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High-gain, dielectric loaded, slotted waveguide antenna 원문보기

IPC분류정보
국가/구분 United States(US) Patent 등록
국제특허분류(IPC7판)
  • H01Q-013/10
출원번호 US-0398954 (1999-09-17)
발명자 / 주소
  • Jasper
  • Jr. Louis J.
  • Miletta Joseph R.
  • Merkel George
출원인 / 주소
  • The United States of America as represented by the Secretary of the Army
대리인 / 주소
    Clohan, Jr.
인용정보 피인용 횟수 : 58  인용 특허 : 4

초록

A high-gain, dielectric loaded, slotted waveguide antenna having a photonic bandgap, a high-impedance electromagnetic structure, in contact with the waveguide surface containing longitudinal slots, and a tailored dielectric material structure in contact with the outer surface of the photonic bandgap

대표청구항

[ We claim:] [1.] A high-gain, dielectric loaded, slotted waveguide antenna comprising:a dielectric loaded slotted waveguide element;said dielectric loaded slotted waveguide element filled with a low loss tangent, high-voltage breakdown dielectric material;a composite material loaded slotted wavegui

이 특허에 인용된 특허 (4)

  1. Brennan Joan V. ; Ginkel Scott T. ; Skogland Timothy S., Electrical and electromagnetic apparatuses using laminated structures having thermoplastic elastomeric and conductive l.
  2. Phillips Chester C. ; Lovberg John ; Olsen Randall ; Chou Ri-Chee, Microwave antenna.
  3. Ohmine Hiroyuki,JPX ; Sunahara Yonehiko,JPX ; Sato Shin-ichi,JPX ; Katagi Takashi,JPX ; Wadaka Shusou,JPX, Omnidirectional slot antenna.
  4. Hoover John C. ; Hering Steven F., Slotted array antenna with single feedpoint.

이 특허를 인용한 특허 (58)

  1. Sievenpiper,Daniel F.; Schaffner,James H.; Tangonan,Gregory L., Adaptive beam forming antenna system using a tunable impedance surface.
  2. Sievenpiper, Daniel F.; Hsu, Hui-Pin; Schaffner, James H.; Tangonan, Gregory L., Antenna system for communicating simultaneously with a satellite and a terrestrial system.
  3. LaComb, Julie Anne, Antenna using a photonic bandgap structure.
  4. McKinzie, III, William E.; Aberle, James T., Aperture antenna having a high-impedance backing.
  5. McKinzie, III,William E.; Diaz,Rodolfo E.; Sanchez,Victor C.; Caswell,Eric, Artificial magnetic conductor surfaces loaded with ferrite-based artificial magnetic materials.
  6. James D. Lilly, Artificial magnetic conductor system and method for manufacturing.
  7. Ng, Jackson; Gilbert, Charles G., Beam-steered wide bandwidth electromagnetic band gap antenna.
  8. Sanchez, Victor C.; McKinzie, III, William E.; Diaz, Rodolfo E., Broadband antennas over electronically reconfigurable artificial magnetic conductor surfaces.
  9. Sievenpiper,Daniel F., Compact tunable antenna.
  10. Gregoire, Daniel J.; Colburn, Joseph S., Conformal antennas for mitigation of structural blockage.
  11. Gregoire, Daniel J., Conformal surface wave feed.
  12. Heineck, David; Fathi, Zakaryae, Customized microwave energy distribution utilizing slotted cage.
  13. Heineck, David; Fathi, Zakaryae, Customized microwaving energy distribution utilizing slotted wave guides.
  14. Minden, Monica L.; Bruesselbach, Hans W.; Efimov, Oleg M.; Wang, Shuoqin; Yap, Daniel, Dark channel array.
  15. Minden, Monica L.; Bruesselbach, Hans W.; Efimov, Oleg M.; Wang, Shuoqin; Yap, Daniel, Dark channel array with scattering centers.
  16. Tebbe, Dennis; Smyth, Thomas; Chappell, William Johnson, Dielectric substrate with selectively controlled effective permittivity and loss tangent.
  17. Tebbe,Dennis; Smyth,Thomas; Chappell,William Johnson, Dielectric substrate with selectively controlled effective permittivity and loss tangent.
  18. Ng, Jackson; Gilbert, Charles G.; Anderson, Jack H.; Jimenez, Robyn, Directive fixed beam ramp EBG antenna.
  19. William E. McKinzie, III, Electrically thin multi-layer bandpass radome.
  20. Lai, Anthony; Colburn, Joseph S., Electrically tunable surface impedance structure with suppressed backward wave.
  21. Ando, Noriaki; Tsukagoshi, Tsuneo; Takemura, Koichi, Electromagnetic band gap element, and antenna and filter using the same.
  22. Choi,Jinwoo; Swaminathan,Madhavan; Govind,Vinu, Electromagnetic bandgap structure for isolation in mixed-signal systems.
  23. Herz, Paul R.; Sievenpiper, Daniel, Electronically tunable microwave reflector.
  24. Sievenpiper, Daniel; Hsu, Tsung-Yuan; Wu, Shin-Tson; Pepper, David M., Electronically tunable reflector.
  25. Daniel Sievenpiper ; Jar Jar Lee ; Stan Livingston, End-fire antenna or array on surface with tunable impedance.
  26. Roberson, Mark W., Impedance control devices for use in the transition regions of electromagnetic and optical circuitry and methods for using the same.
  27. Sievenpiper,Daniel F., Large aperture rectenna based on planar lens structures.
  28. Sievenpiper,Daniel F., Large aperture rectenna based on planar lens structures.
  29. Gregoire,Daniel; Massey,Cameron G.; Sievenpiper,Daniel F., Large-scale adaptive surface sensor arrays.
  30. Gregoire, Daniel J.; Colburn, Joseph S., Low cost, 2D, electronically-steerable, artificial-impedance-surface antenna.
  31. Lynch, Jonathan J.; Sievenpiper, Daniel F., Low profile slot antenna using backside fed frequency selective surface.
  32. Sievenpiper, Daniel F.; Schmitz, Adele E.; Schaffner, James H.; Tangonan, Gregory L.; Hsu, Tsung-Yuan; Loo, Robert Y.; Miles, Robert S., Low-cost HDMI-D packaging technique for integrating an efficient reconfigurable antenna array with RF MEMS switches and a high impedance surface.
  33. Itoh, Tatsuo; Qian, Yongxi; Yang, Fei-Ran, Low-profile cavity-backed slot antenna using a uniplanar compact photonic band-gap substrate.
  34. Sievenpiper,Daniel F., Meta-element antenna and array.
  35. Sievenpiper,Daniel F.; Pikulski,Joseph L.; Schaffner,James H.; Hsu,Tsung Yuan, Method of making a high impedance surface.
  36. Heineck, David; Fathi, Zakaryae, Microwave bonding of EVA and rubber items.
  37. Sievenpiper, Daniel F.; Pikulski, Joseph L.; Schaffner, James H.; Hsu, Tsung-Yuan, Molded high impedance surface and a method of making same.
  38. Diaz, Rodolfo E.; McKinzie, III, William E., Multi-resonant, high-impedance electromagnetic surfaces.
  39. Diaz, Rodolfo E.; McKinzie, III, William E., Multi-resonant, high-impedance surfaces containing loaded-loop frequency selective surfaces.
  40. Sievenpiper, Daniel F., Multiband tunable impedance surface.
  41. West, James B.; Mather, John C.; Landt, Don L., One-dimensional and two-dimensional electronically scanned slotted waveguide antennas using tunable band gap surfaces.
  42. Chen,Chien Hua; Ramamoorthi,Sriram; Milligan,Donald J., Photonic crystal device and methods.
  43. Daniel Sievenpiper ; Hui-Pin Hsu, Polarization converting radio frequency reflecting surface.
  44. Schaffner,James H.; Bridges,William B., RF MEMS switch with integrated impedance matching structure.
  45. Sievenpiper, Daniel; Harvey, Robin, Radio frequency aperture.
  46. McKinzie, III, William E.; Sanchez, Victor C.; Reed, Mark; Garrett, Steven L., Reconfigurable artificial magnetic conductor.
  47. McKinzie, III, William E., Reconfigurable artificial magnetic conductor using voltage controlled capacitors with coplanar resistive biasing network.
  48. Colburn, Joseph S.; Sievenpiper, Daniel F.; Mehta, Sarabjit, Reflectarray.
  49. Anderson, Joseph M.; Jordan, Jared W.; Gilbert, Charles G., Ridged waveguide flared radiator antenna.
  50. Anderson, Joseph M.; Jordan, Jared W.; Gilbert, Charles G., Ridged waveguide flared radiator array using electromagnetic bandgap material.
  51. Sievenpiper,Daniel F., Single-pole multi-throw switch having low parasitic reactance, and an antenna incorporating the same.
  52. Sievenpiper,Daniel F., Single-pole multi-throw switch having low parasitic reactance, and an antenna incorporating the same.
  53. Cadotte, Jr., Roland; Wilber, William D., Small low profile antennas using high impedance surfaces and high permeability, high permittivity materials.
  54. Sievenpiper,Daniel F., Steerable leaky wave antenna capable of both forward and backward radiation.
  55. Daniel Sievenpiper ; James H. Schaffner, Textured surface having high electromagnetic impedance in multiple frequency bands.
  56. Daniel Sievenpiper ; Greg Tangonan ; Robert Y. Loo ; James H. Schaffner, Tunable impedance surface.
  57. Sievenpiper, Daniel; Harvey, Robin J.; Tangonan, Greg; Loo, Robert Y.; Schaffner, James H., Tunable impedance surface.
  58. Sievenpiper, Daniel, Vivaldi cloverleaf antenna.
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