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Pablo Echevarria

Publications and source records attributed to Pablo Echevarria.

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KIND: A Kalman-Inspired Adaptive Estimator for SRF Cavity Detuning

Superconducting radio frequency cavities with a high quality factor enable energy-efficient accelerator operation but are very sensitive to mechanical disturbances that detune their resonance. Accurate detuning estimation is therefore essential for efficient resonance control and stable beam conditions. This paper introduces Kalman-Inspired Neural Decomposition (KIND), a data-driven estimator that fuses a Dynamic Mode Decomposition model for stationary modal behavior with a Transformer-based predictor for transient dynamics. KIND further outputs learned uncertainty signals that indicate regime changes, enabling anomaly detection. Using operational cavity data, we compare KIND with a classical Kalman filtering baseline and discuss its potential as a foundation for future uncertainty-aware, forecast-based control.

eess.SY

Control algorithm tests using a virtual CW SRF cavity

Superconducting cavities (SRF) are widely used in new generation particle accelerators, increasing the requirements and specifications for new designs. The LLRF control system, including the detuning control due to mechanical perturbations, must fulfill more exigent specifications, and its design have gained increasing relevance. The Helmhoz Zentrum Berlin, among others, have been working in the development of simulation and Hardware-in-the-loop tools to facilitate the test of control algorithms. The main goal of this work is to use an existing cavity model in CW mode, a Tesla cavity including a Saclay style piezo-tuner, and simulation tools to compare and test different control strategies focused in the detuning reduction, specially microphonics. The design process consist of the use of pure simulation environment based on Matlab/Simulink, where the mathematical model includes a cavity model, a LLRF control system and detuning control strategies, considering the mentioned actuator. Different control strategies are considered for the RF and mechanical parts: perturbation reduction by PID based feedback loops, adaptive feedforward algorithms, and active disturbance rejection techniques (ADRC). The aim is the performance comparison of the different algorithms with different perturbations, by using realistic cavity models which include Lorenz force detuning, microphonics derived from the cryogenic module and so forth. The simulation environment allows the inclusion of other effects as the non-collocated control problem.

physics.acc-ph