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dc.contributor.advisorThaler, George
dc.contributor.authorLandazuri, Ruben Jaime
dc.dateDecember 1969
dc.date.accessioned2012-08-29T23:35:24Z
dc.date.available2012-08-29T23:35:24Z
dc.date.issued1969-12
dc.identifier.urihttp://hdl.handle.net/10945/13019
dc.descriptionApproved for public release; distribution is unlimited
dc.description.abstractWhen the transfer function of a system has at least one pair of complex poles, resonant peaks will occur in the open-loop frequency response at the frequency determined by these complex poles, The resonant peaks may produce instability in the closed-loop system. Cascaded complex-zero compensators are studied in order to cancel the effect produced by the complex poles. Circles of stability are developed and if the complex zeros of the compensator are located inside the circles the system stability is guaranteed. Several locations for the complex zeros in the s-plane are studied and a correlation among frequency-response, transient-response and root-locus techniques is described to aid in the design of the compensator. (Complex poles are often generated by mechanical resonances)
dc.description.urihttp://www.archive.org/details/servocompensatio00land
dc.language.isoen_US
dc.publisherMonterey, California. U.S. Naval Postgraduate Schoolen_US
dc.rightsCopyright is reserved by the copyright owner
dc.titleServo compensation for mechanical resonances and feedback loops.en_US
dc.typeThesisen_US
dc.contributor.corporateNaval Postgraduate School (U.S.)
dc.contributor.departmentElectrical Engineering
dc.subject.authorservomechanism compensationen_US
dc.subject.authorstabilityen_US
dc.subject.authorcomplex zero filtersen_US
dc.subject.authormechanical resonancesen_US
dc.subject.authorcompensation designen_US
dc.description.serviceTeniente de Fragata, Ecuadorian Navy
etd.thesisdegree.nameM.S.in Electrical Engineeringen_US
etd.thesisdegree.levelMastersen_US
etd.thesisdegree.grantorNaval Postgraduate Schoolen_US


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