Abstract
All used nuclear fuel (UNF) reprocessing technologies must operate efficiently in the presence of an intense, multi-component (predominantly alpha, beta, and gamma) radiation field. Consequently, radiation-induced degradation of reprocessing systems is of concern, as it negatively impacts process performance over time due to the destruction of both active compounds (ligands, phase modifiers, holdback agents, etc.) and the formation of degradation products. Reprocessing solvent system radiolysis has been linked to changes in separation efficiency and physical properties of solvent mixtures, solvent-recycle longevity, crud formation, and other unexpected outcomes that impact the efficient recovery of valuable materials (e.g., the actinides) and the volume of hazardous radioactive waste for final disposal, i.e., in a geological repository. Consequently, a fundamental understanding of radiolytic processes and their effects on reprocessing solvent system performance is critical for: (i) the cost-effective development and innovation of separation technologies; (ii) the design and implementation of predictive radiation chemical models for process monitoring and lifetimes; and (iii) potentially the ability to exploit radiolytic phenomenon to our benefit, e.g., strategic radiolysis of active molecules to liberate specific degradation products that aid subsequent process stages. Despite extensive investigation into the radiolytic behavior of active solvent system compounds, little attention has been given to understanding (i) the radiation chemical behavior and modification of the organic diluent and (ii) the effect of metal ion complexation on the radiochemical behavior of active compounds.
| Original language | English |
|---|---|
| State | Published - Aug 31 2021 |
| Event | INNOVATIVE SEPARATIONS R&D NEEDS FOR ADVANCED FUEL CYCLES - Virtual Duration: Aug 30 2021 → Sep 1 2021 |
Conference
| Conference | INNOVATIVE SEPARATIONS R&D NEEDS FOR ADVANCED FUEL CYCLES |
|---|---|
| Period | 08/30/21 → 09/1/21 |
Keywords
- Organic Diluent Radiolysis
- Multi-Scale Modeling
- Gamma Radiolysis
- Alpha Radiolysis
- Pulsed Electron Radiolysis
- Metal Ion Complexation
INL Publication Number
- INL/CON-21-63934
- 90727
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