The review of modern domestic pumps for ultra-high vacuum in the beam accelerators and nuclear fusion devices

Capa
  • Autores: Krasnov A.A1,2,3, Nechaev P.G4, Semenov A.M1,5
  • Afiliações:
    1. Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences
    2. Novosibirsk State University
    3. Center for Collective Use “Siberian Ring Photon Source”, Federal Research Center G.K. Boreskov Institute of Catalysis of the Siberian Branch of the Russian Academy of Sciences
    4. Optikon Ltd.
    5. Novosibirsk State Technical University
  • Edição: Volume 89, Nº 9 (2025)
  • Páginas: 1404-1411
  • Seção: Synchrotron and Free Electron Laser Radiation: Generation and Applications
  • URL: https://ogarev-online.ru/0367-6765/article/view/364258
  • DOI: https://doi.org/10.7868/S30346460525090083
  • ID: 364258

Citar

Texto integral

Acesso aberto Acesso aberto
Acesso é fechado Acesso está concedido
Acesso é fechado Somente assinantes

Resumo

The domestic modern pumps based on non-evaporable getters and ion-getter pumps for obtaining an ultrahigh vacuum at 10–11 Torr level are considered in this paper. The experimental results of pumping speed measurements as a function of gas pressure are presented for various types of ion-getter pump. The pumping speed measurements of the pumps based on non-evaporable getters for H2, CO and D2 are also shown.

Sobre autores

A. Krasnov

Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences; Novosibirsk State University; Center for Collective Use “Siberian Ring Photon Source”, Federal Research Center G.K. Boreskov Institute of Catalysis of the Siberian Branch of the Russian Academy of Sciences

Novosibirsk, Russia; Novosibirsk, Russia; Novosibirsk, Russia

P. Nechaev

Optikon Ltd.

Novosibirsk, Russia

A. Semenov

Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences; Novosibirsk State Technical University

Email: A.M.Semenov@inp.nsk.su
Novosibirsk, Russia; Novosibirsk, Russia

Bibliografia

  1. Krasnov A. // Proc. SFR’20 (Novosibirsk, 2020). P. 1.
  2. Schulz L. // Proc. CERN Accelerator School: Vacuum Technology (Copenhagen, 1999). P. 1.
  3. Deichuli P., Davydenko V., Belov V. et al. // Rev. Sci. Instrum. 2012. V. 83. No. 2. Art. No. 02B114.
  4. ISO DIN 3556. Sputter-ion pumps. Measurement of performance characteristics.
  5. Jousten K. // Proc. CERN Accelerator School: Vacuum Technology (Platja d’Aro, 2006). P. 1.
  6. Анашин В.В., Краснов А.А., Семенов А.М. // ПТЭ. 2020. No. 6. P. 109
  7. Anashin V.V., Krasnov A.A., and Semenov A.M. // Instrum. Exp. Tech. 2020. V. 63. No. 6. P. 893.
  8. Краснов А.А., Семенов А.М. // Изв. РАН. Сер. физ. 2023. Т. 87. № 5. С. 646
  9. Krasnov A.A., and Semenov A.M. // Bull. Russ. Acad. Sci. Phys. 2023. V. 87. No. 5. P. 568.
  10. Смирницкая Г.В., Рейхрудель Э.М. // Электрон. И ее прим. 1976. Т. 8. С. 43.
  11. Дэшман С. Научные основы вакуумной техники. М.: Мир, 1964. 716 с.
  12. https://www.agilent.com/cs/library/usermanuals/public/VP20n-crop.pdf
  13. https://www.saesgetters.com/products-functions/Products

Arquivos suplementares

Arquivos suplementares
Ação
1. JATS XML

Declaração de direitos autorais © Russian Academy of Sciences, 2025

Согласие на обработку персональных данных

 

Используя сайт https://journals.rcsi.science, я (далее – «Пользователь» или «Субъект персональных данных») даю согласие на обработку персональных данных на этом сайте (текст Согласия) и на обработку персональных данных с помощью сервиса «Яндекс.Метрика» (текст Согласия).