Designing X-Band Lenses with the Adjoint Method and 3D Printing Techniques

[EN] In this study, we employ the adjoint method to design a Gradient Index (GRIN) lens at 10 GHz, optimizing the dielectric constant at each point to meet specific goal functions. Our optimization framework incorporates a 2D FFT-integral equation solver, delivering solutions within seconds. The ent...

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Bibliographic Details
Authors: Vico Bondía, Felipe|||0000-0003-1292-3657, Cabedo Fabres, Marta|||0000-0002-3370-1802, Bachiller Martin, Maria Carmen|||0000-0002-5518-5060, Voronov, Aleksandr Andreyevich|||0009-0008-4508-4400, Jiménez, Luís
Format: article
Publication Date:2025
Country:España
Institution:Universitat Politècnica de València (UPV)
Repository:RiuNet. Repositorio Institucional de la Universitat Politécnica de Valéncia
Language:English
OAI Identifier:oai:dnet:riunet______::09e6ae947400924c32f29c8c4b76b4e6
Online Access:https://riunet.upv.es/handle/10251/234654
Access Level:Open access
Keyword:Lens design
Adjoint method
Volume integral equation method
X-Band lenses
Additive manufacturing
Gradient Index (GRIN) lens
Gradient based optimization
Quasi-Newton optimization methods
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Description
Summary:[EN] In this study, we employ the adjoint method to design a Gradient Index (GRIN) lens at 10 GHz, optimizing the dielectric constant at each point to meet specific goal functions. Our optimization framework incorporates a 2D FFT-integral equation solver, delivering solutions within seconds. The entire optimization process is completed in just minutes, presenting a highly efficient approach to lens design. The optimized lens is fabricated using advanced 3D printing techniques, ensuring high precision and cost-effective manufacturing. The resulting design features a unique ring-shaped lens with a central piece of lower contrast, weighing a total of 207 grams and achieving an aperture efficiency of 55.9% as experimentally measured, confirming the effectiveness of the proposed method. The 3D printing process facilitates the rapid prototyping of such GRIN lenses, demonstrating its potential for applications requiring lightweight and compact designs. This approach opens avenues for further optimization and practical applications in communication systems and beyond.