Application of finite-element method to H-plane waveguide discontinuities

Access Full Text

Application of finite-element method to H-plane waveguide discontinuities

For access to this article, please select a purchase option:

Buy article PDF
£12.50
(plus tax if applicable)
Buy Knowledge Pack
10 articles for £75.00
(plus taxes if applicable)

IET members benefit from discounts to all IET publications and free access to E&T Magazine. If you are an IET member, log in to your account and the discounts will automatically be applied.

Learn more about IET membership 

Recommend Title Publication to library

You must fill out fields marked with: *

Librarian details
Name:*
Email:*
Your details
Name:*
Email:*
Department:*
Why are you recommending this title?
Select reason:
 
 
 
 
 
Electronics Letters — Recommend this title to your library

Thank you

Your recommendation has been sent to your librarian.

The finite-element method has been applied to the scattering by an inhomogeneous H-plane discontinuity of arbitrary shape in a rectangular waveguide. As an example of the method, a right-angle corner bend and a waveguide-type dielectric filter are considered. Our results agree well with earlier theoretical and experimental results.

Inspec keywords: rectangular waveguides; waveguide theory; electromagnetic wave scattering; finite element analysis

Other keywords: waveguide-type dielectric filter; H-plane waveguide discontinuities; rectangular waveguide; right-angle corner bend; scattering; finite-element method

Subjects: Waveguide and microwave transmission line components; Waveguide and cavity theory

References

    1. 1)
      • N. Marcuvitz . (1964) , Waveguide handbook.
    2. 2)
      • M. Koshiba , H. Morita , M. Suzuki . Finite-element analysis of discontinuity problem of SH modes in an elastic plate waveguide. Electron. Lett. , 480 - 482
    3. 3)
      • K. Matsumaru . Reflection coefficient of E-plane tapered waveguides. IRE Trans. , 143 - 149
    4. 4)
      • T. Miyoshi . The expansion of electromagnetic field in planar circuits. Trans. Inst. Electron. Commun. Eng. Jpn. , 86 - 91
    5. 5)
      • T. Okoshi , S. Kitazawa . Computer analysis of short-boundary planar circuits. IEEE Trans. , 299 - 306
    6. 6)
      • P. Silvester . Finite element analysis of planar microwave networks. IEEE Trans. , 104 - 108
    7. 7)
      • R.E. Collin . (1960) , Field theory of guided waves.
    8. 8)
      • Monzen, R., Ozawa, N., Anada, T., Hsu, J.P.: `Derivation of normal mode for dielectric planar circuit-waveguide-type dielectric filter', MW79-69, Tech. Rep., 1979, ibid..
    9. 9)
      • C.T.M. Chang . Equivalent circuit for partially dielectric-filled rectangular-waveguide junctions. IEEE Trans. , 403 - 411
    10. 10)
      • Anada, T., Hsu, J.P.: `Analysis of rectangular waveguide ', MW79-26, Tech. Rep., 1979, IECE Jpn.
    11. 11)
      • T. Anada , J.P. Hsu . Analysis of planar circuit with short circuit boundary by normal mode method-through impedance matrix. Trans. Inst. Electron. Commun. Eng. Jpn. , 646 - 653
    12. 12)
      • Okoshi, T., Kitazawa, S.: `Computer analysis of short-boundary planar circuits', MW75-75, Tech. Rep., 1975, IECE Jpn.
http://iet.metastore.ingenta.com/content/journals/10.1049/el_19820249
Loading

Related content

content/journals/10.1049/el_19820249
pub_keyword,iet_inspecKeyword,pub_concept
6
6
Loading
Errata
An Erratum has been published for this content:
Erratum: Application of finite-element method to H-plane waveguide discontinuities