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CONTROL SYSTEMS ENGINEERING HANDBOOK: Principles of System Modeling, Stability, Feedback, State-Space Methods, Digital Techniques, and Industrial Applications - Couverture souple

J. Franklin, Edward

 
9798193334460: CONTROL SYSTEMS ENGINEERING HANDBOOK: Principles of System Modeling, Stability, Feedback, State-Space Methods, Digital Techniques, and Industrial Applications

Synopsis

Why does the controller behave perfectly in simulation, then oscillate, respond too slowly, or become unstable when you connect it to the real system?

The equations may be correct while the model is incomplete. Dead time, sensor noise, actuator saturation, poor sampling, uncertain parameters, hidden dynamics, or an unsuitable tuning rule can destroy the performance you expected. Trying gains until the loop “looks better” may solve one operating point while creating a failure somewhere else.

Control Systems Engineering Handbook gives you a structured path from physical behaviour to a controller you can analyse, implement, and verify. It develops models from mechanical, electrical, and thermal systems, then connects time response, stability, frequency methods, tuning, state-space design, digital implementation, robustness, and industrial automation. Fully worked examples and practice problems show every major calculation instead of leaving you with unexplained software output.

With this handbook, you will be able to:

  • Derive differential-equation, transfer-function, block-diagram, signal-flow, and state-space models from physical systems.

  • Calculate transient response, steady-state error, poles, zeros, damping, settling time, overshoot, bandwidth, and stability margins.

  • Determine stability and select controller gain using algebraic tests, root-locus reasoning, and frequency-response plots.

  • Tune proportional-integral-derivative controllers while accounting for dead time, derivative filtering, anti-windup, saturation, and implementation limits.

  • Apply cascade, feedforward, ratio, and dead-time-compensation structures when a single feedback loop cannot meet the objective.

  • Design state feedback, observers, pole placement, and quadratic regulators using controllability, observability, and eigenvalue analysis.

  • Convert continuous designs into digital controllers while evaluating sampling rate, zero-order hold, discrete stability, quantization, and computation delay.

You will explore transform methods, first- and second-order response, classical stability, frequency-domain design, state variables, observers, discrete-time models, robust performance, model uncertainty, programmable controllers, ladder logic, supervisory systems, process diagrams, alarms, interlocks, and industrial commissioning. Integrated case studies connect identification, controller selection, implementation, testing, and performance assessment across realistic applications.

This handbook is written for upper-level and graduate engineering students, control engineers, automation specialists, process engineers, electrical and mechanical engineers, commissioning personnel, and practising professionals who need a rigorous desk reference. You should understand calculus, differential equations, elementary matrix algebra, and basic circuit or mechanics concepts; actual projects still require validated models, site-specific testing, and qualified engineering review.

If you need to move beyond trial-and-error tuning and understand why a feedback system behaves as it does, this handbook gives you the method. Add it to your technical library and approach your next control problem with models, stability evidence, and design decisions you can defend.

Les informations fournies dans la section « Synopsis » peuvent faire référence à une autre édition de ce titre.