LAPSE:2023.9793
Published Article

LAPSE:2023.9793
Swirl-Bypass Nozzle for CO2 Two-Phase Ejectors: Numerical Design Exploration
February 27, 2023
Abstract
In this work, a novel ejector design concept of a swirl-bypass nozzle is proposed to improve off-design performance of CO2 two-phase ejectors. The swirl-bypass nozzle allows part of the flow to bypass into the ejector mixing chamber to generate swirl. The design of such a device is investigated using a 3D multiphase CFD model. An extensive experimental test campaign is conducted to validate the baseline homogeneous equilibrium CFD model. The model’s prediction motive mass flow rate within 2−12% error and suction mass flow rate was predicted with 3−50% error. Based on the tested ejector geometry, simulations of different ejector swirl-bypass inlets are conducted. The results show that, for the current design, total entrainment of the ejector is reduced by 2−20% with the swirl-bypass inlet. The axial position of the bypass inlet plays a primary role in the bypass inlet flow rate, and, consequently, in suction flow reduction. This is found to be due to the bypass flow blocking off the suction mass flow rate, which has a net negative impact on performance. Finally, several design improvements to improve future designs are proposed.
In this work, a novel ejector design concept of a swirl-bypass nozzle is proposed to improve off-design performance of CO2 two-phase ejectors. The swirl-bypass nozzle allows part of the flow to bypass into the ejector mixing chamber to generate swirl. The design of such a device is investigated using a 3D multiphase CFD model. An extensive experimental test campaign is conducted to validate the baseline homogeneous equilibrium CFD model. The model’s prediction motive mass flow rate within 2−12% error and suction mass flow rate was predicted with 3−50% error. Based on the tested ejector geometry, simulations of different ejector swirl-bypass inlets are conducted. The results show that, for the current design, total entrainment of the ejector is reduced by 2−20% with the swirl-bypass inlet. The axial position of the bypass inlet plays a primary role in the bypass inlet flow rate, and, consequently, in suction flow reduction. This is found to be due to the bypass flow blocking off the suction mass flow rate, which has a net negative impact on performance. Finally, several design improvements to improve future designs are proposed.
Record ID
Keywords
bypass ejector, Carbon Dioxide, Computational Fluid Dynamics, swirl bypass, two-phase ejector
Subject
Suggested Citation
Ringstad KE, Banasiak K, Ervik Å, Hafner A. Swirl-Bypass Nozzle for CO2 Two-Phase Ejectors: Numerical Design Exploration. (2023). LAPSE:2023.9793
Author Affiliations
Ringstad KE: Department of Energy and Process Engineering, Norwegian University of Science and Technology, Kolbjørn Hejes vei 1B, 7491 Trondheim, Norway
Banasiak K: SINTEF Energy Research, Kolbjørn Hejes vei 1d, 7465 Trondheim, Norway
Ervik Å: SINTEF Energy Research, Kolbjørn Hejes vei 1d, 7465 Trondheim, Norway
Hafner A: Department of Energy and Process Engineering, Norwegian University of Science and Technology, Kolbjørn Hejes vei 1B, 7491 Trondheim, Norway
Banasiak K: SINTEF Energy Research, Kolbjørn Hejes vei 1d, 7465 Trondheim, Norway
Ervik Å: SINTEF Energy Research, Kolbjørn Hejes vei 1d, 7465 Trondheim, Norway
Hafner A: Department of Energy and Process Engineering, Norwegian University of Science and Technology, Kolbjørn Hejes vei 1B, 7491 Trondheim, Norway
Journal Name
Energies
Volume
15
Issue
18
First Page
6765
Year
2022
Publication Date
2022-09-16
ISSN
1996-1073
Version Comments
Original Submission
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PII: en15186765, Publication Type: Journal Article
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LAPSE:2023.9793
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https://doi.org/10.3390/en15186765
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