One of the main accomplishments of control in the 1980s was the development of H∞ techniques. This book teaches control system design using H∞ methods. Students will find this book easy to use because it is conceptually simple. They will find it useful because of the widespread appeal of classical frequency domain methods.Classical control has always been presented as trial and error applied to specific cases; Helton and Merino provide a much more precise approach. This has the tremendous advantage of converting an engineering problem to one that can be put directly into a mathematical optimization package.After completing this course, students will be familiar with how engineering specs are coded as precise mathematical constraints.
Produktinformation
Utgivningsdatum1998-08-31
Mått152 x 229 x 10 mm
Vikt332 g
FormatHäftad
SpråkEngelska
Antal sidor308
FörlagSociety for Industrial & Applied Mathematics,U.S.
PrefacePart I: Short Design Course. Chapter 1: A Method for Solving System Design ProblemsRational FunctionsThe Closed Loop System SDesignable Transfer FunctionA System Design ProblemThe MethodExercisesChapter 2: Internal StabilityControl and StabilityInterpolationSystems With a Stable PlantExercisesChapter 3: Frequency Domain Performance RequirementsIntroductionMeasures of PerformancePiecing Together Disk InequalitiesMore Performance MeasuresA Fully Constrained ProblemChapter 4: OptimizationReview of ConceptsGenerating a Performance FunctionFinding T With Best PerformanceAcceptable Performance FunctionsPerformance Not of Circular TypeOptimizationInternal Stability and OptimizationExercisesChapter 5: A Design Example With OPTDesignIntroductionThe ProblemOptimization With OPTDesignProducing a Rational CompensatorHow Good is the Answer?Optimality DiagnosticsSpecifying Compensator Roll-offReducing the Numerical ErrorRational FitsExercisesPart II: More on Design. Chapter 6: ExamplesNumerical PracticalitiesDesign Example 1Time Domain Performance RequirementsDesign Example 2Performance for Competing ConstraintsChapter 7: Internal StabilityCalculating InterpolantsPlants With Simple RHP Zeros and PolesParameterization: The General CaseExercisesReferences and Further ReadingPart III: Appendices. Appendix A: History and PerspectiveAppendix B: Getting OPTDesign and AnoptAppendix C: Anopt NotebookAppendix D: NewtonInterpolant NotebookAppendix E: NewtonFit Notebook.