Measurement of RF characteristics for Superconducting Quarter-wave Resonator

Journal of the Korean Physical Society - Tập 76 - Trang 73-78 - 2020
Jongchul Lee1, Yacine Kadi2, Pei Zhang3, Mitra Ghergherehchi4, Jong-Seo Chai4
1WCU Department of Energy Science, Sungkyunkwan University, Suwon, Korea
2CERN, Geneva 23, Switzerland
3Institute of High Energy Physics, Chinese Academy of Sciences, Beijing, China
4College of Information and Communication Engineering, Sungkyunkwan University, Suwon, Korea

Tóm tắt

RF characteristics of unloaded quality factor (Q0) and accelerating electric field (Eacc) were measured for superconducting quarter-wave resonator (QWR) in order to verify the performance. For the accurate measurement of RF characteristics, the measurement method of Q0 based RF power and RF coupling coefficient was used, and the measurement uncertainty was calculated with statistics analysis of systematic error in RF measurement system. The superconducting QWR was designed with a resonant frequency of 101.28 MHz and an accelerating electric field (Eacc) of 6 MV/m at a cavity dissipation power of 10 W in the high-intensity and energy isotope separator online device (HIE-ISOLDE) project at CERN. Q-slopes and RF coupling coefficients were measured for three QWRs at the resonant frequency 101.28 MHz. Q0 values of QWRs were measured 4.55 × 108, 3.78 × 108 and 3.17 × 108 at the 6 MV/m, respectively, and the measurement uncertainty of Q0 and Eacc were calculated 2.92% and 3.32%. Performances of superconducting QWRs were acceptable to operate the beam acceleration with consideration of cryomodule capacity in HIEISOLDE project.

Tài liệu tham khảo

K. W. Shepard, Nucl. Instrum. Meth. A 382, 125 (1996). V. Palmieri, et al., Nucl. Instrum. Meth. A 382, 112 (1996). R. E. Laxdal, et al., Physica C: Superconductivity 441, 193 (2006). M. A. Fraser et al., in Proceedings of SRF2009 (Berlin, Germany, 2009). H-J. Kim et al., Nucl. Instrum. Meth. A 884, 45 (2018). H. Padamsee, RF Superconductivity for Accelerators (Wiley-VCH2008, 2008). J. P. Holzbauer et al., Nucl. Instrum. Meth. A 913, 7 (2019). T. Powers, in Proceedings of 12th International Workshop on RF Superconductivity, SRF2005 (New York, USA 40–70, 2005). Z. Gao et al., Nucl. Instrum. Meth. A 767, 212 (2014). J. A. Rodriguez et al., in Proceedings of IPAC2016 (Busan, Korea, 2016), p. 2045. S. Calatroni et al., Phys. Rev. Accel. Beams 19, 092002 (2016). A. Herlert, Y. Kadi, J. Phys. Conf. Ser. 312, 052010 (2011). Y. Kadi et al., HIE-ISOLDE, Technical Design Report for the Energy Upgrade, CERN, 2018. L. Lista, Statistical Methods for Data Analysis in Particle Physics (Springer, 2017). P. Zhang, A. D’Elia, W. Venturini Delsolaro and K. Artoos, Nucl. Instrum. Meth. A 797, 101 (2015). T. P. Wangler, RF Linear Accelerators (Wiley, 2008). P. Zhang et al., in Proceedings of SRF2013 (Paris, France, 2013). Hewlett-Packard, 8591A Portable Spectrum Analyzer Service Manual, USA, 1990. L. Alberty et al., in Proceedings of SRF2013 (Paris, France, 2013). A. Sublet et al., in Proceedings of IPAC2014 (Dresden, Germany, 2014). A. Sublet et al., in Proceedings of IPAC2015 (Richmond, VA, USA, 2015). H. Padamsee, in Proceedings of CAS-CERN Accelerator School: Superconductivity for Accelerators (Erice, Italy, 2015), p. 141. W. V. Delsolaro et al., in Proceedings of LINAC2014 (Geneva, Switzerland, 2014). N. Guillotin et al., IOP Conf. Ser.-Mat. Sci. 278, 012121 (2017).