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[n] A. Anders, S. Anders, and I. Brown, “Surface Resistivity Tailoring of Ceramic Accelerator Components”, in Proc. PAC'93, Washington D.C., USA, Mar. 1993, pp. 1390-1393.
[n] T. Fujino et al., “Thermal Quench Phenomena on the 1.3 GHz High Gradient Superconducting Cavities”, in Proc. EPAC'96, Sitges, Spain, Jun. 1996, paper WEP055L, pp. 2124-2126.
[n] Y. P. Sun, “Online Minimization of Vertical Beam Sizes at APS”, in Proc. NAPAC'16, Chicago, IL, USA, Oct. 2016, pp. 916-919. doi:10.18429/JACoW-NAPAC2016-WEPOB13
[n] V. S. Dyubkov et al., “Beam Dynamics Investigation for a New Project of Compton Back Scattering Photon Source at NRNU MEPhI”, in Proc. IPAC'21, Campinas, Brazil, May 2021, pp. 186-188. doi:10.18429/JACoW-IPAC2021-MOPAB042
[n] S. K. Tian, J. Chen, Y. Jiao, H. Shi, L. Wang, and N. Wang, “Longitudinal Impedance Measurement of the Strip-Line Kicker for High Energy Photon Source (HEPS)”, in Proc. IPAC'18, Vancouver, Canada, Apr.-May 2018, pp. 1379-1381. doi:10.18429/JACoW-IPAC2018-TUPMF053
[n] W. Gu, H. Zha, H. Chen, J. Shi, and Q. Li, “Design of X-band distributed-coupling accelerating structure”, in Proc. IPAC'24, Nashville, TN, USA, May 2024, pp. 192-194. doi:10.18429/JACoW-IPAC2024-MOPC56
[n] R. J. Roussel et al., “Transformer Ratio Measurements from Ramped Beams in the Plasma Blowout Regime using Emittance Exchange”, in Proc. IPAC'19, Melbourne, Australia, May 2019, pp. 3778-3781. doi:10.18429/JACoW-IPAC2019-THPGW088
[n] R. Bodenstein et al., “Current status of conceptual horizontal splitter design for FFA@CEBAF energy Upgrade”, in Proc. IPAC'25, Taipei, Taiwan, Jun. 2025, pp. 810-813. doi:10.18429/JACoW-IPAC2025-MOPS126
[n] A. Makhankov et al., “An Accelerator-based Thermal Neutron Source for BNCT Application”, in Proc. EPAC'04, Lucerne, Switzerland, Jul. 2004, paper THPLT111, pp. 2745-2747.
[n] E.-G. Schweppe, E. Demmel, S. Isagawa, H. Seifert, T. Shintake, and M. Yoshida, “Analysis and Optimisation of RF Power-Klystrons by FCI-Code”, in Proc. PAC'91, San Francisco, CA, USA, May 1991, pp. 757-760.
[n] L. Steder and D. Reschke, “Statistical Analysis of the 120??C Bake Procedure of Superconducting Radio Frequency Cavities”, in Proc. SRF'19, Dresden, Germany, Jun.-Jul. 2019, pp. 444-447. doi:10.18429/JACoW-SRF2019-TUP020
[n] Y. M. Pischalnikov et al., “Extended Range SRF Cavity Tuner for LCLS II HE Project”, in Proc. SRF'21, East Lansing, MI, USA, Jun.-Jul. 2021, pp. 203. doi:10.18429/JACoW-SRF2021-MOPTEV002
[n] K. Villafania, M. Kelly, P. Piot, S.-H. Kim, T. Xu, and T. Petersen, “X-ray measurements in a prototype superconducting radiofrequency electron gun for LCLS-II-HE project”, in Proc. IPAC'24, Nashville, TN, USA, May 2024, pp. 2717-2719. doi:10.18429/JACoW-IPAC2024-WEPS11
[n] D. Cook, J. Clare, J. S. Przybyla, and P. W. Wheeler, “Design of A Direct Power Converter for High Power RF Applications”, in Proc. PAC'07, Albuquerque, NM, USA, Jun. 2007, paper WEPMN083, pp. 2221-2223.
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References
- A. Anders, S. Anders, and I. Brown, “Surface Resistivity Tailoring of Ceramic Accelerator Components”, in Proc. 15th Particle Accelerator Conf. (PAC'93), Washington D.C., USA, Mar. 1993, pp. 1390-1393.
- T. Fujino et al., “Thermal Quench Phenomena on the 1.3 GHz High Gradient Superconducting Cavities”, in Proc. 5th European Particle Accelerator Conf. (EPAC'96), Sitges, Spain, Jun. 1996, paper WEP055L, pp. 2124-2126.
- Y. P. Sun, “Online Minimization of Vertical Beam Sizes at APS”, in Proc. North American Particle Accelerator Conf. (NAPAC'16), Chicago, IL, USA, Oct. 2016, pp. 916-919.
- V. S. Dyubkov et al., “Beam Dynamics Investigation for a New Project of Compton Back Scattering Photon Source at NRNU MEPhI”, in Proc. 12th Int. Particle Accelerator Conf. (IPAC'21), Campinas, Brazil, May 2021, pp. 186-188.
- S. K. Tian, J. Chen, Y. Jiao, H. Shi, L. Wang, and N. Wang, “Longitudinal Impedance Measurement of the Strip-Line Kicker for High Energy Photon Source (HEPS)”, in Proc. 9th Int. Particle Accelerator Conf. (IPAC'18), Vancouver, Canada, Apr.-May 2018, pp. 1379-1381.
- W. Gu, H. Zha, H. Chen, J. Shi, and Q. Li, “Design of X-band distributed-coupling accelerating structure”, in Proc. 15th Int. Particle Accelerator Conf. (IPAC'24), Nashville, TN, USA, May 2024, paper MOPC56, pp. 192-194.
- R. J. Roussel et al., “Transformer Ratio Measurements from Ramped Beams in the Plasma Blowout Regime using Emittance Exchange”, in Proc. 10th Int. Particle Accelerator Conf. (IPAC'19), Melbourne, Australia, May 2019, pp. 3778-3781.
- R. Bodenstein et al., “Current status of conceptual horizontal splitter design for FFA@CEBAF energy Upgrade”, in Proc. 16th Int. Particle Accelerator Conf. (IPAC'25), Taipei, Taiwan, Jun. 2025, paper MOPS126, pp. 810-813.
- A. Makhankov et al., “An Accelerator-based Thermal Neutron Source for BNCT Application”, in Proc. 9th European Particle Accelerator Conf. (EPAC'04), Lucerne, Switzerland, Jul. 2004, paper THPLT111, pp. 2745-2747.
- E.-G. Schweppe, E. Demmel, S. Isagawa, H. Seifert, T. Shintake, and M. Yoshida, “Analysis and Optimisation of RF Power-Klystrons by FCI-Code”, in Proc. 14th Particle Accelerator Conf. (PAC'91), San Francisco, CA, USA, May 1991, pp. 757-760.
- L. Steder and D. Reschke, “Statistical Analysis of the 120??C Bake Procedure of Superconducting Radio Frequency Cavities”, in Proc. 19th Int. Conf. RF Superconductivity (SRF'19), Dresden, Germany, Jun.-Jul. 2019, pp. 444-447.
- Y. M. Pischalnikov et al., “Extended Range SRF Cavity Tuner for LCLS II HE Project”, in Proc. 20th International Conference on RF Superconductivity (SRF'21), East Lansing, MI, USA, Jun.-Jul. 2021, pp. 203.
- K. Villafania, M. Kelly, P. Piot, S.-H. Kim, T. Xu, and T. Petersen, “X-ray measurements in a prototype superconducting radiofrequency electron gun for LCLS-II-HE project”, in Proc. 15th Int. Particle Accelerator Conf. (IPAC'24), Nashville, TN, USA, May 2024, paper WEPS11, pp. 2717-2719.
- D. Cook, J. Clare, J. S. Przybyla, and P. W. Wheeler, “Design of A Direct Power Converter for High Power RF Applications”, in Proc. 22nd Particle Accelerator Conf. (PAC'07), Albuquerque, NM, USA, Jun. 2007, paper WEPMN083, pp. 2221-2223.
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