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Original Articles

Properties of the FDTD Method Relevant to the Analysis of Microwave Power Problems

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Pages 62-80 | Accepted 06 Feb 2008, Published online: 09 May 2016

References

  • Al-Rizzo, M., J.M. Tranquilla and M. Feng (2007). “A Finite Difference Thermal Model of a Cylindrical Microwave Heating Applicator Using Locally Conformal Overlapping Grids: Part I-Theoretical Formulation.” J. Microwave Power and Electromagnetic Energy, 40(1), pp.17–29.
  • Bradshaw, S., W. Louw, C. van der Merwe, H. Reader, S. Kingman, M. Celuch, and W. Kijewska (2006). “Techno-Economic Considerations in the Commercial Microwave Processing of Mineral Ores.” J. Microwave Power and Electromagnetic Energy, 40(4), pp.228–240.
  • Buffler, C.R. and P.O. Risman (2000). “Compatibility Issues between Bluetooth and High Power Systems in the ISM Band.” Microwave Journal, 43(7), pp. 126133.
  • Celuch-Marcysiak, M. and W.K. Gwarek (1995). “Generalized TLM Algorithms with Controlled Stability Margin and Their Equivalence with Finite-Difference Formulations for Modified Grids.” IEEE Trans. Microwave Theory Tech., 43(9), pp.20812090.
  • Celuch-Marcysiak, M., W.K. Gwarek and M. Sypniewski (1998). “A Simple and Effective Approach to FD-TD Modeling of Structures Including Lossy Metals.” 1998 Asia-Pacific Microwave Conf., Yokohama, pp.991–994.
  • Celuch-Marcysiak, M. (2001). “Evaluation and Enhancement of Supraconvergence Effects on Nonuniform and Conformal FDTD Meshes.” 2001 IEEE MTT-S Int. Microw. Symp. Dig., Phoenix, AZ, pp.745–748.
  • Celuch-Marcysiak, M. (2003). “Local Stereoscopic Field Singularity Models for FDTD Analysis of Guided Wave Problems.” 2003 IEEE MTT-S Int. Microw. Symp. Dig, Philadelphia, PA, pp.1137–1140.
  • Celuch-Marcysiak, M. (2004). “Extended Theory of FDTD S- and P-Eigenmodes in Lossy Media and Its Application to the Analysis of Coupled Problems.” 2004 IEEE MTT-S Int. Microw. Symp. Dig., Fort Worth, TX, pp.1713–1716.
  • Celuch-Marcysiak, M. and J. Rudnicki (2004). “On the Effect of Total Reflection on Subgridded FDTD Meshes.” 2004 IEEE AP-S Int. Microw. Symp. Dig, Monterey, CA, pp.65–68.
  • Celuch-Marcysiak, M. (2004a). “Extended Study of Poynting Theorem and Reciprocity on Non-Uniform FDTD Meshes.” IEE Proc.-Sci. Meas. Technol. 151(6), pp.452–455.
  • Celuch-Marcysiak, M., W.K. Gwarek, M. Sypniewski (2006). “A Novel FDTD System for Microwave Heating and Thawing Analysis with Automatic TimeVariation of Enthalpy-Dependent Media Parameters.” In: Advances in Microwave and Radio Frequency Processing, M. Willert-Porada (Ed.), Springer, pp. 199–209.
  • Demkowicz, L. (2006). Computing with hp-Adaptive Finite Elements: Vol.1. One and Two Dimensional Elliptic and Maxwell Problems. Chapman & Hall/CRC.
  • Eves, E.E. and V.V. Yakovlev (2002). “Analysis of Operational Regimes of a High Power Water Load.” J. Microwave Power and Electromagnetic Energy, 37(3), pp.127–144.
  • Gwarek, W.K. (1985). “Analysis of an Arbitrarily-Shaped Planar Circuit-a Time-Domain Approach.” IEEE Trans. Microwave Theory Tech., 33(10), pp.10671072.
  • Gwarek, W.K. and M. Celuch-Marcysiak (2003). “Wide-Band S-Parameter Extraction from FD-TD Simulations for Propagating and Evanescent Modes in Inhomogeneous Guides.” IEEE Trans. Microwave Theory Tech., 51(8), pp.1920–1928.
  • Gwarek, W.K. and M. Celuch-Marcysiak (2004). “A Review of Microwave Power Applications in Industry and Research.” Proc. 15th Intern. Conf. Microwaves, Radar and Wireless Communications (MIKON-2004), Warsaw, Poland, 3, pp.843–848.
  • Kopyt, P. and M. Celuch (2007). “Coupled Electromagnetic-Thermodynamic Simulations of Microwave Heating Problems Using the FDTD Algorithm.” J. Microwave Power and Electromagnetic Energy, 41(4), pp.1829.
  • Kunz, K. and R. Luebbers (1993). The Finite Difference Time Domain Method for Electromagnetics, CRC Press.
  • Lynch, D.R. and K.D. Paulsen (1990). “Time-Domain Integration of the Maxwell Equations on Finite Elements.” IEEE Trans. AntennasPropagat, 38(12), pp.1933–1942.
  • Okoniewski, M., E. Okoniewska, and M. Stuchly (1997). “Three-Dimensional Subgridding Algorithm for FDTD.” IEEE Trans. Antennas Propagat., 45(3), pp.422–429.
  • Popovic, D. and M. Okoniewski (2003). “Effective Permittivity at the Interface of Dispersive Dielectrics in FDTD.” IEEE Microwave Wireless Components Lett., 13(7), pp.265–267.
  • QuickWave-3D (1997–2007). QWED Sp. z o.o., ul. Nowowiejska 28, lok. 32, 02–010 Warsaw, Poland, http://www.qwed.com.pl/
  • Railton, C.J. and J.B. Schneider (1999). “An Analytical and Numerical Analysis of Several Locally Conformal FDTD Schemes.” IEEE Trans. Microwave Theory and Tech., 47(1), pp.56–66.
  • Risman, P.O. (1998). “A Microwave Oven Model-Examples of Microwave Heating Computations.” Microwave World, 19(1), pp.20–23.
  • Risman, P.O. and M. Celuch-Marcysiak (2000). “Electromagnetic Modeling for Microwave Power Applications.” Proc. 13th Intern. Conf. Microwaves, Radar and Wireless Communications (MIKON-2000), Wroclaw, Poland, 3, pp.167–182.
  • Risman, P.O. and U. Schonning (2006). “Microwave Tunnel Ovens Using Multiple Open-ended Evanescent Mode Applicators.” Proc. 40th Microwave Power Symp, Boston, MA, pp.105–107.
  • Sabliov, C.M, D.A. Salvi and D. Boldor (2007). “High Frequency Electromagnetism, Heat Transfer and Fluid Flow Coupling in ANSYS Multiphysics.” J. Microwave Power and Electromagnetic Energy, 41(4), pp.3–17.
  • Silvester, P.P. and R.L. Ferrari (1996). Finite Elements for Electrical Engineers, 3rd Ed., Cambridge University Press.
  • Taflove, A. and S.C. Hagness (2005). Computational Electromagnetics-The Finite-Difference TimeDomain Method, 3rd Ed., Artech House.
  • Thoma, P. and T. Weiland (1996). “A Consistent Subgridding Scheme for the Finite Difference Time Domain Method.” Intern. J. Numerical Modeling, 9(5), pp.359–374.
  • Tilford, T., E. Baginski, J. Kelder, K. Parrott and K. Pericleous (2007). “Microwave Modeling and Validation in Food Thawing Applications.” J. Microwave Power and Electromagnetic Energy, 41(4), pp.30–42.
  • Torres, F and, B. Jecko (1997). “Complete FDTD Analysis of Microwave Heating Processes in Frequency-Dependent and Temperature-Dependent Media.” IEEE Trans. Microwave Theory Tech, 45(1), pp.108–117.
  • Weiland, T. (1985). “On the Unique Numerical Solution of Maxwellian Eigenvalue Problems in Three Dimensions.” Particle Accelerators, 17, pp.227242.
  • Yakovlev, V.V. (2001). “Commercial EM Codes Suitable for Modeling of Microwave Heating-a Comparative Review.” In: Scientific Computing in Electrical Engineering, U. van Reinen, M. Gunther and D. Hecht (Eds.), Springer, pp.87–96.
  • Yakovlev, V.V. (2006). “Examination of Contemporary Electromagnetic Software Capable of Modeling Problems of Microwave Heating.” In: Advances in Microwave and Radio Frequency Processing, M. Willert-Porada (Ed.), Springer, pp.178–190.
  • Zienkiewicz, O.C., R.L. Taylor and J.Z. Zhu (2005). Finite Element Method-Its Basis & Fundamentals, 6th Ed., Elsevier Butterworth-Heinemann.
  • Zivanovic, S.S., K.S. Yee and K.K. Mei (1991). “A Subgridding Method for the Time-Domain Finite-Difference Method to Solve Maxwell’s Equations.” IEEE Trans. Microwave Theory Tech., 39(3), pp. 471–479.
  • Zhu, J., A.V. Kuznetsov and K.P. Sandeep (2007). “Mathematical Modeling of Continuous Flow Microwave Heating of Liquids (Effects of Dielectric Propertiesand Design Parameters).” Intern. J. Thermal Sciences, 46 (4), pp.328–341.
  • Zukociñski, M. and M. Celuch-Marcysiak (2006). “FDTD Simulations of Resonators with Closely Spaced Modes.” Proc. 16th Intern. Conf. Microwaves, Radar and Wireless Communications (MIKON-2006), Krakow, Poland, pp.847–850.

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