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Solenoid Development for an Emittance Transfer Experiment With a Design Environment System

Identifieur interne : 000443 ( Main/Exploration ); précédent : 000442; suivant : 000444

Solenoid Development for an Emittance Transfer Experiment With a Design Environment System

Auteurs : Hanno Leibrock [Allemagne] ; Peter Rottlaender [Allemagne] ; Carsten Muehle [Allemagne] ; Fatma C. Ozturk [Turquie]

Source :

RBID : Pascal:14-0209115

Descripteurs français

English descriptors

Abstract

Various solenoids must be developed for different machines of the FAIR-Project. A solenoid design environment (SDE) has been developed to reduce expenditure of design time and work. The design environment is based on an Opera-2d input text file. Most significant physical and technical parameters of a solenoid are considered. Due to the axial symmetry, a two-dimensional solenoid model describes well the main characteristics of a real magnet. The first use of the SDE was the design of a solenoid for an emittance transfer experiment at GSI. The 36 cm long magnet creates a flux density of 1 Tesla at the center. The coil of the solenoid is separated in two halves to allow placing a movable stripping foil on the beam axis. Nevertheless, the magnet design avoids a local flux minimum in the center, since it might act as a trap of electrons. Creating a SDE and a solenoid with this tool takes a little more manpower than designing one solenoid without environment system. But in the future the SDE will help to decrease development time significantly.


Affiliations:


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Le document en format XML

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<name sortKey="Rottlaender, Peter" sort="Rottlaender, Peter" uniqKey="Rottlaender P" first="Peter" last="Rottlaender">Peter Rottlaender</name>
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<term>Solénoïde</term>
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<div type="abstract" xml:lang="en">Various solenoids must be developed for different machines of the FAIR-Project. A solenoid design environment (SDE) has been developed to reduce expenditure of design time and work. The design environment is based on an Opera-2d input text file. Most significant physical and technical parameters of a solenoid are considered. Due to the axial symmetry, a two-dimensional solenoid model describes well the main characteristics of a real magnet. The first use of the SDE was the design of a solenoid for an emittance transfer experiment at GSI. The 36 cm long magnet creates a flux density of 1 Tesla at the center. The coil of the solenoid is separated in two halves to allow placing a movable stripping foil on the beam axis. Nevertheless, the magnet design avoids a local flux minimum in the center, since it might act as a trap of electrons. Creating a SDE and a solenoid with this tool takes a little more manpower than designing one solenoid without environment system. But in the future the SDE will help to decrease development time significantly.</div>
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