Numerical simulation of Tc transport in reducing cementitious materials undergoing oxidation is challenging because the effective solid-solute partition coefficient (span style='top: 5.5pt; line-height: 115%; font-family: "Calibri","sans-serif"; font-size: 11pt; position: relative; mso-fareast-font-family: "Times New Roman"; mso-fareast-theme-font: minor-fareast; mso-bidi-font-family: "Times New Roman"; mso-ansi-language: EN-US; mso-fareast-language: EN-US; mso-bidi-language: AR-SA; mso-ascii-theme-font: minor-latin; mso-hansi-theme-font: minor-latin; mso-text-raise: -5.5pt;'>span style='line-height: 115%; font-family: "Verdana","sans-serif"; font-size: 11pt; mso-fareast-font-family: "Times New Roman"; mso-fareast-theme-font: minor-fareast; mso-bidi-font-family: "Times New Roman"; mso-ansi-language: EN-US; mso-fareast-language: EN-US; mso-bidi-language: AR-SA;'>) varies greatly between the reduced and oxidized states, assuming the Tc mass loading far exceeds that required to reach solubility in the aqueous phase, as is typical in waste disposal. In a conventional finite-volume formulation, the local aqueous concentration increases orders of magnitude when a computational cell switches from a reducing to oxidizing condition, which is an artifact of numerical discretization. In principal such artifacts can be reduced to an insignificant level by refining the computational grid. However, this approach is not feasible in typical facility scale applications due to computer runtime and storage limitations. In this paper an alternative sub-grid Tc release model is derived to approximately capture redox processes occurring at scales smaller than the computational mesh. This alternative approach introduces minimal additional computational expense, while significantly reducing numerical artifacts in the form of Tc concentration / flux spikes. The method is illustrated for two simple geometries and the Savannah River Site Saltstone waste Disposal Facility. The sub-grid model is shown to significantly reduce artificial spikes in Tc-99 release, resulting in more physically realistic numerical simulations."> Numerical simulation of Tc transport in reducing cementitious materials undergoing oxidation is challenging because the effective solid-solute partition coefficient (span style='top: 5.5pt; line-height: 115%; font-family: "Calibri","sans-serif"; font-size: 11pt; position: relative; mso-fareast-font-family: "Times New Roman"; mso-fareast-theme-font: minor-fareast; mso-bidi-font-family: "Times New Roman"; mso-ansi-language: EN-US; mso-fareast-language: EN-US; mso-bidi-language: AR-SA; mso-ascii-theme-font: minor-latin; mso-hansi-theme-font: minor-latin; mso-text-raise: -5.5pt;'>span style='line-height: 115%; font-family: "Verdana","sans-serif"; font-size: 11pt; mso-fareast-font-family: "Times New Roman"; mso-fareast-theme-font: minor-fareast; mso-bidi-font-family: "Times New Roman"; mso-ansi-language: EN-US; mso-fareast-language: EN-US; mso-bidi-language: AR-SA;'>) varies greatly between the reduced and oxidized states, assuming the Tc mass loading far exceeds that required to reach solubility in the aqueous phase, as is typical in waste disposal. In a conventional finite-volume formulation, the local aqueous concentration increases orders of magnitude when a computational cell switches from a reducing to oxidizing condition, which is an artifact of numerical discretization. In principal such artifacts can be reduced to an insignificant level by refining the computational grid. However, this approach is not feasible in typical facility scale applications due to computer runtime and storage limitations. In this paper an alternative sub-grid Tc release model is derived to approximately capture redox processes occurring at scales smaller than the computational mesh. This alternative approach introduces minimal additional computational expense, while significantly reducing numerical artifacts in the form of Tc concentration / flux spikes. The method is illustrated for two simple geometries and the Savannah River Site Saltstone waste Disposal Facility. The sub-grid model is shown to significantly reduce artificial spikes in Tc-99 release, resulting in more physically realistic numerical simulations.">
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  4. 009: Assessment of Worldwide Disposal Systems, Facilities and Sites for LLW/ILW - (1/2)
  5. Sub-Grid Model Improving Shrinking Core Simulations of Redox-Sensitive Technetium Release from Slag Cement Waste Forms
009: Assessment of Worldwide Disposal Systems, Facilities and Sites for LLW/ILW - (1/2)

Sub-Grid Model Improving Shrinking Core Simulations of Redox-Sensitive Technetium Release from Slag Cement Waste Forms

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Challenges to Collection of High Quality Samples of Saltstone K. Rosenberger · M. Smith
Analysis of Saltstone Cores Taken from Saltstone Disposal Unit Cell 2A C. Langton · M. Reigel · K. Hill · R. Nichols
Contaminant Leaching from Intact Saltstone Monoliths J. Seaman · S. Simner · F. Coutelot
Sub-Grid Model Improving Shrinking Core Simulations of Redox-Sensitive Technetium Release from Slag Cement Waste Forms G. Flach

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