Energy-Recovery Linacs for Commercial Radioisotope Production
Creators
- 1. Muplus, Inc., Newport News, VA (United States)
Description
Most radioisotopes are produced by nuclear reactors or positive ion accelerators, which are expensive to construct and to operate. Photonuclear reactions using bremsstrahlung photon beams from less-expensive electron linacs can generate isotopes of critical interest, but much of the beam energy in a conventional electron linac is dumped at high energy, making unwanted radioactivation. The largest part of this radioactivation may be completely eliminated by applying energy recovery linac technology to the problem with an additional benefit that the energy cost to produce a given amount of isotope is reduced. Consequently, a Superconducting Radio Frequency (SRF) Energy Recovery Linac (ERL) is a path to a more diverse and reliable domestic supply of short-lived, high-value, high-demand isotopes at a cost lower than that of isotopes produced by reactors or positive-ion accelerators. A Jefferson Lab approach to this problem involves a thin photon production radiator, which allows the electron beam to recirculate through rf cavities so the beam energy can be recovered while the spent electrons are extracted and absorbed at a low enough energy to minimize unwanted radioactivation. The thicker isotope photoproduction target is not in the beam. MuPlus, with Jefferson Lab and Niowave, proposed to extend this ERL technology to the commercial world of radioisotope production. In Phase I we demonstrated that 1) the ERL advantage for producing radioisotopes is at high energies (~100 MeV), 2) the range of acceptable radiator thickness is narrow (too thin and there is no advantage relative to other methods and too thick means energy recovery is too difficult), 3) using optics techniques developed under an earlier STTR for collider low beta designs greatly improves the fraction of beam energy that can be recovered (patent pending), 4) many potentially useful radioisotopes can be made with this ERL technique that have never before been available in significant commercial quantities. We developed a plan for the Phase II project that started with a Conceptual Design Report (CDR) based on the results of the Phase I studies and concluded with a Technical Design Report (TDR) for a facility to make isotopes that are most attractive based on market analyses.
Files
48047025.pdf
Files
(1.5 MB)
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Additional details
Publishing Information
- Imprint Pagination
- 20 p.
- Report number
- DOE-Muplus--13123
INIS
- Country of Publication
- United States
- Country of Input or Organization
- United States
- INIS RN
- 48047025
- Subject category
- S43: PARTICLE ACCELERATORS;
- Descriptors DEI
- BEAM OPTICS; BREMSSTRAHLUNG; DESIGN; ELECTRON BEAMS; ENERGY ACCOUNTING; ENERGY LOSSES; ENERGY RECOVERY; ISOTOPE PRODUCTION; LINEAR ACCELERATORS; MEV RANGE 10-100; PHOTONUCLEAR REACTIONS; PHOTOPRODUCTION; RADIOACTIVATION; RADIOISOTOPES; RADIOWAVE RADIATION; SAFETY REPORTS; SUPERCONDUCTING CAVITY RESONATORS; TARGETS; THICKNESS
- Descriptors DEC
- ACCELERATORS; ACCOUNTING; BEAMS; CAVITY RESONATORS; DIMENSIONS; ELECTROMAGNETIC INTERACTIONS; ELECTROMAGNETIC RADIATION; ELECTRONIC EQUIPMENT; ENERGY ANALYSIS; ENERGY RANGE; EQUIPMENT; FUNDAMENTAL INTERACTIONS; INTERACTIONS; ISOTOPES; LEPTON BEAMS; LOSSES; MEV RANGE; NUCLEAR REACTIONS; PARTICLE BEAMS; PARTICLE INTERACTIONS; PARTICLE PRODUCTION; RADIATIONS; RESONATORS; SUPERCONDUCTING DEVICES
Optional Information
- Contract/Grant/Project number
- SC0013123
- Collaborations
- Thomas Jefferson National Accelerator Facility, Niowave, Inc.
- Funding organization
- USDOE Office of Science - SC, Nuclear Physics - NP (SC-26) (United States)
- Secondary number(s)
- OSTIID--1332817