The present study aims to apply adjoint-based topology optimization to op-timize the cooling system of the Gyrotron cavity, exploiting the azimuthal flow direction. The layout of the cavity of the MW-class gyrotron is a crucial point for reaching the target performance of the device, in the context of a highly non-homogeneous heat load, peaked at values up to 25 MW/m2. A proper cooling system allows to maintain deformations below the threshold that keep the resonant working conditions, keeping at the same time the stress in the elastic regime. A tailored heat removal capability at a controlled pressure drop is addressed in this study using adjoint-based topology optimi-zation in OpenFOAM, for a cooling configuration that involves the possibil-ity for the subcooled water to flow partially in the azimuthal direction around the cavity. The outcome of the optimization is then compared with a solution obtained with a biogeography-based optimization algorithm, in the past. The results of the optimization show a significant effect on the peak temperature reduction, compared to the non-optimized configuration, but only a relaxa-tion of the constraint on the pressure drop could bring the performance at a level comparable to that of other optimized solutions.

Design of the Cooling System of the European Gyrotron Cavity Using Adjoint-based Topology Optimization Exploiting the Azimuthal Flow Direction / Difonzo, Rosa; Cammi, Antonio; Galanos, Nikolaos; Giannakoglou, Kyriakos C.; Papoutsis Kiachagias, Evangelos M.; Savoldi, Laura. - ELETTRONICO. - (In corso di stampa). (Intervento presentato al convegno 14. International Conference on Computational Heat and Mass Transfer, ICCHMT 2023 tenutosi a Düsseldorf, Germany nel 4-8 September 2023).

Design of the Cooling System of the European Gyrotron Cavity Using Adjoint-based Topology Optimization Exploiting the Azimuthal Flow Direction

Rosa Difonzo;Laura Savoldi
In corso di stampa

Abstract

The present study aims to apply adjoint-based topology optimization to op-timize the cooling system of the Gyrotron cavity, exploiting the azimuthal flow direction. The layout of the cavity of the MW-class gyrotron is a crucial point for reaching the target performance of the device, in the context of a highly non-homogeneous heat load, peaked at values up to 25 MW/m2. A proper cooling system allows to maintain deformations below the threshold that keep the resonant working conditions, keeping at the same time the stress in the elastic regime. A tailored heat removal capability at a controlled pressure drop is addressed in this study using adjoint-based topology optimi-zation in OpenFOAM, for a cooling configuration that involves the possibil-ity for the subcooled water to flow partially in the azimuthal direction around the cavity. The outcome of the optimization is then compared with a solution obtained with a biogeography-based optimization algorithm, in the past. The results of the optimization show a significant effect on the peak temperature reduction, compared to the non-optimized configuration, but only a relaxa-tion of the constraint on the pressure drop could bring the performance at a level comparable to that of other optimized solutions.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11583/2989557
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