7 Design and Principles of Linear Accelerators and Colliders
333
45. E-XFEL: http://accelconf.web.cern.ch/AccelConf/ipac2017/papers/moxaa1.pdf and https://
www.xfel.eu/
46. LCLS II: http://accelconf.web.cern.ch/AccelConf/ipac2017/papers/tupab130.pdf and https://
lcls.slac.stanford.edu/lcls-ii
47. SCRF R&D: A. Grassellino et al., “Unprecedented quality factors at accelerating gradients up
to 45 MV/m in niobium superconducting resonators via low temperature nitrogen infusion“,
Supercond. Sci. Technol. 30 (2017) 094004 (https://doi.org/10.1088/1361-6668/aa7afe)
48. ILC Japan 2012: http://www.jahep.org/office/doc/201202_hecsubc_report.pdf
49. CTF3 results: http://accelconf.web.cern.ch/AccelConf/ipac2017/papers/tuzb1.pdf
50. X-band applications: http://cerncourier.com/cws/article/cern/52358
51. CESRTA results: http://accelconf.web.cern.ch/AccelConf/IPAC10/papers/tuymh02.pdf
52. FACET studies: Latina, Andrea et al., “Experimental demonstration of a global dispersionfree steering correction at the new linac test facility at SLAC”, Physical Review Special Topics
- Accelerators and Beams. 17. 042803 (https://doi.org/10.1103/PhysRevSTAB.17.042803)
(2014)
53. ATF2 results: https://agenda.linearcollider.org/event/7014/contributions/36882/attachments/
30069/44951/ATF2_okugi_20160601.pdf
54. R.B. Neal, et al., The Stanford two-miles linear accelerator, New York: W.A. Benjamin, 1968.
55. E. Jensen, CTF3 Drive Beam accelerating structures, Proc. LINAC2002, 2002, Gyeongju,
Korea, CERN/PS 2002-068(RF), and CLIC note 538
56. A. Grudiev, W. Wuensch, DESIGN OF THE CLIC MAIN LINAC ACCELERATING
STRUCTURE FOR CLIC CONCEPTUAL DESIGN REPORT, Proceedings of Linear Accelerator Conference LINAC2010, Tsukuba, Japan, 2010.
57. H. Padamsee: RF superconductivity, Wiley-VCH Verlag (2009).
58. H. Padamsee, J. Knobloch, Tom Hays: RF superconductivity for accelerators, John Wiley &
Sons Inc. (1998).
59. H. Padamsee: Designing superconducting cavities for accelerators, Proc. CERN Accelerator
School, S. Russenschuck, G. Vandoni (eds.), CERN-2004-008, (2004).
60. J. Sekutowicz: Design of a low loss SRF cavity for the ILC, PAC’05, Knoxville, (2005) 3342.
61. R. Geng: Review for new shapes for high gradients, Physica C 441 (2006) 145.
62. FLASH/TESLA facility project: http://flash.desy.de/tesla/tesla_documentation/
63. European XFEL project: http://www.xfel.eu/
64. ILC project: http://www.linearcollider.org/
65. A. Yamamoto: Global R&D effort for the ILC LINAC technology, Proc. EPAC-08, MOYBGM01, Genova, (2008).
66. L. Evans, S. Michizono, and A. Yamamoto: International Linear Collider (ILC) – Overview
“KASOKUKI”, Journal of Particle Accelerator Society of Japan, 14, No. 4 (2017) 194-200.
67. A. Yamamoto: Superconducting RF Cavity Development for the International Linear Collider, IEEE Trans. Appl. Superconductivity. 19 (3) (2009) 1387-1393.
68. A. Yamamoto and K. Yokoya: Linear Colliders, Review of Accelerator Science and Technology, Vol. 7 (2014) 1-22.
69. K.L.F. Bane, A. Mosnier, A. Novokhatsky, K. Yokoya: Calculation of the Short-Range
longitudinal wakeelds in the NLC linac, in: Proc. ICAP 1998, Monterey, CA, November
1998.
70. A.W. Chao: Physics of Collective Beam Instabilities in High Energy Accelerators, WileyInterscience, 1st edition, January 1993.
71. Th.P. Wangler: RF Linear Accelerators. Wiley-VCH, 2nd edition, March 2008.
72. M.G. Minty, F. Zimmermann: Measurement and Control of Charged Particle Beams, Springer,
1st edition, August 2003.
73. A.W. Chao: Handbook of Accelerator Physics and Engineering, Second Edition, World
Scientific Publ., 2013.
74. V. Balakin, et al.: Phys. Rev. Lett. 74 (1995) 2479-2482.
75. M.S. Zisman: The PEP-II Project, LBL-34556 CBP Note-036.
76. E. Kikutani, et al.: KEKB Accelerator Papers, KEK Preprint 2001-157, December 2001.
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