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The optimization of the dielectric layer photonic crystal filter by the quadratic response surface methodology

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Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Dielectric layer photonic crystal filter structures in waveguide are optimized by the quadratic response surface methodology. The optimization model of the filter is established on the basis of the analysis which is conducted with the aid of the response surface methodology. The model is solved using sequential quadratic programming and the optimal parameters are obtained. Examples demonstrate it is effective.
Czasopismo
Rocznik
Strony
369--379
Opis fizyczny
Bibliogr. 16 poz., rys.
Twórcy
autor
  • College of Applied Sciences, Beijing University of Technology, Beijing 100124, China
autor
  • College of Applied Sciences, Beijing University of Technology, Beijing 100124, China
autor
  • College of Applied Sciences, Beijing University of Technology, Beijing 100124, China
autor
  • College of Applied Sciences, Beijing University of Technology, Beijing 100124, China
Bibliografia
  • [1] HE JIE, SONG LI-TAO, WANG HUA-LEI, HAN YI-ANG, LI TAO, Polarization sensitive performance of one dimensional photonic crystal filters with a liquid crystal layer, Optoelectronics Letters 6(6), 2010, pp. 432–434.
  • [2] HAIXIA QIANG, LIYONG JIANG, WEI JIA, XIANGYIN LI, Design of one-dimensional dielectric and magnetic photonic crystal filters with broad omnidirectional filtering band, Optica Applicata 41(1), 2011, pp. 63–77.
  • [3] RUMSEY I., PIKET-MAY M., KELLY P.K., Photonic bandgap structures used as filters in microstrip circuits, IEEE Microwave and Guided Wave Letters 8(10), 1998, pp. 336–338.
  • [4] ILUZ Z., SHAVIT R., BAUER R., Microstrip antenna phased array with electromagnetic bandgap substrate, IEEE Transactions on Antennas and Propagation 52(6), 2004, pp. 1446–1453.
  • [5] ZHAO XING-XING, ZHU QIAO-FEN, ZHANG YAN, The design of a photonic crystal filter in the terahertz range, Chinese Physics B 18(7), 2009, pp. 2864–2867.
  • [6] JIANDONG MAO, JUAN LI, CHUNYAN ZHOU, HU ZHAO, HONGJIANG SHENG, Optimum design of a photonic crystal filter based on a genetic algorithm used in a rotational Raman lidar, Laser Physics 23(2), 2013, article 026003.
  • [7] LV X.Y., The Reseach in Application of the Photonoc Crystal Filter, Master Thesis, Xinjiang University, 2006, (in Chinese).
  • [8] DJAVID M., MIRTAHERI S.A., ABRISHAMIAN M.S., Photonic crystal notch-filter design using particle swarm optimization theory and finite-difference time-domain analysis, Journal of the Optical Society of America B 26(4), 2009, pp. 849–853.
  • [9] LEI K.Y., The Reseach in Application of Particle Swarm Optimization Algorithm, Doctor Thesis, Southwest University, 2006, (in Chinese).
  • [10] ROUX W.J., STANDER N., HAFTKA R.T., Response surface approximations for structural optimization, International Journal for Numerical Methods in Engineering 42(3), 1998, pp. 517–534.
  • [11] JANSSON T., NILSSON L., REDHE M., Using surrogate models and response surfaces in structural optimization – with application to crashworthiness design and sheet metal forming, Structural and Multidisciplinary Optimization 25(2), 2003, pp. 129–140.
  • [12] REN L.Q., Experimental Optimization Technology, China Machine Press, 1987, pp. 147–154.
  • [13] YAN DUN-BAO, YUAN NAI-CHANG, FU YUN-QI, Research on dielectric layer PBG structures in waveguide based on FDTD, Journal of Electronics and Information Technology 26(1), 2004, pp. 118–123.
  • [14] HUIPING YU, YUNKAN SUI, JING WANG, FENGYI ZHANG, XIAOLIN DAI, Optimal control of oxygen concentration in a magnetic Czochralski crystal growth by response surface methodology, Journal of Materials Science and Technology 22(2), 2006, pp. 173–178.
  • [15] YUNKANG SUI, HUIPING YU, The Improvement of Response Surface Method and the Application of Engineering Optimization, Science Press, 2010, pp. 11–32.
  • [16] VITALI R., Response Surface Method for High Dimensional Structural Design Problem, Ph.D. Thesis, University of Florida, 2000.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-97d2030d-82f9-4527-8c87-492a4e981ae6
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