000 09431nam a2201177 i 4500
001 5361053
003 IEEE
005 20220712205735.0
006 m o d
007 cr |n|||||||||
008 151221s2009 njua ob 001 eng d
020 _a9780470824122
_qelectronic
020 _z9780470824108
_qprint
020 _z0470824123
_qelectronic
024 7 _a10.1002/9780470824122
_2doi
035 _a(CaBNVSL)mat05361053
035 _a(IDAMS)0b00006481178889
040 _aCaBNVSL
_beng
_erda
_cCaBNVSL
_dCaBNVSL
050 4 _aTS156.8
_b.P7585 2009eb
082 0 4 _a658.5
_222
082 0 4 _a629.8
_222
100 1 _aSung, Su Whan,
_eauthor.
_927411
245 1 0 _aProcess identification and PID control /
_cSu Whan Sung, Jietae Lee, In-Beum Lee.
246 3 _aProcess identification and proportional-integral-derivative control
264 1 _aSingapore ;
_bJohn Wiley,
_cc2009.
264 2 _a[Piscataqay, New Jersey] :
_bIEEE Xplore,
_c[2009]
300 _a1 PDF (xii, 411 pages) :
_billustrations.
336 _atext
_2rdacontent
337 _aelectronic
_2isbdmedia
338 _aonline resource
_2rdacarrier
504 _aIncludes bibliographical references and index.
505 0 _aPreface -- -- Part One Basics of Process Dynamics -- -- 1 Mathematical Representations of Linear Processes -- 1.1 Introduction to Process Control and Identification -- 1.2 Properties of Linear Processes -- 1.3 Laplace Transform -- 1.4 Transfer Function and State-Space Systems -- Problems -- -- 2 Simulations -- 2.1 Simulating Processes Composed of Differential Equations -- 2.2 Simulating Processes Including Time Delay -- 2.3 Simulating Closed-Loop Control Systems -- 2.4 Useful Numerical Analysis Methods -- Problems -- -- 3 Dynamic Behavior of Linear Processes -- 3.1 Low-Order Plus Time-Delay Processes -- 3.2 Process Reaction Curve Method -- 3.3 Poles and Zeroes -- 3.4 Block Diagram -- 3.5 Frequency Responses -- Problems -- -- Part Two Process Control -- -- 4 Proportional-Integral-Derivative Control -- 4.1 Structure of Proportional-Integral-Derivative Controllers and Implementation in Computers/Microprocessors -- 4.2 Roles of Three Parts of Proportional-Integral-Derivative Controllers -- 4.3 Integral Windup -- 4.4 Commercial Proportional-Integral-Derivative Controllers -- Problems -- -- 5 Proportional-Integral-Derivative Controller Tuning -- 5.1 Trial-and-Error Tuning -- 5.2 Simple Process Identification Methods -- 5.3 Ziegler-Nichols Tuning Rule -- 5.4 Internal Model Control Tuning Rule -- 5.5 Integral of the Time-Weighted Absolute Value of the Error Tunning Rule for a First-Order Plus Time-Delay Model (ITAE-1) -- 5.6 Integral of the Time-Weighted Absolute Value of the Error Tunning Rule for a Second-Order Plus Time-Delay Model (ITAE-2) -- 5.7 Optimal Gain Margin Tuning Rule for an Unstable Second-Order Plus Time-Delay Model (OGM-unstable) -- 5.8 Model Reduction Method for Proportional-Integral-Derivative Controller Tuning -- 5.9 Consideration of Modeling Errors -- 5.10 Concluding Remarks -- Problems -- -- 6 Dynamic Behavior of Closed-Loop Control Systems -- 6.1 Closed-Loop Transfer Function and Characteristic Equation -- 6.2 Bode Stability Criterion -- 6.3 Nyquist Stability Criterion.
505 8 _a6.4 Gain Margin and Phase Margin -- Problems -- -- 7 Enhanced Control Strategies -- 7.1 Cascade Control -- 7.2 Time-Delay Compensators -- 7.3 Gain Scheduling -- 7.4 Proportional-Integral-Derivative Control using Internal Feedback Loop -- Problems -- -- Part Three Process Identification -- -- 8 Process Identification Methods for Frequency Response Models -- 8.1 Fourier Series -- 8.2 Frequency Response Analysis and Autotuning -- 8.3 Describing Function Analysis -- 8.4 Fourier Analysis -- 8.5 Modified Fourier Transform -- 8.6 Frequency Response Analysis with Integrals -- Problems -- -- 9 Process Identification Methods for Continuous-Time Differential Equation Models -- 9.1 Identification Methods Using Integral Transforms -- 9.2 Prediction Error Identification Method -- Problems -- -- 10 Process Identification Methods for Discrete-Time Difference Equation Models -- 10.1 Prediction Model: Autoregressive Exogenous Input Model and Output Error Model -- 10.2 Prediction Error Identification Method for the Autoregressive Exogenous Input Model -- 10.3 Prediction Error Identification Method for the Output Error Model -- 10.4 Concluding Remarks -- Problems -- -- 11 Model Conversion from Discrete-Time to Continuous-Time Linear Models -- 11.1 Transfer Function of Discrete-Time Processes -- 11.2 Frequency Responses of Discrete-Time Processes and Model Conversion -- Problems -- Part Four Process Activation -- -- 12 Relay Feedback Methods -- 12.1 Conventional Relay Feedback Methods -- 12.2 Relay Feedback Method to Reject Static Disturbances -- 12.3 Relay Feedback Method under Nonlinearity and Static Disturbances -- 12.4 Relay Feedback Method for a Large Range of Operation -- Problems -- -- 13 Modifications of Relay Feedback Methods -- 13.1 Process Activation Method Using Pulse Signals -- 13.2 Process Activation Method Using Sine Signals -- Problems -- -- Appendix Use of Virtual Control System -- A.1 Setup of the Virtual Control System -- A.2 Examples -- -- Index.
506 1 _aRestricted to subscribers or individual electronic text purchasers.
520 _aProcess Identification and PID Control enables students and engineers to understand the essential concepts of feedback control, process identification, autotuning, and design of real feedback controllers, especially PID controllers. Sung, Lee, and Lee introduce the fundamentals of process control and dynamics, analysis tools (Bode plot, Nyquist plot), PID controllers and tuning, controller designs, along with the advances control strategies which have been widely used in industry. Included are numerous numerical examples and MATLAB codes to aid the reader in solving real problems. Readers will be able to design their own controllers, implement them, and confirm performance in real-time using real-time virtual processes. Combines the basics with recent research, helping the novice grasp advanced topics Brings several industrially important topics together: . Finishing topics with implementation codes. Process identification and implementation. PID controller tuning and implementation. Enhanced control strategies and implementation Includes all source codes and real-time virtual processes for self-practice and modeling/controller design courses Contains problems at the end of every chapter Written by a team of recognized experts in the area Process Identification and PID Control is ideal for undergraduate and graduate students in process control, advanced process control, and process identification. Practicing control engineers and R&D personnel in refineries and chemical plants will find this book to be a key reference. Professionals in industry in particular will appreciate the techniques for developing process identification and control software, as well as implementing microprocessor controllers. Source code for readers and course supplements for instructors available at <a href="http://www.wiley.com/go/swsung">www.wiley.com/go/swsung</a>.
530 _aAlso available in print.
538 _aMode of access: World Wide Web
588 _aDescription based on PDF viewed 12/21/2015.
650 0 _aProcess control.
_95430
650 0 _aSystem identification.
_94634
650 0 _aPID controllers.
_910217
655 0 _aElectronic books.
_93294
695 _aActuators
695 _aAdaptive control
695 _aAnalytical models
695 _aApproximation methods
695 _aAsia
695 _aComputers
695 _aControl systems
695 _aCooling
695 _aDamping
695 _aData models
695 _aDelay effects
695 _aDifference equations
695 _aDifferential equations
695 _aEquations
695 _aFeedback loop
695 _aFourier series
695 _aFourier transforms
695 _aFrequency conversion
695 _aFrequency estimation
695 _aFrequency response
695 _aHarmonic analysis
695 _aHysteresis
695 _aIndexes
695 _aIndustries
695 _aMATLAB
695 _aMathematical model
695 _aMemory
695 _aMicroprocessors
695 _aModeling
695 _aNoise
695 _aNoise measurement
695 _aNumerical analysis
695 _aNumerical models
695 _aOptimization
695 _aOscillators
695 _aPredictive models
695 _aPresses
695 _aProcess control
695 _aRelays
695 _aRobustness
695 _aSignal generators
695 _aSimulation
695 _aStability criteria
695 _aSteady-state
695 _aSwitches
695 _aTemperature control
695 _aTemperature measurement
695 _aTime frequency analysis
695 _aTransfer functions
695 _aTransforms
695 _aTuning
700 1 _aLee, Jietae.
_927412
700 1 _aLee, In-Beum,
_d1955-
_927413
710 2 _aJohn Wiley & Sons,
_epublisher.
_96902
710 2 _aIEEE Xplore (Online service),
_edistributor.
_927414
776 0 8 _iPrint version:
_z9780470824108
856 4 2 _3Abstract with links to resource
_uhttps://ieeexplore.ieee.org/xpl/bkabstractplus.jsp?bkn=5361053
942 _cEBK
999 _c74056
_d74056