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Vacuum Systems for Synchrotron Light Sources

Published online by Cambridge University Press:  29 November 2013

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Synchrotron light sources are electron storage rings that produce synchrotron radiation by accelerating electrons in a circular storage ring. The synchrotron light (photon beam) is then used to irradiate various sample materials for basic and applied research in such fields as solid state physics, biology, chemistry, surface science, and technology.

The electron storage ring must provide an ultrahigh vacuum environment for the electron beam to minimize electron residual gas collision which would shorten the beam-lifetime. This article will discuss the design of electron storage ring vacuum systems and materials, and how the choice of materials can affect the machine design.

A typical electron storage ring is shown in Figure 1. It consists of an injector (linac and booster), transport system, storage rings, and experimental photon beam lines. These machines vary in size from a few meters in circumference for a compact light source used for x-ray lithography, to a few hundred meters in circumference for high energy physics.

The vacuum system for an electron storage ring is an all-metal ultrahigh vacuum system. The operating pressure is in the low 10−9 torr range with stored electron beam, and 10−10 torr without beam.

Certain unique vacuum problems must be faced in electron storage ring design: photon-stimulated gas desorption, power dissipation in the chamber walls, impedance changes due to changes in the chamber cross section, conductance limitations, accurate placement of the chamber, and all of those sundry problems associated with a large bake-able all-metal UHV system. Some of these characteristics are illustrated schematically in Figure 2. Two excellent papers that address many of these issues have been written by N. Mistry (system design) and H. Wiedemen (impedances and instabilities).

Type
Materials for Vacuum
Copyright
Copyright © Materials Research Society 1990

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References

1.Mistry, N.B., “Vacuum Systems for Synchotron-Light Sources,” edited by Halama, H.J., Schuchman, J.C., and Stephan, P.M. (AIP Conf. Proc. 171, New York, 1988) p. 19.Google Scholar
2.Wiedemann, H., “Beam Stability and Vacuum Chamber Design,” edited by Halama, H.J., Schuchman, J.C., and Stephan, P.M. (AIP Conf. Proc. 171, New York, 1988) p. 1021.Google Scholar
3.Andritschky, M., Gröbner, O., Mathewson, A.G., Souchet, R., Strubin, P., and Trickett, B., Differences in Synchrotron Radiation Induced Gas Desorption from Stainless Steel and Aluminum Alloy, CERN-LEP-VA/89–32 (Geneva, March 1989).Google Scholar
4.Gröbner, O., Mathewson, A.G., Störi, H., and Strubin, P., Vacuum 33 (7) (July 1983) p. 397.CrossRefGoogle Scholar
5.Ishimaru, H., Momose, T., Narushina, K., Mrzuno, H., Watanabe, H., Kubo, T., Yanaguchi, H., Kobayashi, M., and Horisoshi, G., IEEE Trans. Nucl. Sci. N5-30 (3) (1983).Google Scholar
6.Chapman, G., “The Bonding of Lead Shielding Directly on to the Aluminum Vacuum Chamber of the LEP Machine” (AIP Conf. Proc. 171, New York, 1988) p. 350357.Google Scholar
7.Bee, S.H., Morimoto, Y., Sakamoto, H., Yokouchi, S., “Conceptual Design of the Vacuum System for the 6 GeV Storage Ring,” (AIP Conf. Proc. 171, New York, 1988) p. 7380.Google Scholar
8.Wehrle, R. and Moenich, J., JEEE Trans. Nucl. Sci. NS-32 (5) (1985) p. 37923794.CrossRefGoogle Scholar
9. Conceptual Design Report, PUB05084, Vol. 1, Accelerator and Fusion Research Div., Lawrence Berkeley Lab., Berkeley, CA (March 1983) p. 328.Google Scholar
10.Kennedy, K., Henderson, T., and Meneghetti, J., LBL-25980, Lawrence Berkeley Lab., Berkeley, CA.Google Scholar
11.Schuchman, J.C. and Sharma, S., “Design of Vacuum Chambers Downstream of NSLS X-Ray Ring Insertion Devices,” (AIP Conf. Proc. 171, New York, 1988) p. 311317.Google Scholar
12.Bacher, J.P. and Hilleret, N., CERN/LEP-VA/89-52, presented at the 1989 International Vacuum Congress, Cologne, Sept., 1989 (unpublished).Google Scholar
13.Momose, T., Narushima, K., Kanazawa, K., Suetsugu, Y., Hisamatsu, H., Shimamoto, M., and Ishimaru, H., Radiation Damage and Corrosion in TRISTAN Vacuum Syste KEK, Oho-machi, Tsukuba-gun, Ibaraki-ken, 305, Japan.Google Scholar
14.Ishimaru, H.et al., “Operational Characteristic of Vacuum System for TRISTAN Electron-Positron Collider,” 6th Symposium on Accelerator Science and Technology, Tokyo, Oct. 1987.Google Scholar
15.Gmur, N.F., Analysis of Surface Contamination on Beryllium Windows (Brookhaven National Lab., Dec. 1986, Upton, N.Y.)CrossRefGoogle Scholar
16.Trickett, B.A., Vacuum 38 (8–10) (1988) p. 607.CrossRefGoogle Scholar
17.Schuchman, J.C., West, L.J., J. Vac. Sci. Technol. A2 (3) (July-Sept. 1984) p. 13841385.CrossRefGoogle Scholar
18.Kauptsidis, J., Mathewson, A.G., DESY 76/49 (Sept. 1976).Google Scholar
19.Takada, H. and Tsutsui, , Rev. Sci. Instrum. 60 (7) (July 1989) p. 1630.CrossRefGoogle Scholar
20.Schuchman, J.C., presented at the 1989 International Vacuum Congress, Cologne, Sept., 1989 (unpublished).Google Scholar
21.Foerster, C.L., Halama, H.J., and Lanni, C., presented at the October 1989 National AVS Symposium, Boston, MA, 1989 (unpublished).Google Scholar