Vacuum system design, construction, and operation for the Cornell High Energy Synchrotron Source upgrade
Tài liệu tham khảo
Rice, 2009
Li, 2009, CESR-TA vacuum system modifications, 357
Billing, 2015, The conversion of CESR to operate as the Test Accelerator, CesrTA. Part 1: overview, J. Inst. Met., 10, P07012
Billing, 2015, The conversion of CESR to operate as the Test Accelerator, CesrTA. Part 2: vacuum modifications, J. Inst. Met., 10, P07013
Temnykh, 2013, Compact undulator for the Cornell high energy synchrotron source: design and beam test results, J. Phys. Conf. Ser., 425, 10.1088/1742-6596/425/3/032004
Temnykh, 2016, CHESS upgrade with compact undulator magnets: operating experience and first results, AIP Conference Proceedings, 1741, 10.1063/1.4952782
Shanks, 2019, Accelerator design for the Cornell high energy synchrotron source upgrade, Phys. Rev. Accel. Beams., 22, 10.1103/PhysRevAccelBeams.22.021602
Weidemann, 2015
Y. He, G. Codner, R.D. Ehrlich, Y. Li, V. Medjidzde, A. Mikhalichenko, N.B. Mistry, E. Nordberg, D. Rice, D. Sabol, K. Smolenski, D. Widger, Design and operation of the cryostat for the CESR-c superconducting wiggler magnets, Proceedings of the 2003 Particle Accelerator Conference, Portland, Oregon, p. 2399-2401. http://doi.org/10.1109/PAC.2003.1289133.
Poprocki, 2017
I.C. Sheng, Y.T. Chung, C.K. Kuan, G.Y. Hsiung, J.R. Chen, C.Y. Yang, Design of TPS crotch absorber, Proceedings of 2010 International Conference on Particle Accelerators, Kyoto, Japan, pp. 1506-1508.
Sheng, 1993, A conceptual design and thermal analysis of high heat load crotch absorber, vol. 2, 1497
Liu, 2019, Design and fabrication of crotch absorbers with beryllium diffuser for Cornell high energy synchrotron source upgrade, Rev. Sci. Instrum., 90, 103309, 10.1063/1.5099361
Li, 1997, Study of distributed ion pumps in the Cornell electron storage ring, J. Vac. Sci. Technol., 15, 2413, 10.1116/1.580756
Keresevan, 2009, Introduction to MOLFLOW+: new graphical processing unit-based Monte Carlo code for simulating molecular flows and for calculating angular coefficients in the compute unified device architecture environment, J. Vac. Sci. Technol., 27, 1017, 10.1116/1.3153280
CERN
Benvenuti, 1996, Pumping characteristics of the St707 nonevaporable getter (Zr 70 V 24.6‐Fe 5.4 wt %), J. Vac. Sci. Technol., 14, 3278, 10.1116/1.580226