CFD Analysis of Aspirator Region in a B&W Enhanced Once-Through Steam Generator

This analysis calculates the velocity profile and recirculation ratio in the aspirator region of an enhanced once-through steam generator of the Babcock & Wilcox design. This information is important to the development of accurate RELAP5 models, steam generator level calculations, steam generato...

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Main Author: Spontarelli, Adam Michael
Other Authors: Mechanical Engineering
Format: Others
Published: Virginia Tech 2013
Subjects:
Online Access:http://hdl.handle.net/10919/23182
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-231822020-09-29T05:45:46Z CFD Analysis of Aspirator Region in a B&W Enhanced Once-Through Steam Generator Spontarelli, Adam Michael Mechanical Engineering Tafti, Danesh K. Pierson, Mark Alan Kornhauser, Alan A. Computational Fluid Dynamics Once-Through Steam Generator OpenFOAM Condensation This analysis calculates the velocity profile and recirculation ratio in the aspirator region of an enhanced once-through steam generator of the Babcock & Wilcox design. This information is important to the development of accurate RELAP5 models, steam generator level calculations, steam generator downcomer models, and flow induced vibration analyses. The OpenFOAM CFD software package was used to develop the three-dimensional model of the EOTSG aspirator region, perform the calculations, and post-process the results. Through a series of cases, each improving upon the modeling accuracy of the previous, insight is gained into the importance of various modeling considerations, as well as the thermal-hydraulic behavior in the steam generator downcomer. Modeling the tube support plates and tube nest is important for the accurate prediction of flow rates above and below the aspirator port, but has little affect on the aspirator region itself. Modeling the MFW nozzle has minimal influence on the incoming steam velocity, but does create a slight azimuthal asymmetry and alter the flow pattern in the downcomer, creating recirculation patterns important to inter-phase heat transfer. Through the development of a two-phase solution that couples the aspirated steam and liquid feedwater, it was found that the ratio of droplet surface area to volume plays the most important role in determining the rate of aspiration. Calculations of the velocity profile and recirculation ratio are compared against those of historical calculations, demonstrating the possibility that these parameters were previously underpredicted. Such a conclusion can only be confidently made once experimental data is made available to validate the results of this analysis. Master of Science 2013-06-08T08:00:38Z 2013-06-08T08:00:38Z 2013-06-07 Thesis vt_gsexam:1228 http://hdl.handle.net/10919/23182 In Copyright http://rightsstatements.org/vocab/InC/1.0/ ETD application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic Computational Fluid Dynamics
Once-Through Steam Generator
OpenFOAM
Condensation
spellingShingle Computational Fluid Dynamics
Once-Through Steam Generator
OpenFOAM
Condensation
Spontarelli, Adam Michael
CFD Analysis of Aspirator Region in a B&W Enhanced Once-Through Steam Generator
description This analysis calculates the velocity profile and recirculation ratio in the aspirator region of an enhanced once-through steam generator of the Babcock & Wilcox design. This information is important to the development of accurate RELAP5 models, steam generator level calculations, steam generator downcomer models, and flow induced vibration analyses. The OpenFOAM CFD software package was used to develop the three-dimensional model of the EOTSG aspirator region, perform the calculations, and post-process the results. Through a series of cases, each improving upon the modeling accuracy of the previous, insight is gained into the importance of various modeling considerations, as well as the thermal-hydraulic behavior in the steam generator downcomer. Modeling the tube support plates and tube nest is important for the accurate prediction of flow rates above and below the aspirator port, but has little affect on the aspirator region itself. Modeling the MFW nozzle has minimal influence on the incoming steam velocity, but does create a slight azimuthal asymmetry and alter the flow pattern in the downcomer, creating recirculation patterns important to inter-phase heat transfer. Through the development of a two-phase solution that couples the aspirated steam and liquid feedwater, it was found that the ratio of droplet surface area to volume plays the most important role in determining the rate of aspiration. Calculations of the velocity profile and recirculation ratio are compared against those of historical calculations, demonstrating the possibility that these parameters were previously underpredicted. Such a conclusion can only be confidently made once experimental data is made available to validate the results of this analysis. === Master of Science
author2 Mechanical Engineering
author_facet Mechanical Engineering
Spontarelli, Adam Michael
author Spontarelli, Adam Michael
author_sort Spontarelli, Adam Michael
title CFD Analysis of Aspirator Region in a B&W Enhanced Once-Through Steam Generator
title_short CFD Analysis of Aspirator Region in a B&W Enhanced Once-Through Steam Generator
title_full CFD Analysis of Aspirator Region in a B&W Enhanced Once-Through Steam Generator
title_fullStr CFD Analysis of Aspirator Region in a B&W Enhanced Once-Through Steam Generator
title_full_unstemmed CFD Analysis of Aspirator Region in a B&W Enhanced Once-Through Steam Generator
title_sort cfd analysis of aspirator region in a b&w enhanced once-through steam generator
publisher Virginia Tech
publishDate 2013
url http://hdl.handle.net/10919/23182
work_keys_str_mv AT spontarelliadammichael cfdanalysisofaspiratorregioninabwenhancedoncethroughsteamgenerator
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