Planar slow wave structure traveling wave tubes :design, fabrication and experiment /
"Version: 20241001"--Title page verso.Includes bibliographical references.1. Introduction -- 1.1. Conventional traveling-wave tubes -- 1.2. Problems encountered2. Planar slow-wave structures -- 2.1. Periodic planar slow-wave structures -- 2.2. Axial periodic slow-wave structures3. Planar electron optical systems -- 3.1. Introduction -- 3.2. Radial planar EOSs -- 3.3. Angular radial planar EOSs -- 3.4. Sheet electron beam EOSs -- 3.5. Multiple sheet beam EOSs4. Fabrication technologies -- 4.1. Suspended double-microstrip meander line -- 4.2. Fabrication of conformal microstrip slow-wave structures -- 4.3. Angular log-period meander strip-line SWS -- 4.4. Quartz-based microstrip angular log-period meander-line SWS -- 4.5. Attenuator-supported meander strip-line SWS -- 4.6. Modified angular log-period folded waveguide SWS -- 4.7. Terahertz folded waveguide SWS -- 4.8. Meander slot-line SWS5. Fixtures and assembly -- 5.1. Angular log-period meander strip-line TWT -- 5.2. Modified angular log-period folded waveguide TWT6. System tests -- 6.1. Angular radial log-periodic meander-line traveling-wave tube -- 6.2. Modified angular log-periodic folded waveguide TWT7. Future perspectives and discussion -- 7.1. Future direction -- 7.2. Artificial-intelligence-aided design.Full-text restricted to subscribers or individual document purchasers.Traveling wave tubes play a crucial role in fields like communication and broadcasting. Planar slow wave structure traveling wave tubes can settle the power limitation caused by the size reduction in traditional cylindrical-beam traveling wave tubes. Therefore, there are increasingly more researchers contributing to the development of planar slow wave structure traveling wave tubes. As a competitive candidate for 5G/6G communication, planar slow wave structure traveling wave tubes are attracting a lot of attention. Yet there has not yet been a book which specifically introduces the key points in the development of such a device, this is that book. Readers will learn how planar slow wave structure traveling wave tubes work and how to design wideband, high efficiency, miniature millimeter wave and terahertz wave amplifiers. Part of IOP Series in Electromagnetics and Metamaterials.Researchers and students on high frequency, high power and high efficiency electromagnetic amplifiers.Also available in print.Mode of access: World Wide Web.System requirements: Adobe Acrobat Reader, EPUB reader, or Kindle reader.Professor Yubin Gong obtained his PhD degree from University of Electronic Science and Technology of China (UESTC) in 1998. Since 2001, he has been a professor of UESTC. He was awarded the National Science Fund of China for Distinguished Young Scholars. His research interests include vacuum electron devices, terahertz biophysics, combination of medical and engineering applications, etc. He is the editor-in-chief of Journal of Vacuum Electronic Technologies and a member of the IEEE EDS Vacuum Electronics Technical Committee. He has published more than 500 papers and authorized more than 50 patents. Professor Shaomeng Wang has been a professor at University of Electronic Science and Technology of China (UESTC) since 2020. He was previously a research fellow at Nanyang Technological University in Singapore. He has published 108 papers. His expertise is in mm terahertz wave devices and applications.Title from PDF title page (viewed on November 4, 2024).
No copy data
No other version available