One of the still open issues for the development of superconductive insertion devices is the understanding of the heat intake from the electron beam. With the aim of measuring the beam heat load to a cold bore and the hope to gain a deeper understanding in the underlying mechanisms, a cold vacuum chamber for diagnostics (COLDDIAG) was built. It is equipped with the following instrumentation: retarding field analyzers to measure the electron flux, temperature sensors to measure the beam heat load, pressure gauges, and mass spectrometers to measure the gas content. Possible beam heat load sources are: synchrotron radiation, wakefield effects due to geometrical and resistive wall impedance and electron/ion bombardment. The flexibility of the engineering design will allow the installation of the cryostat in different synchrotron light sources. COLDDIAG was first installed in the Diamond Light Source (DLS) in 2011. Due to a mechanical failure of the thermal transition of the cold liner, the cryostat had to be removed after one week of operation. After having implemented design changes in the thermal liner transition, COLDDIAG has been reinstalled in the DLS at the end of August 2012. In order to understand the beam heat load mechanism it is important to compare the measured COLDDIAG parameters with theoretical expectations. In this paper we report on the analytical and numerical computation of the COLDDIAG beam heat load due to coupling impedances deriving from unavoidable step transitions, ports used for pumping and diagnostics, surface roughness, and resistive wall. The results might have an important impact on future technological solutions to be applied to cold bore devices. © 2012 IOP Publishing Ltd and Sissa Medialab srl.

Beam heat load due to geometrical and resistive wall impedance in COLDDIAG / S., Casalbuoni; Migliorati, Mauro; Mostacci, Andrea; Palumbo, Luigi; B., Spataro. - In: JOURNAL OF INSTRUMENTATION. - ISSN 1748-0221. - 7:11(2012), pp. P11008-P11008. [10.1088/1748-0221/7/11/p11008]

Beam heat load due to geometrical and resistive wall impedance in COLDDIAG

MIGLIORATI, Mauro;MOSTACCI, Andrea;PALUMBO, Luigi;
2012

Abstract

One of the still open issues for the development of superconductive insertion devices is the understanding of the heat intake from the electron beam. With the aim of measuring the beam heat load to a cold bore and the hope to gain a deeper understanding in the underlying mechanisms, a cold vacuum chamber for diagnostics (COLDDIAG) was built. It is equipped with the following instrumentation: retarding field analyzers to measure the electron flux, temperature sensors to measure the beam heat load, pressure gauges, and mass spectrometers to measure the gas content. Possible beam heat load sources are: synchrotron radiation, wakefield effects due to geometrical and resistive wall impedance and electron/ion bombardment. The flexibility of the engineering design will allow the installation of the cryostat in different synchrotron light sources. COLDDIAG was first installed in the Diamond Light Source (DLS) in 2011. Due to a mechanical failure of the thermal transition of the cold liner, the cryostat had to be removed after one week of operation. After having implemented design changes in the thermal liner transition, COLDDIAG has been reinstalled in the DLS at the end of August 2012. In order to understand the beam heat load mechanism it is important to compare the measured COLDDIAG parameters with theoretical expectations. In this paper we report on the analytical and numerical computation of the COLDDIAG beam heat load due to coupling impedances deriving from unavoidable step transitions, ports used for pumping and diagnostics, surface roughness, and resistive wall. The results might have an important impact on future technological solutions to be applied to cold bore devices. © 2012 IOP Publishing Ltd and Sissa Medialab srl.
2012
wigglers and undulators); accelerator subsystems and technologies; acceleration cavities and magnets superconducting (high-temperature superconductor; normal-conducting; instrumentation for particle accelerators and storage rings; permanent magnet devices; accelerator modelling and simulations; instrumentation for particle accelerators and storage rings - high energy (linear accelerators; synchrotrons); radiation hardened magnets; accelerator modelling and simulations (multi-particle dynamics; singleparticle dynamics)
01 Pubblicazione su rivista::01a Articolo in rivista
Beam heat load due to geometrical and resistive wall impedance in COLDDIAG / S., Casalbuoni; Migliorati, Mauro; Mostacci, Andrea; Palumbo, Luigi; B., Spataro. - In: JOURNAL OF INSTRUMENTATION. - ISSN 1748-0221. - 7:11(2012), pp. P11008-P11008. [10.1088/1748-0221/7/11/p11008]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/495267
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