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This thesis presents the design and evaluation of a passivity-based controller applied
to a small-scale hydropower system modeled within the port-Hamiltonian framework.
The model integrates the hydraulic and electromechanical dynamics of the system,
providing a coherent nonlinear energy-based representation. Based on this model, a
controller is designed using the Interconnection and Damping Assignment Passivity-
Based Control (IDA-PBC) methodology, aimed at shaping the system energy and
dissipation structure. Closed-loop stability is established through a Lyapunov-based
analysis using the desired Hamiltonian function, ensuring local asymptotic stability
of the equilibrium. The dynamic performance of the proposed controller is evaluated
through numerical simulations under different operating scenarios and compared
with a conventional AVR–PSS–PID scheme. Performance assessment is conducted
using the ITAE index applied to terminal voltage and rotor speed deviation, supported
by a statistical analysis based on Monte Carlo simulations. The results indicate that
the IDA-PBC controller achieves comparable and, in several scenarios, superior
performance with respect to the classical approach, yielding lower ITAE values and a
more consistent dynamic response, while providing formal stability guarantees.
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