The Design of Water Loop Facility for Supporting the WCLL Breeding Blanket Technology and Safety

Author:

Vannoni Alessandra1ORCID,Arena Pietro2ORCID,Gonfiotti Bruno2ORCID,Eboli Marica2ORCID,Lorusso Pierdomenico3ORCID,Tincani Amelia2ORCID,Badodi Nicolò4,Cammi Antonio4,Giannetti Fabio1ORCID,Ciurluini Cristiano1ORCID,Forgione Nicola5,Galleni Francesco5ORCID,Catanzaro Ilenia6ORCID,Vallone Eugenio6ORCID,Di Maio Pietro Alessandro6ORCID,Agostini Pietro1,Del Nevo Alessandro2ORCID

Affiliation:

1. Department of Astronautical, Electrical and Energy Engineering (DIAEE), Sapienza University of Rome, 00186 Rome, Italy

2. Department of Fusion and Nuclear Safety Technology, ENEA, 40032 Camugnano, Italy

3. Department of Fusion and Nuclear Safety Technology, ENEA, 00044 Rome, Italy

4. Nuclear Engineering Division, Department of Energy, Politecnico di Milano, 20156 Milan, Italy

5. Department of Civil and Industrial Engineering (DICI), University of Pisa, 56122 Pisa, Italy

6. Department of Engineering, University of Palermo, 90128 Palermo, Italy

Abstract

The WCLL Breeding Blanket of DEMO and the Test Blanket Module (TBM) of ITER require accurate R&D activities, i.e., concept validation at a relevant scale and safety demonstrations. In view of this, the strategic objective of the Water Loop (WL) facility, belonging to the W-HYDRA experimental platform planned at C.R. Brasimone of ENEA, is twofold: to conduct R&D activities for the WCLL BB to validate design performances and to increase the technical maturity level for selection and validation phases, as well as to support the ITER WCLL Test Blanket System program. Basically, the Water Loop facility will have the capability to investigate the design features and performances of scaled-down or portions of breeding blanket components, as well as full-scale TBM mock-ups. It is a large-/medium-scale water coolant plant that will provide water coolant at high pressure and temperature. It is composed by single-phase primary (designed at 18.5 MPa and 350 °C) and secondary (designed at 2.5 MPa and 220 °C) systems thermally connected with a two-phase tertiary loop acting as an ultimate heat sink (designed at 6 bar and 80 °C). The primary loop has two main sources of power: an electrical heater up to about 1 MWe, installed in the cold side, downstream of the pump and upstream of the test section, and an electron beam gun acting as a heat flux generator. The WL has unique features and is designed as a multi-purpose facility capable of being coupled with the LIFUS5/Mod4 facility to study PbLi/water reaction at a large scale. This paper presents the status of the Water Loop facility, highlighting objectives, design features, and the analyses performed.

Funder

European Union via the Euratom Research and Training Programme

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference21 articles.

1. Muratov, V.P., Saksagansky, G.L., and Filatov, O.G. (2018). Fundamentals of Magnetic Thermonuclear Reactor Design, Woodhead Publishing.

2. Status of maturation of critical technologies and systems design: Breeding blanket;Boccaccini;Fusion Eng. Des.,2022

3. Ibarra, A., and Kurtz, R. (2015, January 11–14). ITER-TBM and Blanket Programs toward DEMO. Proceedings of the 3rd IAEA DEMO Programme Workshop, Hefei, China. Available online: https://nucleus.iaea.org/sites/fusionportal/Technical%20Meeting%20Proceedings/3rd%20DEMO/website/talks/May%2013%20Sessions/Ibarra_A%20Intro.pdf.

4. Overview of recent ITER TBM Program activities;Giancarli;Fusion Eng. Des.,2020

5. An overview of the EU Breeding Blanket design strategy as an integral part of the DEMO design effort;Federici;Fusion Eng. Des.,2019

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