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Abstract

The article presents selected issues related to the development and testing of the diagnostics systems dedicated for superconducting electromagnets. The systems were constructed to assess the production quality of superconducting electromagnets of the SIS100 synchrotron, a new accelerator being built as part of the Facility of Antiproton and Ion Research (FAIR). One of the systems is used for automatic checking of electrical connection parameters and the continuity of electric circuits. The role of the second device is to assess the quality of winding insulation and to estimate circuit parameters of electromagnet coils using the capacitor discharge method. The work presents measurements and analysis of current and voltage waveforms acquired during discharges on a magnet coil simulator and on the SIS100 main dipole electromagnet.
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Authors and Affiliations

Michał Michna
1
ORCID: ORCID
Andrzej Wilk
1
ORCID: ORCID
Marek Wołoszyk
1
ORCID: ORCID
Michał Ziółko
1
ORCID: ORCID
Stanisław Galla
1
ORCID: ORCID
Piotr Szwangruber
2
ORCID: ORCID

  1. Gdansk University of Technology, Faculty of Electrical and Control Engineering, Gabriela Narutowicza str. 11/12, 80-233 Gdansk, Poland
  2. GSI Helmholtzzentrum für Schwerionenforschung GmbH, Darmstadt 64291, Germany
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Abstract

Quality of electric current delivered to the magnets of a particle accelerator is essential for safety and reliability of its operation. Even small discrepancies strongly affect the properties of particle beams. One of the sources of the disturbances is the appearance of induced currents caused by the electromagnetic interactions between the elements of the machine. In this paper the calculations of induced currents in by-pass lines of a SIS100 particle accelerator are presented. In order to find the values of the currents the self-inductances and mutual inductances of the by-pass lines are found. Due to the complex geometry of the line, especially of Ω-shaped dilatations, the numerical approach was employed. The calculations show that the size of induced currents increases with the distance between the cables in an individual bus-bar. The maximum discrepancy of the magnetic field in a dipole magnet is found to be 7.7 μT. The decrease of distance between the cables allows one to obtain a discrepancy of 1.2 μT.

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Authors and Affiliations

Łukasz Tomków
Stanisław Trojanowski
Marian Ciszek
Maciej Chorowski
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Abstract

Sections of the superconducting magnets of the SIS100 particle accelerator, under construction at the Facility for Antiproton and Ion Research (FAIR), the Society for Heavy Ion Research (GSI), Darmstadt, are going to be connected with the by-pass lines. Each line will be used to transfer a two-phase helium flow and an electric current. The electric current will be carried by four pairs of superconducting Nuclotron-type cables. Fast-ramping currents are expected to cause the generation of heat within the cables. In this work the results of a numerical thermal analysis of a bus-bar are presented. The amount of heat transferred from the environment was found based on geometric dimensions of the line and applied insulation. The amount of hysteresis loss, generated in the cable during the operation under most demanding regime of the operation of the accelerator, was calculated. According to the amount of the generated heat, the amount of the hysteresis loss is low in relation to the heat generated in the superconducting magnets. Also it was found that the cable used in the line still retains a large margin of current-carrying capacity.

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Authors and Affiliations

Łukasz Tomków
Maciej Cholewiński
ORCID: ORCID
Marian Ciszek
Maciej Chorowski
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Abstract

Roman Micnas was a distinguished Polish physicist, well known for his works in the field of condensed matter theory and statistical physics. One of his best known achievements is development of theory of superconductivity with local electron pairing. He also published a number of important contributions to the theory of magnetism, theory of phase transitions, and theory of ultracold atoms on optical lattices. His more than 140 publications were cited over 3200 times by other authors. He graduated at the Faculty of Mathematics, Physics and Chemistry of Adam Mickiewicz University (AMU) in 1970, where he hold a position until his passing away on 13 January 2022. He received PhD in 1978, habilitation in 1988, and became Professor in 1990. In the Faculty of Physics of AMU he was the head of Solid State Theory Division in years 1998–2018. For his development of theory of superconductivity with local electron pairing he was awarded, together with Stanisław Robaszkiewicz, the Marie Skłodowska-Curie Scientific Prize of the Polish Academy of Sciences (PAS) in 1989. In 1994 he became Corresponding Member of PAS, and in 2016 – Ordinary Member. He served a number of important functions in PAS, among others he was a member of Committee for Physics of PAS, and since 2015 a Dean of Division III of Exact Sciences and Earth Sciences of PAS. He was a member of several scientific societies: Polish Physical Society, European Physical Society, American Physical Society and American Association for Advancement of Science. He co-organized 35 home and international conferences, among others the cycle of the European Conferences „Physics of Magnetism”, which he co-chaired since 1993.
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Authors and Affiliations

Tomasz Kostyrko
1
Marek Thomas
1

  1. Wydział Fizyki, Instytut Spintroniki i Informacji Kwantowej, Zakład Teorii Materii Skondensowanej, Uniwersytet im.Adama Mickiewicza
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Abstract

The article presents a new generation of ultra-fast hybrid switching systems (USH) for reliable, ultra-fast protection of various medium and low voltage DC systems (MVDC and LVDC). The DC switch-off takes place in a vacuum chamber (VC) cooperating with a semiconductor module using current commutation of natural or forced type. Against the background of the current state of science and technology, the paper depicts the basic scopes of USH applications and their particular suitability for operation in high magnetic energy DC circuits. In the case of DC system failures, this magnetic energy should be dissipated outside the system as soon as possible. Usually, magnetic blow-out switches (MBOS) with relatively low operating speed are used for this purpose. The article describes the theoretical basis and principles of construction of two types of novel USH systems: a direct current switching system (DCSS) and a direct current ultra-fast hybrid modular switch (DCU-HM). The DCSS family is designed for quench protection of superconducting electromagnets’ coils in all areas of application. The DCU-HM family is designed for the protection of all systems or vehicles of DC electrical traction and for related industrial applications. The conducted comparative analysis of the effectiveness of USH with respect to MBOS shows clear technical advantages of the new generation switching systems over MBOS. List of abbreviations used in the article is provided at the end.
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Bibliography

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Authors and Affiliations

Marek Bartosik
1
Piotr Borkowski
1
ORCID: ORCID
Franciszek Wójcik
1

  1. Lodz University of Technology, Department of Electrical Apparatus (DEA TUL), 116 Zeromskiego Street, 90-924 Lodz, Poland

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