3D printing;
bandpass filter;
CNC machining;
groove gap waveguide technology;
lowpass filter;
stepped impedance synthesis;
NARROW-BAND;
DESIGN;
MICROSTRIP;
LOSSES;
D O I:
10.3390/s23136234
中图分类号:
O65 [分析化学];
学科分类号:
070302 ;
081704 ;
摘要:
This paper presents for the first time a compact wideband bandpass filter in groove gap waveguide (GGW) technology. The structure is obtained by including metallic pins along the central part of the GGW bottom plate according to an n-order Chebyshev stepped impedance synthesis method. The bandpass response is achieved by combining the high-pass characteristic of the GGW and the low-pass behavior of the metallic pins, which act as impedance inverters. This simple structure together with the rigorous design technique allows for a reduction in the manufacturing complexity for the realization of high-performance filters. These capabilities are verified by designing a fifth-order GGW Chebyshev bandpass filter with a bandwidth BW = 3.7 GHz and return loss RL = 20 dB in the frequency range of the WR-75 standard, and by implementing it using computer numerical control (CNC) machining and three-dimensional (3D) printing techniques. Three prototypes have been manufactured: one using a computer numerical control (CNC) milling machine and two others by means of a stereolithography-based 3D printer and a photopolymer resin. One of the two resin-based prototypes has been metallized from a silver vacuum thermal evaporation deposition technique, while for the other a spray coating system has been used. The three prototypes have shown a good agreement between the measured and simulated S-parameters, with insertion losses better than IL = 1.2 dB. Reduced size and high-performance frequency responses with respect to other GGW bandpass filters were obtained. These wideband GGW filter prototypes could have a great potential for future emerging satellite communications systems.
机构:
Univ Oulu, Fibre & Particle Engn Res Unit, Pentti Kaiteran Katu 1, Oulu 90014, Finland
Univ Padua, Dept Ind Engn, Via Marzolo 9, I-35131 Padua, ItalyUniv Oulu, Fibre & Particle Engn Res Unit, Pentti Kaiteran Katu 1, Oulu 90014, Finland
Luukkonen, Tero
Yliniemi, Juho
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Univ Oulu, Fibre & Particle Engn Res Unit, Pentti Kaiteran Katu 1, Oulu 90014, FinlandUniv Oulu, Fibre & Particle Engn Res Unit, Pentti Kaiteran Katu 1, Oulu 90014, Finland
Yliniemi, Juho
Sreenivasan, Harisankar
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Univ Oulu, Fibre & Particle Engn Res Unit, Pentti Kaiteran Katu 1, Oulu 90014, FinlandUniv Oulu, Fibre & Particle Engn Res Unit, Pentti Kaiteran Katu 1, Oulu 90014, Finland
Sreenivasan, Harisankar
Ohenoja, Katja
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Univ Oulu, Fibre & Particle Engn Res Unit, Pentti Kaiteran Katu 1, Oulu 90014, FinlandUniv Oulu, Fibre & Particle Engn Res Unit, Pentti Kaiteran Katu 1, Oulu 90014, Finland
Ohenoja, Katja
Finnila, Mikko
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Univ Oulu, Res Unit Med Imaging Phys & Technol, Aapistie 5 A, Oulu 90220, FinlandUniv Oulu, Fibre & Particle Engn Res Unit, Pentti Kaiteran Katu 1, Oulu 90014, Finland
Finnila, Mikko
Franchin, Giorgia
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Univ Padua, Dept Ind Engn, Via Marzolo 9, I-35131 Padua, ItalyUniv Oulu, Fibre & Particle Engn Res Unit, Pentti Kaiteran Katu 1, Oulu 90014, Finland
Franchin, Giorgia
Colombo, Paolo
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Univ Padua, Dept Ind Engn, Via Marzolo 9, I-35131 Padua, ItalyUniv Oulu, Fibre & Particle Engn Res Unit, Pentti Kaiteran Katu 1, Oulu 90014, Finland