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With the increasing demand for high integration, low cost, and large capacities in satellite systems, integrating the antenna and microwave component into the same system has become appealing to the satellite engineer. The dual C-type gold ribbon, performing as the key electromagnetic signal bridge between the microwave component and the antenna, has a significant impact on the electrical performance of satellite antennas. However, during its manufacturing and operating, the interconnection geometry undergoes deformation due to mounting errors and environmental loads. Consequently, these parasitic geometry parameters can significantly increase energy loss during the signal transmission. To address this issue, this paper has proposed a method for determining the design range of the geometrical parameters of the dual C-type gold ribbon, and applied it to the performance prediction of the microstrip antennas and the parameter optimization of the gold ribbon. In this study, a mechanical response analysis of the antennas in the operating environment has been carried out and the manufacturing disturbance has been considered to calculate the geometry fluctuation range. Then, the significance ranking of the geometry parameters has been determined and the key parameters have been selected. Finally, the chaos feedback adaptive whale optimization algorithm-back propagation neural network has been used as a surrogate model to establish the relationship between the geometry parameters and the antenna electromagnetic performance, and the multi-objective red-billed blue magpie optimization algorithm has been combined with the surrogate model to optimize the configuration parameters. This paper provides theoretical guidance for the interconnection geometry design and the optimization of the integration module of the antennas and microwave components.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC12388086 | PMC |
http://dx.doi.org/10.3390/mi16080914 | DOI Listing |
Micromachines (Basel)
August 2025
Guangzhou Institute of Technology, Xidian University, Guangzhou 510555, China.
With the increasing demand for high integration, low cost, and large capacities in satellite systems, integrating the antenna and microwave component into the same system has become appealing to the satellite engineer. The dual C-type gold ribbon, performing as the key electromagnetic signal bridge between the microwave component and the antenna, has a significant impact on the electrical performance of satellite antennas. However, during its manufacturing and operating, the interconnection geometry undergoes deformation due to mounting errors and environmental loads.
View Article and Find Full Text PDFBy utilizing graphene patterns consisting of an ellipse and four quarter-ellipse rings, the tunable propagation properties of elliptical graphene ribbon broadband metamaterial absorbers (EGBMAs) have been investigated in the terahertz (THz) region, including the effects of structural parameters, graphene Fermi levels, incident angles, and polarization angles. On the condition that the Fermi level is 1.0 eV, the proposed EGBMA achieves a relative bandwidth reaching more than 78% and an absorption of more than 90% in the frequency range of 0.
View Article and Find Full Text PDFActa Crystallogr E Crystallogr Commun
August 2025
Institut für Anorganische und Analytische Chemie, Technische Universität Braunschweig, Hagenring 30, D-38106 Braunschweig, Germany.
-Di-bromido-bis-(3,5-lutidine)gold(III) tribromide, [AuBr(CHN)](Br) or [(3,5-Lut)AuBr](Br), , polymorph , crystallizes in the space group 1 with = 1. The gold atom and the central bromine of the tribromide ion lie on inversion centres. Polymorph crystallizes in 222 with = 4.
View Article and Find Full Text PDFPediatr Int
January 2025
Department of Pediatrics, Tokai University School of Medicine, Isehara, Japan.
Cancer Sci
August 2025
Division of Brain Tumor Translational Research, National Cancer Center Research Institute, Chuo City, Japan.
U1 small nuclear RNA (snRNA) mutations are recurrent non-coding alterations found in various malignancies, yet their identification has proven challenging due to their repetitive nature. We characterized the complex interindividual diversity and genomic architecture of U1 snRNA loci using sequencing data and a pangenome reference. Our analysis uncovered copy number variations and the diversity of single-nucleotide variants in regions not predicted to have significant functional impact.
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