Analysis of glass-reinforced epoxy material for radio frequency resonator.

A radio frequency (RF) resonator using glass-reinforced epoxy material for C and X band is proposed in this paper. Microstrip line technology for RF over glass-reinforced epoxy material is analyzed. Coupling mechanism over RF material and parasitic coupling performance is explained utilizing even an...

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Publicado en:Scientific World Journal pp. 831435 - 831436
Autores principales: Zaman, M R, Islam, M T, Misran, N, Yatim, Baharudin
Formato: Journal Article
Publicado: Wiley-Blackwell 2014
Acceso en línea:Ver este registro en EBSCOhost
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      pub: Wiley-Blackwell
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        atl: Analysis of glass-reinforced epoxy material for radio frequency resonator.
      aug:
        au:
          Zaman, M R
          Islam, M T
          Misran, N
          Yatim, Baharudin
        affil: Institute of Space Science (ANGKASA), 43600 UKM Bangi, Malaysia ; Department of Electrical, Electronic and Systems Engineering, Universiti Kebangsaan Malaysia, 43600 UKM Bangi, Malaysia.
      sug:
        subj:
          Electronics Equipment and Supplies
          Glass
          Models, Theoretical
          Resins, Synthetic
          Telecommunications Equipment and Supplies
          Computer-Aided Design
          Computer Simulation
          Equipment Design
          Equipment Failure
          Materials Testing
          Microwaves
          Radio Waves
      ab: A radio frequency (RF) resonator using glass-reinforced epoxy material for C and X band is proposed in this paper. Microstrip line technology for RF over glass-reinforced epoxy material is analyzed. Coupling mechanism over RF material and parasitic coupling performance is explained utilizing even and odd mode impedance with relevant equivalent circuit. Babinet's principle is deployed to explicate the circular slot ground plane of the proposed resonator. The resonator is designed over four materials from different backgrounds which are glass-reinforced epoxy, polyester, gallium arsenide (GaAs), and rogers RO 4350B. Parametric studies and optimization algorithm are applied over the geometry of the microstrip resonator to achieve dual band response for C and X band. Resonator behaviors for different materials are concluded and compared for the same structure. The final design is fabricated over glass-reinforced epoxy material. The fabricated resonator shows a maximum directivity of 5.65 dBi and 6.62 dBi at 5.84 GHz and 8.16 GHz, respectively. The lowest resonance response is less than -20 dB for C band and -34 dB for X band. The resonator is prototyped using LPKF (S63) drilling machine to study the material behavior.
      pubtype: Academic Journal
      doctype: Journal Article
      ougenre: Article
    language: English
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