Numerical and Experimental Investigations on Robust Output Feedback Control for Active Vibration Attenuation of Flexible Smart System

dc.contributor.authorParameswaran, A.P.
dc.contributor.authorPadmasali, A.N.
dc.contributor.authorGangadharan, K.V.
dc.date.accessioned2026-02-04T12:27:04Z
dc.date.issued2023
dc.description.abstractThis paper investigates the prototyping and implementation of an output feedback-based robust controller on a Field Programmable Gate Array (FPGA) platform. The Smart System under Test (SSuT) in this submission is a flexible cantilever beam bonded with Piezoelectric (PZT 5H) patches that act as a sensor as well as an actuator (perturbance creation as well as control actuation). For ease of modeling and subsequent controller design in the laboratory studies, the low-frequency dynamics of the smart system are approximated to only a Single Degree of Freedom (SDOF) in terms of flexural vibrations. The SSuT is modeled analytically through finite element modeling and experimentally through sub-space system identification process. The developed models' accuracy is compared with the experimental results of non - parametric modeling. The developed models are then used to conduct the simulation studies with the designed robust output feedback controller in the closed loop. Apart from the simulation studies, the designed controller was also prototyped on an FPGA platform using LabVIEW FPGA with the associated hardware in loop to carry out the experimental validation of its performance. The robustness and efficiency of the prototype controller to control the system vibrations in real-time were proved through extensive tests at single resonant frequencies and a range of frequencies encompassing the dominant resonant regions in the flexural mode. Findings from this study are further used to ensure satisfactory active vibration control of smart cantilever systems in various heavy/aerospace industries by approximating them to suitable benchmark systems in the laboratory. © 2013 IEEE.
dc.identifier.citationIEEE Access, 2023, 11, , pp. 124031-124039
dc.identifier.urihttps://doi.org/10.1109/ACCESS.2023.3330167
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/22090
dc.publisherInstitute of Electrical and Electronics Engineers Inc.
dc.subjectControllers
dc.subjectDegrees of freedom (mechanics)
dc.subjectFeedback control
dc.subjectField programmable gate arrays (FPGA)
dc.subjectInteractive computer systems
dc.subjectLogic gates
dc.subjectNanocantilevers
dc.subjectNatural frequencies
dc.subjectReal time control
dc.subjectRobust control
dc.subjectVibration analysis
dc.subjectVibration control
dc.subjectActive vibration controls
dc.subjectField programmable gate array
dc.subjectField programmables
dc.subjectFinite element analyse
dc.subjectLabVIEW field programmable gate array
dc.subjectMathematical modeling
dc.subjectOutput feedback controls
dc.subjectProgrammable gate array
dc.subjectReal - Time system
dc.subjectReal-time control
dc.subjectSimulation
dc.subjectSimulation and real time control
dc.subjectSimulation time
dc.subjectSmart System
dc.subjectVibration
dc.subjectFinite element method
dc.titleNumerical and Experimental Investigations on Robust Output Feedback Control for Active Vibration Attenuation of Flexible Smart System

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