Isurumali Neththikumara (Thomas Jefferson National Accelerator Facility)
SUP005
Multi-objective optimization of strong hadron cooler Energy Recovery Linac injector
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The Strong Hadron Cooler (SHC) proposed for the Electron-Ion Collider (EIC) requires high-current, low-emittance electron bunches with minimal energy spread. The Energy Recovery Linac (ERL) injector plays a critical role in shaping the beam before acceleration. We present a multi-objective optimization study of the SHC ERL injector and merger using space charge tracking in Bmad and parallel genetic algorithm. The optimized configuration reduces the normalized transverse emittance by 62% and energy spread by 85% from the original configuration.
  • N. Wang, G. Hoffstaetter
    Cornell University
  • E. Wang, W. Bergan
    Brookhaven National Laboratory
  • I. Neththikumara, K. Deitrick, N. Sereno, S. Setiniyaz, T. Satogata
    Thomas Jefferson National Accelerator Facility
DOI: reference for this paper: 10.18429/JACoW-NAPAC2025-TUP069
About:  Received: 08 Aug 2025 — Revised: 12 Aug 2025 — Accepted: 15 Aug 2025 — Issue date: 28 Aug 2025
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
TUP015
Beam halo formation with different cathode distributions
379
Beam halo refers to the low-density distribution of particles extending beyond the beam core, and its generation and mitigation are important topics in particle accelerator design. Effective mitigation of beam halo is essential for the cooler design based on Energy Recovery Linac (ERL), which must deliver an electron beam with average beam current of 100 mA and a charge 1 nC per bunch. In the ERL injector and booster linacs, space charge effects are stronger due to relatively low beam energy (6 MeV). Additionally, the longer bunch length of approximately 100 ps in this regime vs the RF period of 5.08 ns makes the formation of beam halos more likely. Therefore, effective collimation of beam halo is critical to maintaining the required beam parameters. To design an effective collimation scheme, several halo distributions were generated at the cathode and used to study halo formation within the injector-merger. This paper presents different halo distributions and halo formation, providing insights on halo collimation strategy.
  • I. Neththikumara, B. Gamage, K. Deitrick, N. Sereno, R. Rimmer, S. Setiniyaz, T. Satogata
    Thomas Jefferson National Accelerator Facility
  • E. Wang, W. Bergan
    Brookhaven National Laboratory
  • N. Wang
    Cornell University
Paper: TUP015
DOI: reference for this paper: 10.18429/JACoW-NAPAC2025-TUP015
About:  Received: 06 Aug 2025 — Revised: 11 Aug 2025 — Accepted: 14 Aug 2025 — Issue date: 28 Aug 2025
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
TUP026
Current status of the electron transport line from RCS to ESR: RTE line
406
The electron injection system of the U.S. Electron-Ion Collider (EIC) is located outside of the RHIC tunnel. Electrons beams accelerated by the Rapid Cycling Synchrotron (RCS) must be transported to the Electron Storage Ring (ESR), which resides within the RHIC tunnel. To accomplish this, a dedicated beam transport line, referred to as RTE (RCS-to-ESR) line is being designed. The proposed conceptual design comprises three main sections; RCS extraction, a vertical bend and dispersion suppression region, and ESR injection matching. The extraction section uses pulsed kickers and septum magnets to achieve a total deflection angle of 3 degrees. To align the injection section with ESR, the beamline must provide a vertical elevation of 1.68 m, and an array of FODO cells is used to suppress the vertical dispersion. The total length of the RTE line is approximately 133 m, and this paper presents the current design status and considerations for this transport line.
  • I. Neththikumara, B. Gamage, K. Deitrick, N. Sereno, S. Setiniyaz, T. Satogata
    Thomas Jefferson National Accelerator Facility
  • B. Bhandari, C. Montag, E. Wang, N. Tsoupas, V. Ranjbar, W. Bergan
    Brookhaven National Laboratory
Paper: TUP026
DOI: reference for this paper: 10.18429/JACoW-NAPAC2025-TUP026
About:  Received: 06 Aug 2025 — Revised: 14 Aug 2025 — Accepted: 14 Aug 2025 — Issue date: 28 Aug 2025
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
TUP051
Impedance and wakefield studies of the EIC RCS 591 MHz five-cell cavity
471
The Electron-Ion Collider (EIC) is a next-generation accelerator complex designed to enable high-luminosity collisions between highly polarized electrons and light ions (e.g., He-3). A central component of its Electron Injection System (EIS) is the Rapid Cycling Synchrotron (RCS), which accelerates a single 28 nC electron bunch from 750 MeV to 5, 10, or 18 GeV using an array of 591 MHz five-cell superconducting RF (SRF) cavities—eight at the current design stage. To ensure stable acceleration of high-charge bunches, we conducted detailed impedance and wakefield studies of the SRF cavity structure using both frequency- and time-domain methods. Wakefield solvers (ECHO3D, ECHO1D, CST), eigenmode analysis, and multi-particle tracking with ELEGANT were employed to evaluate longitudinal and transverse impedance effects and to determine instability thresholds. These studies provide critical input for the cavity design and operating parameters required to preserve beam quality and stability in the RCS.
  • S. Setiniyaz, I. Neththikumara, J. Guo, K. Deitrick, N. Sereno, R. Rimmer, T. Satogata, Z. Conway
    Thomas Jefferson National Accelerator Facility
  • A. Blednykh, G. Wang, W. Xu
    Brookhaven National Laboratory
Paper: TUP051
DOI: reference for this paper: 10.18429/JACoW-NAPAC2025-TUP051
About:  Received: 07 Aug 2025 — Revised: 14 Aug 2025 — Accepted: 14 Aug 2025 — Issue date: 28 Aug 2025
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
TUP069
Multi-objective optimization of Strong Hadron Cooler Energy Recovery Linac injector
525
The Strong Hadron Cooler (SHC) proposed for the Electron-Ion Collider (EIC) requires high-current, low-emittance electron bunches with minimal energy spread. The Energy Recovery Linac (ERL) injector plays a critical role in shaping the beam before acceleration. We present a multi-objective optimization study of the SHC ERL injector and merger using space charge tracking in Bmad and parallel genetic algorithm. The optimized configuration reduces the normalized transverse emittance by 62% and energy spread by 85% from the original configuration.
  • N. Wang, G. Hoffstaetter
    Cornell University
  • E. Wang, W. Bergan
    Brookhaven National Laboratory
  • I. Neththikumara, K. Deitrick, N. Sereno, S. Setiniyaz, T. Satogata
    Thomas Jefferson National Accelerator Facility
Paper: TUP069
DOI: reference for this paper: 10.18429/JACoW-NAPAC2025-TUP069
About:  Received: 08 Aug 2025 — Revised: 12 Aug 2025 — Accepted: 15 Aug 2025 — Issue date: 28 Aug 2025
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
TUP091
Space charge studies on strong hadron cooler energy recovery linac
584
An Energy Recovery Linac (ERL) based cooler, using Coherent electron Cooling (CeC) is being designed for cooling hadron beams of the Electron-Ion Collider (EIC). The ERL design utilizes highcurrent, high-brightness electron beams with low emittance and a uniform longitudinal distribution for efficient hadron cooling. This is designed to operate in two modes to accommodate cooling requirements for hadron bunches at 100 GeV and 275 GeV, each with an average current of 100 mA and 1 nC bunch charge. With these parameters, the space charge effects become significant in this ERL design due to the low beam energy and high beam current. In this paper, we discuss strategies for including space charge effects in the optics design and implementation of an interface for space charge dominated and non-dominated regions of this ERL lattice.
  • I. Neththikumara, B. Gamage, K. Deitrick, N. Sereno, S. Setiniyaz, T. Satogata
    Thomas Jefferson National Accelerator Facility
  • E. Wang, W. Bergan
    Brookhaven National Laboratory
  • N. Wang
    Cornell University
Paper: TUP091
DOI: reference for this paper: 10.18429/JACoW-NAPAC2025-TUP091
About:  Received: 06 Aug 2025 — Revised: 14 Aug 2025 — Accepted: 17 Aug 2025 — Issue date: 28 Aug 2025
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
WEAN02
Status of permanent magnet radiation resiliency studies at CEBAF
630
An ongoing investigation for the future of Jefferson Lab’s Continuous Electron Beam Accelerator Facility (CEBAF) lies in upgrading its maximum nominal energy using Fixed-Field Alternating-gradient (FFA) technology for its recirculating arcs, using permanent magnets for the FFA arcs. A common concern among the community is the degradation of these permanent magnets during operation due to the radiation environment in which they will be present. This work, funded by a Laboratory Directed R&D grant, aims to measure the permanent magnet degradation in the CEBAF tunnel enclosure, and extrapolate to the energies expected from the upgrade. We present the latest results of this study, as well as plans moving forward.
  • R. Bodenstein, B. Gamage, B. Mosbrucker, D. Hamlette, E. Nissen, I. Neththikumara, J. Samari, J. Gubeli, J. Meyers, K. Jordan, K. Deitrick, M. Janak, M. Smith, N. Wilson, S. Shriner, S. Lee
    Thomas Jefferson National Accelerator Facility
  • B. Shepherd
    Science and Technology Facilities Council
  • C. Decker
    Thomas Jefferson National Accelerator Facility, Rose–Hulman Institute of Technology, Thomas Jefferson National Accelerator Facility; Rose–Hulman Institute of Technology
  • S. Brooks
    Brookhaven National Laboratory
  • S. Boogert
    Cockcroft Institute
  • V. Okey-Ejiowhor
    Thomas Jefferson National Accelerator Facility, Thomas Jefferson National Accelerator Facility; St. Mary's University, Texas, St. Mary's University, Texas
  • W. Shields
    Royal Holloway University of London
Paper: WEAN02
DOI: reference for this paper: 10.18429/JACoW-NAPAC2025-WEAN02
About:  Received: 07 Aug 2025 — Revised: 10 Aug 2025 — Accepted: 14 Aug 2025 — Issue date: 28 Aug 2025
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
WEZN01
Design progress for the 22 GeV CEBAF energy upgrade
664
In this work we examine the progress made in the design of the proposed FFA upgrade to the Continuous Electron Beam Accelerator Facility (CEBAF). This proposed upgrade will double the number of passes through the two linacs by replacing the two highest energy arcs with new Fixed Field Alternating Gradient (FFA) arcs, roughly doubling the energy. These FFA arcs will use permanent magnets in a Halbach configuration to shape their fields. The design involves new optics for the linacs and remaining electromagnetic arcs, as well as new electromagnetic separators. These feed into the permanent magnet FFA arcs. We also report on ongoing studies of the dynamics of the beams, and an experiment to measure the effects of radiation on the permanent magnets.
  • E. Nissen, A. Bogacz, A. Coxe, A. Seryi, B. Gamage, D. Khan, I. Neththikumara, K. Deitrick, N. Sereno, R. Kazimi, R. Ruber, R. Bodenstein, S. Ogur, T. Satogata, Y. Roblin
    Thomas Jefferson National Accelerator Facility
  • D. Trbojevic, J. Berg, S. Brooks
    Brookhaven National Laboratory
  • G. Hoffstaetter
    Cornell University
  • V. Morozov
    Oak Ridge National Laboratory
Paper: WEZN01
DOI: reference for this paper: 10.18429/JACoW-NAPAC2025-WEZN01
About:  Received: 06 Aug 2025 — Revised: 13 Aug 2025 — Accepted: 14 Aug 2025 — Issue date: 28 Aug 2025
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
WEP037
Final design and first use of in-situ measuring apparatus for measurement of permanent magnet resiliency in CEBAF’s radiation environment
759
In this work we outline the final design and initial measurement lessons for the holders and measuring apparatus of the permanent magnet resiliency experiment which is a part of the FFA@CEBAF proposed upgrade. The experiment will expose permanent magnets to the radiation environment of CEBAF. Due to safety regulations we need to measure the magnets in the tunnel without bringing them out, so we designed a mobile measuring system as well as a series of protocols to allow us to speedily measure these samples even under adverse conditions. We also designed our system to be capable of taking measurements even with component failures.
  • E. Nissen, B. Gamage, I. Neththikumara, J. Gubeli, K. Deitrick, R. Bodenstein
    Thomas Jefferson National Accelerator Facility
Paper: WEP037
DOI: reference for this paper: 10.18429/JACoW-NAPAC2025-WEP037
About:  Received: 06 Aug 2025 — Revised: 10 Aug 2025 — Accepted: 11 Aug 2025 — Issue date: 28 Aug 2025
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
WEP074
Radiation Dose Simulations on Permanent Magnets for the CEBAF Energy Upgrade
The ongoing work related to the LDRD funded by JLab is investigating the effects of radiation on permanent magnet materials intended for use in the CEBAF energy upgrade. This effort combines experimental exposure of magnet samples to radiation rates within the accelerator with detailed simulation studies. Samples are positioned at various locations to capture a range of radiation environments, helping researchers assess how different doses influence magnetic performance over time. Simulations using BDSIM support the interpretation of measured results and extend predictions to the higher energy stages planned for CEBAF. This paper presents recent findings and outlines the progress made toward understanding the long-term behavior of these materials in high-radiation settings.
  • B. Gamage, E. Nissen, I. Neththikumara, K. Deitrick, R. Bodenstein
    Thomas Jefferson National Accelerator Facility
  • C. Decker
    Thomas Jefferson National Accelerator Facility, Rose–Hulman Institute of Technology, Thomas Jefferson National Accelerator Facility; Rose–Hulman Institute of Technology
  • S. Boogert
    Cockcroft Institute
  • V. Okey-Ejiowhor
    Thomas Jefferson National Accelerator Facility, Thomas Jefferson National Accelerator Facility; St. Mary's University, Texas, St. Mary's University, Texas
  • W. Shields
    Royal Holloway University of London
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
THP022
Design of a microbunched electron cooler energy recovery linac
989
Microbunched electron Cooling (MBEC), a type of Coherent electron Cooling (CeC), is a possible way to cool high energy protons; such an electron cooler can be driven by an energy recovery linac (ERL). The beam parameters of this design are based on cooling 275 and 100 GeV protons at the Electron-Ion Collider (EIC), requiring 150 and 55 MeV electrons, respectively. If implemented, a high energy cooler would serve to increase the average luminosity of the collider by mitigating the emittance growth caused by various processes. This ERL is designed to deliver a bunch charge of 1 nC, an average current of 100 mA, and strict requirements on the transverse emittance, slice energy spread, and longitudinal distribution profile. This paper covers the current state of the design.
  • K. Deitrick, S. Benson, B. Gamage, J. Guo, I. Neththikumara, R. Rimmer, S. Setiniyaz, T. Satogata
    Thomas Jefferson National Accelerator Facility
  • N. Sereno
    Thomas Jefferson National Accelerator Facility, Argonne National Laboratory
  • B. Dunham, C. Mayes
    SLAC National Accelerator Laboratory
  • C. Gulliford, K. Smolenski, N. Taylor, R. Eichhorn
    Xelera Research (United States)
  • W. Bergan, D. Kayran, E. Wang, D. Xu
    Brookhaven National Laboratory
  • N. Wang
    Cornell University
  • J. Conway
    Oak Ridge National Laboratory
Paper: THP022
DOI: reference for this paper: 10.18429/JACoW-NAPAC2025-THP022
About:  Received: 08 Aug 2025 — Revised: 12 Aug 2025 — Accepted: 17 Aug 2025 — Issue date: 28 Aug 2025
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote