Computational Fluid Dynamics Modeling to Facilitate Qualification of Stack Sampling Probe Location
- 1 Pacific Northwest National Laboratory, Richland, Washington, USA
- 2 Pacific Northwest National Laboratory, Richland, Washington, USA
- 3 Pacific Northwest National Laboratory, Richland, Washington, USA
- 4 Washington State Department of Health, Radioactive Air Emissions Section, Richland, Washington, USA
Abstract
Computational fluid dynamics (CFD) modeling was used to help evaluate modifications to a radiological effluent stack and assist with establishing a stack sampling location that met the mixing criteria for qualification. Requirements for stack sampling location are listed in the American National Standards Institute/Health Physics Society (ANSI/HPS) N13.1-2021 standard. Modeling was performed to help develop a suitable design for increasing building ventilation for the radiological effluent stack. The ANSI/HPS N13.1-2021 criteria for the air monitoring probe location are that the coefficient of variation of velocity uniformity, gaseous tracer uniformity, and particulate tracer uniformity must be less than or equal to 20%. Furthermore, no point in the sampling location may have a gaseous tracer concentration that varies from the mean concentration by more than 30%. Additionally, the flow angle at the sampling location must not be more than 20 degrees. The ANSI/HPS N13.1-2021 standard allows for models (physical or computational) to be employed to perform the full suite of qualification tests, followed by a more limited set of verification tests on the actual stack to qualify the stack sampling location. Here, a series of computational model simulations were employed to evaluate the stack qualification criteria. Significant time and resource savings are achieved using CFD modeling. CFD modeling demonstrated that the stack meets the criteria at the sample probe location. Verification tests were performed on the modified stack to measure the velocity uniformity and flow angle at the stack sampling location, and results demonstrated that the CFD model results may be used to support the qualification of the stack sampling location.
- Health Physics Society (2021) Sampling and Monitoring Releases of Airborne Radioactive Substances from the Stack and Ducts of Nuclear Facilities. ANSI/HPS N13.1-2021. Health Physics Society.
- Glissmeyer, J.A. and Flaherty, J.E. (2010) Assessment of the 3430 Building Filtered Exhaust Stack Sampling Probe Location. PNNL-19262, Revision 1. Pacific Northwest National Laboratory.
- Glissmeyer, J.A. and Droppo, J.G. (2007) Assessment of the HV-C2 Stack Sampling Probe Location. PNNL-16611. Pacific Northwest National Laboratory.
- Incropera, F.P. and DeWitt, D.P. (1985) Introduction to Heat Transfer. 2nd Edition, John Wiley and Sons.
- Barnett, J.M. and Snyder, S.F. (2021) Pacific Northwest National Laboratory Facility Radionuclide Emissions Points and Sampling Systems. PNNL-15992, Revision 5. Pacific Northwest National Laboratory. https://www.researchgate.net/publication/356909850_Pacific_Northwest_National_Laboratory_Facility_Radionuclide_Emission_Points_and_Sampling_Systems
- Suffield, S.R., Barnett, J.M. and Flaherty, J.E. (2023) Assessment of the 3430 Building Filtered Exhaust Stack Sampling Probe Location (Stack Verification Following Fan and Air Blender Additions), PNNL-35334. Pacific Northwest National Laboratory.
- Ballinger, M.Y., Recknagle, K.P. and Barnett, J.M. (2014) Comparison of a Computations Fluid Dynamics Model with Exhaust Flow Data from a Scale Model Stack. In: Barnett, J.M., Vazques, G.A., Bates, C.J. and Anderson, S.V., Eds., 2003 Annual NESHAP Meeting on Radioactive Air , Pacific Northwest National Laboratory, 50-67. https://www.researchgate.net/publication/292159232_2003_Annual_NESHAP_Meeting_on_Radioactive_Air
- Barnett, J.M., Ballinger, M.Y., Recknagle, K.P. and Yokuda, S.T. (2013) Computational Modeling of a Stack Sampling Location for Radioactive Air Emissions. In: Barnett, J.M., Vazques, G.A. and Bates, C.J., Eds., 2005 Annual NESHAP Meeting on Radioactive Air , Pacific Northwest National Laboratory, 73-84. https://www.researchgate.net/publication/292159045_2005_Annual_NESHAP_Meeting_on_Radioactive_Air
- Recknagle, K.P., Yokuda, S.T., Ballinger, M.Y. and Barnett, J.M. (2009) Scaled Tests and Modeling of Effluent Stack Sampling Location Mixing. Health Physics , 96, 164-173. https://doi.org/10.1097/01.hp.0000333680.18803.8a
- Yu, X., Barnett, J.M., Amidan, B.G., Recknagle, K.P., Flaherty, J.E., Antonio, E.J., et al. (2018) Evaluation of Nitrous Oxide as a Substitute for Sulfur Hexafluoride to Reduce Global Warming Impacts of ANSI/HPS N13.1 Gaseous Uniformity Testing. Atmospheric Environment , 176, 40-46. https://doi.org/10.1016/j.atmosenv.2017.12.015