• DocumentCode
    2732141
  • Title

    Rapid Antenna Model Creation

  • Author

    Macon, Charles ; Henn, David ; Wong, Steve ; Kung, Chris ; Jin, Jianming

  • Author_Institution
    Sensors Directorate (AFRL/RY), US Air Force Res. Lab., Wright-Patterson AFB, OH, USA
  • fYear
    2009
  • fDate
    15-18 June 2009
  • Firstpage
    344
  • Lastpage
    349
  • Abstract
    Computational electromagnetic (CEM) analysis software is employed extensively throughout the Department of Defense (DoD) tri-services and commercial sector to predict the in-situ performance of antennas installed on air, land and sea platforms. Accurate predictions require accurate geometry models, but generating high-fidelity geometry models of complex antennas is very labor intensive. Hence, the geometry modeling process is a bottleneck to rapid CEM analysis. Therefore, to increase design analysis throughput throughout the acquisition cycle, CEM antenna prediction tools must be user-friendly to allow for rapid antenna modeling and simulation. To enable the rapid generation of computer-aided design (CAD) antenna geometry models that are suitable for meshing and subsequent CEM analysis, a software tool was developed under the DoD High Performance Computing Modernization Program´s User Productivity, Enhancement, Technology Transfer and Training initiative. The tool features four templates for generating four common classes of antennas, namely the horn, flared notch, conformal patch, and spiral antennas. Each template features a user-friendly graphical user interface (GUI) wizard that allows the user to enter parameters (e.g., physical dimensions, notch taper functions) that define each antenna class. The underlying engine for each template is a CUBIT Python script which uses the parametric data to rapidly and automatically generate the specified antenna CAD geometry on-the-fly. Moreover, error-checking routines are incorporated into each template script to prevent the user from entering nonsensical parameters. These features ultimately save the user time in the geometry generation process. This paper provides a description of the tool along with performance metrics and an example of how the tool was tested on simple antenna geometry.
  • Keywords
    CAD; computational electromagnetics; conformal antennas; graphical user interfaces; horn antennas; microstrip antennas; military equipment; spiral antennas; CAD antenna geometry models; CUBIT Python script; DoD High Performance Computing Modernization Program; antenna prediction tools; computational electromagnetic analysis software; conformal patch antenna; error-checking routines; flared notch antenna; horn antenna; meshing; rapid antenna model creation; rapid antenna simulation; software tool; spiral antenna; technology transfer; template script; training; user productivity; user-friendly graphical user interface wizard; Antennas; Benchmark testing; Computational modeling; Design automation; Geometry; Graphical user interfaces; Solid modeling;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    DoD High Performance Computing Modernization Program Users Group Conference (HPCMP-UGC), 2009
  • Conference_Location
    San Diego, CA
  • Print_ISBN
    978-1-4244-5768-7
  • Electronic_ISBN
    978-1-4244-5769-4
  • Type

    conf

  • DOI
    10.1109/HPCMP-UGC.2009.56
  • Filename
    5729487