A study of linearization and decoupling techniques applied to mimo nonlinear interacting processes

dc.contributor.guideKanakaraj Jen_US
dc.coverage.spatiallinearization and decoupling techniques applied to mimo nonlinear interacting processesen_US
dc.creator.researcherSubbulekshmi Den_US
dc.date.accessioned2014-02-21T11:04:59Z
dc.date.available2014-02-21T11:04:59Z
dc.date.awarded13/11/2013en_US
dc.date.completed01/11/2013en_US
dc.date.issued2014-02-21
dc.date.registeredn.d.en_US
dc.description.abstractTypical industrial chemical plants are tightly integrated processes newlinewhich exhibit nonlinear behavior and complex dynamic properties. They newlineusually have two or more controlled variables requiring two or more newlinemanipulated variables. Those processes with more than one controlled newlinevariable and more than one manipulated variable are known as Multi Input newlineMulti Output (MIMO) process. The MIMO system can be decoupled into newlineSISO systems. If a MIMO system is considered as a decoupled SISO system, newlineno interaction will exist among the SISO subsystems. Each input variable has newlineto control only one output variable. The essence of decoupling is to cancel the newlineinteraction existing process, allowing independent control of the loops. A newlinemultivariable system experiences interactions and responds poorly. The newlineobjective in decoupling is to compensate the effect of interactions brought newlineabout by cross coupling of the process variables and cause the input output newlinerelationship to be linear. For decoupling a linear interacting system, RGA and newlineRNGA methods are applied. Implementation of these algorithm results in the newlinesystem to be decoupled. Compared to RGA, RNGA method shows better results. But for a nonlinear highly interacting system, this method does not newlineprovide satisfactory results. This algorithm works well for linear systems newlineonly. So the algorithms like Kravaris, Generic model control, and Hirschorn s newlinealgorithm are considered. The objectives of this study are to analyze the newlinenature of interaction and understand the concepts of three Decoupling and Linearization algorithms namely (i) Kravaris algorithm (ii) Generic Model newlineControl algorithm and (iii) Hirschorn s algorithm. PI, PI-SPW and FLC newlinecontrollers are also included along with the linearization algorithms to newlineenhance the performance of the system. MPC controller is also with newlineHirschorn s algorithm to achieve best results. Optimization algorithm like newlineGenetic Algorithm is implemented to obtain a suitable controller.en_US
dc.description.noteReference p171-177,en_US
dc.format.accompanyingmaterialNoneen_US
dc.format.dimensions23cmen_US
dc.format.extentxx, 202p.en_US
dc.identifier.urihttp://hdl.handle.net/10603/16074
dc.languageEnglishen_US
dc.publisher.institutionFaculty of Electrical and Electronics Engineeringen_US
dc.publisher.placeChennaien_US
dc.publisher.universityAnna Universityen_US
dc.relationp.171-177,en_US
dc.rightsuniversityen_US
dc.source.universityUniversityen_US
dc.subject.keywordElectrical engineeringen_US
dc.subject.keywordlinearization and decoupling techniquesen_US
dc.subject.keywordMulti Input Multi Outputen_US
dc.titleA study of linearization and decoupling techniques applied to mimo nonlinear interacting processesen_US
dc.title.alternativeen_US
dc.type.degreePh.D.en_US

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