Reuse & Permissions

It is not necessary to obtain permission to reuse this article or its components as it is available under the terms of the Creative Commons Attribution 4.0 International license. This license permits unrestricted use, distribution, and reproduction in any medium, provided attribution to the author(s) and the published article's title, journal citation, and DOI are maintained. Please note that some figures may have been included with permission from other third parties. It is your responsibility to obtain the proper permission from the rights holder directly for these figures.

Export citation

Export citation

Choose format for download:

Download Citation
  • Letter
  • Open Access

Energy recovery proton linear accelerator

Ji Qiang

Phys. Rev. Accel. Beams 28, L090101 – Published 12 September, 2025

DOI: https://doi.org/10.1103/9bh4-fnq7

Abstract

High-power proton linear accelerators have important applications in both scientific research and industry. However, the operation of such accelerators with megawatt-level beam power is expensive and limits the broad availability of these facilities. In this Letter, we propose a novel energy recovery proton linear accelerator in which the final GeV-level proton beam is reinjected into the linear accelerator from the accelerator exit and is decelerated in the same accelerator down to about 2 MeV, close to the initial beam energy. This substantially reduces the power consumption of the proton linear accelerator and also avoids the need for a high-power beam dump. We demonstrate this concept through self-consistent simulations and show that the beam-beam effect between the forward-accelerating beam and the backward-decelerating beam would not be a limiting factor for the proposed concept. A potential application of this concept to an electron-ion collider based on energy recovery electron and ion accelerators is discussed.

View figure in article

Physics Subject Headings (PhySH)

Article Text

References (31)

  1. N. Holtkamp, Status of the SNS linac: An overview, in Proceedings of the 22nd International Linear Accelerator Conference, Linac-2004, Lubeck, Germany (JACoW, Geneva, Switzerland, 2004), p. 837.
  2. M. Ball et al., The PIP-II conceptual design report, Fermilab Report No. FERMILAB-DESIGN-2017-01.
  3. M. Eshraqi et al., The ESS linac, in Proceedings of the 5th International Particle Accelerator Conference, IPAC-2014, Dresden, Germany (EPS-AG, Dresden, 2014), p. 3320.
  4. Z. Li et al., Physics design of an accelerator for an accelerator-driven subcritical system, Phys. Rev. ST Accel. Beams 16, 080101 (2013).
  5. R. Pande et al., Physics design of a CW high-power proton linac for accelerator-driven system, Pramana 78, 247 (2012).
  6. J. Wei et al., The FRIB superconducint linac: Status and plans, in Proceedings of the 28th Linear Accelerator Conference, LINAC 2016, East Lansing, MI (JACoW, Geneva, Switzerland, 2016), p. 1.
  7. M. Tigner, A possible apparatus for electron clashing-beam experiments, Nuovo Cimento 37, 1228 (1965).
  8. https://www.jlab.org/conferences/ERL/
  9. https://accelconf.web.cern.ch/erl07/INDEX.HTM
  10. https://accelconf.web.cern.ch/ERL2009/INDEX.HTM
  11. https://accelconf.web.cern.ch/ERL2011/
  12. https://accelconf.web.cern.ch/ERL2013/
  13. https://accelconf.web.cern.ch/ERL2015/
  14. https://accelconf.web.cern.ch/erl2017/
  15. https://accelconf.web.cern.ch/erl2019/
  16. https://www.classe.cornell.edu/NewsAndEvents/ERL2022/
  17. https://www2.kek.jp/casa/cERL/en/events/ERL2024/index.html
  18. T. I. Smith, H. A. Schwettman, R. Rohatgi, Y. Lapierre, and J. Edighoffer, Development of the SCA/FEL for use in biomedical and materials science experiments, Nucl. Instrum. Methods Phys. Res., Sect. A 259, 1 (1987).
  19. D. W. Feldman et al., Energy recovery in the Los Alamos free electron laser, Nucl. Instrum. Methods Phys. Res., Sect. A 259, 26 (1987).
  20. V. P. Bolotin et al., Status of the Novosibirsk terahertz FEL, in Proceedings of the FEL Conference 2004 (2004), pp. 226–228, https://accelconf.web.cern.ch/f04/fel2004proceedings.pdf.
  21. https://www.jlab.org/research/linacs
  22. https://www.classe.cornell.edu/WebHome.html
  23. M. Akemoto et al., Construction and commissioning of the compact energy-recovery linac at KEK, Nucl. Instrum. Methods Phys. Res., Sect. A 877, 197 (2018).
  24. M. Arnold, J. Birkhan, J. Pforr, N. Pietralla, F. Schliebmann, and M. Steinhorst, First operation of the superconducting Darmstadt linear electron accelerator as an energy recovery linac, Phys. Rev. Accel. Beams 23, 020101 (2020).
  25. A. Bungau, R. Cywinski, C. Bungau, P. King, and J. Lord, Simulations of surface muon production in graphite targets, Phys. Rev. ST Accel. Beams 16, 014701 (2013).
  26. J. Qiang, R. Ryne, S. Habib, and V. Decyk, An object-oriented parallel particle-in-cell code for beam dynamics simulation in linear accelerators, J. Comput. Phys. 163, 434 (2000).
  27. J. Qiang, S. Lidia, R. D. Ryne, and C. Limborg-Deprey, A three-dimensional quasi-static model for high brightness beam dynamics simulation, Phys. Rev. ST Accel. Beams 9, 044204 (2006).
  28. P. Agostini et al., The large hadron-electron collider at the HL-LHC, J. Phys. G 48, 110501 (2021).
  29. V. N. Litvinenko, T. Roser, and M. Chamizo-Llatas, High-energy high-luminosity e+e− collider using energy-recovery linacs, Phys. Lett. B 804, 135394 (2020).
  30. F. Willeke et al., Electron ion collider conceptual design report, https://www.osti.gov/biblio/1765663.
  31. https://portal.nersc.gov/project/m669/ERPL/

Outline

Information

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation