Numerical Modeling of Subcooled Flow Boiling and Heat Transfer Enhancement: Validation and Applicability to Fusion Reactor Target Design

Author:

Young Graeme1,Karimi Nader23,Mackenzie Ross4

Affiliation:

1. James Watt School of Engineering, University of Glasgow, Glasgow G12 8QQ, UK

2. James Watt School of Engineering, University of Glasgow, Glasgow G12 8QQ, UK;

3. School of Engineering and Materials Science, Queen Mary University of London, London E1 4NS, UK

4. Mott MacDonald Ltd., St. Vincent Plaza, 319 St. Vincent Street, Glasgow G2 5LD, UK

Abstract

Abstract Boiling flows are an extremely efficient mechanism for the transfer of ultrahigh heat fluxes and used in numerous industrial applications. In this paper, the accuracy of computational fluid dynamics in predicting the temperature distributions and heat transfer performance is examined within a nuclear fusion reactor divertor. The aim is to establish the role of computational fluid dynamics (CFD) within the design of complicated high heat flux components using a semi-mechanistic approach to flow boiling that is independent of geometry and flow conditions. An Eulerian–Eulerian two-fluid method is developed and a conjugate heat transfer model is validated against the existing experimental data where available. Overall, a satisfactory accuracy is achieved in the prediction of several important quantities. Temperature distribution throughout the divertor is found to be highly accurate and aligns with the physical testing across two expected operating regimes. Additionally, the system heat transfer coefficients and coolant temperatures are close to the assumptions already established within the literature. Heat transfer enhancement is a critical component of the divertor design, and a twisted-tape insert appears to be necessary for the system to withstand ultrahigh heat fluxes encountered within the fusion reactor. The results show that the inclusion of a twisted tape improved the heat transfer coefficient of the system by almost 45% allowing the divertor to withstand the required heat fluxes of 10 MW/m2 and 20 MW/m2.

Publisher

ASME International

Subject

Geochemistry and Petrology,Mechanical Engineering,Energy Engineering and Power Technology,Fuel Technology,Renewable Energy, Sustainability and the Environment

Reference52 articles.

1. Developments in Nuclear Power and Radioactive Waste Management;Wong;ASME J. Energy Resour. Technol.,2017

2. U.S. Energy Information Administration , 2019, “International Energy Outlook 2019 with Projections to 2050,” EIA Report No. #IEO2019.

3. Key World Energy Statistics 2015

4. ITER: The Giant Fusion Reactor

5. Fusion Energy Conversion in Magnetically Confined Plasma Reactors;Dobran;Prog. Nucl. Energy,2012

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