ScholarGate
Assistent
Process / pipelineNumerical electromagnetic analysis

Finit Integrationsteknik

Finite Integration Technique (FIT) er en numerisk metode til løsning af Maxwells ligninger på strukturerede gitter, der formulerer elektromagnetisme som et system af integralligninger over gitterceller. Metoden blev introduceret af Thomas Weiland i 1977 og bygger bro mellem finite differenser og finite elementer, hvilket giver fremragende nøjagtighed, stabilitet og beregningseffektivitet for en bred vifte af elektromagnetiske problemer. FIT er grundlaget for kommercielle løsere som CST Microwave Studio og anvendes bredt inden for RF-, mikrobølge- og EMC-teknik.

Åbn i MethodMindSnartVideoSnartDownload slides

Læs hele metoden

Kun for medlemmer

Log ind med en gratis konto for at læse dette afsnit.

Log ind

Method map

The neighbourhood of related methods — select a node to explore.

Kilder

  1. Weiland, T. (1977). A new method for the solution of Maxwell's equations. Zeitschrift für Naturforschung, 31(7), 861-873. link
  2. Clemens, M., & Weiland, T. (2001). Discrete electromagnetism with the finite integration technique. Progress in Electromagnetics Research, 32, 65-87. DOI: 10.2528/pier00080103
  3. Weiland, T. (1996). Time domain electromagnetic field computation with finite difference methods. International Journal of Numerical Modelling, 9(4), 295-319. DOI: 10.1002/(sici)1099-1204(199607)9:4<295::aid-jnm240>3.0.co;2-8

Sådan citerer du denne side

ScholarGate. (2026, June 3). Finite Integration Technique for Electromagnetic Field Simulation. ScholarGate. https://scholargate.app/da/electrical-engineering/finite-integration-technique

Which method?

Set this method beside its closest kin and read them side by side — the library lays the books on the table; the choice is yours.

Compare side by side

Refereret af

ScholarGateFinite Integration Technique (Finite Integration Technique for Electromagnetic Field Simulation). Hentet 2026-06-15 fra https://scholargate.app/da/electrical-engineering/finite-integration-technique · Datasæt: https://doi.org/10.5281/zenodo.20539026