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Articles

A three-dimensional nonlinear beam–wave interaction theory for common traveling wave tubes

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Pages 2178-2190 | Received 25 Apr 2015, Accepted 09 Aug 2015, Published online: 05 Oct 2015

References

  • Pierce JR, Field LM. Traveling-wave tubes. Proc. IRE. 1947;35:108–111.10.1109/JRPROC.1947.226216
  • Rowe J. A large-signal analysis of the traveling-wave amplifier: theory and general results. IRE Trans. Electron Devices. 1956;3:39–56.10.1109/T-ED.1956.14098
  • Antonsen T Jr, Levush B. Traveling-wave tube devices with nonlinear dielectric elements. IEEE Trans. Plasma Sci. 1998;26:774–786.10.1109/27.700830
  • Chernin D, Antonsen T Jr, Levush B, et al. A three-dimensional multifrequency large signal model for helix traveling wave tubes. IEEE Trans. Electron Devices. 2001;48:3–11.10.1109/16.892161
  • Freund H, Zaidman E, Antonsen T Jr. Theory of helix traveling wave tubes with dielectric and vane loading. Phys. Plasmas. 1996;3:3145–3161.10.1063/1.871590
  • Freund H, Zaidman E. Nonlinear theory of collective effects in helix traveling wave tubes. Phys. Plasmas. 1997;4:2292–2301.10.1063/1.872393
  • Freund H, Zaidman E. Time-dependent simulation of helix traveling wave tubes. Phys. Plasmas. 2000;7:5182–5194.10.1063/1.1319338
  • Chernin D, Antonsen T Jr, Chernyavskiy I, et al. Large-signal multifrequency simulation of coupled-cavity TWTs. IEEE Trans. Electron Devices. 2011;58:1229–1240.10.1109/TED.2011.2106504
  • Freund HP, Antonsen T Jr, Zaidman E, et al. Nonlinear time-domain analysis of coupled-cavity traveling-wave tubes. IEEE Trans. Plasma Sci. 2002;30:1024–1040.10.1109/TPS.2002.802148
  • Vlasov A, Antonsen T Jr, Chernyavskiy I, et al. A computationally efficient two-dimensional model of the beam-wave interaction in a coupled-cavity TWT. IEEE Trans. Plasma Sci. 2012;40:1575–1589.10.1109/TPS.2012.2188547
  • Zheng R, Ohlckers P, Chen X. Particle-in-cell simulation and optimization for a 220-GHz folded-waveguide traveling-wave tube. IEEE Trans. Electron Devices. 2011;58:2164–2171.10.1109/TED.2011.2145420
  • Yan S, Su W, Xu A, Wang Y. Analysis of multi-beam folded waveguide traveling-wave tube for terahertz radiation. J. Electromagn. Wave. 2015;29:436–447.10.1080/09205071.2014.992552
  • Shen F, Wei Y, Xu X, et al. 140-GHz V-shaped microstrip meander-line traveling wave tube. J. Electromagn. Wave. 2012;26:89–98.10.1163/156939312798954946
  • Na Y, Chung S, Choi J. Analysis of a broadband Q band folded waveguide traveling-wave tube. IEEE Trans. Plasma Sci. 2002;3:1017–1023.
  • Chernyavskiy I, Vlasov A, Levush B, et al. 2D modeling of TWTs based on serpentine and folded waveguide structures. In: IEEE International Conference on Plasma Science (ICOPS); 2012. p. 6B-4.
  • Vlasov A, Chernyavskiy I, Joye C, et al. Modeling of the NRL G-Band TWT amplifier using the CHRISTINE and TESLA simulation codes. Proceedings of 14th Inernational Vacuum Electronics Conference; 2013 May 21–23; Paris; 2013.
  • Chernin D, Antonsen T, Vlasov A, et al. 1-D large signal model of folded-waveguide traveling wave tubes. IEEE Trans. Electron Devices. 2014;6:2164–2171.
  • Peng W, Hu Y, Cao Z, et al. Digitized nonlinear beam andwave interaction theory of traveling wave tube amplifiers. Prog. Electromagn. Res. M. 2013;28:73–88.10.2528/PIERM12120709
  • Bernardi P, André F, David J-F, et al. Efficient time-domain simulations of a helix traveling-wave tube. IEEE Trans. Electron Devices. 2011;6:1716–1767.
  • Kosmahl H, Branch G Jr. Generalized representation of electric fields in interaction gaps of klystrons and traveling-wave tubes. IEEE Trans. Electron Devices. 1973;20:621–629.10.1109/T-ED.1973.17713
  • High Frequency Structure Simulator User's Reference. Ansoft corp., Pittsburgh, PA, 2001.
  • Freund H. Nonlinear theory of helix traveling wave tubes in the frequency domain. Phys. Plasmas. 1999;6:3633–3646.10.1063/1.873622
  • Wilson J, Kory C. Simulation of cold-test parameters and RF output power for a coupled-cavity traveling-wave tube. IEEE Trans. Electron Devices. 1995;42:2015–2020.10.1109/16.469412
  • Limburg H, Zamora D, Davis J, et al. A 75 Watt, 59 to 64 GHZ space TWT; Torrance (CA): Hughes Aircraft; 1995. (Draft of NASA Contractor Report NAS3-25090).
  • Li B, Yang Z, Li J, et al. Theory and design of microwave-tube simulator suite. IEEE Trans. Electron Devices. 2009;56:919–927.10.1109/TED.2009.2015413
  • Li B, Li J, Hu Q, et al. Recent developments to the microwave tube simulator suite. IEEE Trans. Electron Devices. 2014;61:1735–1741.10.1109/TED.2014.2307058

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