wimmel, Thomas, Dominic Müller, and Jürg Meier. 2015. “Assessment of Damping Properties of Large 2-Stroke Marine Diesel Engines.” Conference paper. In International Conference on Engineering Vibration, Ljubljana, Slovenia, 07-10 September 2015.
Secall Wimmel, Thomas, et al. “Assessment of Damping Properties of Large 2-Stroke Marine Diesel Engines.” International Conference on Engineering Vibration, Ljubljana, Slovenia, 07-10 September 2015, 2015.


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