High gradient experiments with X -band cryogenic copper accelerating cavities
暂无分享,去创建一个
Sami Tantawi | Valery Dolgashev | Alexander Cahill | J. B. Rosenzweig | Stephen Weathersby | J. Rosenzweig | Sami G. Tantawi | V. Dolgashev | S. Weathersby | A. Cahill
[1] Christopher Nantista,et al. Low-field accelerator structure couplers and design techniques , 2004 .
[2] Walter Wuensch,et al. Statistics of vacuum breakdown in the high-gradient and low-rate regime , 2017 .
[3] Walter Wuensch,et al. New local field quantity describing the high gradient limit of accelerating structures , 2009 .
[4] I. Wilson,et al. Frequency and temperature dependence of electrical breakdown at 21, 30, and 39 GHz. , 2003, Physical review letters.
[5] R. A. Matula. Electrical resistivity of copper, gold, palladium, and silver , 1979 .
[6] Sami G. Tantawi,et al. Cryogenic RF Material Testing with a High-Q Copper Cavity , 2010 .
[7] Lay Kee Ang,et al. Multipactor discharge on metals and dielectrics: Historical review and recent theories , 1998 .
[8] Christopher Nantista,et al. Experimental study of rf pulsed heating , 2011 .
[9] M. Snir,et al. Report No , 2005 .
[10] E. Tanabe,et al. High-Power Operation of Accelerator Structures at Liquid Nitrogen Temperature , 1985, IEEE Transactions on Nuclear Science.
[11] Valery A. Dolgashev. Progress on high-gradient structures , 2013 .
[12] B.J.Munroe,et al. High power breakdown testing of a photonic band-gap accelerator structure with elliptical rods , 2013 .
[13] Sami G. Tantawi,et al. Effect of RF Parameters on Breakdown Limits in High‐Vacuum X‐Band Structures , 2003 .
[14] A. Marcelli,et al. High power tests of an electroforming cavity operating at 11.424 GHz , 2016 .
[15] E. H. Sondheimer,et al. The evaluation of the surface impedance in the theory of the anomalous skin effect in metals , 1948, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[16] Amelioration de la conductivite superficielle du cuivre et de l'aluminium en hyperfrequences, par abaissement de temperature , 1966 .
[17] Roberto Vescovo,et al. Implementation of Radio-Frequency Deflecting Devices for Comprehensive High-Energy Electron Beam Diagnosis , 2015, IEEE Transactions on Nuclear Science.
[18] D. Pritzkau. RF pulsed heating , 2001 .
[19] Sami Tantawi,et al. Geometric dependence of radio-frequency breakdown in normal conducting accelerating structures , 2010 .
[20] A. Pippard,et al. The surface impedance of superconductors and normal metals at high frequencies II. The anomalous skin effect in normal metals , 1947, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[21] C. Adolphsen,et al. Performance limiting effects in X-band accelerators , 2011 .
[22] L. Laurent,et al. X -band photonic band-gap accelerator structure breakdown experiment , 2011 .
[23] Kai Nordlund,et al. Defect model for the dependence of breakdown rate on external electric fields , 2012 .
[24] Thomas P. Wangler,et al. Principles RF Linear Accelerators: Wangler/Principles , 2008 .
[25] Juhao Wu,et al. Dark Currents and Their Effect on the Primary Beam in an X-band Linac , 2005 .
[26] G. D'Auria,et al. X-band technology applications at FERMI@Elettra FEL project , 2011 .
[27] rf losses in a high gradient cryogenic copper cavity , 2018, Physical Review Accelerators and Beams.
[28] P. Emma,et al. Design and application of multimegawatt X-band deflectors for femtosecond electron beam diagnostics , 2014 .
[29] Walter Wuensch,et al. Comparison of the conditioning of High Gradient Accelerating Structures , 2016 .
[30] G. Bowden,et al. Experimental demonstration of a tunable microwave undulator. , 2014, Physical review letters.
[31] A.Dian Yeremian. Choke Flange for High Power RF Components Excited by TE01 Mode , 2009 .
[32] C. W. Steele,et al. A Nonresonant Perturbation Theory , 1966 .
[33] Sami G. Tantawi,et al. Next Generation High Brightness Electron Beams From Ultra-High Field Cryogenic Radiofrequency Photocathode Sources , 2016, 1603.01657.
[34] D. Ratner,et al. First lasing and operation of an ångstrom-wavelength free-electron laser , 2010 .